Patent Description:
Since pyrolysis oil produced by a cracking or pyrolysis reaction of waste materials, such as waste plastic pyrolysis oil, contains a large amount of impurities caused by the waste materials, there is a risk of emission of air pollutants such as SOx and NOx when the pyrolysis oil is used as fuel. In particular, chlorine ("Cl") impurities can be converted into HCl and can cause device corrosion during a high-temperature treatment process.

In the related art, Cl is typically removed through post-treatment processes such as a hydrodesulfurization (hydrotreating) process and a Cl treatment process using an oil refining technique. However, since pyrolysis oil such as waste plastic pyrolysis oil has a high content of Cl, problems such as equipment corrosion, abnormal reactions, and deterioration of product properties caused by an excessive amount of HCl produced in the hydrodesulfurization process have been reported. Therefore, it is difficult to introduce non-pretreated pyrolysis oil to the hydrodesulfurization process. Thus, for removing the Cl using the conventional oil refining process, there is a need for a Cl reduction treatment technique for reducing the content of Cl in the pyrolysis oil to a level that can be introduced into the oil refining process.

Moreover, for securing economic feasibility, in addition to impurity removal, it is required for the waste plastic pyrolysis oil to be high-value added through yield improvement and lightening of the waste plastic pyrolysis oil. Furthermore, there is a need to develop a technique for obtaining refined hydrocarbons having a high proportion of light hydrocarbons from the waste plastic pyrolysis oil.

Further related art is disclosed in <CIT>, <CIT>, <CIT> and <CIT>.

The present invention aims to producing high-value-added pyrolysis oil having a high proportion of light hydrocarbons from waste plastics containing a large amount of impurities, and to obtaining refined hydrocarbons having a high proportion of light hydrocarbons therefrom.

The present invention further aims to improving a yield of the pyrolysis oil obtained from waste plastics.

The present invention yet further aims to producing high-value-added pyrolysis oil with reduced impurities from waste plastics containing a large amount of impurities, and to obtaining refined hydrocarbons with reduced impurities therefrom.

The present invention yet further aims to providing a method and system with a simplified process of producing refined hydrocarbons from waste plastics.

The present invention yet further aims to producing high-value-added pyrolysis oil that may be used as a feedstock for blending with existing petroleum products or an oil refining process due to its excellent quality, and to obtaining refined hydrocarbons therefrom.

Against the above, the invention relates to a method for producing refined hydrocarbons from waste plastics, the method including: a pretreatment process of pretreating waste plastics; a pyrolysis process of producing pyrolysis gas by introducing the waste plastics pretreated in the pretreatment process into a pyrolysis reactor; a lightening process of producing pyrolysis oil by introducing the pyrolysis gas into a hot filter; and a distillation process of distilling the pyrolysis oil to obtain refined hydrocarbons, wherein a liquid condensed in the hot filter is re-introduced into the pyrolysis reactor.

The beads may include at least one selected from the group consisting of silica sand (SiO<NUM>) and aluminum oxide (Al<NUM>O<NUM>).

A temperature gradient may be formed in the hot filter.

The temperature gradient may be formed by providing at least two heaters outside the hot filter for heating the hot filter.

The pyrolysis reactor may include at least two batch reactors.

The pyrolysis process may be performed by a switching operation of the at least two batch reactors.

The pyrolysis oil may be mixed with petroleum hydrocarbons and distilled into mixed oil.

The pyrolysis oil may be included in an amount of <NUM> wt% or less with respect to the total weight of the mixed oil.

The waste plastics may include at least one selected from the group consisting of polyethylene (PE), polypropylene (PP), polyethylene terephthalate (PET), polyvinyl chloride (PVC), and polystyrene (PS).

The pretreatment process may comprise reacting the waste plastics feedstock with a neutralizing agent, and at least one of a copper compound, and a divalent metal oxide to produce a pretreated waste plastics mixture.

The pyrolysis process may comprise producing the pyrolysis gas by subjecting the pretreated waste plastics mixture to a pyrolysis reaction.

The lightening process may comprise separating low-boiling-point hydrocarbon compounds from the pyrolysis gas and producing a pyrolysis oil.

The invention further relates to a system for producing refined hydrocarbons from waste plastics, the system including: a pretreatment device configured for pretreating waste plastics; a pyrolysis reactor configured for producing receiving the pretreated waste plastics obtained from the pretreatment device and for producing pyrolysis gas; a hot filter configured for receiving the pyrolysis gas obtained from the pyrolysis reactor and for producing pyrolysis oil; a connection pipe connecting the hot filter and the pyrolysis reactor so that a liquid condensed in the hot filter can be re-introduced into the pyrolysis reactor; and a distillation device downstream of the hot filter configured for distilling the pyrolysis oil from the hot filter to obtain refined hydrocarbons.

The beads may include at least one selected from the group consisting of silica sand (SiO<NUM>) and aluminum oxide (Al<NUM>O<NUM>). In an embodiment, the hot filter beads may be silica sand. In another embodiment, the hot filter beads may be aluminum oxide. In yet another embodiment, the hot filter beads may be a mixture of silica sand and aluminum oxide.

The system may further include at least two heaters provided outside the hot filter for providing heat to the hot filter to maintain the contents of the hot filter at a desired temperature.

Other features, aspects, and advantages of the present invention will become apparent from the following detailed description, the drawings, and the claims.

In the present specification, the term "pyrolysis oil yield" refers to a weight ratio of oil to the total weight of oil, an aqueous by-product, a pyrolysis residue (char), and by-product gas among the products in the pyrolysis process.

Hereinafter, a method and system for producing refined hydrocarbons from waste plastics of the present invention will be described in detail.

According to the invention, a method for producing refined hydrocarbons from waste plastics is provided, the method including: a pretreatment process of pretreating waste plastics (P-<NUM>); a pyrolysis process of producing pyrolysis gas by introducing the waste plastics pretreated in the pretreatment process into a pyrolysis reactor (P-<NUM>); a lightening process of producing pyrolysis oil by introducing the pyrolysis gas into a hot filter (P-<NUM>); and a distillation process of distilling the pyrolysis oil to obtain refined hydrocarbons (P-<NUM>), wherein a liquid condensed in the hot filter is re-introduced into the pyrolysis reactor.

Therefore, in an embodiment, high-value-added pyrolysis oil having a high proportion of light hydrocarbons may be produced from waste plastics containing a large amount of impurities, and refined hydrocarbons having a high proportion of light hydrocarbons may be obtained therefrom. In addition, a yield of the obtained pyrolysis oil may be significantly improved.

In addition, in an embodiment, high-value-added pyrolysis oil with reduced impurities may be produced from waste plastics containing a large amount of impurities, and refined hydrocarbons with reduced impurities may be obtained therefrom.

Referring now to <FIG>, the Figures illustrate a method according to an embodiment of the present invention. Accordingly, a liquid condensed in a hot filter <NUM> is re-introduced into the pyrolysis reactor <NUM>, such that cracking of heavy hydrocarbons in pyrolysis oil may be improved. Therefore, pyrolysis oil having a high proportion of light hydrocarbons may be produced, and refined hydrocarbons having a high proportion of light hydrocarbons may be obtained therefrom.

According to the invention, the hot filter <NUM> is filled with beads. When the hot filter is filled with beads, an inert effect and a heat transfer effect in the hot filter are maximized, which makes it possible to produce pyrolysis oil having a high proportion of light hydrocarbons. In addition, the pyrolysis oil yield may be improved.

According to an embodiment, the hot filter <NUM> may be filled with the beads in an amount of <NUM> vol% or more, <NUM> vol% or more, <NUM> vol% or more, <NUM> vol% or more, <NUM> vol% or more, <NUM> vol% or more, <NUM> vol% or less, <NUM> vol% or less, <NUM> vol% or less, <NUM> vol% or less, <NUM> vol% or less, <NUM> vol% or less, <NUM> vol% or less, <NUM> vol% or less, or a value between the above numerical values with respect to an internal volume of the hot filter <NUM>. Specifically, the hot filter may be filled with the beads in an amount of <NUM> to <NUM> vol%, <NUM> to <NUM> vol%, or <NUM> to <NUM> vol%, with respect to the internal volume of the hot filter.

According to an embodiment, a temperature gradient may be formed in the hot filter <NUM>. When a temperature gradient is formed in the hot filter, the pyrolysis gas moving to the top of the hot filter and the liquid condensed to the bottom of the hot filter are efficiently circulated, which makes it possible to produce pyrolysis oil having a high proportion of light hydrocarbons. In addition, refined hydrocarbons having a high proportion of light hydrocarbons may be obtained therefrom. Further, the pyrolysis oil yield may be improved.

According to an embodiment, as for the temperature gradient, a temperature at the bottom of the hot filter may be higher than a temperature at the top of the hot filter. According to another embodiment, as for the temperature gradient, the temperature at the bottom of the hot filter may be higher than a temperature at the middle of the hot filter, and the temperature at the middle of the hot filter may be higher than the temperature at the top of the hot filter. Accordingly, circulation efficiency and heat transfer efficiency in the hot filter may be improved.

According to an embodiment, the temperature gradient may be formed by providing at least two heaters <NUM> outside the hot filter <NUM>. According to another embodiment, the temperature gradient may be formed by providing at least three heaters <NUM> outside the hot filter. When at least two heaters <NUM> are provided outside the hot filter, a temperature gradient of the hot filter may be easily formed, and the temperatures at the top, middle, and bottom of the hot filter may be flexibly adjusted depending on operating conditions of the hot filter, such that a flexible process operation may be performed.

According to an embodiment, the temperature at the bottom of the hot filter <NUM> may be <NUM> or higher, <NUM> or higher, <NUM> or higher, <NUM> or higher, <NUM> or higher, <NUM> or higher, <NUM> or higher, or <NUM> or higher.

According to an embodiment, the temperature at the top of the hot filter <NUM> may be <NUM> or lower, <NUM> or lower, <NUM> or lower, <NUM> or lower, <NUM> or lower, <NUM> or lower, <NUM> or lower, or <NUM> or lower.

According to an embodiment, the temperature at the middle of the hot filter <NUM> may be <NUM> or higher and <NUM> or lower, <NUM> or higher and <NUM> or lower, <NUM> or higher and <NUM> or lower, <NUM> or higher and <NUM> or lower, or <NUM> or higher and <NUM> or lower.

According to an embodiment, in a method, the feedstock <NUM> of waste plastics is pretreated in the pretreatment process (P-<NUM>). In some embodiments, the pretreatment process is performed in an auger pretreatment reactor <NUM> and may include a two-step pretreatment process. In an operation a), the waste plastics feedstock <NUM> is reacted with a neutralizing agent; and an operation b) of reacting a product in the operation a) with a copper compound may be performed. Accordingly, in the pretreatment process (P-<NUM>), a waste plastic raw material may be treated to reduce a content of Cl to a level that may be introduced into an oil refining process.

According to an another embodiment, in the operation b), an additive or a neutralizing agent such as a metal oxide or zeolite other than a copper compound may be used. The metal oxide may be in the form of a divalent metal oxide.

The waste plastics may include at least one selected from the group consisting of polyethylene (PE), polypropylene (PP), polyethylene terephthalate (PET), polyvinyl chloride (PVC), and polystyrene (PS). The waste plastics may include organic chlorine (organic Cl), inorganic chlorine (inorganic Cl), and aromatic chlorine (aromatic Cl), and a content of chlorine in the waste plastics may be <NUM> ppm or more, <NUM> ppm or more, <NUM> ppm or more, or <NUM> to <NUM>,<NUM> ppm. Pyrolysis oil produced through a cracking or pyrolysis reaction of waste plastics, such as waste plastic pyrolysis oil, contains a large amount of impurities caused by waste plastics. In particular, it is necessary to pretreat pyrolysis oil to remove a chlorine component such as organic/inorganic chlorine. The waste plastics may be divided into domestic waste plastic and industrial waste plastic. The domestic waste plastic is a plastic in which PVC, PS, PET, PBT, and the like in addition to PE and PP are mixed, and may refer to a mixed waste plastic containing <NUM> wt% or more of PVC together with PE and PP. Since chlorine derived from PVC has a high ratio of organic Cl and inorganic Cl, Cl in domestic waste plastic may be removed with high efficiency even with an inexpensive neutralizing agent (Ca-based, Zn-based, or Al-based) or the like. PE/PP accounts for most industrial waste plastic, but a content of organic Cl originating from an adhesive or a dye component is high, and in particular, a ratio of Cl (aromatic chlorine) contained in an aromatic ring is high, which makes it difficult to remove Cl with the common low-cost neutralizing agent described above.

In the embodiments, chlorine is removed in an amount of <NUM> wt% or more, <NUM> wt% or more, <NUM> wt% or more, or <NUM> wt% or more with respect to the total weight of chlorine contained in waste plastics. To this end, it is preferable to remove chlorine contained in the aromatic ring.

The operation a) is an operation of reacting waste plastics with a neutralizing agent, and a large amount of HCl generated during melting and thermal decomposition of PVC and the like may be removed in the form of a neutralizing salt.

The neutralizing agent may be oxide, hydroxide, and carbonate of a metal, or a combination thereof, and the metal may be calcium, aluminum, magnesium, zinc, copper, iron, or a combination thereof. Specifically, the neutralizing agent may be copper oxide, aluminum oxide, calcium oxide, magnesium oxide, zinc oxide, or iron oxide. The neutralizing agent may contain a zeolite component. Specifically, the neutralizing agent may contain a waste fluid catalytic cracking (FCC) catalyst (E-cat) containing a zeolite component, and may further contain a waste FCC catalyst in the metal oxide. Specifically, the neutralizing agent may be calcium oxide, a waste FCC catalyst, copper metal, or copper oxide, or may be calcium oxide.

In an embodiment, the neutralizing agent may be added during the pyrolysis process (P-<NUM>).

The neutralizing agent may be mixed in an amount of <NUM> to <NUM> wt%, <NUM> to <NUM> wt%, or <NUM> to <NUM> wt%, with respect to the total weight of the waste plastics. In addition, the neutralizing agent may be mixed at a molar ratio (NM/NCl) of a metal element (M) of the neutralizing agent to a total chlorine element (Cl) in the waste plastics of <NUM> to <NUM>, specifically, <NUM> to <NUM>, and more specifically, <NUM> to <NUM>.

Moreover, the number of moles of total chlorine elements (Cl) in the waste plastics may refer to a total number of moles of chlorine elements in a waste plastic solid raw material before pretreatment and pyrolysis.

In the chlorine removal in the operation a), a ratio (A<NUM>/A) of the content of chlorine in the product in the operation a) to <NUM> wt% (A) of the content of chlorine in the waste plastics may be <NUM>% or less, <NUM>% or less, or <NUM> to <NUM>%. Chlorine remaining in waste plastics after the operation a) may be effectively removed in the operation b).

The operation b) is an operation of reacting the product in the operation a) with a copper compound, and a small amount of organic chlorine and aromatic chlorine not removed in the operaation a) may be removed with a copper compound (catalyst). When a copper compound is used together with the neutralizing agent in the operation a) or is used as a substitute for the neutralizing agent, the copper compound first reacts with chlorine and inorganic chlorine (HCl) located at the end of the hydrocarbon chain among organic chlorines, which makes it difficult for the copper compound to come into contact with aromatic chlorine or the like, which is difficult to remove with a neutralizing agent. In addition, since the initial pyrolysis performed by raising the temperature inside the reactor for pretreatment or pyrolysis starts at a relatively low temperature (<NUM> to <NUM>), and at this time, HCl begins to be generated, it is preferable to first remove chlorine with a neutralizing agent. Thereafter, when pyrolysis proceeds in earnest, the temperature is relatively high, and a removal reaction of aromatic chlorine is activated. Therefore, it is effective to first remove organic Cl and inorganic Cl with HCl using a neutralizing agent, and then remove aromatic chlorine with a copper compound.

The copper compound may include at least one selected from the group consisting of copper metal (Cu), copper oxide (CuO), copper hydroxide (Cu(OH)<NUM>), and copper carbonate (CuCO<NUM>), and specifically, copper metal (Cu) and/or copper oxide (CuO).

The copper compound may be mixed in an amount of <NUM> to <NUM> wt%, <NUM> to <NUM> wt%, or <NUM> to <NUM> wt%, with respect to the total weight of the product in the operation a). In addition, the copper compound may be mixed at a molar ratio (NCu/NCl) of a copper element (Cu) of the copper compound to the total chlorine element (Cl) in the waste plastics of <NUM> to <NUM>, specifically, <NUM> to <NUM>, and more specifically, <NUM> to <NUM>.

Moreover, a total number of moles of chlorine element (Cl) in the waste plastics may refer to a total number of moles of chlorine element in a waste plastic solid raw material before pretreatment and pyrolysis.

In the chlorine removal in the operation b), a ratio (A<NUM>/A) of the content of chlorine in the product in the operation b) to <NUM> wt% (A) of the content of chlorine in the waste plastics may be <NUM>% or less, <NUM>% or less, or <NUM> to <NUM>%.

According to an embodiment, the operation a) may be performed at a temperature of <NUM> to <NUM>, and the operation b) may be performed at a temperature of <NUM> to <NUM>. When the operations a) and b) are performed in the temperature ranges, respectively, chlorine in the waste plastics may be effectively removed.

According to an embodiment, in the pyrolysis process (P-<NUM>), an operation a) of reacting waste plastics with a neutralizing agent; and an operation b) of reacting a product in the operation a) with a copper compound may be performed.

In the embodiments, the pretreatment process (P-<NUM>) may further include a crushing process of crushing waste plastics by introducing waste plastics into a feedstock injection part <NUM>. The crushing of the waste plastics may be performed by applying a crushing process known in the art. For example, waste plastics may be introduced into a pretreatment reactor <NUM> and heated to about <NUM> to produce a hydrocarbon flow precursor in the form of pellets.

According to an embodiment, the crushing process may be performed at room temperature.

As an example, in the crushing process, the waste plastics and the neutralizing agent may be mixed, and the mixture may be introduced into a pretreatment reactor <NUM>. When the waste plastics and calcium oxide as the neutralizing agent are mixed and crushed at room temperature, a mechanochemical reaction occurs to generate hydrocarbons and CaOHCl, and therefore, an effect of stably maintaining the form of chlorine in the waste plastic raw material as CaOHCl is obtained.

Subsequently, in the pretreatment process (P-<NUM>), the crushed waste plastics may be introduced into the pretreatment reactor <NUM> and heated, and the solid waste plastic raw material may be physically and chemically treated to remove chlorine, thereby producing a hydrocarbon flow precursor (pyrolysis raw material). The hydrocarbon flow precursor may mean a waste plastic melt, and the waste plastic melt may mean that all or a part of crushed or uncrushed solid waste plastics is converted into liquid waste plastic.

As an example, in the pretreatment process (P-<NUM>), each of the crushed or uncrushed waste plastics and the neutralizing agent may be introduced into the pretreatment reactor <NUM> and heated. In addition, in the pretreatment process (P-<NUM>), the crushed or uncrushed waste plastics and the neutralizing agent may be introduced into the pretreatment reactor <NUM>, and then a first pretreatment (heating) may be performed, and subsequently, a copper compound may be introduced into the pretreatment reactor <NUM>, and then a second pretreatment (heating) may be performed.

The heating may be performed at a temperature of <NUM> to <NUM> and normal pressure. Specifically, the heating may be performed at a temperature of <NUM> to <NUM> or <NUM> to <NUM>. In general, the pretreatment temperature of the waste plastics is at least <NUM>, but hydrocarbons after the dechlorination may be easily pretreated even at a lower temperature of <NUM> to generate hydrogen or methane gas.

The pretreatment reactor <NUM> may be an extruder, an autoclave reactor, a batch reactor, or the like, and may be, for example, an auger reactor.

The pyrolysis process (P-<NUM>) may be performed by introducing pyrolysis raw materials classified into three material phases: a gas phase, a liquid phase (oil + wax + water), and a solid phase into the pyrolysis reactor <NUM>, and specifically, may be an operation of introducing the non-pretreated or pretreated waste plastics into the pyrolysis reactor <NUM> and performing heating.

As an example, the pyrolysis process (P-<NUM>) may be performed by mixing pretreated waste plastics and a copper compound, introducing the mixture into a pyrolysis reactor <NUM>, and heating the mixture. In addition, in the pyrolysis process (P-<NUM>), a first pyrolysis is performed by mixing waste plastics and a neutralizing agent, introducing the mixture into a pyrolysis reactor <NUM>, and heating the mixture, and then a second pyrolysis is performed by introducing a copper compound into the pyrolysis reactor <NUM> and performing heating, and at least two times of pyrolysis may be performed continuously or discontinuously.

The heating may be performed at a temperature of <NUM> to <NUM>, specifically, <NUM> to <NUM>, and more specifically, <NUM> to <NUM>, in a non-oxidizing atmosphere. In addition, the heating may be performed at normal pressure. The non-oxidizing atmosphere is an atmosphere in which waste plastics do not oxidize (combust), and may be, for example, an atmosphere in which an oxygen concentration is adjusted to <NUM> vol% or less, or an atmosphere of an inert gas such as nitrogen, water vapor, carbon dioxide, or argon.

When the heating temperature is <NUM> or higher, fusion of chlorine-containing plastics may be prevented, and conversely, when the heating temperature is <NUM> or lower, chlorine in waste plastics may remain in a pyrolysis residue (char) in the form of CaCl<NUM>, CuCl<NUM>, or the like.

The pyrolysis may be performed in an autoclave reactor, a batch reactor, a fluidized-bed reactor, a packed-bed reactor, or the like, and specifically, any reactor capable of controlling stirring and a rise in temperature may be applied. According to an embodiment, the pyrolysis may be performed in a batch reactor.

According to an embodiment, the pyrolysis reactor <NUM> may include at least two batch reactors.

According to an embodiment, the pyrolysis process (P-<NUM>) may be performed by a switching operation of the at least two batch reactors to run the at least two batch reactors alternately. Accordingly, the pyrolysis process may secure process continuity even at a high temperature.

In the method for producing refined hydrocarbons from waste plastics according to an embodiment, the pyrolysis process (P-<NUM>) or the lightening process (P-<NUM>) may further include at least one process selected from the group consisting of a pyrolysis gas recovery process of recovering a pyrolysis gas phase and a pyrolysis liquid phase as gas and a separation process of separating a pyrolysis solid phase (solid content) into fine particles and coarse particles.

In the pyrolysis gas recovery process, pyrolysis gas containing low-boiling-point hydrocarbon compounds such as methane, ethane, and propane in the gas phase generated in the pyrolysis process or the lightening process is recovered. The pyrolysis gas may generally contain combustible materials such as hydrogen, carbon monoxide, and low-molecular-weight hydrocarbon compounds. Examples of the hydrocarbon compounds include methane, ethane, ethylene, propane, propene, butane, and butene. Such pyrolysis gas contains a combustible material and may be used as fuel.

In the separation process, the solid content in the solid phase generated in the pyrolysis process or the lightening process, for example, carbides, the neutralizing agent, and/or the copper compound may be separated into fine particles and coarse particles. Specifically, classification is performed using a sieve having a size smaller than an average particle diameter of the chlorine-containing plastics and larger than an average particle diameter of the neutralizing agent or the copper compound, such that the solid content generated by the pyrolysis reaction may be separated into fine particles and coarse particles. In the separation process, it is preferable to separate the solid content into fine particles containing a relatively large amount of the chlorine-containing neutralizing agent and the copper compound, and coarse particles containing a relatively large amount of carbides. The fine particles and carbides may be retreated as necessary, reused in the pyrolysis process, used as fuel, or disposed of as waste.

According to an embodiment, the hot filter <NUM> may additionally be filled with a neutralizing agent.

According to the invention, the hot filter <NUM> is filled with beads. When the hot filter is filled with beads, an inert effect and a heat exchange effect in the hot filter are maximized, which makes it possible to produce pyrolysis oil having a high proportion of light hydrocarbons.

According to an embodiment, the beads may include at least one selected from the group consisting of silica sand (SiO<NUM>) and aluminum oxide (Al<NUM>O<NUM>). Specifically, when the beads include silica sand (SiO<NUM>), the inert effect and the heat exchange effect in the hot filter may be maximized, and a stable process operation may be performed without wear even during a long-term high-temperature operation.

According to an embodiment, the beads may be glass beads.

According to an embodiment, a diameter of the bead may be <NUM> or more, <NUM> or more, <NUM> or more, <NUM> or more, <NUM> or more, <NUM> or more, <NUM> or less, <NUM> or less, <NUM> or less, <NUM> or less, <NUM> or less, <NUM> or less, <NUM> or less, <NUM> or less, or a value between the above numerical values, and specifically, may be <NUM> to <NUM>, <NUM> to <NUM>, or <NUM> to <NUM>. In the lightening process (P-<NUM>), the hot filter is filled with beads having the particle size described above, such that lightening of oil may be achieved by adjusting a gas hourly space velocity (GHSV) of the pyrolysis gas, and process operation efficiency may be improved due to suppression of a differential pressure in the hot filter.

According to an embodiment, in the lightening process (P-<NUM>), pyrolysis oil may be produced by introducing the pyrolysis gas into the hot filter filled with a neutralizing agent.

The lightening process (P-<NUM>) may be performed in an oxygen-free atmosphere at a temperature of <NUM> to <NUM> and a pressure of normal pressure to <NUM> bar, and the oxygen-free atmosphere may be an inert gas atmosphere or a closed system atmosphere without oxygen. In the temperature range of the lightening process, the lightening of the pyrolysis gas is performed well, such that clogging and a differential pressure caused by wax may be suppressed.

Moreover, in the lightening process (P-<NUM>), a gas hourly space velocity (GHSV) may be <NUM> to <NUM>/hr or <NUM> to <NUM>/hr. Accordingly, it is possible to lighten a waste plastic pyrolyzed product and reduce impurities (Cl and the like) without performing an additional post-treatment process, and it is possible to produce pyrolysis oil having a high proportion of light hydrocarbons and refined hydrocarbons having a high proportion of light hydrocarbons by adjusting the GHSV of the pyrolysis gas.

The neutralizing agent filled in the hot filter may have a particle size of <NUM> to <NUM>, or may have a particle size of <NUM> to <NUM>. Under the operating conditions in the lightening process (P-<NUM>), the hot filter is filled with the neutralizing agent having the particle size described above, such that lightening of oil may be achieved by adjusting the GHSV of the pyrolysis gas, and process operation efficiency may be improved due to suppression of a differential pressure in the hot filter.

Further, the particle size may refer to D50, and D50 refers to a particle diameter when a cumulative volume from a small particle size accounts for <NUM>% in measuring a particle size distribution by a laser scattering method. In this case, as for D50, the particle size distribution may be measured by collecting the sample from the prepared carbonaceous material according to KS A ISO <NUM>-<NUM> standard using Mastersizer <NUM> manufactured by Malvern Panalytical Ltd. Specifically, ethanol may be used as a solvent, and if necessary, the ethanol is dispersed using an ultrasonic disperser, and then, a volume density may be measured.

The hot filter <NUM> generally serves to separate pyrolysis gas and a residue (char) among pyrolyzed products in the art. However, in the present invention, a hot filter filled with at beads and, optionally, additionally a neutralizing agent is applied for removal of impurities (Cl) as well as lightening, and therefore, as described above, operating conditions such as a temperature of the hot filter and a particle size of the neutralizing agent are adjusted to specific ranges.

The lightening process (P-<NUM>) may satisfy the following Relational Expressions <NUM> and <NUM>. <MAT><MAT>.

In Relational Expression <NUM>, A<NUM> represents a total amount (wt%) of naphtha (boiling point of <NUM> or lower) and kerosene (boiling point of <NUM> to <NUM>) of the pyrolysis gas, and A<NUM> represents a total amount (wt%) of naphtha (bp of <NUM> or lower) and kerosene (bp of <NUM> to <NUM>) of the pyrolysis oil, and in Relational Expression <NUM>, B<NUM> represents a content (ppm) of chlorine in the pyrolysis gas, and B<NUM> represents a content (ppm) of chlorine in the pyrolysis oil.

Specifically, Relational Expressions <NUM> and <NUM> may be <NUM> < (A<NUM>-A<NUM>)/A<NUM> (%) < <NUM>, <NUM> < (A<NUM>-A<NUM>)/A<NUM> (%) < <NUM>, or <NUM> < (A<NUM>-A<NUM>)/A<NUM> (%) < <NUM>, and -<NUM> < (B<NUM>-B<NUM>/B<NUM>) (%) < -<NUM>, -<NUM> < (B<NUM>-B<NUM>/B<NUM>) (%) < -<NUM>, or -<NUM> < (B<NUM>-B<NUM>/B<NUM>) (%) < -<NUM>, respectively.

Relational Expressions <NUM> and <NUM> numerically represent a degree of light and heavy of the waste plastic pyrolyzed product when the hot filter filled with beads and, optionally, additionally a neutralizing agent in agreement with the present invention is used. The technical effect of producing pyrolysis oil having a high proportion of light hydrocarbons by controlling the oil composition and the content of chlorine in the pyrolysis gas introduced into the hot filter and the organic/inorganic materials containing chlorine is observed.

The pyrolysis oil produced in the lightening process (P-<NUM>) may include, with respect to the total weight, <NUM> to <NUM> wt% of naphtha (bp of <NUM> or lower), <NUM> to <NUM> wt% of kerosene (bp of <NUM> to <NUM>), <NUM> to <NUM> wt% of light gas oil (LGO) (bp of <NUM> to <NUM>), and <NUM> to <NUM> wt% of UCO-<NUM>/AR (bp of <NUM> or higher), and specifically, may include <NUM> to <NUM> wt% of naphtha (bp of <NUM> or lower), <NUM> to <NUM> wt% of kerosene (bp of <NUM> to <NUM>), <NUM> to <NUM> wt% of light gas oil (LGO) (bp of <NUM> to <NUM>), and <NUM> to <NUM> wt% of UCO-<NUM>/AR (bp of <NUM> or higher) or <NUM> to <NUM> wt% of naphtha (bp of <NUM> or lower), <NUM> to <NUM> wt% of kerosene (bp of <NUM> to <NUM>), <NUM> to <NUM> wt% of light gas oil (LGO) (bp of <NUM> to <NUM>), and <NUM> to <NUM> wt% of UCO-<NUM>/AR (bp of <NUM> or higher). In addition, in the pyrolysis gas, a weight ratio of light oils (the sum of naphtha and kerosene) to heavy oils (the sum of LGO and UCO-<NUM>/AR) may be <NUM> to <NUM>, <NUM> to <NUM>, or <NUM> to <NUM>.

In the pyrolysis oil produced in the lightening process (P-<NUM>), a total content of chlorine may be less than <NUM> ppm, <NUM> ppm or less, <NUM> ppm or less, <NUM> to <NUM> ppm, or <NUM> to <NUM> ppm, with respect to the total weight, and a content of organic chlorine may be less than <NUM> ppm, <NUM> ppm or less, <NUM> ppm or less, <NUM> to <NUM> ppm, or <NUM> to <NUM> ppm, with respect to the total weight.

According to an embodiment, the pyrolysis process and the lightening process may satisfy the following Relational Expression <NUM>.

In Expression <NUM>, T<NUM> and T<NUM> are temperatures at which the pyrolysis process and the lightening process are performed.

In a case where the pyrolysis process and the lightening process are performed so that the T<NUM>/T<NUM> value satisfies <NUM> or less, the temperature of the pyrolysis process may be relatively high, or the temperature of the lightening process may be relatively low. In this case, a ratio of pyrolysis oil that is condensed in the hot filter and then circulated to the pyrolysis reactor increases, and thus, a final boiling point of the pyrolysis oil may be excessively low. On the other hand, the pyrolysis process and the lightening process are performed so that the T<NUM>/T<NUM> value satisfies <NUM> or more, a loss ratio of the pyrolysis oil in a gas phase may excessively increase, and thus, the pyrolysis oil yield may be reduced.

Specifically, T<NUM>/T<NUM> may be, for example, <NUM> to <NUM>, <NUM> to <NUM>, <NUM> to <NUM>, <NUM> to <NUM>, or <NUM>. Therefore, the effects described above may be further improved.

According to an embodiment, the method for producing refined hydrocarbons from waste plastics of the present invention may include a distillation process (P-<NUM>).

In an embodiment, the pyrolysis oil may be mixed with petroleum hydrocarbons and distilled into mixed oil.

The petroleum hydrocarbon refers to a mixture of naturally occurring hydrocarbons or a compound separated from the mixture. Specifically, the petroleum hydrocarbon may be at least one selected from the group consisting of crude oil and hydrocarbons derived from crude oil.

According to an embodiment, the distillation may be performed in at least one process selected from the group consisting of a crude distillation unit (CDU) and a vacuum distillation unit (VDU).

According to an embodiment, in the distillation process (P-<NUM>), refined hydrocarbons may be obtained in the form of naphtha at a boiling point of <NUM> or lower, kerosene at a boiling point of <NUM> to <NUM>, light gas oil (LGO) at a boiling point of <NUM> to <NUM>, and vacuum gas oil (VGO) at a boiling point of <NUM> or higher.

In an embodiment, the pyrolysis oil may be included in an amount of <NUM> wt% or less, <NUM> wt% or less, or <NUM> wt% or less, with respect to the total weight of the mixed oil.

In addition, the present invention relates to a system for producing refined hydrocarbons from waste plastics. A description of contents overlapped with those described in the method for producing refined hydrocarbons from waste plastics will be omitted.

More specifically, the system according to the invention for producing refined hydrocarbons from waste plastics includes: a pretreatment device configured for pretreating waste plastics; a pyrolysis reactor configured for receiving the waste plastics pretreated in the pretreatment device and for producing pyrolysis gas; a hot filter configured for receiving the pyrolysis gas and for producing pyrolysis oil; a connection pipe connecting the hot filter and the pyrolysis reactor so that a liquid condensed in the hot filter can be re-introduced into the pyrolysis reactor; and a distillation device configured for distilling the pyrolysis oil to obtain refined hydrocarbons.

The system may produce high-value-added pyrolysis oil having a high proportion of light hydrocarbons from waste plastics containing a large amount of impurities, and may produce refined hydrocarbons having a high proportion of light hydrocarbons therefrom. In addition, the system may improve a yield of the pyrolysis oil obtained from waste plastics.

According to the invention, the hot filter is filled with beads. When the hot filter is filled with beads, an inert effect and a heat transfer effect in the hot filter are maximized, which makes it possible to produce pyrolysis oil having a high proportion of light hydrocarbons. In addition, the pyrolysis oil yield may be improved.

According to an embodiment, the beads may include at least one selected from the group consisting of silica sand (SiO<NUM>) and aluminum oxide (Al<NUM>O<NUM>).

According to an embodiment, the system may further include at least two heaters <NUM> provided outside the hot filter <NUM>. In addition, the system may include at least three heaters <NUM> outside the hot filter <NUM>. When at least two heaters <NUM> are provided outside the hot filter <NUM>, a temperature gradient of the hot filter may be easily formed, and the temperatures at the top, middle, and bottom of the hot filter may be flexibly adjusted depending on operating conditions of the hot filter, such that a flexible process operation may be performed.

According to an embodiment, a method for producing refined hydrocarbons may comprises: pretreating a waste plastics feedstock by reacting the waste plastics feedstock with a neutralizing agent, and at least one of a copper compound, and a divalent metal oxide to produce a pretreated waste plastics mixture, producing pyrolysis gas by subjecting the pretreated waste plastics mixture to a pyrolysis reaction; separating low-boiling-point hydrocarbon compounds from the pyrolysis gas, producing a pyrolysis oil; and distilling the pyrolysis oil to obtain refined hydrocarbons.

Referring to <FIG>, a feedstock <NUM> was injected into a feedstock injection part <NUM> and screw-mixing was performed. The crushed waste plastics and additive(s) were introduced into an auger pretreatment reactor <NUM>, and then a pretreatment was performed. The pretreated waste plastics were introduced into pyrolysis reactor <NUM>, and pyrolysis was performed, thereby producing pyrolysis gas. The produced pyrolysis gas was introduced into a hot filter <NUM> and then lightened. And then the lightened pyrolysis gas was introduced into condenser <NUM> and pyrolysis oil was obtained in a pyrolysis oil recovery section <NUM>. A liquid condensed in the hot filter <NUM> was re-introduced into the pyrolysis reactor <NUM>.

Hereinafter, embodiments of the present invention will be further described with reference to specific experimental examples.

<NUM> wt% of PE, <NUM> wt% of PP, and <NUM> wt% of PVC were contained in industrial waste plastics used as a feedstock.

<NUM>,<NUM> of the industrial waste plastic feedstock was injected into a feedstock injection port and screw-mixing was performed. The crushed waste plastics and CaO were introduced into an auger reactor at <NUM>/hr and <NUM>/hr, respectively, and then a pretreatment was performed at a screw speed of <NUM> rpm, a nitrogen flow rate of <NUM> cc/min, <NUM>, and a residence time of <NUM> hr.

The pretreated waste plastics were introduced into a rotary kiln batch pyrolysis reactor, and pyrolysis was performed at a rotary kiln rotation speed of <NUM> rpm and <NUM>, thereby producing pyrolysis gas.

The produced pyrolysis gas was introduced into a <NUM> hot filter not filled with glass beads and then lightened, and then pyrolysis oil was obtained in a recovery section. A liquid condensed in the hot filter was re-introduced into the pyrolysis reactor.

The pyrolysis oil was introduced into a crude distillation unit (CDU) and then distilled, and refined hydrocarbons were obtained in the form of naphtha at a boiling point of <NUM> or lower, kerosene at a boiling point of <NUM> to <NUM>, light gas oil (LGO) at a boiling point of <NUM> to <NUM>, and vacuum gas oil (VGO) at a boiling point of <NUM> or higher. The pyrolysis oil yield is shown in Table <NUM>, and the weight ratio of the refined hydrocarbons is shown in Table <NUM>.

A process was performed in the same manner as that of Example <NUM>, except that a <NUM> hot filer was filled with glass beads having a diameter of <NUM> at <NUM> vol% with respect to the internal volume of the hot filter, and the top temperature, the middle temperature, and the bottom temperature of the hot filter were maintained at <NUM>.

A process was performed in the same manner as that of Example <NUM>, except that a <NUM> hot filter was filled with glass beads having a diameter of <NUM> at <NUM> vol% with respect to the internal volume of the hot filter, the top temperature of the hot filter was maintained at <NUM>, and the middle temperature and the bottom temperature of the hot filter were maintained at <NUM>.

A process was performed in the same manner as that of Example <NUM>, except that a <NUM> hot filter was filled with glass beads having a diameter of <NUM> at <NUM> vol% with respect to the internal volume of the hot filter, the top temperature of the hot filter was maintained at <NUM>, the middle temperature of the hot filter was maintained at <NUM>, and the bottom temperature of the hot filter was maintained at <NUM>.

A process was performed in the same manner as that of Example <NUM>, except that mixed oil obtained by mixing the pyrolysis oil and crude oil at a weight ratio of <NUM>:<NUM> was introduced into a crude distillation unit (CDU).

A process was performed in the same manner as that of Comparative Example <NUM>, except that the liquid condensed in the hot filter was not re-introduced into the pyrolysis reactor.

The composition of the waste plastic feedstock was analyzed using Flake analyzer available from RTT System GmbH, Germany, among NIR analyzers.

GC-Simdis analysis (HT <NUM>) was performed to confirm the composition of pyrolyzed products related to pyrolysis oil yield measurement.

In order to analyze impurities such as Cl, S, N, and O, ICP, TNS, EA-O, and XRF analysis were performed. The total content of Cl was measured according to ASTM D5808, the content of N was measured according to ASTM D4629, and the content of S was measured according to ASTM D5453.

In Comparative Example <NUM> in which the hot filter was not filled with beads and the liquid condensed in the hot filter was not re-introduced into the pyrolysis reactor, it was confirmed that the pyrolysis oil yield and the proportion of light oil including naphtha and kerosene were the lowest.

In the case of Comparative Example <NUM> in which the liquid condensed in the hot filter was re-introduced into the pyrolysis reactor, it was confirmed that an excellent pyrolysis oil yield and an excellent proportion of light hydrocarbons including naphtha and kerosene were achieved compared to Comparative Example <NUM>.

In Example <NUM> in which the liquid condensed in the hot filter was re-introduced into the pyrolysis reactor and the hot filter was filled with beads, it was confirmed that the pyrolysis oil yield and the proportion of light hydrocarbons including naphtha and kerosene were superior to those in Comparative Example <NUM>.

In Examples <NUM> and <NUM> in which the liquid condensed in the hot filter was re-introduced into the pyrolysis reactor, the hot filter was filled with beads, and a temperature gradient was formed in the hot filter, the pyrolysis oil yield and the proportion of light hydrocarbons including naphtha and kerosene were superior to those in Comparative Example <NUM> and Example <NUM>.

In particular, in Example <NUM> in which the top temperature, the middle temperature, and the bottom of the hot filter were maintained at <NUM>, <NUM>, and <NUM>, respectively, it was confirmed that the pyrolysis oil yield and the proportion of light hydrocarbons including naphtha and kerosene were the best.

As set forth above, the invention in an embodiment enables producing high-value-added pyrolysis oil having a high proportion of light hydrocarbons from waste plastics containing a large amount of impurities, and refined hydrocarbons having a high proportion of light hydrocarbons may be obtained therefrom.

A yield of the pyrolysis oil obtained from waste plastics may be improved.

High-value-added pyrolysis oil with reduced impurities may be produced from waste plastics containing a large amount of impurities, and refined hydrocarbons with reduced impurities may be obtained therefrom.

When refined hydrocarbons are produced from waste plastics, a process may be simplified.

High-value-added pyrolysis oil having a high proportion of light hydrocarbons that may be used as a feedstock for blending with existing petroleum products or an oil refining process due to its excellent quality may be produced, and refined hydrocarbons having a high proportion of light hydrocarbons may be obtained therefrom.

Claim 1:
A method for producing refined hydrocarbons from waste plastics, the method comprising:
a pretreatment process (P-<NUM>) of pretreating waste plastics;
a pyrolysis process (P-<NUM>) of producing pyrolysis gas by introducing the waste plastics pretreated in the pretreatment process (P-<NUM>) into a pyrolysis reactor (<NUM>);
a lightening process (P-<NUM>) of producing pyrolysis oil by introducing the pyrolysis gas into a hot filter (<NUM>); and
a distillation process (P-<NUM>) of distilling the pyrolysis oil to obtain refined hydrocarbons,
wherein a liquid condensed in the hot filter (<NUM>) is re-introduced into the pyrolysis reactor (<NUM>); and
wherein the hot filter (<NUM>) is filled with beads.