Patent Description:
"HFC refrigerant" such as R410A, which is non-flammable, has conventionally been used as refrigerant of a refrigeration cycle for an air-conditioning apparatus. This R410A has zero ozone depleting potential (hereinafter, referred to as "ODP") unlike the conventional "HCFC refrigerant" such as R22, and does not deplete the ozone layer. However, R410A has a high a global warming potential (hereinafter, referred to as "GWP").

Consequently, as one of measures to prevent global warming, replacing HFC refrigerant, having a high GWP, such as R410A with refrigerant having a low GWP has been considered.

As refrigerant having a low GWP to be used, HC refrigerant such as R290 (C<NUM>H<NUM>, propane) and R1270 (C<NUM>H<NUM>, propylene), which are natural refrigerant, has been suggested. However, unlike R410A, which is non-flammable, HC refrigerant is highly flammable, and thus care should be taken for leakage of the refrigerant.

Further, as refrigerant having a low GWP, for example, R32 (CH<NUM>F<NUM>, difluoromethane), which is HFC refrigerant that does not have carbon double bond in its composition and has lower GWP than that of R410A, has been suggested.

Suggestion has also been made for halogenated hydrocarbon, which is a different type of HFC refrigerant than R32 and has carbon double bond in its composition. Such halogenated hydrocarbon may be, for example, HFO-1234yf (CF<NUM>CF = CH<NUM>, tetrafluoropropene) and HFO-1234ze (CF<NUM> - CH = CHF). The HFC refrigerant that has carbon double bond is often referred to as "HFO" by using "O" for olefin (unsaturated hydrocarbon having carbon double bond is called olefin) to be distinguished from HFC refrigerant such as R32 that does not have carbon double bond in the composition.

Although being not as highly flammable as HC refrigerant such as R290 (C<NUM>H<NUM>, propane), which is natural refrigerant, those types of HFC refrigerant (including HFO refrigerant) having a low GWP are mildly flammable unlike R410A, which is non-flammable. Thus, care should also be taken for leakage of the refrigerant as similar to R290. Hereinafter, refrigerant having flammability, even when its level is mild, is referred to as "flammable refrigerant".

To prevent refrigerant concentration in a room from exceeding a specific value in the event of leakage of flammable refrigerant, a refrigerant filling level is stipulated in the international standard (IEC <NUM>-<NUM>-<NUM>).

That is, in the international standard, an acceptable level of refrigerant (Mmax) per room is stipulated by an equation "Mmax = <NUM> x (LFL)<NUM> x H0 x A<NUM>", which is a function of a lower flammability limit (LFL) of refrigerant, a floor area (A), and an installation height of device (H0). The installation height (H0) is defined as "<NUM>" for a floor installation type, "<NUM>" for a wall mounted type, "<NUM>" for a window mounted type, and "<NUM>" for a ceiling mounted type.

To satisfy the above equation, a split type air-conditioning apparatus is disclosed that compares a value of installation floor area stored in the apparatus and an input value of installation floor area for actual installation (after subtracting an installation area of furniture), and gives an instruction to promote ventilation of the room or to collect a portion of refrigerant into a refrigerant storing tank when the input value is smaller than the stored value (when the equation is not satisfied) (for example, see Patent Literature <NUM>).

<CIT> discloses a retrofit working method of air conditioning apparatus. The purpose is to improve workability with easier identification of a refrigerant applied by a method wherein a fluorocarbon based refrigerant containing chlorine is recovered sampling during a refrigerating cycle to seal in the fluorocarbon based refrigerant containing no chlorine instead and moreover, a display label is applied to the effect that the fluorocarbon based refrigerant containing no chlorine is applied. According to <CIT>, a fluorocarbon based refrigerant containing chlorine as working refrigerant is recovered sampling with a refrigerant recovery device from an air conditioning apparatus used presently. Then, the concentration of the fluorocarbon based refrigerant containing chlorine left in a refrigerating cycle is measured and when the concentration falls below a prescribed value, a compressor is separated by cutting to bleed a refrigerating machine oil accumulated inside the compressor, alternative new refrigerating machine oil is sealed by a prescribed value into the compressor. Then, the compressor is connected as it is before by welding and evacuation is performed in the refrigerant cycle. A non-azeotropic mixture refrigerant is sealed in as alternative refrigerant. Then, a display label is applied at a position near a service lid to the effect that the non-azeotropic mixture refrigerant and the new refrigerant are applied.

<CIT> is directed to a cooling device. The problem to be solved is to prevent an improper refrigerant from being filled by providing a display part in the vicinity of a service port which is commonly provided on a high pressure refrigerant outlet and a low pressure gas inlet of an indoor unit or an outdoor unit of a show case, etc. This problem is solved as follows: Three-way valves having a flare joint are mounted on a corner part of a skeleton of an indoor unit of a low temperature show case, etc., and joints extended on the extension line and in the diagonal direction of the piping of the three-way valve having the flare joint are a low pressure gas inlet and a service port. The three-way valve having the flare joint is provided with a high pressure refrigerant outlet and a service port. A refrigerant name display label indicating 'R404A' which is the name of hydrofluorocarbon refrigerant to be used in a refrigerating device is attached to the skeleton in the vicinity of the service ports. Danger of filling an improper refrigerant by mistake can thereby be prevented.

<CIT> is directed to an air conditioner. The problem to be solved is to easily disassemble by a method for disassembling an air conditioner to be discarded by providing an air conditioner body and a disassembling drawing provided on the body and indicating the method for disassembling in the case of discarding the body in an air conditioner. This problem is solved as follows: A disassembling drawing clearly describing a disassembling method is adhered to a rear side of a front panel so that in the case of discarding the air conditioner, components are easily recycled. In the case of discarding the conditioner, the panel is removed, and the drawing adhered to the rear side is observed, and hence the method can be simply known by anyone. In this state, in the case of discarding the conditioner, even if the method is not understood, the panel is removed, and the drawing adhered to the rear side is observed, and hence the method can be simply known by anyone, and the conditioner can be easily recycled.

<CIT> is directed to an air conditioner. The problem to be solved is to provide an air conditioner capable of achieving a highly efficient operation as a whole even under various operation conditions. This problem is solved as follows: The air conditioner includes a main refrigerant circuit configured by annularly connecting a compressor having an injection port serving as a refrigerant passage in the middle part of a compression process for compressing and discharging a sucked refrigerant, a four-way valve, a heat source side throttle device, a heat source side heat exchanger, a load side throttle device, and a load side heat exchanger, and one or more flow path switching refrigerant circuit including a bypass throttle device for reducing the pressure of a refrigerant branched from the main refrigerant circuit, an internal heat exchanger for exchanging heat between a refrigerant passed through the bypass throttle device and a refrigerant passed through the main refrigerant circuit and a flow path switching valve for setting a flow path through which the refrigerant heat-exchanged by the internal heat exchanger is supplied to one of the injection port or the suction side of the compressor.

Patent Literature <NUM>: <CIT> (pages <NUM>-<NUM>, <FIG>).

However, although the split type air-conditioning apparatus disclosed in Patent Literature <NUM> is configured to receive the input value of the installation floor area from which the installation area of furniture is subtracted, the apparatus does not receive the value of the installation height. That is, attention is not paid to the installation height. Thus, inputting only the value of installation floor area is not enough for an appropriate determination, if the value of actual installation height is smaller (lower) than the stipulated value.

Further, Patent Literature <NUM> discloses giving an instruction to promote ventilation of the room by inputting the value of installation floor area after subtracting the installation floor area of furniture. However, promoting additional ventilation of the room during air conditioning (cooling or heating) of the room by using the air-conditioning apparatus leads to compromise of comfort and energy-saving performance. That is, comfort and energy-saving performance are compromised since there is no way to confirm the available floor area before installation of the air-conditioning apparatus.

The present invention has been made to solve the above problem, and the first object of the invention is to provide an air-conditioning apparatus configured to reliably instruct a site worker to install the air-conditioning apparatus at a stipulated installation height by having an effortlessly noticeable indication to the site worker that the installation height is stipulated for each indoor unit. The second object of the invention is to provide an air-conditioning apparatus configured to reliably instruct a site worker to install the air-conditioning apparatus in a stipulated floor area by having an effortlessly noticeable indication to the site worker that the available floor area is stipulated on the basis of refrigerant filling level of the air-conditioning apparatus. Solution to Problem.

An air-conditioning apparatus according to the present invention is a split type air-conditioning apparatus including an indoor unit and an outdoor unit. The indoor unit includes a housing, an indoor heat exchanger that is disposed in the housing and to which flammable refrigerant is supplied, and an indication section that is provided on the housing and indicates an installation height for installation in a room as stipulated in an international standard.

Further, the indoor unit includes a housing, an indoor heat exchanger that is disposed in the housing and to which flammable refrigerant is supplied, and an indication section that is provided on the housing and indicates a floor area for installation in a room as stipulated in an international standard.

According to the present invention, the indication section that indicates "the installation height for installation in a room (or a minimum distance from the floor surface to the housing)" as stipulated in the international standard is provided on the housing. Because the indication section catches attention of (is noticed by) a site worker during installation of the air-conditioning apparatus, the site worker recognizes the installation height necessary for the indoor unit (a minimum distance from the floor surface) and can install the air-conditioning apparatus at the stipulated installation height.

Further, the indication section that indicates "the available floor area on the basis of the refrigerant filling level" as stipulated in the international standard is disposed on the housing. Because the indication section catches attention of (is noticed by) a site worker during installation of the air-conditioning apparatus, the site worker recognizes the floor area (minimum floor area) available for the air-conditioning apparatus and can install the air-conditioning apparatus in the room having the stipulated floor area.

<FIG> explain an air-conditioning apparatus according to Embodiment <NUM> of the present invention. <FIG> is a refrigerant circuit diagram that schematically shows a configuration of a refrigerant circuit, <FIG> is a front view that shows an outer appearance of an indoor unit, <FIG> is a bottom view that shows an outer appearance of the indoor unit, <FIG> is a side view that shows an installation state of the indoor unit, <FIG> is a bottom view that shows a part (indication section) of the air-conditioning apparatus, <FIG> is a front view that shows a part (installation board) of the air-conditioning apparatus, and <FIG> is a front view that shows a part (indication section) of the air-conditioning apparatus. The drawings are schematically illustrated and the present invention is not limited to embodiments shown in the drawings.

In <FIG>, an air-conditioning apparatus <NUM> is a split type apparatus including an indoor unit (also referred to as "load side unit") <NUM> disposed on a wall <NUM> (see <FIG>) of a room <NUM>, an outdoor unit (also referred to as "heat source side unit") <NUM> disposed outside the room (not shown in the figure), and extension pipes 10a and 10b, which connect the indoor unit <NUM> and the outdoor unit <NUM>.

The outdoor unit <NUM> is provided with a compressor <NUM> that compresses and discharges refrigerant, a refrigerant flow switching valve (hereinafter, referred to as "four-way valve") <NUM> that switches a flow direction of the refrigerant for a cooling operation and a flow direction of the refrigerant for a heating operation in a refrigerant circuit, an outdoor heat exchanger <NUM> that is a heat source side heat exchanger that exchanges heat between outside air and refrigerant, and a decompression device (hereinafter, referred to as "expansion valve") <NUM> that is an expansion unit such as an electronic controlled expansion valve that is capable of changing an opening degree and decompresses refrigerant from high pressure to low pressure, and they are connected to each other by an outdoor refrigerant pipe (also referred to as "heat source side refrigerant pipe") <NUM>.

Further, an outdoor air-sending device 5f that supplies (blows) outside air to the outdoor heat exchanger <NUM> is disposed to face the outdoor heat exchanger <NUM>. When the outdoor air-sending device 5f rotates, an air flow that passes through the outdoor heat exchanger <NUM> is generated. In the outdoor unit <NUM>, a propeller fan is used as the outdoor air-sending device 5f and is disposed downstream of the outdoor heat exchanger <NUM> (downstream of the air flow generated by the outdoor air-sending device 5f) to suck the outside air passing through the outdoor heat exchanger <NUM>.

The outdoor refrigerant pipe <NUM> collectively refers to a refrigerant pipe that connects a gas-side extension pipe connecting valve 13a (during cooling operation) and a four-way valve <NUM>, a suction pipe <NUM>, a discharge pipe <NUM>, a refrigerant pipe that connects the four-way valve <NUM> and the outdoor heat exchanger <NUM>, a refrigerant pipe that connects the outdoor heat exchanger <NUM> and the expansion valve <NUM>, a refrigerant pipe that connects the expansion valve <NUM> and a liquid-side extension pipe connecting valve 13b (during cooling operation).

The outdoor refrigerant pipe <NUM> has the gas-side extension pipe connecting valve 13a at a connecting section to the gas-side extension pipe 10a, and the liquid-side extension pipe connecting valve 13b at a connecting section to the liquid-side extension pipe 10b.

The gas-side extension pipe connecting valve 13a is a two-way valve that is capable of switching between opening and closing, and is connected to a flare joint 16a at one end.

Further, the liquid-side extension pipe connecting valve 13b is a three-way valve that is capable of switching between opening and closing, and is connected to a service port 14b, which is used during air purge (in a pre-work for refrigerant supply to the air-conditioning apparatus <NUM>), and a flare joint 16b.

Further, the flare joints 16a and 16b mounted on the extension pipe connecting valves 13a and 13b (including the service port 14b) are externally threaded on the side adjacent to the outdoor refrigerant pipe <NUM>. In shipping of the outdoor unit <NUM> (including shipping of the air-conditioning apparatus <NUM>), a flare nut (not shown in the figure) that is internally threaded to mate with the external thread is mounted on the external thread.

For convenience of explanation, a portion of the outdoor refrigerant pipe <NUM> that extends on a discharge side of the compressor <NUM> from the compressor <NUM> to the four-way valve <NUM> is referred to as the discharge pipe <NUM>, while a portion that extends on a suction side of the compressor <NUM> from the four-way valve <NUM> to the compressor <NUM> is referred to as the suction pipe <NUM>.

Consequently, during both cooling operation (an operation for supplying low temperature and low pressure refrigerant to an indoor heat exchanger <NUM>) and heating operation (an operation for supplying high temperature and high pressure refrigerant to the indoor heat exchanger <NUM>), the high temperature and high pressure gas refrigerant compressed by the compressor <NUM> constantly flows into the discharge pipe <NUM> and the low temperature and low pressure refrigerant after evaporation flows in the suction pipe <NUM>.

The low temperature and low pressure refrigerant that flows in the suction pipe <NUM> may be gas refrigerant or two-phase refrigerant. The suction pipe <NUM> is provided with the low pressure side service port 14a having a flare joint, and the discharge pipe <NUM> is provided with the high pressure side service port 14c having a flare joint, which are connected to a pressure gauge to measure an operation pressure during a trial operation in installation or repair service.

Further, the flare joints of the service ports 14a and 14c (not shown in the figure) are externally threaded, and in shipping of the outdoor unit <NUM> (including shipping of the air-conditioning apparatus <NUM>), a flare nut (not shown in the figure) is mounted on the external thread.

The indoor unit <NUM> is provided with the indoor heat exchanger <NUM>, which is a use side heat exchanger that exchanges heat between indoor air and refrigerant, and the indoor heat exchanger <NUM> is connected to the indoor refrigerant pipe (also referred to as "use side refrigerant pipe") <NUM>.

Further, the indoor refrigerant pipe <NUM> has a flare joint 15a for connecting the gas-side extension pipe 10a at a connecting section to the gas-side extension pipe 10a, and a flare joint 15b for connecting the liquid-side extension pipe 10b at a connecting section to the liquid-side extension pipe 10b.

The flare joints 15a and 15b are externally threaded, and in shipping of the indoor unit <NUM> (including shipping of the air-conditioning apparatus <NUM>), a flare nut (not shown in the figure) that is internally threaded to mate with the external thread is mounted on the external thread.

Further, an indoor air-sending device 7f is disposed to face the indoor heat exchanger <NUM>, and when the indoor air-sending device 7f rotates, an air flow that passes through the indoor heat exchanger <NUM> is generated. The indoor air-sending device 7f may be of any type such as that uses cross flow fan or turbo fan depending on the form of the indoor unit <NUM>. In addition, the indoor air-sending device 7f may be disposed at a position downstream or upstream of the indoor heat exchanger <NUM> in the air flow generated by the indoor air-sending device 7f.

Each end of the gas-side extension pipe 10a is detachably connected to the flare joint 16a mounted on the gas-side extension pipe connecting valve 13a of the outdoor unit <NUM> and the flare joint 15a mounted on the indoor refrigerant pipe <NUM> of the indoor unit <NUM>, while each end of the liquid-side extension pipe 10b is detachably connected to the flare joint 16b mounted on the liquid-side extension pipe connecting valve 13b of the outdoor unit <NUM> and the flare joint 15b mounted on the indoor refrigerant pipe <NUM> of the indoor unit <NUM>.

That is, a refrigerant circuit is formed by the extension pipes 10a and 10b connecting the outdoor refrigerant pipe <NUM> and the indoor refrigerant pipe <NUM> such that a compression type heat pump cycle is provided that circulates the refrigerant compressed by the compressor <NUM>.

In <FIG>, the solid arrow indicates a flow direction of refrigerant in a cooling operation. In a cooling operation, the four-way valve <NUM> is switched the refrigerant circuit to the one indicated by the solid arrow, and the high temperature and high pressure refrigerant discharged from the compressor <NUM> first flows into the outdoor heat exchanger <NUM> via the four-way valve <NUM>.

The outdoor heat exchanger <NUM> operates as a condenser. That is, when an air flow generated by rotation of the outdoor air-sending device 5f passes through the outdoor heat exchanger <NUM>, heat is exchanged between the passing outdoor air and the refrigerant flowing in the outdoor heat exchanger <NUM>, and condensing heat of the refrigerant is applied to the outdoor air. Consequently, the refrigerant is condensed in the outdoor heat exchanger <NUM> and becomes a liquid refrigerant of high pressure and moderate temperature.

Then, the liquid refrigerant of high pressure and moderate temperature flows into the expansion valve <NUM> and adiabatically expands in the expansion valve <NUM> and becomes two-phase refrigerant of low pressure and low temperature.

Then, the two-phase refrigerant of low pressure and low temperature is supplied to the indoor unit <NUM> via the liquid-side extension pipe 10b and flows into the indoor heat exchanger <NUM>. This indoor heat exchanger <NUM> operates as an evaporator. That is, when a flow of indoor air generated by rotation of the indoor air-sending device 7f passes through the indoor heat exchanger <NUM>, heat is exchanged between the passing indoor air and the refrigerant flowing in the indoor heat exchanger <NUM> and the refrigerant is evaporated while taking an evaporating heat (heating energy) from the indoor air and becomes gas refrigerant or two-phase refrigerant of low temperature and low pressure. On the other hand, the passing indoor air is cooled while taking cooling energy from the refrigerant and cools inside the room.

Further, the gas refrigerant or the two-phase refrigerant of low temperature and low pressure that is evaporated in the indoor heat exchanger <NUM> is supplied to the outdoor unit <NUM> via the gas-side extension pipe 10a and is sucked into the compressor <NUM> via the four-way valve <NUM>. Then, the refrigerant is again compressed into high temperature and high pressure gas refrigerant in the compressor <NUM>. During cooling operation, this cycle is repeated.

In <FIG>, the dotted arrow indicates a flow direction of refrigerant in a heating operation. When the four-way valve <NUM> is switched the refrigerant circuit to the one indicated by the dotted arrow, the refrigerant flows in a direction opposite to that in the cooling operation, and first flows into the indoor heat exchanger <NUM>. The indoor heat exchanger <NUM> operates as a condenser and the outdoor heat exchanger <NUM> operates as an evaporator. The indoor air is heated by condensing heat (heating energy) when passing through the indoor heat exchanger <NUM>, causing a heating operation.

The air-conditioning apparatus <NUM> uses, as a refrigerant that flows in the refrigerant circuit, HFC refrigerant R32 (CH<NUM>F<NUM>, difluoromethane) having smaller GWP than HFC refrigerant R410A, which is commonly used in air-conditioning apparatuses, and a relatively small effect on global warming and mild inflammability. A specific amount of refrigerant is sealed in the outdoor unit <NUM> in shipping. If the amount is insufficient for the lengths of the extension pipes 10a and 10b during installation of the air-conditioning apparatus <NUM>, the refrigerant is additionally supplied by site work.

Further, the refrigerant is not limited to R32, and may be HFO refrigerant having mild inflammability similar to the above described R32, such as HFO-1234yf (CF<NUM>CF = CH<NUM>, tetrafluoropropene) and HFO-1234ze (CF<NUM> - CH =CHF), which is a type of the above described HFC refrigerant but is a halogenated hydrocarbon having a carbon double bond in its composition, and has smaller GWP than that of R32.

Alternatively, the refrigerant may be HC refrigerant having high inflammability such as R290 (C<NUM>H<NUM>, propane) and R1270 (C<NUM>H<NUM>, propylene). Further, the refrigerant may be a mixed refrigerant that is a mixture of two or more of these refrigerant.

In <FIG> to (c), the indoor unit <NUM> includes a housing <NUM> that includes an air inlet <NUM> formed on an upper surface <NUM> and an air outlet <NUM> formed to extend across a front surface <NUM> and a lower surface <NUM>, a decorative panel <NUM>, which is detachably mounted on the front surface <NUM> of the housing <NUM>, a vertical air deflector <NUM> that is disposed at the air outlet <NUM> and adjusts a vertical direction of a blowing direction of air conditioned by the indoor heat exchanger <NUM> (see <FIG>) (hereinafter, referred to as "conditioned air"), and a horizontal air deflector <NUM> that is disposed more inside the housing <NUM> (upstream side) than the air outlet <NUM> and adjusts a horizontal direction of the blowing direction. Further, an identifier <NUM> and an indication section <NUM> are provided on the lower surface <NUM>.

The housing <NUM> is installed on the wall <NUM> of the room <NUM>, and the lower surface <NUM> is at a position higher than <NUM>, which is an installation height (H0), from a floor surface <NUM>.

The identifier <NUM> has a description of the model and manufacturer of the air-conditioning apparatus <NUM>, the name of used refrigerant and other information.

The present invention is not intended to be limited to the content of indication on the identifier <NUM> (such as characters and symbols) and the form of indication (such as embossing and debossing the lower surface <NUM>, printing on the lower surface <NUM>, and attaching a plate having a description of content).

In <FIG>, the indication section <NUM> has a description "INSTALL THIS INDOOR UNIT <NUM>) AT THE HEIGHT OF <NUM> OR MORE, AND <NUM>) IN THE ROOM HAVING A FLOOR AREA OF <NUM><NUM> OR MORE. " That is, "the value of installation height (H0)" and "the floor area" that corresponds to the refrigerant filling level of the air-conditioning apparatus <NUM> in the equation described below, which is stipulated in the international standard (IEC <NUM>-<NUM>-<NUM>) for a wall mounted type indoor unit to be mounted on a wall of a room, are described.

The form of the indication section <NUM> is not specifically limited, and description of content may be indicated by directly embossing and debossing the lower surface <NUM> or by coloring (printing) the lower surface <NUM>. Alternatively, a strip or piece (plate) having the description of content by embossing and debossing or coloring may be permanently attached or may be attached to be removable after the installation of the housing <NUM>.

Although the indication section <NUM> in the above description is provided on the lower surface <NUM>, the present invention is not limited thereto. Alternatively, the indication section <NUM> may be provided on the side surface <NUM> or the side surface <NUM>.

Further, the indication section <NUM> may indicate only "the value of installation height (H0)"or only "the value of minimum flow area".

The international standard defines an acceptable level of refrigerant (Mmax) per a room by an equation "Mmax = <NUM> x (LFL)<NUM> x H0 x A<NUM>", where "LFL" is a lower flammability limit of refrigerant, "A" is a floor area of the floor surface <NUM>, and "H0" is a minimum distance (also referred to as "installation height") between the lower surface <NUM> and the floor surface <NUM>. The installation height (H0) is defined as "<NUM>" for a floor installation type, "<NUM>" for a wall mounted type, "<NUM>" for a window mounted type, and "<NUM>" for a ceiling mounted type.

When the indoor unit <NUM> of the air-conditioning apparatus <NUM> is installed on the wall <NUM>, since the indication section <NUM> catches attention of (is noticed by) a site worker (not shown in the figure), the site worker recognizes the installation height necessary for the indoor unit <NUM> (a minimum distance between the lower surface <NUM> of the housing <NUM> and the floor surface <NUM>) and can install the indoor unit <NUM> (housing <NUM>) at the stipulated installation height.

That is, since the indoor unit <NUM> can be prevented from being inadvertently installed at a low position, thereby preventing dissatisfying the international standard.

Further, the indication section <NUM> that indicates "the available floor area on the basis of the refrigerant filling level" as stipulated in the international standard is disposed on the housing <NUM>. Since the indication section <NUM> catches attention of (is noticed by) a site worker during installation of the air-conditioning apparatus <NUM>, the site worker recognizes the floor area (minimum floor area) available for the air-conditioning apparatus <NUM> and can install the air-conditioning apparatus <NUM> in the room having the stipulated floor area. That is, since the air-conditioning apparatus <NUM> can be prevented from being inadvertently installed in a room having a small floor area (small room), thereby preventing dissatisfying the international standard. This eliminates a need of performing additional venting, thereby preventing compromising comfort and energy reduction.

In <FIG>, an installation board <NUM> is directly mounted on the wall <NUM>, and the indoor unit <NUM> is mounted on the installation board <NUM>. That is, the indoor unit <NUM> is not directly installed on the wall <NUM> but indirectly mounted via the installation board <NUM>. In this case, an indication section <NUM> is provided on the installation board <NUM>.

In <FIG>, the indication section <NUM> has a description "INSTALL THIS INDOOR UNIT AT THE HEIGHT OF <NUM> OR MORE. " However, a description regarding a floor area may be added similar to the indication section <NUM>.

Consequently, when the indoor unit <NUM> is installed on the wall <NUM>, the installation board <NUM> is disposed on the wall <NUM> in advance, and the indication section <NUM> is disposed on the installation board <NUM>. Since the indication section <NUM> catches attention of (is noticed by) a site worker (not shown in the figure), the site worker recognizes the installation height necessary for the indoor unit <NUM> (a minimum distance between the lower surface <NUM> of the housing <NUM> and the floor surface <NUM>) and can install the installation board <NUM> at the stipulated installation height and install the indoor unit <NUM> (housing <NUM>) at the stipulated installation height via the installation board <NUM>.

<FIG> explain the air-conditioning apparatus according to Embodiment <NUM> of the present invention. <FIG> is a perspective view that shows an outer appearance of the indoor unit, <FIG> is a side view that shows an installation state of the indoor unit, and <FIG> is a bottom view that shows a part (indication section) of the air-conditioning apparatus. The drawings are schematically illustrated and the present invention is not limited to embodiments shown in the drawings. Further, components that are the same or correspond to those of Embodiment <NUM> are denoted by the same reference signs, and a part of the description is omitted.

In <FIG> and <FIG>, the air-conditioning apparatus <NUM> (not shown in the figure) that has an indoor unit <NUM> according to Embodiment <NUM> is a split type apparatus including an indoor unit (also referred to as "load side unit") <NUM> hung from a ceiling <NUM> of the room <NUM>, an outdoor unit (not shown in the figure) disposed outside the room (not shown in the figure), and extension pipes (not shown in the figure) that connect the indoor unit <NUM> and the outdoor unit.

Further, devices for performing a refrigeration cycle of the air-conditioning apparatus <NUM> and a configuration of the refrigerant circuit, and a flowing method of refrigerant are the same as those of the air-conditioning apparatus <NUM> (Embodiment <NUM>) and the description thereof is omitted.

In <FIG> and <FIG>, the indoor unit <NUM> includes a housing <NUM> that includes an air inlet <NUM> formed on a lower surface <NUM> at a position close to a rear surface <NUM> and an air outlet <NUM> formed on a front surface <NUM>, air inlet covers 220a and 220b that openably cover the air inlet <NUM> and has a plurality of slits for gaps through which air flows freely, and a vertical air deflector <NUM> that is disposed at the air outlet <NUM> and adjusts a vertical direction of a blowing direction of conditioned air.

Further, the indoor air-sending device 7f, which is not shown in the figure, is covered by casings 240a, 240b, 240c, and 240d. The casings 240a, 240b, 240c, and 240d are disposed in the air inlet <NUM> in the range of positions that face the air inlet covers 220a and 220b when the air inlet <NUM> is closed and are capable of being visually observed from the outside of the indoor unit <NUM> when the air inlet covers 220a and 220b open the air inlet <NUM>.

Further, an identifier <NUM> and an indication section <NUM> are provided on the lower surface of the casing 240a and the lower surface of the casing 240b in the range that faces the air inlet <NUM>.

In <FIG>, the casing 240a and the other casings are provided in four rows, and the identifier <NUM> is disposed in the row of the end side and the indication section <NUM> is disposed in the row of the center side so that the identifier <NUM> and the indication section <NUM> are aligned. However, the present invention is not limited thereto, and the identifier <NUM> and the indication section <NUM> may be disposed in any row, the identifier <NUM> and the indication section <NUM> may be disposed in the same row, and the number of rows is not limited to four.

In <FIG>, the indication section <NUM> has a description "INSTALL THIS INDOOR UNIT <NUM>) AT THE HEIGHT OF <NUM> OR MORE, AND <NUM>) IN THE ROOM HAVING A FLOOR AREA OF <NUM><NUM> OR MORE. " That is, "the value of installation height (H0)"for the ceiling mounted type, which is "<NUM>," and "the floor area" that corresponds to the refrigerant filling level of the air-conditioning apparatus <NUM> in the above equation of the international standard (IEC <NUM>-<NUM>-<NUM>), which is stipulated for a wall mounted type indoor unit to be installed on the wall of the room, are described.

The form of the indication section <NUM> is similar to that of the indication section <NUM>. Although the indication section <NUM> is provided on the lower surface of the casing 240a, the present invention is not limited thereto. Alternatively, the indication section <NUM> may be provided on a side surface <NUM>, a side surface <NUM>, or the lower surface <NUM> of the housing <NUM>.

When the indoor unit <NUM> of the air-conditioning apparatus <NUM> is hung from the ceiling <NUM>, a site worker (not shown in the figure) opens the air inlet covers 220a and 220b and the indication section <NUM> is visually exposed from the outside through the air inlet <NUM>. Since the indication section <NUM> catches attention of (is noticed by) a site worker (not shown in the figure), the site worker recognizes the installation height necessary for the indoor unit <NUM> (a minimum distance between the lower surface <NUM> of the housing <NUM> and the floor surface <NUM>) and can install the indoor unit <NUM> (housing <NUM>) at the stipulated installation height.

Further, the indication section <NUM> that indicates "the available floor area on the basis of the refrigerant filling level" as stipulated in the international standard is disposed on the housing <NUM>. Consequently, the air-conditioning apparatus <NUM> can be prevented from being inadvertently installed in a room having a small floor area (small room) similar to Embodiment <NUM>, thereby preventing dissatisfying the international standard and also preventing compromising comfort and energy reduction.

<FIG> explain the air-conditioning apparatus according to Embodiment <NUM> of the present invention. <FIG> is a perspective view that shows an outer appearance of the indoor unit, and <FIG> is a side view that shows an installation state of the indoor unit.

The drawings are schematically illustrated and the present invention is not limited to embodiments shown in the drawings. Further, components that are the same or correspond to those of Embodiment <NUM> are denoted by the same reference signs, and a part of the description is omitted.

In <FIG>, the air-conditioning apparatus <NUM> (not shown in the figure) that has an indoor unit <NUM> according to Embodiment <NUM> is a split type apparatus including an indoor unit (also referred to as "load side unit") <NUM> embedded in a ceiling space (embedding area) <NUM> formed above the ceiling <NUM> of the room <NUM>, an outdoor unit (not shown in the figure) disposed outside the room (not shown in the figure), and extension pipes (not shown in the figure) that connect the indoor unit <NUM> and the outdoor unit.

In <FIG>, the indoor unit <NUM> includes a quadrangular prism shape housing <NUM> having side surfaces 311a, 311b, 311c, and 311d, an air inlet <NUM> is formed by an opening in the center area of a lower surface <NUM> of the housing <NUM>, and air outlets 314a, 314b, 314c, and 314d are formed along the side surfaces 311a, 311b, 311c, and 311d, respectively.

An indoor air-sending device 7f (see <FIG>, not shown in the figure) is disposed to face the air inlet <NUM> at the center of the housing <NUM>, and the indoor heat exchanger <NUM> is disposed surrounding the indoor air-sending device 7f.

Further, an electronics box <NUM> is disposed in the air inlet <NUM> of an air outlet 314a (on the opposite side of the side surface 311a), an identifier <NUM> and an indication section <NUM> are disposed on the lower surface of the electronics box <NUM>.

The lower surface <NUM> of the housing <NUM> is covered by a decorative panel (not shown in the figure) that is detachably mounted. When the indoor unit <NUM> is installed in the ceiling space <NUM>, the decorative panel is mounted after installation of the indoor unit <NUM> as shown in <FIG> (part of illustration is omitted). That is, when the indoor unit <NUM> is installed in the ceiling space <NUM>, the identifier <NUM> and the indication section <NUM> are exposed to be seen by a site worker.

Similar to the indication section <NUM>, the indication section <NUM> has a description "INSTALL THIS INDOOR UNIT AT THE HEIGHT OF <NUM> OR MORE (see <FIG>). " That is, "the value of installation height (H0)" for the ceiling mounted type, which is "<NUM>," in the above equation of the international standard (IEC <NUM>-<NUM>-<NUM>), which is stipulated for a wall mounted type indoor unit to be installed on the wall of the room, is described.

The form of the indication section <NUM> is similar to that of the indication section <NUM>.

Although the identifier <NUM> and the indication section <NUM> are disposed on the electronics box <NUM> in <FIG>, the present invention is not limited thereto. Alternatively, one or both of the identifier <NUM> and the indication section <NUM> may be disposed on the lower surface <NUM> (for example, between the air outlet 314b and the air outlet 314c).

When the indoor unit <NUM> of the air-conditioning apparatus <NUM> is installed in the ceiling space <NUM> of the ceiling <NUM>, the lower surface of the electronics box <NUM> is visually exposed from the outside (the indication section <NUM> is disposed on the lower surface). Since the indication section <NUM> catches attention of (is noticed by) a site worker (not shown in the figure), the site worker recognizes the installation height necessary for the indoor unit <NUM> (a minimum distance between the lower surface <NUM> of the housing <NUM> and the floor surface <NUM>) and can install the indoor unit <NUM> (housing <NUM>) at the stipulated installation height.

Claim 1:
A split type air-conditioning apparatus (<NUM>, <NUM>, <NUM>) comprising an indoor unit (<NUM>, <NUM>, <NUM>) and an outdoor unit (<NUM>), the indoor unit (<NUM>, <NUM>, <NUM>) including a housing (<NUM>, <NUM>, <NUM>), an indoor heat exchanger (<NUM>) being disposed in the housing (<NUM>, <NUM>, <NUM>) and configured to be supplied with a level of flammable refrigerant, and an indication section (<NUM>, <NUM>, <NUM>, <NUM>) being provided on the housing (<NUM>, <NUM>, <NUM>) characterised in that the indication section indicates one or both of an installation height for installation of the indoor unit (<NUM>, <NUM>, <NUM>) in a room and a minimum floor area that must be available in the room for the air-conditioning apparatus (<NUM>, <NUM>, <NUM>) as stipulated by an equation Mmax = <NUM> x (LFL)<NUM> x H0 x A<NUM>, which is a function of a lower flammability limit LFL of the refrigerant, the floor area A, and an installation height H0 of the indoor unit (<NUM>, <NUM>, <NUM>), with Mmax defining a the level of flammable refrigerant, wherein the installation height H0 is defined as <NUM> for a floor installation type, <NUM> for a wall mounted type, <NUM> for a window mounted type, and <NUM> for a ceiling mounted type, wherein
either
the housing (<NUM>) is configured to be hung from a ceiling (<NUM>), and the indication section (<NUM>) is provided in the housing (<NUM>) at a position that faces an air inlet (<NUM>) that is open to a lower surface of the housing (<NUM>), wherein the indication section (<NUM>) is visually exposed from the outside through the air inlet (<NUM>),
or
the housing (<NUM>) is configured to be embedded in a ceiling (<NUM>), and the indication section (<NUM>) is provided on a lower surface of an electronics box (<NUM>), wherein the lower surface of the electronics box (<NUM>) is visually exposed from the outside,
or
wherein the air-conditioning apparatus (<NUM>) comprises an installation board (<NUM>),
wherein the housing (<NUM>) is configured to be installed on a wall (<NUM>) via the installation board (<NUM>), and
the indication section (<NUM>) is provided on the installation board (<NUM>).