Patent Description:
A vacuum adiabatic body is a product for suppressing heat transfer by vacuuming the interior of a body thereof. The vacuum adiabatic body can reduce heat transfer by convection and conduction, and hence is applied to heating apparatuses and refrigerating apparatuses. In a typical adiabatic method applied to a refrigerator, although it is differently applied in refrigeration and freezing, a foam urethane adiabatic wall having a thickness of about <NUM> or more is generally provided. However, the internal volume of the refrigerator is therefore reduced.

In order to increase the internal volume of a refrigerator, there is an attempt to apply a vacuum adiabatic body to the refrigerator.

First, <CIT> (Reference Document <NUM>) of the present applicant has been disclosed. According to Reference Document <NUM>, there is disclosed a method in which a vacuum adiabatic panel is prepared and then built in walls of a refrigerator, and the exterior of the vacuum adiabatic panel is finished with a separate molding as Styrofoam (polystyrene). According to the method, additional foaming is not required, and the adiabatic performance of the refrigerator is improved. However, fabrication cost is increased, and a fabrication method is complicated. As another example, a technique of providing walls using a vacuum adiabatic material and additionally providing adiabatic walls using a foam filling material has been disclosed in <CIT> (Reference Document <NUM>). According to Reference Document <NUM>, fabrication cost is increased, and a fabrication method is complicated.

As another example, there is an attempt to fabricate all walls of a refrigerator using a vacuum adiabatic body that is a single product. For example, a technique of providing an adiabatic structure of a refrigerator to be in a vacuum state has been disclosed in U. Patent Laid-Open Publication No. <CIT> (Reference Document <NUM>). However, it is difficult to obtain an adiabatic effect of a practical level by providing the walls of the refrigerator to be in a sufficient vacuum state. Specifically, it is difficult to prevent heat transfer at a contact portion between external and internal cases having different temperatures. Further, it is difficult to maintain a stable vacuum state. Furthermore, it is difficult to prevent deformation of the cases due to a sound pressure in the vacuum state. Due to these problems, the technique of Reference Document <NUM> is limited to cryogenic refrigerating apparatuses, and is not applied to refrigerating apparatuses used in general households.

As a further alternative, the applicant of the present invention has filed <CIT>, a vacuum adiabatic body and a refrigerator. The present technology proposes a refrigerator in which both the main body and the door are provided as vacuum adiabatic bodies.

The vacuum adiabatic body itself only performs an adiabatic action, and necessary parts are required to be installed in a product such as a refrigerator to which the vacuum adiabatic body is applied, but there is no consideration about it. <CIT> presents a luminous multiple glazing unit of a door of furniture notably refrigerated including a first sheet of mineral glass or organic glass, a second sheet separated from the first sheet by peripheral spacer, a peripheral light source with a source support, a light extraction device for extracting the guided light to form at least one luminous zone, the source support being in a housing surrounded by material, forming a framing, including an assembly element, covered by a cap, the cap and the diode support being removable from the glazing unit. <CIT> relates to a heat-insulating wall, such as a refrigerator door, a refrigerator housing, or the like, having an at least as far as possible vacuum-tight outer paneling that, together with a vacuum-tight connecting diaphragm secured at its free borders and formed from a material with a low level of heat conduction and an inner paneling vacuum-tightly connected to the connecting diaphragm at its free borders, encloses an evacuable cavity filled with an evacuable supporting material. The connecting diaphragm is covered by a diaphragm covering formed from material with a low level of heat conduction. <CIT> presents a door for display units, such as refrigerators or the like, of the kind used in points of sale, consisting of a double-glazing unit made of transparent material and a series of luminous elements, in particular LEDs, suitable to lighten the inner part of the refrigerator on which the door is fitted, in such a way as to enable the user to easily view the displayed products. <CIT> relates to a refrigeration unit with a thermal breaker and to the thermal breaker itself. More particularly, it relates to a refrigeration unit with a thermal breaker that is a component used in preventing condensation from forming on the outer shell of the refrigeration unit in high humidity environments. <CIT> relates to a vacuum adiabatic body and a refrigerator. <CIT> relates to a door for a domestic refrigeration appliance with a door-end strip forming a cover for a display device, and domestic refrigeration appliance having such a door.

The present invention is proposed in the background described above and proposes to mount parts necessary for an operation of the device without affecting an adiabatic performance of a vacuum adiabatic body.

An objective of the present invention is to guide the wiring necessary for the operation of the refrigerator without affecting the adiabatic performance of the vacuum adiabatic body.

The present invention proposes a refrigerator which improves the difficulty of assembling.

One or more objects of the present technique are achieved by the invention set out by the features of the independent claim <NUM>. Preferred embodiments are featured in the dependent claims.

A vacuum adiabatic body according to the present invention includes a conductive resistance sheet which connects plate members which provide walls of the vacuum adiabatic body to each other; a sealing frame which covers the conductive resistance sheet; a part fixing frame which is supported by the sealing frame; and an electrical part which is mounted on the part fixing frame. According to this, the parts necessary for the action of the vacuum adiabatic body can be stably fastened.

The wiring necessary for the operation of the part does not need to damage a vacuum space part of the vacuum adiabatic body, the thermal efficiency is improved, and the work becomes easy, by connecting a first space and a second space outside the conductive resistor sheet.

The vacuum adiabatic body further includes a reinforcing member for reinforcing the strength of the plate member; and a slit which is provided on the reinforcing member to allow the wiring to pass therethrough, thereby preventing breakage of the electric wire which passes through the reinforcing member, and improving the operational reliability of the product.

The corner of the slit may be rounded to prevent the electric wire from being peeled off.

The wiring is drawn out forward through the slit and is laterally drawn out through a gap part between the reinforcing member and the sealing frame to secure a guidance space for the electric wire.

The part fixing frame has an elongated shape in one direction and further includes the part seating rib on which the part is seated; and an electric wire accommodation part which is provided on the outside of the part seating rib. According to this, the part to which power is supplied can be conveniently seated.

At least one of the end portions of the part fixing frame is provided with an inclined rib, thereby securing the surface contact between the adjacent parts, thereby securing the sealing and preventing the failure due to the unexpected entry of the external product. In particular, it is possible to prevent the phenomenon of dew invasion.

At least one of the portions corresponding to each other of the part securing frame and the sealing frame is fitted and fastened to each other so that a worker can conveniently work at a production site.

Heat loss through the conductive resistance sheet can be further reduced by including the adiabatic material that is placed in a gap between the sealing frame and the conductive resistance sheet.

A refrigerator according to the present invention includes: a main body which has an opening with respect to an accommodation space of a product; a controller which is provided outside any one side of the main body; a part which is provided in the accommodation space; and a wiring which passes through a gap between the main body and the door so as to connect the part and the controller. According to this, since the necessary wiring for the operation inside the main body does not directly pass through the main body, the operation becomes easy and the heat loss can be reduced.

The refrigerator further includes a reinforcing member which is provided on an inner surface of a peripheral portion of the main body; a sealing frame which seals a front peripheral portion of the main body and with which the door is in contact; and a part fixing frame which is placed in the accommodation space and mounts the part. According to this, the part can be conveniently mounted on the main body.

The refrigerator further includes a slit which is formed in the reinforcing member so that the wiring is drawn out toward the front of the reinforcing member. According to this, it is possible to easily place the electric wire which supplies power to the part requiring the external power source, so that the stable operation of the part can be secured.

The wiring is laterally drawn out through a gap between the reinforcing member and the sealing frame so that the wiring can be stably guided.

The refrigerator further includes a first member insertion part which is provided in the sealing frame; and a second member insertion recess which is formed in the member fixing frame so that the first member insertion part is fitted. According to this, the structure can be provided while being changed corresponding to various parts.

The wiring is drawn out to the outside of the main body through a gap between the inner surface of the sealing frame and the outer surface of the main body, thereby improving the space usability.

The controller is placed on the upper surface of the outer part of the main body, and the wiring is drawn out of the main body immediately in front of the controller. According to this, the external exposure of the wiring is suppressed as much as possible, and production and repair thereof become convenient.

A refrigerator according to a further example not part of the present invention includes: a main body which has an opening with respect to an accommodation space of a product and is provided as a vacuum adiabatic body; a door which opens and closes the opening of the main body; a reinforcing member which is disposed inside the peripheral portion of the main body opening; a gasket which is installed on the door for sealing with respect to the part where the door and the main body are in contact with each other; a sealing frame which is fixed to a peripheral portion of the main body opening so that the gasket is in contact with the sealing frame; a part fixing frame which is fastened to any one of the sealing frame and the reinforcing member and placed in the accommodation space; a part which is fixed to the part fixing frame; a controller which controls the operation of the part; and a wiring which connects the controller and the part so as to supply power to the part. According to this, the vacuum adiabatic body can be used to stably supply power to the part necessary for the operation of the refrigerator.

The wiring may pass through a gap between the main body and the door to stably guide the electric wire.

At the end part of the part fixing frame, an inclined rib is provided. According to this, the part fixing frames can be in surface contact with each other in correspondence with the respective surfaces, so that sealing of the contact surface can be ensured.

The slit through which the wiring is passed is formed in the reinforcing member so that the electric wire can be guided so as to draw out to the outside.

According to the present invention, in an appliance such as a refrigerator to which a vacuum adiabatic body is applied, the energy consumption efficiency can be improved because the wiring does not pass through the vacuum adiabatic body.

According to the present invention, parts such as lamps are indirectly installed in the vacuum adiabatic body, thereby being capable of preventing the loss of the cold air and preventing product failure due to wiring breakage.

According to the present invention, a worker can conveniently produce a product.

Hereinafter, specific embodiments of the present invention are proposed with reference to the drawings.

In the following description, the term 'vacuum pressure' means a certain pressure state lower than atmospheric pressure. In addition, the expression that a vacuum degree of A is higher than that of B means that a vacuum pressure of A is lower than that of B.

<FIG> is a perspective view of a refrigerator according to an embodiment.

Referring to <FIG>, the refrigerator <NUM> includes a main body <NUM> provided with a cavity <NUM> capable of storing storage goods and a door <NUM> provided to open/close the main body <NUM>. The door <NUM> may be rotatably or movably disposed to open/close the cavity <NUM>. The cavity <NUM> may provide at least one of a refrigerating chamber and a freezing chamber.

Parts constituting a freezing cycle in which cold air is supplied into the cavity <NUM>. Specifically, the parts include a compressor <NUM> for compressing a refrigerant, a condenser <NUM> for condensing the compressed refrigerant, an expander <NUM> for expanding the condensed refrigerant, and an evaporator <NUM> for evaporating the expanded refrigerant to take heat. As a typical structure, a fan may be installed at a position adjacent to the evaporator <NUM>, and a fluid blown from the fan may pass through the evaporator <NUM> and then be blown into the cavity <NUM>. A freezing load is controlled by adjusting the blowing amount and blowing direction by the fan, adjusting the amount of a circulated refrigerant, or adjusting the compression rate of the compressor, so that it is possible to control a refrigerating space or a freezing space.

<FIG> is a view schematically showing a vacuum adiabatic body used in the main body and the door of the refrigerator. In <FIG>, a main body-side vacuum adiabatic body is illustrated in a state in which top and side walls are removed, and a door-side vacuum adiabatic body is illustrated in a state in which a portion of a front wall is removed. In addition, sections of portions at conductive resistance sheets are provided are schematically illustrated for convenience of understanding.

Referring to <FIG>, the vacuum adiabatic body includes a first plate member <NUM> for providing a wall of a low-temperature space, a second plate member <NUM> for providing a wall of a high-temperature space, a vacuum space part <NUM> defined as a gap part between the first and second plate members <NUM> and <NUM>. Also, the vacuum adiabatic body includes the conductive resistance sheets <NUM> and <NUM> for preventing heat conduction between the first and second plate members <NUM> and <NUM>. A sealing part <NUM> for sealing the first and second plate members <NUM> and <NUM> is provided such that the vacuum space part <NUM> is in a sealing state. When the vacuum adiabatic body is applied to a refrigerating or heating cabinet, the first plate member <NUM> may be referred to as an inner case, and the second plate member <NUM> may be referred to as an outer case. A machine chamber <NUM> in which parts providing a freezing cycle are accommodated is placed at a lower rear side of the main body-side vacuum adiabatic body, and an exhaust port <NUM> for forming a vacuum state by exhausting air in the vacuum space part <NUM> is provided at any one side of the vacuum adiabatic body. In addition, a pipeline <NUM> passing through the vacuum space part <NUM> may be further installed so as to install a defrosting water line and electric lines.

The first plate member <NUM> may define at least one portion of a wall for a first space provided thereto. The second plate member <NUM> may define at least one portion of a wall for a second space provided thereto. The first space and the second space may be defined as spaces having different temperatures. Here, the wall for each space may serve as not only a wall directly contacting the space but also a wall not contacting the space. For example, the vacuum adiabatic body of the embodiment may also be applied to a product further having a separate wall contacting each space.

Factors of heat transfer, which cause loss of the adiabatic effect of the vacuum adiabatic body, are heat conduction between the first and second plate members <NUM> and <NUM>, heat radiation between the first and second plate members <NUM> and <NUM>, and gas conduction of the vacuum space part <NUM>.

Hereinafter, a heat resistance unit provided to reduce adiabatic loss related to the factors of the heat transfer will be provided. Meanwhile, the vacuum adiabatic body and the refrigerator of the embodiment do not exclude that another adiabatic means is further provided to at least one side of the vacuum adiabatic body. Therefore, an adiabatic means using foaming or the like may be further provided to another side of the vacuum adiabatic body.

<FIG> is a view showing various embodiments of an internal configuration of the vacuum space part.

First, referring to <FIG>, the vacuum space part <NUM> is provided in a third space having a different pressure from the first and second spaces, preferably, a vacuum state, thereby reducing adiabatic loss. The third space is provided at a temperature between the temperature of the first space and the temperature of the second space. Since the third space is provided as a space in the vacuum state, the first and second plate members <NUM> and <NUM> receive a force contracting in a direction in which they approach each other due to a force corresponding to a pressure difference between the first and second spaces. Therefore, the vacuum space part <NUM> may be deformed in a direction in which it is reduced. In this case, adiabatic loss may be caused due to an increase in amount of heat radiation, caused by the contraction of the vacuum space part <NUM>, and an increase in amount of heat conduction, caused by contact between the plate members <NUM> and <NUM>.

A supporting unit <NUM> may be provided to reduce the deformation of the vacuum space part <NUM>. The supporting unit <NUM> includes bars <NUM>. The bars <NUM> may extend in a direction substantially vertical to the first and second plate members <NUM> and <NUM> so as to support a distance between the first and second plate members <NUM> and <NUM>. A support plate <NUM> may be additionally provided to at least one end of the bar <NUM>. The support plate <NUM> connects at least two bars <NUM> to each other, and may extend in a direction horizontal to the first and second plate members <NUM> and <NUM>. The support plate <NUM> may be provided in a plate shape, or may be provided in a lattice shape such that its area contacting the first or second plate member <NUM> or <NUM> is decreased, thereby reducing heat transfer. The bars <NUM> and the support plate <NUM> are fixed to each other at least one portion, to be inserted together between the first and second plate members <NUM> and <NUM>. The support plate <NUM> contacts at least one of the first and second plate members <NUM> and <NUM>, thereby preventing deformation of the first and second plate members <NUM> and <NUM>. In addition, based on the extending direction of the bars <NUM>, a total sectional area of the support plate <NUM> is provided to be greater than that of the bars <NUM>, so that heat transferred through the bars <NUM> can be diffused through the support plate <NUM>.

A material of the supporting unit <NUM> may include a resin selected from the group consisting of PC, glass fiber PC, low outgassing PC, PPS, and LCP so as to obtain high compressive strength, low outgassing and water absorptance, low thermal conductivity, high compressive strength at high temperature, and excellent machinability.

A radiation resistance sheet <NUM> for reducing heat radiation between the first and second plate members <NUM> and <NUM> through the vacuum space part <NUM> will be described. The first and second plate members <NUM> and <NUM> may be made of a stainless material capable of preventing corrosion and providing a sufficient strength. The stainless material has a relatively high emissivity of <NUM>, and hence a large amount of radiation heat may be transferred. In addition, the supporting unit <NUM> made of the resin has a lower emissivity than the plate members, and is not entirely provided to inner surfaces of the first and second plate members <NUM> and <NUM>. Hence, the supporting unit <NUM> does not have great influence on radiation heat. Therefore, the radiation resistance sheet <NUM> may be provided in a plate shape over a majority of the area of the vacuum space part <NUM> so as to concentrate on reduction of radiation heat transferred between the first and second plate members <NUM> and <NUM>. A product having a low emissivity may be preferably used as the material of the radiation resistance sheet <NUM>. In an embodiment, an aluminum foil having an emissivity of <NUM> may be used as the radiation resistance sheet <NUM>. Since the transfer of radiation heat cannot be sufficiently blocked using one radiation resistance sheet, at least two radiation resistance sheets <NUM> may be provided at a certain distance so as not to contact each other. In addition, at least one radiation resistance sheet may be provided in a state in which it contacts the inner surface of the first or second plate member <NUM> or <NUM>.

Referring to <FIG>, the distance between the plate members is maintained by the supporting unit <NUM>, and a porous substance <NUM> may be filled in the vacuum space part <NUM>. The porous substance <NUM> may have a higher emissivity than the stainless material of the first and second plate members <NUM> and <NUM>. However, since the porous substance <NUM> is filled in the vacuum space part <NUM>, the porous substance <NUM> has a high efficiency for resisting the radiation heat transfer.

In this embodiment, the vacuum adiabatic body can be fabricated without using the radiation resistance sheet <NUM>.

Referring to <FIG>, the supporting unit <NUM> maintaining the vacuum space part <NUM> is not provided. Instead of the supporting unit <NUM>, the porous substance <NUM> is provided in a state in which it is surrounded by a film <NUM>. In this case, the porous substance <NUM> may be provided in a state in which it is compressed so as to maintain the gap of the vacuum space part <NUM>. The film <NUM> is made of, for example, a PE material, and may be provided in a state in which holes are formed therein.

In this embodiment, the vacuum adiabatic body can be fabricated without using the supporting unit <NUM>. In other words, the porous substance <NUM> can simultaneously serve as the radiation resistance sheet <NUM> and the supporting unit <NUM>.

A case where the porous substance <NUM> is filled in the vacuum space part <NUM> will be described in detail later.

<FIG> is a view showing various embodiments of the conductive resistance sheets and peripheral portions thereof. Structures of the conductive resistance sheets are briefly illustrated in <FIG>, but will be understood in detail with reference to <FIG>.

First, a conductive resistance sheet proposed in <FIG> may be preferably applied to the main body-side vacuum adiabatic body. Specifically, the first and second plate members <NUM> and <NUM> are to be sealed so as to vacuum the interior of the vacuum adiabatic body. In this case, since the two plate members have different temperatures from each other, heat transfer may occur between the two plate members. A conductive resistance sheet <NUM> is provided to prevent heat conduction between two different kinds of plate members.

The conductive resistance sheet <NUM> may be provided with sealing parts <NUM> at which both ends of the conductive resistance sheet <NUM> are sealed to define at least one portion of the wall for the third space and maintain the vacuum state. The conductive resistance sheet <NUM> may be provided as a thin foil in unit of micrometer so as to reduce the amount of heat conducted along the wall for the third space. The sealing partsmay be provided as welding parts. That is, the conductive resistance sheet <NUM> and the plate members <NUM> and <NUM> may be fused to each other. In order to cause a fusing action between the conductive resistance sheet <NUM> and the plate members <NUM> and <NUM>, the conductive resistance sheet <NUM> and the plate members <NUM> and <NUM> may be made of the same material, and a stainless material may be used as the material. The sealing parts <NUM> are not limited to the welding parts, and may be provided through a process such as cocking. The conductive resistance sheet <NUM> may be provided in a curved shape. Thus, a heat conduction distance of the conductive resistance sheet <NUM> is provided longer than the linear distance of each plate member, so that the amount of heat conduction can be further reduced.

A change in temperature occurs along the conductive resistance sheet <NUM>. Therefore, in order to block heat transfer to the exterior of the conductive resistance sheet <NUM>, a shielding part <NUM> may be provided at the exterior of the conductive resistance sheet <NUM> such that an adiabatic action occurs. In other words, in the refrigerator, the second plate member <NUM> has a high temperature and the first plate member <NUM> has a low temperature. In addition, heat conduction from high temperature to low temperature occurs in the conductive resistance sheet <NUM>, and hence the temperature of the conductive resistance sheet <NUM> is suddenly changed. Therefore, when the conductive resistance sheet <NUM> is opened to the exterior thereof, heat transfer through the opened place may seriously occur. So as to reduce heat loss, the shielding part <NUM> is provided at the exterior of the conductive resistance sheet <NUM>. For example, when the conductive resistance sheet <NUM> is exposed to any one of the low-temperature space and the high-temperature space, the conductive resistance sheet <NUM> does not serve as a conductive resistor as well as the exposed portion thereof, which is not preferable.

The shielding part <NUM> may be provided as a porous substance contacting an outer surface of the conductive resistance sheet <NUM>. The shielding part <NUM> may be provided as an adiabatic structure, e.g., a separate gasket, which is placed at the exterior of the conductive resistance sheet <NUM>. The shielding part <NUM> may be provided as a portion of the vacuum adiabatic body, which is provided at a position facing a corresponding conductive resistance sheet <NUM> when the main body-side vacuum adiabatic body is closed with respect to the door-side vacuum adiabatic body. In order to reduce heat loss even when the main body and the door are opened, the shielding part <NUM> may be preferably provided as a porous substance or a separate adiabatic structure.

A conductive resistance sheet proposed in <FIG> may be preferably applied to the door-side vacuum adiabatic body. In <FIG>, portions different from those of <FIG> are described in detail, and the same description is applied to portions identical to those of <FIG>. A side frame <NUM> is further provided at an outside of the conductive resistance sheet <NUM>. A part for sealing between the door and the main body, an exhaust port necessary for an exhaust process, a getter port for vacuum maintenance, and the like may be placed on the side frame <NUM>. This is because the mounting of parts is convenient in the main body-side vacuum adiabatic body, but the mounting positions of parts are limited in the door-side vacuum adiabatic body.

In the door-side vacuum adiabatic body, it is difficult to place the conductive resistance sheet <NUM> at a front end portion of the vacuum space part, i.e., a corner side part of the vacuum space part. This is because, unlike the main body, a corner edge portion of the door is exposed to the exterior. More specifically, if the conductive resistance sheet <NUM> is placed at the front end portion of the vacuum space part, the corner edge portion of the door is exposed to the exterior, and hence there is a disadvantage in that a separate adiabatic part should be configured so as to heat-insulate the conductive resistance sheet <NUM>.

A conductive resistance sheet proposed in <FIG> may be preferably installed in the pipeline passing through the vacuum space part. In <FIG>, portions different from those of <FIG> are described in detail, and the same description is applied to portions identical to those of <FIG>. A conductive resistance sheet having the same shape as that of <FIG>, preferably, a wrinkled conductive resistance sheet <NUM> may be provided at a peripheral portion of the pipeline <NUM>. Accordingly, a heat transfer path can be lengthened, and deformation caused by a pressure difference can be prevented. In addition, a separate shielding part may be provided to improve the adiabatic performance of the conductive resistance sheet.

A heat transfer path between the first and second plate members <NUM> and <NUM> will be described with reference back to <FIG>. Heat passing through the vacuum adiabatic body may be divided into surface conduction heat ① conducted along a surface of the vacuum adiabatic body, more specifically, the conductive resistance sheet <NUM>, supporter conduction heat ② conducted along the supporting unit <NUM> provided inside the vacuum adiabatic body, gas conduction heat ③ conducted through an internal gas in the vacuum space part, and radiation transfer heat ④ transferred through the vacuum space part.

The transfer heat may be changed depending on various design dimensions. For example, the supporting unit may be changed such that the first and second plate members <NUM> and <NUM> can endure a vacuum pressure without being deformed, the vacuum pressure may be changed, the distance between the plate members may be changed, and the length of the conductive resistance sheet may be changed. The transfer heat may be changed depending on a difference in temperature between the spaces (the first and second spaces) respectively provided by the plate members. In the embodiment, a preferred configuration of the vacuum adiabatic body has been found by considering that its total heat transfer amount is smaller than that of a typical adiabatic structure formed by foaming polyurethane. In a typical refrigerator including the adiabatic structure formed by foaming the polyurethane, an effective heat transfer coefficient may be proposed as <NUM> mW/mK.

By performing a relative analysis on heat transfer amounts of the vacuum adiabatic body of the embodiment, a heat transfer amount by the gas conduction heat ③ can become smallest. For example, the heat transfer amount by the gas conduction heat ③ may be controlled to be equal to or smaller than <NUM>% of the total heat transfer amount. A heat transfer amount by solid conduction heat defined as a sum of the surface conduction heat ① and the supporter conduction heat ② is largest. For example, the heat transfer amount by the solid conduction heat may reach <NUM>% of the total heat transfer amount. A heat transfer amount by the radiation transfer heat ④ is smaller than the heat transfer amount by the solid conduction heat but larger than the heat transfer amount of the gas conduction heat ③. For example, the heat transfer amount by the radiation transfer heat ④ may occupy about <NUM>% of the total heat transfer amount.

According to such a heat transfer distribution, effective heat transfer coefficients (eK: effective K) (W/mK) of the surface conduction heat ①, the supporter conduction heat ②, the gas conduction heat ③, and the radiation transfer heat ④ may have an order of Math <FIG>.

Here, the effective heat transfer coefficient (eK) is a value that can be measured using a shape and temperature differences of a target product. The effective heat transfer coefficient (eK) is a value that can be obtained by measuring a total heat transfer amount and a temperature at least one portion at which heat is transferred. For example, a calorific value (W) is measured using a heating source that can be quantitatively measured in the refrigerator, a temperature distribution (K) of the door is measured using heats respectively transferred through a main body and an edge of the door of the refrigerator, and a path through which heat is transferred is calculated as a conversion value (m), thereby evaluating an effective heat transfer coefficient.

The effective heat transfer coefficient (eK) of the entire vacuum adiabatic body is a value given by k=QL/AΔT. Here, Q denotes a calorific value (W) and may be obtained using a calorific value of a heater. A denotes a sectional area (m<NUM>) of the vacuum adiabatic body, L denotes a thickness (m) of the vacuum adiabatic body, and △T denotes a temperature difference.

For the surface conduction heat, a conductive calorific value may be obtained through a temperature difference (△T) between an entrance and an exit of the conductive resistance sheet <NUM> or <NUM>, a sectional area (A) of the conductive resistance sheet, a length (L) of the conductive resistance sheet, and a thermal conductivity (k) of the conductive resistance sheet (the thermal conductivity of the conductive resistance sheet is a material property of a material and can be obtained in advance). For the supporter conduction heat, a conductive calorific value may be obtained through a temperature difference (△T) between an entrance and an exit of the supporting unit <NUM>, a sectional area (A) of the supporting unit, a length (L) of the supporting unit, and a thermal conductivity (k) of the supporting unit. Here, the thermal conductivity of the supporting unit is a material property of a material and can be obtained in advance. The sum of the gas conduction heat ③, and the radiation transfer heat ④ may be obtained by subtracting the surface conduction heat and the supporter conduction heat from the heat transfer amount of the entire vacuum adiabatic body. A ratio of the gas conduction heat ③, and the radiation transfer heat ④ may be obtained by evaluating radiation transfer heat when no gas conduction heat exists by remarkably lowering a vacuum degree of the vacuum space part <NUM>.

When a porous substance is provided inside the vacuum space part <NUM>, porous substance conduction heat ⑤ may be a sum of the supporter conduction heat ② and the radiation transfer heat ④. The porous substance conduction heat ⑤ may be changed depending on various variables including a kind, an amount, and the like of the porous substance.

According to an embodiment, a temperature difference △T<NUM> between a geometric center formed by adjacent bars <NUM> and a point at which each of the bars <NUM> is located may be preferably provided to be less than <NUM>. Also, a temperature difference △T<NUM> between the geometric center formed by the adjacent bars <NUM> and an edge portion of the vacuum adiabatic body may be preferably provided to be less than <NUM>. In the second plate member <NUM>, a temperature difference between an average temperature of the second plate and a temperature at a point at which a heat transfer path passing through the conductive resistance sheet <NUM> or <NUM> meets the second plate may be largest. For example, when the second space is a region hotter than the first space, the temperature at the point at which the heat transfer path passing through the conductive resistance sheet meets the second plate member becomes lowest. Similarly, when the second space is a region colder than the first space, the temperature at the point at which the heat transfer path passing through the conductive resistance sheet meets the second plate member becomes highest.

This means that the amount of heat transferred through other points except the surface conduction heat passing through the conductive resistance sheet should be controlled, and the entire heat transfer amount satisfying the vacuum adiabatic body can be achieved only when the surface conduction heat occupies the largest heat transfer amount. To this end, a temperature variation of the conductive resistance sheet may be controlled to be larger than that of the plate member.

Physical characteristics of the parts constituting the vacuum adiabatic body will be described. In the vacuum adiabatic body, a force by vacuum pressure is applied to all of the parts. Therefore, a material having a strength (N/m<NUM>) of a certain level may be preferably used.

Under such circumferences, the plate members <NUM> and <NUM> and the side frame <NUM> may be preferably made of a material having a sufficient strength with which they are not damaged by even vacuum pressure. For example, when the number of bars <NUM> is decreased so as to limit the support conduction heat, deformation of the plate member occurs due to the vacuum pressure, which may bad influence on the external appearance of refrigerator. The radiation resistance sheet <NUM> may be preferably made of a material that has a low emissivity and can be easily subjected to thin film processing. Also, the radiation resistance sheet <NUM> is to ensure a strength enough not to be deformed by an external impact. The supporting unit <NUM> is provided with a strength enough to support the force by the vacuum pressure and endure an external impact, and is to have machinability. The conductive resistance sheet <NUM> may be preferably made of a material that has a thin plate shape and can endure the vacuum pressure.

In an embodiment, the plate member, the side frame, and the conductive resistance sheet may be made of stainless materials having the same strength. The radiation resistance sheet may be made of aluminum having a weaker strength that the stainless materials. The supporting unit may be made of resin having a weaker strength than the aluminum.

Unlike the strength from the point of view of materials, analysis from the point of view of stiffness is required. The stiffness (N/m) is a property that would not be easily deformed. Although the same material is used, its stiffness may be changed depending on its shape. The conductive resistance sheets <NUM> or <NUM> may be made of a material having a strength, but the stiffness of the material is preferably low so as to increase heat resistance and minimize radiation heat as the conductive resistance sheet is uniformly spread without any roughness when the vacuum pressure is applied. The radiation resistance sheet <NUM> requires a stiffness of a certain level so as not to contact another part due to deformation. Particularly, an edge portion of the radiation resistance sheet may generate conduction heat due to drooping caused by the self-load of the radiation resistance sheet. Therefore, a stiffness of a certain level is required. The supporting unit <NUM> requires a stiffness enough to endure a compressive stress from the plate member and an external impact.

In an embodiment, the plate member and the side frame may preferably have the highest stiffness so as to prevent deformation caused by the vacuum pressure. The supporting unit, particularly, the bar may preferably have the second highest stiffness. The radiation resistance sheet may preferably have a stiffness that is lower than that of the supporting unit but higher than that of the conductive resistance sheet. The conductive resistance sheet may be preferably made of a material that is easily deformed by the vacuum pressure and has the lowest stiffness.

Even when the porous substance <NUM> is filled in the vacuum space part <NUM>, the conductive resistance sheet may preferably have the lowest stiffness, and the plate member and the side frame may preferably have the highest stiffness.

Hereinafter, a vacuum pressure preferably determined depending on an internal state of the vacuum adiabatic body. As already described above, a vacuum pressure is to be maintained inside the vacuum adiabatic body so as to reduce heat transfer. At this time, it will be easily expected that the vacuum pressure is preferably maintained as low as possible so as to reduce the heat transfer.

The vacuum space part may resist the heat transfer by applying only the supporting unit <NUM>. Alternatively, the porous substance <NUM> may be filled together with the supporting unit in the vacuum space part <NUM> to resist the heat transfer. Alternatively, the vacuum space part may resist the heat transfer not by applying the supporting unit but by applying the porous substance <NUM>.

The case where only the supporting unit is applied will be described.

<FIG> illustrates graphs showing changes in adiabatic performance and changes in gas conductivity with respect to vacuum pressures by applying a simulation.

Referring to <FIG>, it can be seen that, as the vacuum pressure is decreased, i.e., as the vacuum degree is increased, a heat load in the case of only the main body (Graph <NUM>) or in the case where the main body and the door are joined together (Graph <NUM>) is decreased as compared with that in the case of the typical product formed by foaming polyurethane, thereby improving the adiabatic performance. However, it can be seen that the degree of improvement of the adiabatic performance is gradually lowered. Also, it can be seen that, as the vacuum pressure is decreased, the gas conductivity (Graph <NUM>) is decreased. However, it can be seen that, although the vacuum pressure is decreased, the ratio at which the adiabatic performance and the gas conductivity are improved is gradually lowered. Therefore, it is preferable that the vacuum pressure is decreased as low as possible. However, it takes long time to obtain excessive vacuum pressure, and much cost is consumed due to excessive use of a getter. In the embodiment, an optimal vacuum pressure is proposed from the above-described point of view.

<FIG> illustrates graphs obtained by observing, over time and pressure, a process of exhausting the interior of the vacuum adiabatic body when the supporting unit is used.

Referring to <FIG>, in order to create the vacuum space part <NUM> to be in the vacuum state, a gas in the vacuum space part <NUM> is exhausted by a vacuum pump while evaporating a latent gas remaining in the parts of the vacuum space part <NUM> through baking. However, if the vacuum pressure reaches a certain level or more, there exists a point at which the level of the vacuum pressure is not increased any more (△t1). After that, the getter is activated by disconnecting the vacuum space part <NUM> from the vacuum pump and applying heat to the vacuum space part <NUM> (△t2). If the getter is activated, the pressure in the vacuum space part <NUM> is decreased for a certain period of time, but then normalized to maintain a vacuum pressure of a certain level. The vacuum pressure that maintains the certain level after the activation of the getter is approximately 240X10-<NUM> Pa (<NUM>. 8X10-<NUM>Torr).

In the embodiment, a point at which the vacuum pressure is not substantially decreased any more even though the gas is exhausted by operating the vacuum pump is set to the lowest limit of the vacuum pressure used in the vacuum adiabatic body, thereby setting the minimum internal pressure of the vacuum space part <NUM> to 240X10-<NUM> Pa (<NUM>. 8X10-<NUM>Torr).

<FIG> illustrates graphs obtained by comparing vacuum pressures and gas conductivities.

Referring to <FIG>, gas conductivities with respect to vacuum pressures depending on sizes of a gap in the vacuum space part <NUM> are represented as graphs of effective heat transfer coefficients (eK). Effective heat transfer coefficients (eK) were measured when the gap in the vacuum space part <NUM> has three sizes of <NUM>, <NUM>, and <NUM>. The gap in the vacuum space part <NUM> is defined as follows. When the radiation resistance sheet <NUM> exists inside vacuum space part <NUM>, the gap is a distance between the radiation resistance sheet <NUM> and the plate member adjacent thereto. When the radiation resistance sheet <NUM> does not exist inside vacuum space part <NUM>, the gap is a distance between the first and second plate members.

It can be seen that, since the size of the gap is small at a point corresponding to a typical effective heat transfer coefficient of <NUM> W/mK, which is provided to an adiabatic material formed by foaming polyurethane, the vacuum pressure is <NUM>,<NUM> Pa (<NUM>. 65X10-<NUM> Torr) even when the size of the gap is <NUM>. Meanwhile, it can be seen that the point at which reduction in adiabatic effect caused by gas conduction heat is saturated even though the vacuum pressure is decreased is a point at which the vacuum pressure is approximately <NUM> Pa (<NUM>. 5X10-<NUM>Torr). The vacuum pressure of <NUM> Pa (<NUM>. 5X10-<NUM>Torr) can be defined as the point at which the reduction in adiabatic effect caused by gas conduction heat is saturated. Also, when the effective heat transfer coefficient is <NUM> W/mK, the vacuum pressure is <NUM> Pa (<NUM>. 2X10-<NUM>Torr).

When the vacuum space part <NUM> is not provided with the supporting unit but provided with the porous substance, the size of the gap ranges from a few micrometers to a few hundreds of micrometers. In this case, the amount of radiation heat transfer is small due to the porous substance even when the vacuum pressure is relatively high, i.e., when the vacuum degree is low. Therefore, an appropriate vacuum pump is used to adjust the vacuum pressure. The vacuum pressure appropriate to the corresponding vacuum pump is approximately 267X10-<NUM> Pa (<NUM>. 0X10-<NUM>Torr). Also, the vacuum pressure at the point at which the reduction in adiabatic effect caused by gas conduction heat is saturated is approximately <NUM> Pa (<NUM>. 7X10-<NUM>Torr). Also, the pressure where the reduction in adiabatic effect caused by gas conduction heat reaches the typical effective heat transfer coefficient of <NUM> W/mK is <NUM> Pa (<NUM> Torr).

When the supporting unit and the porous substance are provided together in the vacuum space part, a vacuum pressure may be created and used, which is middle between the vacuum pressure when only the supporting unit is used and the vacuum pressure when only the porous substance is used. In a case where only the porous substance is used, the lowest vacuum pressure can be created and used.

<FIG> is a sectional perspective view illustrating the peripheral portion of the vacuum adiabatic body.

Referring to <FIG>, a first plate member <NUM>, a second plate member <NUM>, and a conductive resistance sheet <NUM> are provided. The conductive resistance sheet <NUM> may be provided as a thin plate to resist thermal conduction between the plate members <NUM> and <NUM>. The conductive resistance sheet <NUM> is provided as a thin plate and is provided as a flat surface in the drawing, but may be pulled inward to have a curved shape when vacuum is applied to the vacuum space part <NUM>.

Since the conductive resistance sheet <NUM> is in the form of a thin plate and has low strength, the conductive resistance sheet can be broken even by a small external impact. When the conductive resistance sheet <NUM> is broken, the vacuum of the vacuum space part is destroyed and the performance of the vacuum adiabatic body is not exerted. So as to solve this problem, a sealing frame <NUM> may be provided on the outer surface of the conductive resistance sheet <NUM>. According to the sealing frame <NUM>, since the parts of the door <NUM> or other external products indirectly contacts the conductive resistance sheet <NUM> through the sealing frame <NUM> without directly contacting the conductive resistance sheet <NUM>, the breakage of the conductive resistance sheet <NUM> can be prevented. In order that the sealing frame <NUM> does not transfer an impact to the conductive resistance sheet <NUM>, the gap between the two members may be spaced from each other and a buffer member may be interposed therebetween.

So as to reinforce the strength of the vacuum adiabatic body, the plate members <NUM> and <NUM> may be provided with a reinforcing member. For example, the reinforcing member may include a first reinforcing member <NUM> fastened to a peripheral portion of the second plate member <NUM> and a second reinforcing member <NUM> fastened to a peripheral portion of the first plate member <NUM>. As the reinforcing members <NUM> and <NUM>, a member can be applied which may be thicker or have a higher strength than the plate members <NUM> and <NUM> to such an extent that the strength of the vacuum adiabatic body can be increased. The first reinforcing member <NUM> may be provided in the inner space of the vacuum space part <NUM> and the second reinforcing member <NUM> may be provided on the inner surface part of the main body <NUM>.

It is preferable that the conductive resistance sheet <NUM> is not in contact with the reinforcing members <NUM> and <NUM>. This is because the thermal conductive resistance characteristic generated in the conductive resistance sheet <NUM> is destroyed by the reinforcing member. In other words, this is because the width of the narrow heat bridge for resisting the heat conduction is greatly expanded by the reinforcing member, and the narrow heat bridge characteristic is destroyed.

Since the width of the internal space of the vacuum space part <NUM> is narrow, the section of the first reinforcing member <NUM> may be provided in a flat plate shape. The second reinforcing member <NUM> provided on the inner surface of the main body <NUM> may be provided in a shape in which the section thereof is bent.

The sealing frame <NUM> may include an inner surface part <NUM> which is placed in an inner space of the main body <NUM> and supported by the first plate member <NUM>, an outer surface part <NUM> which is placed in an outer space of the main body <NUM> and supported by the second plate member <NUM>, and a side surface part <NUM> which is placed in a side surface of a peripheral portion of the vacuum adiabatic body constituting the main body <NUM>, covers the conductive resistance sheet <NUM>, and connects the inner surface part <NUM> and the outer surface part <NUM>.

The sealing frame <NUM> may be made of a resin that permits slight deformation. The mounting position of the sealing frame <NUM> can be maintained by an interaction between the inner surface part <NUM> and the outer surface part <NUM>, that is, by a catching action therebetween. In other words, the setting position of the sealing frame may not deviate.

The fixing position of the sealing frame <NUM> will be described in detail.

First, the movement of the plate members <NUM> and <NUM> in the extending direction (y-axis direction in <FIG>) on the plane may be fixed by the inner surface part <NUM> being engaged with and supported by the second reinforcing member <NUM>. More specifically, the position movement of the sealing frame <NUM> falling out from the vacuum adiabatic body to the outside may cause the inner surface part <NUM> to be engaged with the second reinforcing member <NUM> and be interrupted. On the contrary, the position movement of the sealing frame <NUM> moving to the inside of the vacuum adiabatic body may be interrupted by at least one of, firstly, the action of the inner surface part <NUM> to be engaged with and supported by the second reinforcing member <NUM> (this action can be acted in both directions including an elastic restoring force of the sealing frame provided as resin), secondly the action of the side surface part <NUM> to be stopped with respect to the plate parts <NUM> and <NUM>, and thirdly the action of the movement of the inner surface part <NUM> with respect to the first plate member <NUM> in the y-axis direction to be blocked.

The movement of the plate members <NUM> and <NUM> in a direction extending perpendicular to the end surfaces of the plate members <NUM> and <NUM> (x-axis direction in <FIG>) may be fixed by the outer surface part <NUM> being engaged to and supported by the second plate member <NUM>. As an auxiliary action, the movement of the plate members <NUM> and <NUM> in the x-axis direction may be interrupted by the action of the inner surface part <NUM> to hold the second reinforcing member <NUM> and the action of contacting the inner surface part <NUM> with the second reinforcing member <NUM>.

The movement of the sealing frame <NUM> in the extending direction (z-axis direction in <FIG>) can be stopped by at least one of the first action of the inner surface part <NUM> of anyone sealing frame <NUM> to be in contact with the inner surface part of the other sealing frame <NUM> and a second action that the inner surface part <NUM> of anyone sealing frame <NUM> is in contact with the mullion <NUM>.

<FIG> and <FIG> schematically illustrate the front face of the main body, and, in the drawing, it should be noted that the sealing frame <NUM> is in a virtual state where the inner surface part <NUM> is unfolded in a direction parallel to the side surface part <NUM>.

Referring to <FIG> and <FIG>, the sealing frame <NUM> may include members 200b and 200e which seal the upper and lower peripheral portions of the main body <NUM>, respectively. The side peripheral portions of the main body <NUM> can be divided according to whether the spaces in the refrigerator divided based on the mullion <NUM> are sealed separately (in a case of <FIG>) or integrally (in a case of <FIG>).

In a case where the side peripheral portions of the main body <NUM> are separately sealed as illustrated in <FIG>, it can be divided into four sealing frames 200a, 200c, 200d, and 200f. In a case where the side peripheral portions of the main body <NUM> are integrally sealed as illustrated in <FIG>, it can be divided into two sealing frames <NUM> and 200c.

In a case where the side peripheral portions of the main body <NUM> are sealed by the two sealing frames <NUM> and 200c as illustrated in <FIG>, since the two fastening operations are required, the manufacturing is facilitated, but, it is necessary to cope with a fear of loss of cold air by occurring heat transfer between the separated storehouses with heat conduction of the sealing frame.

In a case where the side peripheral portions of the main body <NUM> are sealed by the four sealing frames 200a, 200c, 200d, and 200f as illustrated in <FIG>, since it is required four fastening operations, the manufacturing is inconvenient, but, heat conduction between the sealing frames is obstructed, and heat transfer between the separated storehouses is reduced, thereby reducing the loss of cold air.

Meanwhile, the embodiment of the vacuum adiabatic body illustrated in <FIG> can preferably exemplify a main body-side vacuum adiabatic body. However, it does not exclude that the sealing frame <NUM> is provided to the door-side vacuum adiabatic body. However, in general, since the gasket is provided on the door <NUM>, it is more preferable that the sealing frame <NUM> is provided on the main body-side vacuum adiabatic body. In this case, the side surface part <NUM> of the sealing frame <NUM> can have a further advantage that the side surface part <NUM> can provide a width sufficient for the gasket to contact.

In detail, the width of the side surface part <NUM> is provided to be wider than the adiabatic thickness of the vacuum adiabatic body, that is, the width of the vacuum adiabatic body, so that the adiabatic width of the gasket can be provided sufficiently wide. For example, in a case where the adiabatic thickness of the vacuum adiabatic body is <NUM>, it is possible to provide a large storage space in the refrigerator, thereby increasing the accommodation space of the refrigerator. However, there is a problem that, in a case where the adiabatic thickness of the vacuum adiabatic body is <NUM>, a gap sufficient for the gasket to contact cannot be provided. In this case, since the side surface part <NUM> can provide a wide gap corresponding to the contact area of the gasket, it is possible to effectively prevent the loss of the cold air through the contact gap between the main body <NUM> and the door <NUM>. In other words, in a case where the contact width of the gasket is <NUM>, even if the adiabatic thickness of the vacuum adiabatic body is <NUM>, the width of the side surface part <NUM> can be provided to be <NUM> or more in correspondence with the contact width of the gasket.

Preferably, the length of the side surface part <NUM> is larger than the width of the conductive resistance sheet so that the sealing frame covers and protects the conductive resistance sheet.

It can be understood that the sealing frame <NUM> performs the function of sealing to prevent shielding of the conductive resistance sheet and loss of cold air.

<FIG> is a sectional view illustrating the contact part illustrated in a state where the main body is closed by the door.

Referring to <FIG>, the gasket <NUM> is interposed in a boundary surface between the main body <NUM> and the door <NUM>. The gasket <NUM> can be fastened to the door <NUM> and can be provided as a deformable member as a flexible material. The gasket <NUM> includes a magnet as one part and when the magnet pulls and approaches the magnetic body (i.e., magnetic body of peripheral portion of main body), the contact surface between the main body <NUM> and the door can block the leakage of the cold air by the sealing surface having a predetermined width by the action of the gasket <NUM> being smoothly deformed.

Specifically, when the gasket sealing surface <NUM> of the gasket is in contact with the side surface part <NUM>, the side surface part sealing surface <NUM> having a sufficient width can be provided. The side surface part sealing surface <NUM> may be defined as a contact surface on the side surface part <NUM> which is correspondingly in surface contact with the gasket sealing surface <NUM> when the gasket <NUM> is in contact with the side surface part <NUM>.

According to this, it is possible to secure sealing surfaces <NUM> and <NUM> having a sufficient area regardless of the adiabatic thickness of the vacuum adiabatic body. This is because even if the adiabatic thickness of the vacuum adiabatic body is narrow, for example, even if the adiabatic thickness of the vacuum adiabatic body is narrower than the gasket sealing surface <NUM>, if the width of the side surface part <NUM> is increased, the side surface part sealing surface <NUM> having a sufficient width can be obtained. In addition, regardless of the deformation of the member which may affect the deformation of the contact surface between the main body and the door, the sealing surfaces <NUM> and <NUM> having a sufficient area can be secured. This is because it is possible to provide a predetermined clearance in and out of the side surface part sealing surface <NUM> in designing the side surface part <NUM> so that even if slight deformation occurs between the sealing surfaces <NUM> and <NUM>, the width and area of the sealing surface can be maintained.

In the sealing frame <NUM>, the outer surface part <NUM>, the side surface part <NUM>, and the inner surface part <NUM> are provided so that the set position thereof can be maintained. Simply, the outer surface part <NUM> and the inner surface part <NUM> has a pursing shape, that is, the structure of a concave groove, so that the configuration which holds the end portion of the vacuum adiabatic body, more precisely, the plate members <NUM> and <NUM> can be provided. Here, It can be understood that the concave groove has a constitution of the concave groove as a configuration in which the width between the end portion of the outer surface part <NUM> and the end portion of the inner surface part <NUM> is smaller than the width of the side surface part <NUM>.

The fastening of the sealing frame <NUM> will be briefly described. Firstly, the side surface part <NUM> and the outer surface part <NUM> is rotated in a direction of the second plate <NUM> in a state where the inner surface part <NUM> is engaged with the second reinforcing member <NUM>. Then, the sealing frame <NUM> is elastically deformed, and the outer surface part <NUM> moves inward along the outer surface of the second plate member <NUM> so that the fastening can be completed. When the fastening of the sealing frame <NUM> is completed, the sealing frame <NUM> can be restored to the original shape thereof designed before the deformation. When the fastening is completed, the installation position thereof can be maintained as described above.

The detailed configuration and detailed action of the sealing frame <NUM> will be described.

The outer surface part <NUM> may include an extension part <NUM> outside the refrigerator which extends inward from an end of the second plate member <NUM>, and an contact part <NUM> outside the refrigerator which is in contact with the outer surface of the second plate member <NUM> at end of the extension part <NUM> outside the refrigerator.

The extension part <NUM> outside the refrigerator has a predetermined length so as to have a predetermined length so as to prevent the removal of the outer surface part <NUM> due to the external weak acting force. In other words, the outer surface part <NUM> is not completely removed from the second plate member <NUM> even if the outer surface part <NUM> is forced so as to be pulled toward the door due to the user's carelessness. However, since, if the outer surface part <NUM> is excessively long, there is difficulty in intentional removal at the time of repair and the fastening operation becomes difficult, it is preferable that the outer surface part <NUM> is limited to a predetermined length.

The contact part <NUM> outside the refrigerator may be provided with a structure in which the end of the extension part <NUM> outside the refrigerator is slightly bent toward the surface outside the second plate member <NUM>. According to this, sealing by the contact between the outer surface part <NUM> and the second plate member <NUM> becomes perfect, so that foreign matter can be prevented from being introduced.

The side surface part <NUM> is provided as a width which is bent at an angle of about <NUM> degrees from the outer surface part <NUM> toward the opening of the main body <NUM> and secures a sufficient width of the side surface part sealing surface <NUM>. The side surface part <NUM> may be provided thinner than the inner surface part <NUM> and the outer surface part <NUM>. This may have a purpose of permitting elastic deformation at the time of fastening or removing the sealing frame <NUM> and a purpose of not permitting a distance to cause a magnetic force between the magnet installed on the gasket <NUM> and the magnetic body on the main body side to be weakened. The side surface part <NUM> may have a purpose of protecting the conductive resistance sheet <NUM> and arranging the outer appearance as an exposed portion of the exterior. In a case where the adiabatic member is laid inside the side surface part <NUM>, the adiabatic performance of the conductive resistance sheet <NUM> can be reinforced.

The inner surface part <NUM> is bent and extends from the side surface part <NUM> by about <NUM> degrees in an inner direction of the refrigerator, that is, the rear surface direction of the main body. The inner surface part <NUM> performs an action for fixing the sealing frame <NUM>, an action for installing parts necessary for the operation of a product to which a vacuum adiabatic body is installed such as a refrigerator, and an action for preventing the inflow of outer foreign matters into the inside.

The action corresponding to each configuration of the inner surface part <NUM> will be described.

The inner surface part <NUM> includes an extension part <NUM> inside the refrigerator which is bent and extends from an inner end portion of the side surface part <NUM>; and a first member fastening part <NUM> which is bent from the inner end portion of the extension part <NUM> inside the refrigerator to an outside direction, that is, toward the inner surface of the first plate member <NUM>. The first member fastening part <NUM> may be in contact with and is engaged with the protrusion part <NUM> of the second reinforcing member <NUM>. The extension part <NUM> inside the refrigerator may provide a gap which extends to an inside of the refrigerator so that the first member fastening part <NUM> is engaged inside the second reinforcement member <NUM>.

The first member fastening part <NUM> may be engaged with the second reinforcing member <NUM> to draw the supporting action of the sealing frame <NUM>. The second reinforcement member <NUM> may further include a base part <NUM> which is fastened to the first plate member <NUM> and a protrusion part <NUM> which bends and extends from the base part <NUM>. The inertia of the second reinforcing member <NUM> is increased by the structure of the base part <NUM> and the protrusion part <NUM> so that the ability to resist the bending strength can be increased.

The second member fastening part <NUM> may be fastened to the first member fastening part <NUM>. The first and second member fastening parts <NUM> and <NUM> may be provided as separate members to be fastened to each other and may be provided as a single member from at the time of the design thereof.

The second member coupling part <NUM> may further be provided with a gap forming part <NUM> that further extends to the inside of the refrigerator from the inner end portion of the second member fastening part <NUM>. The gap forming part <NUM> may serve as a portion for providing a gap or space where parts necessary for the operation of the appliance such as a refrigerator provided as the vacuum adiabatic body are placed.

An inclined part <NUM> inside the refrigerator is further provided inside the gap forming part <NUM>. The inclined part <NUM> inside the refrigerator may be provided so as to be inclined so as to approach the first plate member <NUM> toward the end thereof, that is, toward the inside of the refrigerator. In the inclined part <NUM> inside the refrigerator, the gap between the sealing frame and the first plate member is provided to be reduced as being directed to the inside thereof so that the volume of the sealing frame <NUM> occupying the space inside the refrigerator is reduced as much as possible and it is possible to expect an effect of securing a space in which a part such as a lamp is mounted by the cooperation with the gap forming part <NUM>.

An contact part <NUM> inside the refrigerator is provided at the inner end portion of the inclined part <NUM> inside the refrigerator. The contact part <NUM> inside the refrigerator may be provided in a structure in which the end of the inclined part <NUM> inside the refrigerator is slightly bent toward the inner surface side of the first plate member <NUM>. According to this, sealing by the contact between the inner surface part <NUM> and the first plate member <NUM> is perfect, so that it is possible to prevent the inflow of foreign matter or the like.

In a case where an accessory part such as a lamp is installed on the inner surface part <NUM>, the inner surface part <NUM> may be divided into two parts so as to achieve the purpose of convenience of installation of the part. For example, the inner surface part can be divided into a first member which provides the extension part <NUM> inside the refrigerator and the first member fastening part <NUM>, and a second member which provides the second member fastening part <NUM>, the gap forming part <NUM>, the inclined part <NUM> inside the refrigerator, and the contact part <NUM> inside the refrigerator. The first member and the second member are fastened to each other in such a manner that the second member fastening part <NUM> is fastened to the first member fastening part <NUM> in a state where a product such as a lamp is mounted on the second member. Of course, it does not exclude that the inner surface part <NUM> is provided in a more various manner. For example, the inner surface part <NUM> may be provided as a single member.

As in the description, the length of the side surface part <NUM> may be provided so as to be larger than a gap between the plate members <NUM> and <NUM> which are provided a gap of the third space, so as to be capable of providing a installation space of the part which is accommodated in the inner surface part <NUM>. In a case where the gap between the plate members varies according to the position, the length of the side surface part <NUM> may be greater than the average value of the gap between the plate members.

<FIG> is a sectional view of a contact part of the main body and the door according to another embodiment. The present embodiment is characteristically different in the position of the conductive resistance sheet and accordingly the change of the other portions.

Referring to <FIG>, in this embodiment, the conductive resistance sheet <NUM> may be provided in the inside of the refrigerator rather than on the end peripheral portion of the vacuum adiabatic body. The second plate member <NUM> may extend beyond the outside of the refrigerator and the peripheral portion of the vacuum adiabatic body. In some cases, the second plate member <NUM> may extend a certain length to the inside of the refrigerator. In a case of this embodiment, it can be seen that a conductive resistance sheet can be provided at a position similar to the conductive resistance sheet of the door-side vacuum adiabatic body illustrated in <FIG>.

In this case, it is preferable that the second reinforcing member <NUM> is moved to the inside of the refrigerator without being in contact with the conductive resistance sheet <NUM> so as to avoid affecting the high thermal conductive adiabatic performance of the conductive resistance sheet <NUM>. This is to achieve the function of the heat bridge of the conductive resistance sheet. Accordingly, the conductive resistance sheet <NUM> and the second reinforcing member <NUM> are not in contact with each other, and the conductive adiabatic performance by the conductive resistance sheet and the strength reinforcement performance of the vacuum insulation member by the reinforcing member can be achieved at the same time.

This embodiment can be applied to a case where perfect thermal protection and physical protection against the peripheral portion of the vacuum adiabatic body are required.

<FIG> and <FIG> are partial cutaway perspective views illustrating the fastening of the two members in the embodiment in which the inner surface part is divided into two members. <FIG> is a view illustrating a state where fastening of the two members is completed and <FIG> is a view illustrating a fastening process of the two members.

Referring to <FIG> and <FIG>, the first member fastening part <NUM> is engaged with the protrusion part <NUM> of the second reinforcing member <NUM> and the outer surface part <NUM> is supported by the second plate member <NUM>. Accordingly, the sealing frame <NUM> can be fixed to the peripheral portion of the vacuum adiabatic body.

At least one first member insertion part <NUM> which is bent and extends in the inside direction of the refrigerator may be provided at the end portion of the first member fastening part <NUM>, preferably, for each sealing frame <NUM> installed in the refrigerator. A second member insertion recess <NUM> may be provided at a position corresponding to the first member insertion part <NUM>. The first member insertion part <NUM> and the second member insertion recess <NUM> are similar in size and shape to each other so that the first member insertion part <NUM> can be inserted into, fitted into, and fixed to the second member insertion recess <NUM>.

The fastening of the first member and the second member will be described. The second member is aligned with respect to the first member so that the second member insertion recess <NUM> corresponds to the first member insertion part <NUM> in a state where the first member is fastened to the peripheral portion of the vacuum adiabatic body. By inserting the first member insertion part <NUM> into the second member insertion recess <NUM>, the two members can be fastened.

Meanwhile, at least a portion of the second member insertion recess <NUM> may be provided smaller than the first member insertion part <NUM> so as to prevent the fastened second member from being removed from the first member. Thereby, both members can be tightly fitted to each other. So as to perform an action of being engaged and supported after the second member insertion recess <NUM> and the first member insertion part <NUM> are inserted to a predetermined depth, at some point after a predetermined depth, a protrusion and a groove can be provided at both members, respectively. In this case, after the two members are inserted at a certain depth, the two members may be further inserted beyond steps so that the fixing of the two members may be performed to be more stable. Of course, the worker feels that the correct insertion has been performed through the light feeling.

The two members constituting the inner surface part can be fixed in the position and the coupling relation by the configuration in which the two members are fitted and coupled. Alternatively, in a case where the load is large due to the action of the second member fixing the separate part, the first member and the second member are fastened to each other by a separate fastening member such a fastener <NUM> inside the refrigerator.

<FIG> is a view for sequentially illustrating the fastening of the sealing frame in a case of the embodiment in which the sealing frame is provided as two members. Particularly, the case where the part is provided on the inner surface part is exemplified.

Referring to <FIG>, the sealing frame <NUM> is fastened to the peripheral portion of the vacuum adiabatic body. At this time, the fastening can be performed by using the elastic deformation of the sealing frame <NUM> and the restoring force according to the elastic deformation without a separate member such as a screw.

For example, in a state where the inner surface part <NUM> is engaged with the second reinforcing member <NUM>, the connection point between the inner surface part <NUM> and the side surface part <NUM> may be used as a center of rotation, and the side surface part <NUM> and the outer surface part <NUM> are rotated in a direction of the second plate member <NUM>. This action can cause the elastic deformation of the side surface part <NUM>.

Thereafter, the outer surface part <NUM> moves inward from the outer surface of the second plate member <NUM> and the elasticity restoring force of the side surface part <NUM> acts so that the outer surface part <NUM> can be lightly fastened to the outer surface of the second plate member <NUM>. When the fastening of the sealing frame <NUM> is completed, the sealing frame <NUM> can be seated in the original position thereof designed to the designed original shape.

Referring to <FIG>, a state where the fastening of the first member of the sealing frame <NUM> is completed is illustrated. The side surface part <NUM> may be formed to be thinner than the outer surface part <NUM> and the inner surface part <NUM> so that the sealing frame <NUM> can be fastened to the peripheral portion of the vacuum adiabatic body by elastic deformation and elastic restoring action of the sealing frame.

Referring to <FIG>, the part seating member <NUM> as a second member that provides the inner surface part <NUM> is provided as a separate part. The part seating member <NUM> is a part on which the part <NUM> is placed and the set position thereof can be supported, and the additional function necessary for the action of the part <NUM> can be further performed. For example, in the present embodiment, in a case where the part <NUM> is a lamp, the gap forming part <NUM> may be provided on the part seating member <NUM> as a transparent member. Therefore, This allows the light emitted from the lamp to pass through the inner surface part <NUM> and to be emitted into the refrigerator and allows the user to identify the product in the refrigerator.

The part seating member <NUM> may have a predetermined shape that can be fitted with the part <NUM> to fix the position of the part <NUM> so that the part <NUM> is seated.

<FIG> illustrates a state where the part <NUM> is placed on the part seating member <NUM>.

Referring to <FIG>, the part seating member <NUM> on which the part <NUM> is seated is aligned in a predetermined direction so as to be fastened to the first member that provides the inner surface part. In the embodiment, the first member fastening part <NUM> and the second member insertion recess <NUM> can be aligned to each other in the extending direction so that the first member fastening part <NUM> is fitted to the second member insertion recess. Of course, although not limited in this way, it may be preferably proposed to enhance the ease of assembly.

The first member fastening part <NUM> is slightly larger than the second member insertion recess <NUM> so that the first member fastening part <NUM> and the second member insertion recess <NUM> are tightly fitted to each other, and an engagement structure such as a step and a protrusion can be introduced for light insertion.

Referring to <FIG>, the inner surface part in a state where the assembling is completed can be seen.

<FIG> are views illustrating any one end portion of the sealing frame, <FIG> is a view before the door hinge is installed, and <FIG> is a view a state where the door hinge is installed.

In a case of a refrigerator, a door hinge is provided at the connection part so that the door-side vacuum adiabatic body is fastened to the main body-side vacuum adiabatic body in a state of being capable of being rotated. The door hinge has to have a predetermined strength and can prevent door sagging due to the own weight thereof in a state where the door is fastened and prevent the main body from being distorted.

Referring to <FIG>, so as to fasten the door hinge <NUM>, a door fastener <NUM> is provided on the main body-side vacuum adiabatic body. Three door fasteners <NUM> may be provided. The door fastener <NUM> can be directly or indirectly fixed to the second plate member <NUM>, the reinforcing members <NUM> and <NUM>, and/or a separate additional reinforcing member (for example, additional plate which is further provided to outer surface of second plate member). Here, direct fixing may be referred to as one by a fusion method such as welding, and indirect fixing may be referred to as a fastening method using an auxiliary fastening tool or the like instead of the method such as fusion or the like.

Since the door fastener <NUM> is required to have a high supporting strength, the door fastener <NUM> can be fastened while contacting the second plate member <NUM>. For this, the sealing frame <NUM> may be cut, and the sealing frame <NUM> to be cut may be an upper sealing frame 200b at the upper corner of the main body-side vacuum adiabatic body. In addition, the sealing frame <NUM> to be cut may be a right sealing frame 200a, 200f, and <NUM> at the right corner of the main body-side vacuum insulating body and the lower sealing frame 200e at the lower edge of the main body-side vacuum insulating body. If the door installation direction is different, the sealing frame <NUM> to be cut may be a left sealing frame 200a, 200f, and <NUM> at the left corner of the main body-side vacuum adiabatic body.

The sealing frame <NUM> to be cut may have a cut surface <NUM> and the second plate member <NUM> may have a door fastener seating surface <NUM> to which the door fastener <NUM> is fastened. Accordingly, the door fastener seating surface <NUM> can be exposed to the outside by the cut of the sealing frame <NUM>, and an additional plate member can be further interposed in the door fastener seating surface <NUM>.

The end portion of the sealing frame <NUM> may not be entirely removed, but a portion of the sealing frame <NUM> may be removed only at a portion where the door fastener <NUM> is provided. However, it is more preferable to remove all the end portion of the sealing frame <NUM> so as to facilitate the manufacturing and to firmly support and fasten the door hinge <NUM> on the side of the vacuum adiabatic body.

<FIG> is a view for explaining the effect of the sealing frame according to the present invention in comparison with the related art, <FIG> is a sectional view of a contact part between the main body-side vacuum adiabatic body and a door according to the present invention, and <FIG> is a sectional view illustrating the main body and the door according to the related art.

Referring to <FIG>, in the refrigerator, a hotline may be installed at the contact part between the door and the main body so as to prevent dew formation due to abrupt temperature change. As the hotline is closer to the outer surface and the peripheral portion of the main body, dew formation can be removed even with a small heat capacity.

According to the embodiment, the hotline <NUM> may be placed in an inner space of a gap between the second plate member <NUM> and the sealing frame <NUM>. A hot-line accommodation part <NUM> in which the hotline <NUM> is placed may be further provided in the sealing frame <NUM>. Since the hotline <NUM> is placed outside the conductive resistance sheet <NUM>, the amount of heat transferred to the inside of the refrigerator is also small. This makes it possible to prevent dew formation of the main body and the door contact part even with a smaller heat capacity. In addition, by allowing the hotline <NUM> to be relatively placed on the outside of the refrigerator, that is, a portion which is bent between the peripheral portion of the main body and the outer surface of the main body, it is possible to prevent entry of heat into the refrigerator space.

In the embodiment, the side surface part <NUM> of the sealing frame <NUM> may have a portion w1 which is aligned with the gasket <NUM> and the vacuum space part <NUM> and a portion w2 which is not aligned with the vacuum space part <NUM> and is aligned with the refrigerator space. This is the portion provided by the side surface part <NUM> to ensure sufficient cold air blocking by the magnet. Therefore, the sealing action by the gasket <NUM> can be sufficiently achieved by the sealing frame <NUM>.

In the embodiment, the inclined part <NUM> inside the refrigerator is provided to be inclined toward the inner surface of the first plate member <NUM> at a predetermined angle b. This can increase the volume in the refrigerator like a hatched portion and can provide an effect of enabling a narrow space inside the refrigerator to make more widely available. In other words, it is possible to widely utilize the space in the vicinity of the door by inclining the inclined part inside the refrigerator in a direction opposite to the predetermined angle a directed toward the space inside the refrigerator as in the related art. For example, it is possible to accommodate more food in the door and to obtain more space which can accommodate the various parts necessary for the operation of the appliance.

Hereinafter, <FIG> illustrate various embodiments in which the sealing frame <NUM> is installed.

Referring to <FIG>, the second reinforcing member <NUM> may provide only the base part <NUM> and may not provide the protrusion part <NUM>. In this case, a groove <NUM> may be provided in the base part <NUM>. The end portion of the first member fastening part <NUM> may be inserted into the groove <NUM>. This embodiment can be preferably applied in a case of a product which can provide sufficient strength without providing the protrusion part <NUM> in the second reinforcing member <NUM>.

In a case of the present embodiment, as a process of the end portion of the first member fastening part <NUM> being fitted in the groove <NUM> and aligned when the sealing frame <NUM> is fastened, the sealing frame <NUM> is fastened to the end portion of the vacuum adiabatic body.

According to the fastening action between the groove <NUM> and the first member fastening part <NUM>, by only the fastening between the inner surface part <NUM> of the sealing frame <NUM> and the second reinforcing member <NUM>, it is possible to stop the movement of the sealing frame <NUM> in the y-axis direction.

Referring to <FIG>, when this embodiment is compared with the embodiment illustrated in <FIG>, this embodiment differs from the embodiment illustrated in <FIG> in that a reinforcing base part <NUM> is further provided to the base part <NUM>. The reinforcing base part <NUM> is further provided with a groove <NUM> so that the end portion of the first member fastening part <NUM> can be inserted. This embodiment can be applied when it is necessary to reinforce the strength to a predetermined level even though the protrusion part <NUM> is not provided to the second reinforcing member <NUM> due to lack of the installation space, interference, or the like. In other words, it is preferably applied when the strength reinforcement effect of the main body-side vacuum adiabatic body can be provided at a level of strength reinforcement that can be obtained by further installing a reinforcing base <NUM> at the outer end of the base part <NUM>.

A groove <NUM> is provided in the reinforcing base part <NUM> and the end portion of the first member fastening part <NUM> is fitted and aligned in the groove portion <NUM> so that the sealing frame <NUM> can be fastened to the end portion of the vacuum adiabatic body.

Even in a case of the fastening action of the groove <NUM> and the first member coupling part <NUM>, the movement of the sealing frame <NUM> in the y-axis direction can be stopped only by only fastening between the inner surface part <NUM> of the sealing frame <NUM> and the second reinforcing member <NUM>.

Referring to <FIG>, when the present embodiment is compared with the embodiment illustrated in <FIG>, the present embodiment differs from the embodiment illustrated in <FIG> in that the base part <NUM> is further provided with a reinforcing protrusion <NUM>. The end portion of the first member fastening part <NUM> may be engaged with the reinforcing protrusion <NUM>. Even if the second reinforcing member <NUM> is not provided with the protrusion part <NUM> or the reinforcing base part <NUM> due to lack of the installation space, interference, or the like, the present embodiment can be applied when the strength thereof is reinforced to a predetermined level and there is a need to ensure that the first member fastening part <NUM> is engaged. In other words, by further installing the reinforcing protrusion <NUM> at the outer end portion of the base part <NUM>, the effect of reinforcing the strength of the main body-side vacuum adiabatic body can be obtained. In addition, the reinforcing protrusion <NUM> can be preferably applied because the reinforcing protrusion can provide an engagement action of the first member fastening part <NUM>.

The first member fastening part <NUM> is engaged and supported to the reinforcing protrusion <NUM> so that the sealing frame <NUM> can be fastened to the end portion of the vacuum adiabatic body.

The embodiment illustrated in <FIG> illustrates a case where the inner surface part <NUM> is provided as a single product without being separated into the first member and the second member and is fastened to the vacuum adiabatic body. However, the inner surface part may be separated into two members without being limited thereto.

Although the embodiment described above provides a case where the second reinforcing member <NUM> is provided, the following embodiments will describe fastening of the sealing frame <NUM> in a case where no additional reinforcing member is provided inside the first plate member <NUM>.

Referring to <FIG>, the first reinforcing member <NUM> is provided to reinforce the strength of the vacuum adiabatic body, but the second reinforcing member <NUM> is not separately provided. In this case, the inner protrusion <NUM> may be provided on the inner surface of the first plate member <NUM> so that the sealing frame <NUM> is fastened. The inner protrusion <NUM> can be fastened to the first plate member <NUM> by welding, fitting, or the like. The present embodiment can be applied in a case where the sufficient strength of the main body-side vacuum adiabatic body can be obtained only by the reinforcing members provided in the first reinforcing member <NUM>, that is, the vacuum space part <NUM>, or in a case where the reinforcing member can be installed on a side of the second plate member <NUM>.

The first member fastening groove <NUM> may be provided in the first member fastening part <NUM> so as to be capable of being fitted and fixed to the inner protrusion <NUM>. In the first member fastening groove <NUM>, by inserting the inner protrusion <NUM>, the fastening position of the sealing frame <NUM> can be fixed.

Referring to <FIG>, when being compared with the embodiment illustrated in <FIG>, <FIG> characteristically differs from the embodiment illustrated in <FIG> in that, in <FIG>, the first member fastening groove <NUM> is not provided. According to the present embodiment, the position of the sealing frame <NUM> can be supported by one end of the first member fastening part <NUM> being supported by the inner protrusion <NUM>.

When being compared with the embodiment illustrated in <FIG>, in this embodiment, there is a disadvantage that the movement of the sealing frame <NUM> in the y-axis direction is stopped only in one direction instead of stopping the movement of the sealing frame <NUM> in the y-axis direction in both directions. However, an advantage that a worker can conveniently work at the time of fastening the sealing frame <NUM> can be expected.

The embodiment illustrated in <FIG> is provided as a configuration in which a side of the first plate member <NUM> is fixed, and the movement of a side of the second plate member <NUM> such as sliding is allowed. In other words, the second plate member <NUM> and the outer surface part <NUM> are allowed to be relatively slidable, and the relative movement of the first plate member <NUM> and the inner surface part <NUM> is not allowed. Such a configuration can be configured opposite to each other. Hereinafter, such a configuration is proposed.

Referring to <FIG>, an outer protrusion <NUM> may be provided on the outer surface of the second plate member <NUM> and an outer engagement part <NUM> may be provided on the outer surface part <NUM> of the sealing frame <NUM>. The outer engagement part <NUM> can be engaged with the outer protrusion <NUM> and supported.

In a case of the present embodiment, the inner surface part <NUM> of the sealing frame <NUM> may be allowed to move with respect to the inner surface part of the first plate member <NUM>, such as a sliding. In this embodiment, mounting and fixing of the sealing frame <NUM> differ only in the direction and the same description can be applied.

Various embodiments may be further proposed in addition to the embodiment related to <FIG>. For example, the reinforcing members <NUM> and <NUM> may be further installed on the second plate member <NUM>, and the various structures of <FIG> may be provided with respect to the reinforcing member. Also, the outer engagement part <NUM> may be provided as a groove structure as illustrated in <FIG>.

According to the present embodiment, there is a difference in a configuration in which the fastening direction of the sealing frame <NUM> can be provided in a direction opposite to the original embodiment. However, the fundamental action of the sealing frame can be obtained in the same way.

Hereinafter, a description will be given of a configuration in which a part is installed to an appliance such as a refrigerator to which a vacuum adiabatic body is applied and a wiring is applied to the part.

<FIG> is a front view of the upper right side of the main body-side vacuum adiabatic body.

Referring to <FIG>, a reinforcing member <NUM>, more specifically, a second reinforcing member <NUM> is provided together with the first plate member <NUM> and the second plate member <NUM>. The second reinforcing member <NUM> is placed on the inner surface of the first plate member <NUM> to reinforce the strength of the main body-side vacuum adiabatic body. The second reinforcing member <NUM> is provided in the form of a long rod along the corner of the vacuum adiabatic body to reinforce the strength of the vacuum adiabatic body.

The protrusion part <NUM> of the second reinforcing member <NUM> may be provided with a slit. The slits <NUM> and <NUM> serve as holes through which wirings pass so that the worker can conveniently locate the wirings. It is possible to prevent breakage of the wiring due to the bending of the wiring by placing the wiring in the slit.

The slit may be provided as a first slit <NUM> which is provided in the second reinforcing member <NUM> at the corner portion of the upper surface of the vacuum adiabatic body or as a second slit <NUM> which is provided in the second reinforcing member <NUM> in the side corner portion of the vacuum insulating member. The slit may be provided corresponding to the portion through which the wiring passes, and may be formed at another position of the second reinforcing member <NUM>.

In a case of the embodiment, a lamp which illuminates the interior of the refrigerator is exemplified as a part, and a slit can be provided at the end portion of each edge to guide the wiring of the part (see <NUM> in <FIG>).

Since the slits <NUM> and <NUM> can serve as stress concentration points for weakening the strength of the reinforcing member, it is preferable to remove the protrusion part <NUM> to the height of the level at which the wiring escapes from the part such as the lamp without removing the entire protrusion part <NUM> as much as possible.

The vertex portions of the slits <NUM> and <NUM> may be chamfered to provide smooth round-shaped vertices. According to this configuration, the wiring passing through the slit can be prevented from being broken.

<FIG> and <FIG> are sectional views of a corner portion of the vacuum adiabatic body in a state where the lamp is installed, <FIG> is a sectional view illustrating a portion through which the lamp wiring does not pass, and <FIG> is a sectional view illustrating a portion through which the lamp wiring passes. Hereinafter, as a part, the lamp will be described as an example, and the part may be referred to as the lamp but may be referred to as the part.

Referring to <FIG> and <FIG>, it is possible to confirm a state where the part <NUM> is installed, and the lamp is placed inside the gap forming part <NUM> as a part necessary for the refrigerator. Wires <NUM> and <NUM> of the part <NUM> extend outward at a gap between the inner surface part <NUM> and the second reinforcing member <NUM>. Specifically, the wires <NUM> and <NUM> of the part <NUM> extend outward at a gap part between the first member fastening part <NUM>, the second member fastening part <NUM>, and the second reinforcing member <NUM>.

The end portion of the second member fastening part <NUM> is spaced apart from the base part <NUM> by a predetermined gap so as to provide a gap through which the wirings <NUM> and <NUM> can pass in the second member fastening part <NUM>. Of course, the second member fastening part <NUM> may be provided with a slit such as that provided in the protrusion part <NUM>.

Referring to <FIG>, the first member fastening part <NUM> and the protrusion part <NUM> are in contact with each other for supporting the sealing frame <NUM>. Referring to <FIG>, the slits <NUM> and <NUM> may extend beyond the end of the first member fastening part <NUM>. The wiring can be drawn out of the protrusion part <NUM> through the gap between the slits <NUM> and <NUM> and the end portions of the first member fastening part <NUM>. According to the configuration of the slits <NUM> and <NUM>, the wirings <NUM> and <NUM> can be guided to the outside through the slit, and at this time, there may be no interference structure that can break the wiring.

<FIG> is an exploded perspective view illustrating the peripheral portion of the part.

Referring to <FIG>, a part <NUM>, a part fixing frame <NUM> on which the part <NUM> is seated, and the sealing frame <NUM> are illustrated.

The part fixing frame <NUM> provides a portion of the inner surface part <NUM> of the sealing frame <NUM>. The part fixing frame <NUM> has constituent elements for seating the part <NUM> thereon.

The part fixing frame <NUM> has a shape elongated in one direction and is a member corresponding to the second member constituting the inner surface part when observed in the section thereof and can provide the second member fastening part <NUM>, the gap forming part <NUM>, the inclined part <NUM> inside the refrigerator, and the contact part <NUM> inside the refrigerator. Functions and actions of configurations already described can be applied to each configuration when observed in the section thereof.

In the part fixing frame <NUM>, a second member insertion recess <NUM> can be provided at a position corresponding to the first member insertion part <NUM> which is bent and extended in the inner direction of the refrigerator in the end portion of the first member fastening part <NUM>. The first member insertion part <NUM> and the second member insertion recess <NUM> are similar in size and shape to each other so that the first member insertion part <NUM> can be inserted into, fitted into, and fixed to the second member insertion recess <NUM>. The first member insertion part <NUM> and the second member insertion recess <NUM> can be fastened by an additional fastener in the refrigerator <NUM>. In other cases, the part fixing frame <NUM> may be directly fastened to the second reinforcing member <NUM>.

The inner spaces of the gap forming part <NUM> and the inclined part <NUM> inside the refrigerator may form a space in which the part <NUM> is seated. A part seating rib <NUM> may be provided on the inner surfaces of the gap forming part <NUM> and the inclined part <NUM> inside the refrigerator. The part seating rib <NUM> can fix the lamp seating position as a portion where both end portions of the lamp main body are supported.

The electric wire accommodation ribs <NUM> may be formed on the outside of the part seating ribs <NUM>. The gap part between the part seating rib <NUM> and the electric wire accommodation rib <NUM> may provide an electric wire accommodation part <NUM>. The electric wire accommodation part <NUM> provides a space in which an electric wire for applying power to the part <NUM> is placed or a predetermined part necessary for the operation of the part <NUM> can be accommodated. The electric wire accommodation ribs <NUM> and the electric wire accommodation part <NUM> may be provided on both sides of the part fixing frame <NUM>. Accordingly, inventory costs can be reduced through the common use of parts.

The wirings <NUM> and <NUM> drawn outward from the electric wire accommodation part <NUM> can pass through the gap part between the upper end of the first member fastening part <NUM> and the base part <NUM>. The wires <NUM> and <NUM> can pass through the slits <NUM> and <NUM>, enter the gap part between the side surface part <NUM> and the protrusion part <NUM> of the sealing frame <NUM> and be guided elsewhere along the gap part therebetween.

An inclined rib <NUM> may be provided at both end portions of the part fixing frame <NUM>. The inclined ribs <NUM> are provided so as to be widened toward the rear from the front end portion of the part fixing frame <NUM>. In the drawing, when referring to an index line extending along the electric wire accommodation rib <NUM> and an index line extending along the end portion of the inclined rib <NUM>, the structure of the inclined rib will be more accurately understood in a case where the angle g therebetween is referred.

In the inclined ribs <NUM>, the part fixing frame <NUM> is in contact with the inner surface part <NUM> of the sealing frame <NUM> adjacent to the part fixing frame <NUM> to eliminate the gap between the members. This makes it possible to provide a wider internal space in the refrigerator in a case of a refrigerator. For example, the part fixing frame <NUM> and the adjacent sealing frame <NUM> can be accurately in contact with each other in accordance with the inclination angle of the inclined part <NUM> inside the refrigerator provided as b In <FIG>.

<FIG> and <FIG> are sectional views taken along line A-A' and B-B' in <FIG>, and are illustrated in a time sequence. The fastening of the sealing frame and the part fixing frame can be understood by <FIG>, and alignment of the sealing frame and the part fixing frame can be understood by <FIG>.

Referring to <FIG> and <FIG>, in a case where the part <NUM> is placed on the part fixing frame <NUM> and the part on the lower side of the part <NUM> is a lamp, the gap forming part <NUM> is provided as a transparent member so that light can be emitted. This allows the light emitted from the lamp to pass through the interior surface <NUM> and to be emitted to the inside of the refrigerator and allows the user to identify the products in the refrigerator.

The part fixing frame <NUM> on which the part <NUM> is seated is aligned in a predetermined direction so as to be fastened to the sealing frame <NUM>. In the embodiment, the first member insertion part <NUM> and the second member insertion recess <NUM> are aligned to each other in the extending direction of each member so that the first member insertion part <NUM> can be fitted into the second member insertion recess <NUM>.

The first member insertion part <NUM> is slightly larger than the second member insertion recess <NUM> so that the first member insertion part <NUM> and the second member insertion recess <NUM> can be tightly fitted and an engagement structure such as a step and a protrusion can be introduced for light insertion.

Hereinafter, the path of the wiring drawn out of the protrusion part <NUM> of the second reinforcing member <NUM> through the slits <NUM> and <NUM> will be described.

<FIG> is a front view illustrating one side portion of the upper part of the refrigerator, and <FIG> is a schematic view illustrating the upper surface of the refrigerator from the outside.

Referring to <FIG> and <FIG>, the wirings <NUM> and <NUM> drawn out through the slit <NUM> can move along the gap between the protrusion part <NUM> and the side surface part <NUM> of the sealing frame <NUM> in any direction.

The sealing frame <NUM> is a member to be observed on the outside and has a gap without being in contact with internal parts so as to have a beautiful outer appearance. The sealing frame <NUM> may not be in contact with the conductive resistance sheet <NUM> so as to prevent the loss of the cold air due to contact with the conductive resistance sheet <NUM>. Accordingly, the wirings <NUM> and <NUM> can ride over the sealing frame <NUM> through the gap between the sealing frame <NUM> and the inner parts. Preferably, the wirings <NUM> and <NUM> can move the gap between the outer surface of the protrusion part <NUM> and the side surface part <NUM> of the sealing frame <NUM> so as to prevent the loss of the cold air due to contact between the conductive resistance sheet <NUM> and the wirings <NUM> and <NUM>.

A controller <NUM> is provided on the upper surface of the refrigerator. The controller <NUM> is a portion on which electric parts including a processor which controls the entire operation of the refrigerator are mounted. Since the controller <NUM> is placed on the upper surface of the refrigerator, it is convenient to easily perform the after-service without operations such as an operation which moves the position of the refrigerator.

The part <NUM> is a member which is operated under the control of the controller <NUM>. The wiring may extend to a side of the controller along any one side corner through a gap between the outer surface of the protrusion part <NUM> and the side surface part <NUM> of the sealing frame <NUM>. The wiring can be drawn to the side of the controller <NUM> after moving right up to the front of the controller <NUM>. Specifically, the wiring passes through a gap between the side surface part <NUM> of the sealing frame <NUM> and the conductive resistance sheet <NUM>, passes through a gap between the outer surface part <NUM> and the second plate member <NUM>, and reaches the controller <NUM>.

The wirings <NUM> and <NUM> can be exemplified as a lead-in wire and a lead-out wire of a power source and a connector can be mounted in advance at the end portion thereof. The worker can complete the assembly by inserting the connector into the socket of the controller <NUM>.

<FIG> is a sectional view illustrating the upper end portion of the refrigerator.

Referring to <FIG>, it can be seen that the wires <NUM> and <NUM> pass the gap between the second reinforcing member <NUM> and the sealing frame <NUM>. At this time, the wirings <NUM> and <NUM> approach the second reinforcing member <NUM>. This is because adiabatic material <NUM> intervenes between the gap between the conductive resistance sheet <NUM> and the sealing frame <NUM> and the gap between the second reinforcing member <NUM> and the sealing frame <NUM> during the fastening process.

The adiabatic material <NUM> is to prevent the loss of cold air of the conductive resistance sheet <NUM> and prevent a loss of cool air outside the second reinforcing member <NUM>. The original shape of the sealing frame <NUM> can be maintained by the adiabatic material <NUM> and the installation position of the wirings <NUM> and <NUM> can be fixed.

Claim 1:
A vacuum adiabatic body comprising:
a first plate member (<NUM>) which defines at least a portion of a wall for a first space;
a second plate member (<NUM>) which defines at least a portion of a wall for a second space which has a temperature different from that of the first space;
a sealing part (<NUM>) which seals the first plate member (<NUM>) and the second plate member (<NUM>) so as to provide a third space (<NUM>) which has a temperature between the temperature of the first space and the temperature of the second space and is a space in a vacuum state;
a conductive resistance sheet (<NUM>) which connects the first plate member (<NUM>) and the second plate member (<NUM>) to each other for preventing conduction between the first plate member (<NUM>) and the second plate member (<NUM>);
an exhaust port (<NUM>) which exhausts a gas in the third space (<NUM>); and
a sealing frame (<NUM>) which covers the conductive resistance sheet (<NUM>);
characterized in that,
the vacuum adiabatic body further comprises:
a part fixing frame (<NUM>) which is supported by the sealing frame (<NUM>); and
an electrical part (<NUM>) which is mounted to the part fixing frame (<NUM>); and
wherein a wiring (<NUM>, <NUM>) for the operation of the electrical part (<NUM>) connects the first space and the second space to each other at an outside of the conductive resistance sheet (<NUM>), and the vacuum adiabatic body further comprises: a reinforcing member (<NUM>) which reinforces at least one of the first plate member (<NUM>) and the second plate member (<NUM>), and a slit (<NUM>, <NUM>) provided in the reinforcing member (<NUM>) and through which the wiring (<NUM>, <NUM>) is passed.