Process for hydrodepolymerization of plastic waste.
By using active hydride catalysts containing specific metals for hydrogenation and depolymerization of polymer waste, the problem of recycling a variety of polymer wastes in the prior art is solved, and a product that is difficult to produce high liquid content, low aroma and olefin components is achieved, and a high-efficiency and low energy consumption recovery process is achieved. The product is suitable for steam cracking to produce olefins.
Patent Information
- Application Number
- JP2023539084
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-01-21
- Filing Date
- 2022-01-20
- Publication Date
- 2025-05-07
- Estimated Expiration
- 2042-01-20
AI Technical Summary
Prior art products with high liquid content, low aromatic and olefin components are difficult to produce when recycling a variety of polymer waste, which limits their use in direct production of raw materials for steam cracking, especially olefins.
A catalyst containing active hydrogenated species is used, which consists of metals such as Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and inorganic support such as Al2O3, and is used in the hydrogenation and depolymerization of polymer waste materials.
Hydrogenation and depolymerization at lower temperatures and hydrogen pressures are achieved, the aromatic and olefin components in the product are low, and there is no or a small amount of coke generation. The product is efficient and has low energy consumption, and is suitable for direct use in steam cracking to produce olefins.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to a process for hydrodepolymerization of plastic waste in the presence of a hydrocracking catalyst comprising Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on at least one organic support selected from SiO2, Al2O3, AlPO4 and Al / Si mixed oxides, and a process for producing olefins using the product of the hydrodepolymerization process as a raw material. [Background technology]
[0002] Polymer products such as plastics are widely applied in human life, and waste plastic materials have caused serious pollution problems. Raw material recycling is one of the processes to manage waste plastic materials, and pyrolysis of plastic waste to convert it into chemical intermediates has become increasingly the focus of current research. Direct pyrolysis of waste plastic materials under inert atmosphere has been well demonstrated, but there are still many improvements to be made in terms of normal batch production, yield, quality of the obtained products and carbonization degree.
[0003] In their paper "Efficiency and ratio of waste tire pyrolysis products depends on reactor type - a review" published in the Journal of Analytical and Applied Pyrolysis 140 (2019), 25-53, WM Lewandowski et al. discussed the current use of different pyrolysis reactors, their construction, operating principles in terms of yields of the main products of waste tire pyrolysis recycling and provided an overview of the current technology.
[0004] To further optimize the management process of plastic waste, especially plastic waste, efforts have been made to improve the commonly adopted depolymerization processes in terms of yield and energy efficiency.
[0005] WO 2012 / 076890 A1 relates to a continuous process for recycling plastic materials, in particular waste plastic materials, into chemical raw materials and hydrocarbon fractions. The process for recycling said waste plastic materials comprises the steps of (i) continuously introducing the waste plastic materials as raw material into a reactor comprising at least one reaction chamber, (ii) optionally introducing the raw material and hydrogen gas into the dechlorination reaction chamber and heating the dechlorination reaction chamber to a high temperature T 1 And pressure P 1 (iii) introducing the feed from step (i), or the dechlorinated feed and hydrogen from step (ii) into a hydrogenation reaction chamber and maintaining the hydrogenation reaction chamber at a temperature T 2 , pressure P 2 and contacting the feedstock with the catalyst; (iv) recovering the hydrogenated feedstock from the hydrogenation reaction chamber; and (v) optionally reintroducing the unhydrogenated or partially hydrogenated feedstock from the hydrogenation reaction chamber into the hydrogenation reaction chamber. The catalyst used in the claimed process may be a zeolite catalyst comprising a sodium oxide content of 0.1% or less, and optionally comprising a transition metal. US 2019 / 0299490 A1 relates to a process for treating mixed plastics comprising simultaneous pyrolysis and dechlorination of the mixed plastics. The process comprises contacting the mixed plastics with a zeolite catalyst in a pyrolysis unit to produce a hydrocarbon product comprising a gaseous phase and a liquid phase, and separating the hydrocarbon product into a hydrocarbon gas stream and a hydrocarbon liquid stream. In a preferred embodiment, the hydrocarbon liquid stream is conveyed to a subsequent hydrotreating unit.
[0006] WO 2010 / 139997 A2 describes a method for producing a modified zeolite catalyst for use in recycling waste plastic materials, the method comprising the steps of: (i) obtaining a commercial zeolite Y catalyst having a Na2O content of 2.0-4.0%; (ii) optionally subjecting the zeolite to an ion-exchange process comprising mixing the zeolite with an ammonium salt solution at 50-85°C for 10-60 minutes; and (iii) subjecting the zeolite to an ion-exchange process comprising mixing the zeolite with an ammonium salt solution at 60-100°C for 60-240 minutes in step (i) or (iv) steam calcining the zeolite obtained in step (iii) at 450-800°C for 10-60 minutes, (v) subjecting the zeolite of step (iv) to an ion exchange process comprising mixing the zeolite of step (iv) with an ammonium salt solution at 50-95°C for 10-120 minutes, and (vi) optionally subjecting the zeolite of step (v) to an ion exchange process comprising mixing the zeolite of step (v) with a transition metal salt solution. This catalyst is useful for recycling waste plastic materials such as polyethylene, polypropylene, polystyrene, polyethylene terephthalate, polychloropropylene, nylon, polyvinyl chloride, polyacrylonitrile, polyurethane, etc.
[0007] US Patent No. 2018 / 0201847 A1 is related to a process for upgrading and feeding problematic feedstocks to produce transportation fuels. The process focuses on the upgrading of heavy crude oil and residues using waste plastics as hydrogen feed agents. To upgrade heavy crude oil and residues, the heavy crude oil and residues are mixed with waste plastics and fed into a reactor vessel, preheated at a temperature range of 130-220°C, and then further heated in the presence of hydrogen in the reactor at a temperature range of 350-450°C with stirring to carry out the hydrogenation reaction and separate the desired products. CN 103980938 A is a method for producing clean fuels from chlorinated plastic oils, in which the chlorinated plastic oils are passed through a catalytic distillation tower, a low-pressure liquid-phase hydrogenation tower, a water washing tower, a hydrotreating tower, and a distillation tower in this order. The catalyst used in the catalytic distillation tower is a molecular sieve such as zeolite supported on alumina. In the low pressure liquid phase hydrogenation tower, a supported metal catalyst is used as the hydrodechlorination catalyst.
[0008] U.S. Pat. No. 4,941,966 describes a process for hydroconversion of a mixture of oil and organic waste, the process comprising the steps of: i) preparing a hydrogenation mixture comprising one or more organic wastes including heavy oil, residual oil or mixtures thereof, or used oil, waste oil or mixtures thereof, and natural or synthetic organic compounds containing uncrosslinked or crosslinked carbon chains; (ii) contacting the hydrogenation mixture with an additive selected from high surface area solids including carbon, red mud, iron oxide, electrostatic filter dust and cyclone dust, where the additive comprises particles of two different particle size ranges; and (iii) hydrogenating the contacted mixture at a hydrogen partial pressure of 50 to 350 bar.
[0009] US Pat. No. 6,171,475 B1 relates to a process for converting polymers or oligomers derived from ethylenically unsaturated monomers into alkanes or hydrocarbon fractions or lower oligomer fractions by controlled hydrogenation, in which the polymers or oligomers are exposed to a catalyst based on a metal hydride or organometallic complex supported on a mineral support, the complex having at least one hydrocarbon ligand and optionally at least one hydride ligand, and the resulting mixture is reacted with hydrogen to cause catalytic hydrogenation of the polymers or oligomers.
[0010] WO 2013 / 169462 A1 describes a hydrocarbon upgrading process, which comprises the steps of (a) treating a hydrocarbon feedstock under suitable conditions in at least one of a steam cracker, a catalytic cracker, a coker, a hydrocracker, and a reformer to produce a first stream comprising olefinic and aromatic hydrocarbons; and (b) isolating C4-C6 hydrocarbons from the first stream. 12 recovering a second stream consisting primarily of olefins and aromatic hydrocarbons; (c) contacting at least a portion of the second stream with a catalyst under reaction conditions comprising a temperature of 450-700°C without the addition of hydrogen to dealkylate, transalkylate, crack and aromatize the components of the second stream to produce a third stream having an increased content of benzene and / or toluene compared to the second stream and a C3-olefin by-product; (d) recovering the C3-olefins from the third stream; and (e) separating a fourth stream comprising toluene from the third stream. The catalyst used in the upgrading process comprises zeolite Y.
[0011] WO 2018 / 055555 A1 relates to the production of a hydrocarbon stream from mixed plastics by a process including pyrolysis, hydrotreating, hydrodealkylation, and steam cracking, where monomeric aromatic hydrocarbons in the C6-C8 range and light gas olefins are the preferred products. The process includes using a catalyst, which may be a zeolite containing one or more metals, said zeolite preferably including ZSM-5, ZSM-11, Y, high silica Y, USY, or combinations thereof.
[0012] US 2018 / 0002609 A1 discloses a method for reducing chlorine in pyrolysis products from a mixed plastic stream, the method comprising: (a) pyrolyzing a plastic feedstock, at least a portion of which comprises chlorinated plastics, to produce a first stream comprising C1-C4 gaseous hydrocarbons and light gaseous olefins and a second stream comprising hydrocarbons having 5 or more carbon atoms; (b) feeding the second stream and hydrogen gas to a hydrocracker to produce a third stream comprising C1-C4 gaseous hydrocarbon gas and a fourth stream comprising hydrocarbons having 5 or more carbon atoms; and (c) feeding the fourth stream (i) to a steam cracker to produce a fifth stream comprising C1-C4 gaseous hydrocarbons and light gaseous olefins, a sixth stream comprising C5-C8 hydrocarbons, and a seventh stream comprising hydrocarbons having 8 or more carbon atoms, or (ii) to a fluidized catalytic cracker to produce an eighth stream comprising C1-C4 gaseous hydrocarbons and light gaseous olefins and a ninth stream comprising hydrocarbons having 5 or more carbon atoms.
[0013] Although some improvements have been made in processes for recycling plastic waste, there is a need for an effective process that allows for the recycling of many different polymer waste feedstocks and produces product streams with high liquid content and low aromatic and olefinic content that can be used directly for steam cracker feedstock, especially for the production of olefins.
[0014] Therefore, there is a need to provide a hydrodepolymerization process that produces a product that can be fed directly to a steam cracker for further processing, such as the production of olefins. Surprisingly, it has been found that the above need can be met by carrying out the process in the presence of a catalyst that includes an active hydrogenating species supported on an inorganic oxide. Summary of the Invention
[0015] In general, the present disclosure provides a process for hydrodepolymerizing plastic waste, the process comprising: i) providing a raw material of plastic waste; ii) mixing a raw material of plastic waste with a hydrocracking catalyst comprising a hydrogenation component comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support and a depolymerization component which is preferably an acid compound selected from the group of Al2O3, aluminosilicates, silica and zeolites, in particular zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L and mixtures thereof, especially zeolite Y and zeolite beta, iii) depolymerizing the mixture in the presence of hydrogen gas in a reactor at a hydrogen pressure of 20-500 bar; iv) separating the reactor contents to obtain a liquid or liquefiable hydrodepolymerized product; v) optionally reintroducing into said reactor the hydrocracking catalyst and / or the hydrogen-rich gas fraction obtained in the separation step iv); vi) optionally collecting the gaseous fraction obtained in said separation step iv.
[0016] In some embodiments, the inorganic support of the hydrogenation component is a depolymerization component.
[0017] In some embodiments, the hydrocracking catalyst is a physical mixture of a hydrogenation catalyst comprising a hydrogenation component and a depolymerization catalyst comprising a depolymerization component.
[0018] In some embodiments, the pore volume of the inorganic support of the hydrogenation component is from 0.2 to 4 ml / g.
[0019] In some embodiments, the hydrocracking catalyst comprises 0.5 to 25 wt. % of active hydrogenating species, based on the total weight of the hydrocracking catalyst.
[0020] In some embodiments, the hydrocracking catalyst and the organic plastic waste feedstock are fed to the reactor in a catalyst to feed (C / F) ratio of 1:500 to 1:10.
[0021] In some embodiments, the hydrodepolymerization is carried out at a temperature of 200 to 550°C, particularly 300 to 450°C.
[0022] In some embodiments, the plastic waste is a plastic waste that consists of or comprises a plastic material selected from the group consisting of: polyethylene (PE), polypropylene (PP), polystyrene (PS), polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyamide (PA), polyurethane (PU), polyacrylonitrile (PAN), polybutene (PB), and mixtures thereof.
[0023] In some embodiments, the plastic waste has a total volatile content, the total content of volatiles in the plastic waste, measured as weight loss over 2 hours at 100°C and 200 mbar pressure, is less than 10% by weight, preferably less than 5% by weight, more preferably less than 2% by weight, in particular less than 1% by weight, based on the total weight of the plastic waste.
[0024] In some embodiments, the plastic waste is shredded plastic waste having a bulk density of 50-500 g / L, preferably 75-400 g / L, or the plastic waste is in pellet form having a bulk density of 300-700 g / L, the bulk density being measured according to DIN 53466.
[0025] In some embodiments, the polymer waste has a polyolefin content, in particular a polypropylene (PP) and / or polyethylene (PE) content, said polyolefin content being greater than 50% by weight, preferably greater than 60% by weight, more preferably greater than 70% by weight, especially greater than 80% by weight, in particular greater than 90% by weight.
[0026] In some embodiments, the total chlorine content of the plastic waste is less than 1.0 wt.%, preferably less than 0.5 wt.%, based on the total weight of the plastic waste.
[0027] In some embodiments, the olefinic compound content, expressed as a bromine number, of the obtained hydrodepolymerized product is less than 20, preferably less than 15, in particular less than or equal to 10, based on the total weight of said hydrodepolymerized product, and / or 1 The H-NMR spectrum shows less than 10 mol %, preferably less than 5 mol %, in particular not more than 3 mol % aromatic protons.
[0028] In some embodiments, the hydrogenation component of the hydrocracking catalyst comprises: (a) providing a precursor compound of at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof in the form of their respective salts; (b) dissolving the precursor compound in a polar solvent; (c) providing an inorganic support; (d) depositing the dissolved precursor compound on the inorganic support by incipient wetness impregnation to obtain a hydrogenation component precursor; (e) drying the hydrogenation component precursor obtained in step d); (f) treating the dried hydrogenation component precursor at a temperature between 200° C. and 850° C.; (g) cooling the product of step f) to obtain the hydrogenation component of said hydrocracking catalyst.
[0029] Another aspect of the present disclosure is the use of the hydrodepolymerized product obtained by the process of the present disclosure as a feedstock for a steam cracker.
[0030] Another aspect of the present disclosure is the use of a hydrocracking catalyst comprising a hydrogenation component comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support, and a depolymerization component which is an acidic compound for hydrodepolymerizing organic waste.
[0031] In some embodiments, the hydrogenation component of the hydrocracking catalyst is used in combination with a depolymerization catalyst comprising a depolymerization component, the depolymerization component being selected from the group consisting of acidic compounds, preferably AlO, aluminosilicates, silica and zeolites, in particular zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L and mixtures thereof, especially zeolite Y and zeolite beta.
[0032] Another aspect of the present disclosure is a process for producing olefins, comprising: (i) providing a raw material of plastic waste; ii) mixing a hydrocracking catalyst, which comprises a hydrogenation component comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support, and a depolymerization component which is an acidic compound, with the raw material of the plastic waste; iii) introducing said mixture into a reactor and treating with hydrogen gas; iv) separating the reactor contents to obtain a liquid or liquefiable hydrodepolymerized product; v) optionally collecting the gaseous fraction obtained in the separation step iv); and vi) introducing the hydrodepolymerized product into a steam cracker to form a product comprising olefins. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033] In a first embodiment of the present disclosure, a process for hydrodepolymerization of plastic waste is provided, the process comprising: i) providing a raw material of plastic waste; ii) mixing a raw material of plastic waste with a hydrocracking catalyst comprising a hydrogenation component comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support and a depolymerization component which is preferably an acid compound selected from the group of Al2O3, aluminosilicates, silica and zeolites, in particular zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L and mixtures thereof, especially zeolite Y and zeolite beta, iii) depolymerizing the mixture in the presence of hydrogen; iv) optionally collecting gaseous reaction products; v) optionally separating the reactor contents to obtain the desired hydrodepolymerized product; vi) optionally reintroducing the hydrocracking catalyst and / or reactor gases into the reactor.
[0034] Surprisingly, carrying out the hydrodepolymerization in the presence of the particular hydrocracking catalysts of the present disclosure makes it possible to carry out the hydrodepolymerization at lower temperatures and lower hydrogen pressures than previously described in the literature.
[0035] The hydrodepolymerization process of the present disclosure is characterized by the low production of gaseous reaction products, the low content of aromatic compounds and olefinic compounds in the obtained hydrodepolymerization product, and the low production of coke in the reactor for carrying out the hydrodepolymerization process. In addition, side reactions to polyaromatic hydrocarbons (e.g., asphaltene), dioxins, and char are also greatly suppressed. Therefore, the obtained hydrodepolymerization product can be directly fed to a steam cracker for further processing without the need for further purification or pretreatment, so that the process of the present disclosure has high time and energy efficiency. Raw materials for plastic waste
[0036] Conventional hydrodepolymerization processes are usually limited to certain wastes, and in most cases, these wastes require pretreatment before being introduced into the recycling process. On the other hand, the hydrodepolymerization process of the present disclosure has been found to be suitable for recycling various plastic waste materials, such as plastic waste and cracked oil tailings. The raw material of the plastic waste material used in the process of the present disclosure can include substantially all polymeric materials, especially those formed from synthetic polymers. Non-limiting examples include polyolefins such as polyethylene, polypropylene, polystyrene, polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyamide, polycarbonate, polyurethane, polyester, natural and synthetic rubber, tires, filled polymers, composites and plastic alloys, plastics dissolved in solvents, and the like. In the course of developing the process of the present disclosure for plastic waste materials, it was surprisingly found that other hydrocarbon materials can also be used as raw materials for the plastic waste material. These hydrocarbons can include biomass, and the like. Thus, although the present specification is primarily directed to the hydrodepolymerization of plastic feedstocks, it should be understood that the process of the present disclosure is applicable to and includes the use of other hydrocarbons. Where light gas olefins are to be produced, polyolefin-based or polyolefin-rich plastic feedstocks are preferred. An unlimited number of mixtures of different plastic and hydrocarbon materials may be used.
[0037] The plastic waste raw material of the present disclosure can consist of one type of plastic waste or can be a mixture of two or more different polymer waste materials. The plastic waste raw material can be provided in a variety of different forms. In small scale operations, the plastic waste raw material can be in the form of a powder. In large scale operations, the plastic waste raw material can be in the form of pellets having a particle size of 1-20 mm, preferably 2-10 mm, more preferably 2-8 mm, or in the form of flakes and / or film pieces, preferably of particles of 1-20 mm. In the context of the present disclosure, having a particle size within a specified range means that 90% by weight of the particles have a diameter within the specified range. The particle size can be determined by sieving or using a Beckman Coulters LS13320 laser diffraction particle size analyzer. The plastic waste raw material can be ethylene cracking residue (ECR). According to the present disclosure, a polymeric material is a material having a weight average molecular weight of at least 500 g / mol, preferably from 500 g / mol to 20 000 000 g / mol, more preferably from 1 000 g / mol to 15 000 000 g / mol, especially from 2 000 g / mol to 10 000 000 g / mol.
[0038] The amount of plastic waste in the plastic waste feedstock used in the process of the present disclosure is preferably 50-99 wt%, more preferably 60-97 wt%, most preferably 70-95 wt%, especially 75-97 wt%.
[0039] Plastic scrap is composed primarily of plastic material and is often named after the polymer type that forms the main component of the plastic scrap. Preferably, the plastic scrap used as a feedstock in the process of the present disclosure contains more than 25% by weight of the total weight of the polymeric material, preferably more than 40% by weight, more preferably more than 50% by weight. Other components in the plastic scrap are additives such as, for example, fillers, reinforcing agents, processing aids, plasticizers, pigments, light stabilizers, lubricants, impact modifiers, antistatic agents, inks, antioxidants, etc.
[0040] The plastic waste materials used in the process of the present disclosure preferably include polyolefins and polystyrenes, such as high density polyethylene (HDPE), low density polyethylene (LDPE), ethylene-propylene-diene monomer (EPDM), polypropylene (PP) and polystyrene (PS). In particular, plastic waste materials including mixtures of polyolefins and polystyrene are preferred.
[0041] Other plastic waste materials such as polyvinyl chloride, polyvinylidene chloride, polyethylene terephthalate, polyurethane (PU), acrylonitrile-butadiene-styrene (ABS), nylon and fluorinated polymers can also be used in the process of the present disclosure. When present in the plastic waste material, these polymers are preferably present in an amount of less than 50% by weight, preferably less than 30% by weight, more preferably less than 20% by weight, and even more preferably less than 10% by weight, based on the total weight of the dry weight of the raw materials of the plastic waste material.
[0042] Preferably, the plastic waste comprises one or more thermoplastic polymers and is substantially free of thermosetting polymers, where substantially free in this context means that the content of thermosetting polymers is less than 15% by weight, preferably less than 10% by weight, more preferably less than 5% by weight, based on the raw material of the plastic waste.
[0043] The plastic waste material used in the process of the present disclosure is preferably selected from the group consisting of single plastic waste, standard or non-standard single virgin plastic, mixed plastic waste, rubber waste, decomposition oil residue, biomass or mixtures thereof. Single plastic waste, non-standard single virgin plastic, mixed plastic waste, rubber waste or mixtures thereof are preferred. In particular, non-standard single virgin plastic, mixed plastic waste or mixtures thereof are preferred.
[0044] Surprisingly, the process of the present disclosure can achieve good results even in the presence of limited amounts of non-pyrolyzable components as contaminants of the plastic waste, such as water, glass, stone, metal, etc. "Limited amount" preferably refers to an amount less than 50% by weight, preferably less than 20% by weight, more preferably less than 10% by weight, based on the total weight of the dry plastic waste raw material.
[0045] The plastic waste may optionally be extruded prior to use as a feedstock in the disclosed process. In a preferred embodiment, the plastic waste is pelletized and the pellets are used as a feedstock in the disclosed process. In another preferred embodiment, the plastic waste is fed to the reactor in a molten state, for example at a temperature of 200° C. to 300° C.
[0046] The plastic waste used as a raw material in the process of the present disclosure is preferably further characterized by at least one of the following features: i) a total volatile matter (TV) content, measured as weight loss over 2 hours at 100° C. and 200 mbar pressure, of less than 10% by weight, preferably less than 5% by weight, more preferably less than 2% by weight, in particular less than 1% by weight, based on the total weight of the raw material of the plastic waste; ii) The plastic waste is shredded, optionally compressed, plastic waste with a bulk density between 50 g / l and 500 g / l, preferably between 75 g / l and 400 g / l, or plastic waste in pellet form with a bulk density between 300 g / l and 700 g / l, said bulk density being measured according to DIN 53466. iii) the content of polyolefins in the plastic waste, in particular the content of polypropylene (PP) and / or polyethylene (PE), is more than 50% by weight, preferably more than 60% by weight, more preferably more than 70% by weight, in particular more than 80% by weight, in particular more than 90% by weight, based on the total weight of the raw material of the plastic waste; iv) The amount of polar polymer contaminants in the plastic waste is less than 10% by weight, preferably less than 5% by weight, more preferably less than 3% by weight, based on the total weight of the plastic waste. v) The amount of cellulose, wood and / or paper in the plastic waste is less than 10% by weight, preferably less than 5% by weight, more preferably less than 3% by weight, based on the total weight of the plastic waste. vi) The total chlorine content is less than 1.0% by weight, preferably less than 0.5% by weight, more preferably less than 0.1% by weight, based on the total weight of the plastic waste. vii) The total ash content of the plastic waste raw material, determined as the residue after heating the polymer waste at 800°C in air for 120 hours, is less than 10% by weight, preferably less than 5% by weight, more preferably less than 2% by weight, most preferably less than 1% by weight. In another preferred embodiment, the ash content is between 0.01 and 2% by weight, preferably between 0.02 and 1.5% by weight, more preferably between 0.05 and 1.0% by weight.
[0047] In a preferred embodiment of the present disclosure, the plastic waste used as a raw material in the process of the present disclosure is defined by upper limits of trace components, constituents or impurities expressed as weight percentages. It is preferred that the lower limit of the amount of these components, constituents or impurities in the plastic waste is below the detection limit, or that the lower limit is 0.001% by weight, or 0.01% by weight, or 0.1% by weight.
[0048] Many techniques are known for separating materials in plastic waste streams. Moving beds, drums, screens and air separators are used to identify materials according to size, weight and density. Advanced sorting of plastic waste by spectroscopy techniques (MIR, NIR [near infrared]), X-ray or fluorescence spectroscopy can provide high quality polyolefin-containing plastic waste streams.
[0049] Automated separation technologies for waste plastics include dry sorting technology, electrostatic sorting technology, mechanical sorting methods (including centrifugal force, specific gravity, elasticity, particle shape, selective crushing and mechanical properties), wet sorting processes (such as float-sink sorting) and chemical sorting methods.
[0050] Suitable raw materials for the process of the present disclosure can be obtained by applying any known sorting technique, such as those summarized in, for example, B. Ruj et al.: Plastic waste sorting for effective recycling, Int. J. Applied Sci Eng Res 4, 2015, 564-571. Hydrocracking Catalyst
[0051] The process is carried out in the presence of a hydrocracking catalyst comprising, as active hydrogenating species, a hydrogenation component comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support. Although catalysts of this type are known for their activity in polymerization reactions, it has surprisingly been found that they can also be successfully used in hydrocracking reactions to produce hydrocracking products with low aromatic and olefinic content that can be used directly as feed for steam cracking. Preferably, the active hydrogenating species is a mixture selected from the group consisting of Fe / Mo, Fe / W, Ni / Mo, Ni / W, Cr / Mo, Ni / V, Ni / Co and Cr / W.
[0052] The support carrying at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof may be any inorganic support. The support is preferably selected from the group consisting of SiO2, Al2O3, AlPO4 and Al / Si mixed oxides. Particularly preferred Al / Si mixed oxides in the present disclosure are materials that include a mixture of Al2O3 and SiO2 and have a neutral structure.
[0053] The hydrocracking catalyst of the present disclosure further comprises a depolymerization component selected from the group consisting of an acid compound, preferably Al2O3, an aluminosilicate, silica and a zeolite. The zeolite in the present disclosure has the general structure Mn +x / n[AlO2] - xSiO2)y] + Corner-coupling SiO4 with zH2O - , and AlO4-tetrahedra, where n is the charge of the cation M, generally an alkali metal or alkaline earth metal or a hydrogen ion, preferably H + , Na + , Ca 2+ , K + and Mg 2+ where z defines the number of water molecules bound in the crystal structure. The difference between zeolites and mixed Al / Si oxides is their determined pore structure and ionic properties. Zeolites are known catalysts, especially in fluid catalytic cracking (FCC) and hydrocracking (HC). In a particularly preferred embodiment, the zeolite used as the depolymerization component is selected from the group consisting of zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L, and mixtures thereof, especially zeolite Y and zeolite beta. The listed zeolites are well known and available. In particular, zeolites in which the metal ion M is replaced by hydrogen are preferred. Other specific examples of suitable zeolite-type components for use in the present disclosure include, but are not limited to, ZSM-5, ZSM-11, ZSM-22, ZSM-23, ZSM-35, ZSM-48, ZSM-50, TS-1, TS-2, SSZ-46, MCM-22, MCM-49, FU-9, PSH-3, ITQ-1, EU-1, NU-10, silicalite-1, silicalite-2, boralite-C, boralite-D, BCA, and mixtures thereof. Alternatively or additionally, the depolymerization component can include an amorphous compound, which can include, for example, silica, alumina, kaolin, clay, or any mixture thereof. Sand-type silica in particular is well known for FCC catalyst applications.
[0054] In preferred embodiments of the present disclosure, the inorganic support of the hydrogenation component of the hydrocracking catalyst is the depolymerization component of the hydrocracking catalyst. In these embodiments, at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures is supported on the depolymerization component which functions as the support.
[0055] In a particularly preferred embodiment, the inorganic support of the hydrogenation component is an Al / Si mixed oxide. The composition of the Al / Si mixed oxide used as the support can be adjusted as necessary. However, particularly advantageous hydrodepolymerization results are obtained when the support contains specific amounts of Al2O3 and SiO2. Thus, in a preferred embodiment, the support contains 20-99% by weight, preferably 30-80% by weight, and in particular 40-70% by weight, of Al2O3 relative to the total weight of the support. Furthermore, it is preferred that the support contains 1-80% by weight, preferably 20-70% by weight, and in particular 30-60% by weight, of SiO2 relative to the total weight of the support.
[0056] Surprisingly, it was possible to further improve the results of the hydrodepolymerization process if the inorganic support contains a slight excess of Al2O3. Thus, in a preferred embodiment, the support contains excess Al2O3. More preferably, the weight ratio of Al2O3 to SiO2 in the support is 99:1 to 30:70, preferably 9:1 to 3:2, in particular 4:1 to 3:2.
[0057] The content of SiO2 and Al2O3 in the inorganic support can be measured using inductively coupled plasma atomic emission spectroscopy (ICP-AES).
[0058] Surprisingly, it has been found that the drawbacks commonly seen when using particulate carriers can be avoided if the average particle size of the inorganic carrier is kept within a certain range. Thus, preferred embodiments are those in which the average particle size D50 of the carrier is 5-300 μm, preferably 5-100 μm, more preferably 10-80 μm, particularly 10-50 μm, and especially 15-40 μm. The carrier may have a particle size D50 of 20-50 μm. The volume median diameter D50 refers to the fraction of particles having a diameter smaller or larger than this value of 50%, and can be determined according to Coulter Counter analysis according to ASTM D4438. In particularly preferred embodiments, at least 5% by volume of the inorganic carrier particles have a particle size in the range of 0.1-3 μm, and / or at least 40% by volume have a particle size in the range of 0.1-12 μm, and / or at least 75% by volume have a particle size in the range of 0.1-35 μm, the volume percentage being based on the total volume of the particles.
[0059] In a more preferred embodiment, an inorganic support having an average pore size determined by the BET method of 1 to 100 nm, preferably 2 to 80 nm, and more preferably 5 to 60 nm is used.
[0060] Pore size as used in this disclosure generally refers to the distance between two opposing walls of the pore, i.e., the diameter of the pore in the case of cylindrical pores and the width of the pore in the case of slip-shaped pores.
[0061] The method of BET is known to those skilled in the art and is described in S. Brunauer et al., Journal of the American Chemical Society, 60, 209-319, 1929.
[0062] The inorganic support of the hydrogenation component of the hydrocracking catalyst preferably has a pore volume of 0.2 to 4 ml / g, more preferably 0.5 to 3 ml / g, and particularly 0.6 to 2 ml / g or 0.8 to 2 ml / g.
[0063] In a more preferred embodiment, the moisture content of the inorganic support of the hydrogenation component, measured by Karl Fischer titration, is 0.2 to 10%, preferably 0.3 to 5%, based on the total content of the support.
[0064] The activity of a solid catalyst can be strongly influenced by its surface area. In the present disclosure, the inorganic support has a specific surface area of 5 to 800 m2 as measured by the BET method. 2 / g, more preferably 100 to 600m 2 / g, especially 150-500m 2 / g, especially 100-400m 2 It is preferred that the molecular weight is / g.
[0065] The hydrocracking catalyst used in the process of the present disclosure preferably comprises active hydrogenating species in an amount of 0.5-25 wt.%, preferably 1-20 wt.%, in particular 3-15 wt.%, based on the total weight of the hydrocracking catalyst. In a particularly preferred embodiment, the hydrocracking catalyst comprises a mixture of active hydrogenating species. In this case, the active hydrogenating species supported on the inorganic support is preferably a mixture selected from Fe / Mo, Fe / W, Ni / Mo, Ni / W, Cr / Mo, Ni / V, Ni / Co, Cr / W.
[0066] The hydrocracking catalyst may further comprise a dopant material to alter the catalytic performance of the hydrocracking catalyst. The dopant material is preferably selected from the group consisting of ammonium salts, fluorides and nitrogen, the ammonium salts are preferably selected from NH4X (X=F, Cl, Br), NH4HF2, (NH4)2SiF6, (NH4)2SbF6, (NH4)2TiF6, (NH4)PF6, (NH4)2SiF6, (NH4)2ZrF6, NH4BF4, NH4F, (NH4)2TaF7, NH4NbF4, (NH4)2GeF6, (NH4)2SmF6, (NH4)2TiF6, (NH4)2ZrF6 and the fluorides are preferably selected from MoF6, ReF6, GaF3, SO2ClF, F2, SiF4, SF6, ClF3, ClF5, BrF5, IF7, NF3, HF, BF3, NHF2.
[0067] Surprisingly, it has been found that the yield of the hydrodepolymerization process as well as the liquid content of the product can be further improved by using a hydrocracking catalyst that is a physical mixture of a hydrogenation catalyst comprising a hydrogenation component and a depolymerization catalyst comprising a depolymerization component. In such an embodiment, the inorganic support of the hydrogenation component is not a depolymerization component according to the present disclosure, but rather particles of the hydrogenation catalyst are physically mixed with particles of the depolymerization catalyst. In a preferred embodiment, the depolymerization catalyst is an acidic compound selected from the group consisting of Al2O3, aluminosilicates, silica and zeolites. In a particularly preferred embodiment, the zeolite used as the depolymerization catalyst is selected from the group consisting of zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L, and mixtures thereof, in particular zeolite Y and zeolite beta. The listed zeolites are well known and available. In particular, zeolites in which the metal ion M is replaced by hydrogen are preferred. Other specific examples of suitable zeolite-type catalysts for use in the present disclosure include, but are not limited to, ZSM-5, ZSM-11, ZSM-22, ZSM-23, ZSM-35, ZSM-48, ZSM-50, TS-1, TS-2, SSZ-46, MCM-22, MCM-49, FU-9, PSH-3, ITQ-1, EU-1, NU-10, silicalite-1, silicalite-2, boralite-C, boralite-D, BCA, and mixtures thereof. Alternatively or additionally, the depolymerization catalyst can include an amorphous compound, which can include, for example, silica, alumina, kaolin, or any mixture thereof. Sand-type silica in particular is well known for FCC catalyst applications.
[0068] The weight ratio of the hydrogenation catalyst to the depolymerization catalyst in the physical mixture can be varied depending on the composition of the plastic waste and can be adjusted to obtain an optimal target product composition. In a preferred embodiment, the weight ratio of the hydrogenation catalyst to the depolymerization catalyst is 100:1 to 1:10, preferably 10:1 to 1:5, more preferably 5:1 to 1:3, and especially 1:1 to 3:1.
[0069] The hydrocracking catalyst used in the disclosed process allows for the hydrocracking of plastic waste in high yields, especially plastic waste with low content of aromatics and olefinic compounds in the hydrocracking product. Apart from its remarkable catalytic activity, the hydrocracking catalyst is easily available using common materials and reactions.
[0070] Effective hydrogenation also significantly reduces the content of organic heteroatoms in the hydrocarbons by producing hydrogenation products such as H2O, H2S, alcohols, amines, and NH3, which can be easily separated from the gaseous hydrocarbon products, for example, by a caustic scrubber unit.
[0071] Thus, in a more preferred embodiment, the hydrogenation component of the hydrocracking catalyst is obtained by a process comprising the following steps: a) providing at least one precursor compound of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof in the form of their respective salts; b) The precursor compound is dissolved in a polar solvent, for example a protic solvent such as an alcohol, or most preferably water. c) Providing an inorganic support selected from the group consisting of SiO2, Al2O3, AlPO4 and Al / Si mixed oxides. d) Depositing the dissolved precursor compound on an inorganic support by incipient wetness impregnation to obtain a hydrogenation component precursor. e) drying the hydrogenation component precursor obtained in step d). f) Treating the dried hydrogenation component precursor at a temperature of 200-850°C. g) cooling the product of step f) to obtain the hydrogenation component of the hydrocracking catalyst.
[0072] The process of producing the hydrogenation component of the hydrocracking catalyst is easy to carry out because it uses common compounds. In a preferred embodiment, the precursor compound is selected from the group consisting of inorganic or organic metal salts, including but not limited to oxides, hydroxides, carbonates, nitrates, nitrites, chlorides, bromides, iodides, sulfites, sulfates, acetylpyruvates, citrates, formates, acetates, tetrafluoroborates, hexafluorosilicates, hexafluoroaluminates, hexafluorophosphates, phosphates, phosphites, oxalates, gluconates, malonates, and mixtures thereof. As non-limiting examples, salts of the corresponding heteropolyacids of W, Mo, and V, such as metatungstates, metamolybdates, and metavanadates, can also be used as metal precursor compounds.
[0073] The dried hydrogenation component precursor obtained in step e) of the process of the present disclosure is preferably calcined.Thus, the process preferably further comprises a step of calcining the dried hydrogenation component precursor at high temperature, preferably in an atmosphere of a flow of gas selected from the group consisting of air, oxygen, nitrogen and argon, or a series of different gases among these gases.
[0074] The process for producing the hydrogenation component can be carried out under intermediate conditions. In a preferred embodiment, the treatment in step f) according to the process of the present disclosure is carried out at a temperature between 200 and 850°C, preferably between 230 and 550°C, more preferably between 400 and 700°C, especially between 250 and 600°C. Preferably, nitrogen gas, oxygen gas, argon gas or air is used as a purge gas during calcination / activation, most preferably in the following order: (i) heating under nitrogen gas or argon gas, (ii) calcination in air or oxygen, and (iii) cooling under nitrogen gas or argon gas. In a preferred embodiment, a reducing gas such as hydrogen, carbon monoxide, H2, ethylene, etc. is used during step f) of the process of the present disclosure. Surprisingly, it has been found that this gas can be used to enhance the activity, selectivity and robustness of the hydrogenation component of the present disclosure. Step f) of the process of the present disclosure is preferably carried out in an oven, melting furnace, rotary kiln or fluidized bed activator.
[0075] In a further preferred embodiment, the process for producing a hydrocracking catalyst further comprises a step of mixing a hydrogenation component as a hydrocracking catalyst and a depolymerization component as a depolymerization catalyst, the depolymerization component being preferably an acidic compound as described above, in particular one selected from Al2O3, aluminosilicates, silica and zeolites, in particular one selected from zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L and mixtures thereof, in particular one selected from zeolite Y and zeolite beta.
[0076] The hydrocracking catalyst and the plastic waste feedstock are mixed in step ii) of the process of the present disclosure. Mixing may be performed before introduction into the reactor, or the hydrocracking catalyst and the plastic waste feedstock may be fed separately to the reactor. The weight ratio of the hydrocracking catalyst to the plastic waste feedstock may vary and may depend on the particular system and process conditions used. In general, the plastic waste feedstock may be converted using very low or very high hydrocracking catalyst to feedstock (C / F) ratios. The catalyst to feedstock (C / F) ratio should be understood to be the weight ratio of the amount of the plastic waste feedstock fed to the reactor to the amount of the hydrocracking catalyst fed to the reactor. When the C / F ratio is low, a longer contact time may be required, and when the C / F ratio is high, a shorter contact time may be required. Preferably, the hydrocracking catalyst and the organic plastic waste feedstock are fed to the reactor at a C / F ratio of 1:500 to 1:10, in particular a C / F ratio of 1:100 to 1:15. In a preferred embodiment, the hydrocracking catalyst and the plastic waste feedstock are homogeneously mixed in liquid hydrocarbons before feeding the hydrocracking catalyst and the polymer waste feedstock into the hydrodepolymerization reactor.
[0077] In a preferred embodiment of the present disclosure, the plastic waste is preheated to 200-300°C, for example by an extruder, and then mixed with a hydrocracking catalyst in a vessel in a hydrocarbon stream before being fed to a reactor where hydrocracking polymerization takes place.
[0078] The hydrodepolymerization in step iii) of the process of the present disclosure may be carried out continuously or discontinuously. It is preferred that step iii) is carried out continuously. Preferably, the hydrocracking is carried out in a hydrocracking reactor system capable of handling pressures up to 500 bar and temperatures up to 600° C. Suitable high pressure reactor systems to handle such conditions are, for example, reactor systems for hydrocracking or hydrotreating processes in oil refineries or coal liquefaction processes such as the Bergius process. Suitable high pressure reactor systems for carrying out step iii) include one or more connected vessels with or without agitators.
[0079] In a preferred embodiment, the hydrodepolymerization in step iii) is carried out at a temperature of 200 to 600° C., preferably 200 to 550° C., more preferably 270 to 550° C., in particular 300 to 450° C.
[0080] The hydrodepolymerization of the mixture of the plastic waste and the hydrocracking catalyst is carried out at a hydrogen pressure of 20 to 500 bar (2 MPa to 50 MPa), preferably 30 to 400 bar (3 to 40 MPa), in particular 100 to 350 bar (10 to 35 MPa). If the hydrodepolymerization is carried out discontinuously, it is preferred to carry out the hydrodepolymerization of the mixture of the plastic waste and the hydrocracking catalyst at an initial hydrogen pressure of 20 to 500 bar (2 to 50 MPa), more preferably 30 to 400 bar (3 to 40 MPa), in particular 100 to 350 bar (10 to 35 MPa). If the hydrodepolymerization is carried out discontinuously, the initial hydrogen pressure should be understood as the hydrogen pressure in the reactor after feeding hydrogen at room temperature and before heating the reactor to the final reaction temperature. In another preferred embodiment, the hydrodepolymerization is carried out at a hydrogen pressure of 20 to 90 bar (2 MPa to 9 MPa).
[0081] In a preferred embodiment of the present disclosure, the hydrodepolymerization is carried out continuously and the reactor contents are continuously discharged from the reactor. The residence time is preferably set to ensure a high conversion rate of the plastic waste. It is possible to continuously discharge one stream of the reactor contents from the reactor. Preferably, both the liquid and gas phase streams are continuously discharged from the reactor. In this case, the first sub-step of the separation step iv) of the process of the present disclosure has already taken place in the reactor. Preferably, all streams discharged from the reactor have undergone further sub-steps of the separation step iv).
[0082] The separation is preferably carried out at least in part in a separation unit comprising a separation vessel and a fractionation unit in which the liquid hydrocracked polymerization product is collected. The separation unit may further comprise a cyclone for separating the gaseous hydrocracked polymerization crude product from other components.
[0083] Various separation techniques can be used to separate the reactor contents, i.e. the reaction product, obtained in step iii) of the process of the present disclosure into a liquid or liquefiable hydrodepolymerized product and various other fractions. Suitable separation techniques include condensation, distillation and filtration. Preferably, the liquid or liquefiable hydrodepolymerized product is obtained after separation of high boiling point hydrocarbons, char, catalyst residues and other solid contaminants by techniques such as distillation, decantation or filtration.
[0084] In a preferred embodiment of the present disclosure, the hydrocracking catalyst and / or the hydrogen-rich gas fraction obtained in the separation step iv) are reintroduced into the reactor.
[0085] Preferably, the liquid hydrocarbon stream separated from the discharge reactor contents, which may still contain solid residues and catalyst, is used to mix with the plastic waste and hydrocracking catalyst before being fed to the hydrodepolymerization reactor. Preferably, the liquid hydrocarbon stream contains solid residues and catalyst in a concentration of 20 wt.% or less.
[0086] Efficient recycling of plastic waste energy preferably includes the utilization of all recovered materials. Therefore, the process of the present disclosure preferably includes a step of collecting the gaseous fraction obtained in the separation step iv). In a preferred embodiment, the gaseous fraction separated from the reactor contents is condensed and thus separated from unwanted by-products such as CO, CO2, NH3, H2S and water. In this way, the gaseous fraction produced in the hydrodepolymerization of step iii) of the present disclosure can be used in other processes, for example to produce diene products comprising hydrogen and a C1-C4 hydrocarbon fraction. Hydrodepolymerization products
[0087] The combination of the disclosed hydrocracking catalyst with the disclosed process produces liquid or liquefiable hydrocracked products having surprisingly low aromatics contents, particularly polycyclic aromatics and asphaltenes, and thus the hydrodepolymerized products obtained by the disclosed process are characterized by low aromatic and olefinic content and high purity.
[0088] The liquid or liquefiable hydrodepolymerization product obtained by the process of the present disclosure can be separated by separation techniques such as distillation, preferably having a boiling point range of 30° C. to 650° C., more preferably 50° C. to 250° C. The hydrodepolymerization product can be separated into a light naphtha fraction mainly containing C5 and C6 hydrocarbons having a boiling point range of 30° C. to 130° C., a light naphtha fraction mainly containing C6 to C6 hydrocarbons having a boiling point range of 130° C. to 220° C. 12 Heavy naphtha fraction containing mainly hydrocarbons, C9 to C with boiling range of 220°C to 270°C 17 The hydrodepolymerization process of the disclosed product can be used to separate hydrocarbon fractions of different boiling ranges, such as a kerosene fraction containing mainly hydrocarbons, or other high boiling fractions, such as light oil, fuel oil or hydrowax. In a preferred embodiment, the heavy fraction of the hydrodepolymerization product obtained in the process according to the present disclosure is returned to an additional hydrodepolymerization step to produce a light hydrocarbon fraction, such as a light fraction feedstock used in the steam cracker. By selecting appropriate reactor conditions and catalysts, the composition of the hydrodepolymerization product can be varied as required. It is also preferred to use an aqueous wax fraction with a boiling range of 300°C to 550°C as the cracking feedstock in the hydrodepolymerization process of the disclosed product, since it requires a higher amount of hydrogen and a longer residence time in the reactor to produce a light distillate cracking feedstock. Since a high purity feedstock with a low amount of impurities is required for reliable and economical operation of the steam cracker, in a preferred embodiment, the hydrocracked product or a fraction of the hydrocracked product is mixed with other feedstocks before being used as a cracker feedstock or fuel.
[0089] Thus, in a preferred embodiment, the residual content of the hydrodepolymerization product upon evaporation does not exceed 5 ppm(w) as measured according to ASTM D381.
[0090] The hydrodepolymerized product obtained by the process of the present disclosure is characterized by low aromatic and olefinic content and high purity. In a preferred embodiment, the hydrodepolymerized product upon evaporation has a residual content of 5 ppm(w) or less as measured according to ASTM D381.
[0091] Preferably, the content of aromatic compounds in the resulting hydrodepolymerized product is less than 10 mol %, preferably less than 5 mol %, in particular less than 3 mol %, and the content of aromatic components is 1 Measured as the content in mole % of aromatic protons by H-NMR-spectroscopy
[0092] In addition, the hydrodepolymerized product obtained by the hydrodepolymerization process of the present disclosure is characterized by a low content of olefinic compounds. The content of olefinic compounds in the hydrodepolymerized product is preferably less than 5 mol%, more preferably less than 3 mol%, even more preferably less than 1.5 mol%, and particularly preferably less than 1 mol%, based on the total number of olefinic compounds. The content of olefinic compounds is 1 It is determined based on the content of olefinic protons as determined by H-NMR-spectroscopy.
[0093] Another measure of the double bond content in a given sample is the Bromine Number (BrNo), which indicates the degree of unsaturation. In a preferred embodiment, the hydrodepolymerized product obtained by the process of the present disclosure has a Bromine Number of less than 25, preferably 0.1 to 20, more preferably 0.2 to 15, even more preferably 0.3 to 10, and especially 0.5 to 5, measured according to ASTM D1159-01 as grams of bromine per 100 g of sample.
[0094] Char generation is often an issue in conventional processes, necessitating periodic decoking of reactors and other equipment such as heat coils. Surprisingly, the disclosed process produces little or no char. Thus, in a preferred embodiment, the hydrodepolymerized product obtained by the disclosed process has a char content of less than 5 wt.%, preferably less than 2 wt.%, based on the total weight of the product.
[0095] In a preferred embodiment of the present disclosure, the hydrodepolymerized product obtained by the hydrodepolymerization process of the present disclosure is defined by an upper limit of a minor component, constituent or impurity expressed in weight percentage. The lower limit of the amount of these components, constituents or impurities in the preferred hydrodepolymerized product is below the detection limit, preferably 0.001 wt.% or 0.01 wt.% or 0.1 wt.%, respectively.
[0096] The hydrodepolymerized product obtained by the process of the present disclosure is characterized by a low content of aromatic compounds and olefinic compounds. Therefore, the process of the present disclosure has high time and energy efficiency, since the obtained hydrodepolymerized product can be directly fed to a steam cracker for further processing without the need for further purification or pretreatment. Therefore, in another aspect, the present disclosure provides the use of the hydrocracked product of the hydrocracking process of the present disclosure as a feedstock in a steam cracker. Preferably, the hydrodepolymerized product is used as a feedstock for producing olefins.
[0097] In another aspect, the present disclosure relates to the use of a catalyst for hydrocracking of plastic waste, comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof, supported on an inorganic support selected from the group consisting of SiO2, Al2O3, AlPO4 and Al / Si mixed oxides. The support is in particular an Al / Si mixed oxide, and preferably contains 20-99 wt. %, preferably 30-80 wt. %, in particular 40-70 wt. % of Al2O3, based on the total weight of the support. Furthermore, the support preferably contains 1-80 wt. %, preferably 20-70 wt. %, in particular 30-60 wt. % of SiO2, based on the total weight of the support.
[0098] Preferred is an embodiment in which the weight ratio of Al2O3 to SiO2 in the mixed oxide is 99:1 to 30:70, preferably 9:1 to 3:2, and particularly 4:1 to 3:2.
[0099] The determination of the SiO2 and Al2O3 content in the mixed oxide can be carried out using inductively coupled plasma atomic emission spectroscopy (ICP-AES).
[0100] The active hydrogenation species contained in the hydrogenation component of the hydrocracking catalyst is preferably selected from the group consisting of Cr, Ni and Mo. In a particularly preferred embodiment of the present disclosure, the inorganic support of the hydrocracking catalyst is a mixed Al / Si oxide, AlO 3と The weight ratio of SiO2 is 4:1 to 3:2, and the active hydrogenation species supported on the mixed Al / Si oxide is selected from the group consisting of Cr, Ni, and Mo. The hydrodepolymerized product obtained by the process of the present disclosure can be directly used as a feedstock for producing new olefinic materials such as ethylene, propylene and / or butenes. Accordingly, the present disclosure relates to a process for producing olefins, the process comprising the steps of: i) Providing raw material for plastic waste. ii) Mixing a hydrocracking catalyst comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support selected from the group consisting of SiO2, Al2O3, AlPO4 and Al / Si mixed oxides with the raw plastic waste material. iii) The mixture of step ii) is introduced into a reactor and treated with hydrogen gas. iv) separating the reactor contents to obtain a liquid or liquefiable hydrodepolymerized product. v) Optionally, collecting the gaseous fraction obtained in the separation step iv). Vi) introducing the resulting hydrodepolymerized product into a steam cracker to produce products comprising olefins.
[0101] The hydrocracking catalyst, the raw material of the plastic waste, and the conditions for hydrodepolymerization are preferably the same as those described above.
[0102] By producing olefins such as ethylene, propylene and / or butene from plastic waste containing polyethylene, polypropylene and / or polybutene and using these olefins in the production of new polyethylene, polypropylene and / or polybutene, a full-scale polyolefin circulation system accompanied by chemical recycling of the extract can be established without deteriorating the properties of the new polyolefin produced.
[0103] The present disclosure will be further illustrated in detail by the following examples, which should not be construed as limiting the spirit of the present invention in any way. Analysis method
[0104] The following analytical methods are used: 1) Analyze liquids and gases using GC MS. 2) The reactor residue is decoked at 800°C and the char residue is then determined by mass balance. 3) The liquid content is characterized using simulated distillation (SimDist) analysis according to ASTM D 7213:2012. 4) The total content of unsaturated components in the liquid condensate is characterized by bromine number measurement using an 848 Titrino Plus (Metrohm AG, Herisau, Switzerland) equipped with a double PT-wire electrode integrated with a PT1000 temperature sensor and a 10 ml burette, according to ASTM D1159-01 described in Metrohm Application Bulletin 177 / 5e (December 2018). The bromine number (BrNo.) indicates the amount of bromine in grams absorbed by 100 g of sample. 5) 1 H-NMR analysis was performed by dissolving the liquid condensate samples in CDCl3 and characterizing the samples using proton NMR spectroscopy. Aromatic, olefinic and aliphatic protons were assigned according to the chemical shifts summarized in Table 1. [Table 1]
[0105] The olefinic proton types listed are assumed to correspond to the following structures: [ka]
[0106] The amount of aromatic, olefinic and aliphatic protons can be determined based on the specific peak integrals according to the following formula: Aromatic proton mole%=[(I1+I2) / (I1+I2+I3+I4+I5+I6+I7+I8+I9)]% Olefin proton type 1 mol% = [(I4+I7) / (I1+I2+I3+I4+I5+I6+I7+I8+I9)]% Olefin-based proton type 2 mol% = [(I3+I5) / (I1+I2+I3+I4+I5+I6+I7+I8+I9)]% Olefin-based proton type 3 mol% = [(I6) / (I1+I2+I3+I4+I5+I6+I7+I8+I9)]% Olefin-based proton type 4 mol% = [(I8) / (I1+I2+I3+I4+I5+I6+I7+I8+I9)]% Paraffinic proton mole %=[(I9) / (I1+I2+I3+I4+I5+I6+I7+I8+I9)]% 6) The moisture content of inorganic supports, hydrocracking catalysts and depolymerized components is measured at 180 °C on 0.5–1 g samples using a Sartorius MA45 (Sartorius AG, Goettingen, Germany). 7) The pore volume is determined by adding water to the powder until all pores are saturated with liquid, as evidenced by the powder losing its flowability and beginning to form agglomerates. The volume of water required per gram of sample corresponds to the pore volume of the sample. Before measuring the pore volume, the sample is dried at 180 °C under a vacuum of 100 mbar for 2 hours to remove volatiles. For the measurement, 5 g of material is weighed into a dry powder bottle (150 ml) with a screw cap. Distilled water is added in small portions from a burette, the bottle is sealed with a screw cap and the contents are mixed by shaking vigorously. The bottle is then placed vigorously on a cork mat and then rotated. The pores are saturated when, during this operation, about 1 / 3 of the sample remains attached to the bottom of the bottle. The water consumption is read off and converted to 1 g of sample. 8) To measure the pH of the hydrodepolymerized product, extract a liquid sample of the hydrodepolymerized product in a volumetric ratio of water:sample of 1:5 and measure the pH of the aqueous solution. 9) The properties of the raw materials of the plastic waste used are measured as follows: Because plastic waste can vary in composition, grind and analyze a 20-100 g sample of polymer waste. Alternatively, analyze a pelletized sample of the polymer waste. Use the following process: i) Total Volatile Content (TV) is determined as the weight loss of a 10 g sample after 2 hours at 100°C and 200 mbar. ii) The water content is determined by Karl Fischer titration according to Metrohm Application Bulletin 77 / 3e in accordance with ASTM E203 using a Metrohm 915 KF Ti-Touch instrument equipped with a PT100 indicator electrode for KF volumetric titration. iii) IR spectroscopy is used for the qualitative identification of various polymers (PP, PE, PS, PA, PET, PU, polyester) and additives such as CaCO3. iv) Standard elemental analysis is used to determine the weight % of H, C, N (DIN 51732:2014-07) and S (tube furnace, ELTRA GmbH, Haan, Germany, DIN 51724-3:2012-07). v) 1 H-NMR 1 H-NMR spectrum: Used to determine the composition of polymers soluble in suitable solvents to record E / PP equilibria (including copolymers), PET, PS. vi) The ash content of plastics is determined at 800 °C according to DIN EN ISO 3451-1 (2019-05). vii) The bulk density of the plastic waste is determined in accordance with DIN 53466. viii) Corrosivity is measured as the pH value of the aqueous solution after a contact time of 3 hours (5 g of sample in 50 ml of distilled water). ix) Inductively Coupled Plasma Atomic Emission Spectroscopy (ICP-AES) is used for quantitative determination of elements (total chlorine content, Si or metal content) x) Ash content of liquid feedstocks such as pyrolysis oil, ethylene cracking residue (ECR), vacuum gas oil (VGO) and heavy vacuum gas oil (HVGO) as determined in accordance with ASTM D482-19. raw materials:
[0107] The following plastic waste materials are used as raw materials: A: Pelletized agricultural and industrial packaging films B: Mixed plastic waste of shredded flakes and small pieces of film C: Film flakes, fuzz, small pieces D: Shredded film E: Multilayer film cut into pellets
[0108] F: Ethylene cracking residue (ECR), also known as asphalt or cracked oil, is a viscous, dark purple liquid with a distinctive odor produced during the production of ethylene in the process of steam cracking. ECR is mainly used as a fuel, especially for power plants. The sample used contains 33% asphaltenes, measured as heptane insolubles according to IP143, 10% ethylenediaminetetraacetone, and 10% ethylenediaminetetraacetone. 1 It contains 44 mol% aromatic protons by H-NMR, has a central boiling point (65%) of 486°C by ASTM D1160, has an ash content of less than 0.01% by weight, and has a density of 1139 kg / m at 15°C. 3 (DIN 12791). Table 2 summarizes the properties of the raw materials.
[0109] [Table 2] ※) 1 Polymer composition by H-NMR Ash content: Ash content of raw materials TV: Total volatile matter of raw material BD: Bulk density Cl: Total chlorine PE: Polyethylene content PP: Polypropylene content PET: Polyethylene terephthalate content PS: Polystyrene content PA: Polyamide content Other cont.: Other contaminant content Depolymerization component
[0110] Depolymerized component #1a: Al / Si mixed oxide with an average particle size of 30 μm, an Al2O3 to SiO2 ratio of 60:40, and a pore volume of 1.5 ml / g, marketed under the name Siral 40HPV by Sasol Germany GmbH, Hamburg, Germany.
[0111] Depolymerization Component #1b: Zeolite beta, commercially available from PQ Corporation, Malvin, Pennsylvania, USA as Zeolyst beta (CP811E-75). Pore volume is 0.3 ml / g. Hydrocracking Catalyst
[0112] Catalyst #2: 5% Ni as Ni(NO3)2 aqueous solution relative to the amount of depolymerization component #1a is deposited on the inorganic support depolymerization component #1a by incipient wetness method and dried to a free-flowing powder. The catalyst precursor is introduced into a fluidized bed activator and the temperature is increased to 300°C while purging with nitrogen gas. At 300°C, the purge gas is changed to air, the temperature is increased to 500°C and held for 2 hours, then cooled to 300°C and changed from air to nitrogen before cooling to room temperature.
[0113] Catalyst #3: 5% Cr as a solution of Cr(NO3)2 in methanol relative to the amount of depolymerization component #1a is deposited on the inorganic support depolymerization component #1a by incipient wetness method and dried to a free-flowing powder. The catalyst precursor is introduced into a fluidized bed activator and the temperature is increased to 300°C while purging with nitrogen gas. At 300°C, the purge gas is changed to air, the temperature is increased to 500°C and held for 2 hours before cooling to 300°C and changing from air to nitrogen before cooling to room temperature.
[0114] Catalyst #4: A physical mixture of 3 g of catalyst #2, a hydrogenation catalyst, and 3 g of zeolite beta (depolymerization component #1b), a depolymerization catalyst.
[0115] Catalyst #5: A physical mixture of 3 g of catalyst #2, a hydrogenation catalyst, and 1 g of zeolite beta (depolymerization component #1b), a depolymerization catalyst.
[0116] Catalyst #6: Depolymerization component #1a, which is an inorganic support, is added with 5% Ni(NO3) relative to the depolymerization component #1a. 2と Ni as the depolymerization component #1a and 10% heptamolybdenum ammonium date (NH4)6Mo7O 24Mo, as an aqueous solution of , is deposited on depolymerized component #1a by incipient wetness method and dried to a free-flowing powder. The catalyst precursor is introduced into a fluidized bed activator and the temperature is increased to 300 °C while purging with nitrogen gas. At 300 °C, the purge gas is changed to air and the temperature is increased to 500 °C and held for 2 hours, then cooled to 300 °C and changed from air to nitrogen before cooling to room temperature.
[0117] Catalyst #7: A physical mixture of 3 g of catalyst #6, a hydrogenation catalyst, and 1 g of zeolite beta (depolymerization component #1b), a depolymerization catalyst.
[0118] Hydrodepolymerization
[0119] For experiments #1-#10 and #14-#14, 57 g of raw material A and 3 g of catalyst are suspended in 60 g of hydrated white oil (Ondina4, Royal Dutch Shell, Netherlands) in a 500 ml autoclave under nitrogen atmosphere. The reactor is purged with hydrogen gas and pressurized with hydrogen gas at room temperature until the desired initial hydrogen pressure is reached. The mixture is then heated to 150 °C and stirred for 30 min (mixing step), after which the reactor temperature is increased to the final reaction temperature over 1 h with constant stirring at 200 rpm. After holding the reaction temperature in the reactor for 1 h, the reactor is cooled to 60 °C and depressurized. The product is collected by filtering the reactor contents.
[0120] Experiment #11 is a repeat of experiment #7, except that Feed A and Catalyst #4 are suspended in 60 g of pyrolysis oil obtained by thermal depolymerization of Comparative Experiment #C instead of the hydrated white oil.
[0121] In Experiments #15 and #16, the initial hydrogen pressure was 5 bar, so that the hydrogen pressure during hydrodepolymerization was in the range of 20 bar to 40 bar.
[0122] Run #17 is performed using ingredient B instead of ingredient A.
[0123] Comparative experiments A, B, and E are repeats of #1-#10 and #14-#14, but instead of using a hydrocracking catalyst, only the depolymerization components, without the hydrogenation components, are used as catalyst. Comparative experiment D is carried out with an initial hydrogen pressure of 2 bar, which corresponds to hydrogen pressures during hydrodepolymerization in the range of 4-6 bar.
[0124] The details of the hydrodepolymerization, such as the catalyst, initial hydrogen pressure, and final reaction temperature, and the results of the hydrodepolymerization are summarized in Table 3. The analytical data of the obtained hydrodepolymerized products are summarized in Tables 4 and 5. [Table 3]
[0125] [Table 4]
[0126] [Table 5]
[0127] Data generated in Comparative Experiment A using depolymerized component #1a shows that pyrolysis of plastic waste, even in the presence of hydrogen, results in a high char content, as shown by the black color. 1 It was shown that an olefinic waxy product was obtained with an aromatic hydrogen / proton ratio of 5.7 mol % as determined by H-NMR.
[0128] Depolymerization component #1b is known to be an efficient depolymerization catalyst, but when plastic waste is pyrolyzed in the presence of hydrogen, the char content is high, as shown by the black color. 1 A highly olefinic waxy product is obtained with 7.6 mole % aromatic hydrogen / proton as determined by H-NMR.
[0129] In contrast, the experiments carried out in the presence of the hydrocracking catalyst of the present disclosure demonstrate the very versatile ability of the catalyst to obtain very high yields of liquid products and clean, highly alpha products. Notably, no significant char deposition was observed in the products or on the reactor walls. In addition, the pH of the resulting liquid was found to increase from 4 in the comparative experiment to 6 in the experiment according to the present disclosure, indicating that the process of the present disclosure includes both hydrotreating and hydrocracking reactions in addition to depolymerization.
[0130] In particular, Experiments #6-#10 show that the catalytic activity of the catalyst in the disclosed process can be further improved by combining the hydrogenation catalyst with a depolymerization catalyst that is an acidic compound. By adjusting the ratio of the hydrogenation catalyst to the depolymerization catalyst, the product composition and liquid yield can be optimized in a versatile way to shift the depolymerization reaction to the desired products. The performance of the combination of the hydrogenation catalyst and the acidic depolymerization catalyst has been demonstrated to be an excellent method to convert plastic waste into usable raw materials with low olefin content, suitable for steam crackers. Surprisingly, the hydrocracking polymerization reaction was found to have high selectivity, with little char or aromatics observed.
[0131] In experiment #11, it has been shown that even when using pyrolysis oil obtained by pyrolytic polymerization of plastic waste (which is not suitable in itself to be used as a feedstock for a steam cracker, for example to suspend plastic waste), the hydrocrackate produced has an acceptable level of aromatics content that allows the hydrocrackate to be used as a feedstock.
[0132] The hydrowax delivered in Run #15 was liquid at 50° C. and had a Bromine Number of 6 g / 100 g, indicating a highly saturated hydrocarbon.
[0133] The products obtained in comparative experiments A, B, C and G were heterogeneous, had a high wax content and a high content of olefins and aromatic hydrocarbons. Therefore, the products need to be purified before they can be used as fuel or as raw material for cracking units. Furthermore, significant scale was observed in the reactor in all four experiments. Due to the relatively high content of olefins and aromatic hydrocarbons in the products obtained in these experiments, it was found that the hydrogenation efficiency of the depolymerization component was low when the depolymerization component was not used in combination with the hydrogenation component.
[0134] Further tests are carried out using feedstock F (run 12) and a 1:1 mixture of ECR / PW (feedstocks F and A) (run 13). The results are summarized in Tables 6 and 7. [Table 6]
[0135] [Table 7]
[0136] The summarized data clearly show that cracking residues and even mixtures of cracking residues with plastic waste can be used, proving the broad applicability of the hydrocracking catalyst and process disclosed herein.
[0137] The above examples clearly show that catalytic hydrodepolymerization of plastic waste is a technology that can achieve high conversion of plastic waste, and can also be combined with heavy feedstocks and pyrolysis oils from refineries and crackers to provide suitable feedstock for crackers, with minimal by-products such as gas and coke. The hydrocrackate of the present disclosure fully meets the requirements of cracking feedstock with low aromatics, olefins and heteroatoms.
[0138] Depending on the feedstock, operating conditions (i.e., temperature and pressure), as well as the hydrocracking catalyst, the type and average particle size of the hydrocracking catalyst can be adjusted to achieve optimal performance of the process. It is revealed that mixing the hydrocracking catalyst with the polymer waste and other feedstocks in separate process steps is very helpful in obtaining a uniformly dispersed catalyst, resulting in high conversion and optimal catalytic activity.
Claims
1. 1. A process for hydrodepolymerizing waste polymers, comprising: i) providing a raw material of polymer waste, The polymer waste raw material has a polyolefin content, the polyolefin content being greater than 50 wt.% based on the total weight of the polymer waste raw material, and the polyolefin is selected from polypropylene (PP) and / or polyethylene (PE). and, ii) a hydrogenation component comprising at least one of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof supported on an inorganic support selected from the group consisting of SiO2, Al2O3, AlPO4 and Al / Si mixed oxides, 2 O 3 mixing a hydrocracking catalyst with the waste polymer feedstock, the hydrocracking catalyst further comprising a depolymerization component selected from the group consisting of an acid compound selected from the group consisting of aluminosilicates, silica, and zeolites; the hydrocracking catalyst is a physical mixture of a hydrogenation catalyst containing a hydrogenation component and a depolymerization catalyst containing a depolymerization component, and the weight ratio of the hydrogenation catalyst to the depolymerization catalyst is 100:1 to 1:
10. and, iii) depolymerizing the mixture in the presence of hydrogen gas in a reactor at a hydrogen pressure of 20-500 bar; iv) separating the reactor contents to obtain a liquid or liquefiable hydrodepolymerized product; v) optionally reintroducing into said reactor the hydrocracking catalyst and / or the hydrogen-rich gas fraction obtained in the separation step iv); vi) optionally collecting the gaseous fraction obtained in said separation step iv.
2. 2. The process of claim 1, wherein the hydrocracking catalyst comprises 0.5 to 25 weight percent active hydrogenating species, based on the total weight of the hydrocracking catalyst.
3. 2. The process of claim 1, wherein the hydrocracking catalyst and the waste polymer feedstock are fed to the reactor in a catalyst feed (C / F) ratio of 1:500 to 1:
10.
4. 4. The process according to any one of claims 1 to 3, wherein the polymer waste has a total content of volatiles, the total content of volatiles in the polymer waste measured as weight loss over 2 hours at 100°C and a pressure of 200 mbar is less than 10% by weight, based on the total weight of the polymer waste.
5. 2. The process of claim 1, wherein the polymer waste is shredded polymer waste having a bulk density of 50-500 g / L or the polymer waste is in pellet form having a bulk density of 300-700 g / L, the bulk density being measured according to DIN 53466.
6. 2. The process of claim 1, wherein the depolymerization component is a zeolite selected from the group consisting of zeolite Y, zeolite beta, zeolite A, zeolite X, zeolite L and mixtures thereof.
7. The hydrogenation component of the hydrocracking catalyst is a) providing at least one precursor compound of Fe, Mo, W, Ti, Ni, Cr, V, Co, Zr and mixtures thereof in the form of their respective salts; b) dissolving said precursor compound in a polar solvent; c) providing an inorganic support; d) depositing the dissolved precursor compound on the inorganic support by incipient wetness impregnation to obtain a hydrogenation component precursor; e) drying the hydrogenation component precursor obtained in step d); f) treating the dried hydrogenation component precursor at a temperature between 200° C. and 850° C.; g) cooling the product of step f) to obtain the hydrogenation component of the hydrocracking catalyst.
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