EP4605489A1 - A process for pyrolyzing a polyolefin recovered from a solid material comprising said polyolefin - Google Patents
A process for pyrolyzing a polyolefin recovered from a solid material comprising said polyolefinInfo
- Publication number
- EP4605489A1 EP4605489A1 EP23792926.0A EP23792926A EP4605489A1 EP 4605489 A1 EP4605489 A1 EP 4605489A1 EP 23792926 A EP23792926 A EP 23792926A EP 4605489 A1 EP4605489 A1 EP 4605489A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- polyolefin
- polar solvent
- iii
- range
- weight
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10B—DESTRUCTIVE DISTILLATION OF CARBONACEOUS MATERIALS FOR PRODUCTION OF GAS, COKE, TAR, OR SIMILAR MATERIALS
- C10B53/00—Destructive distillation, specially adapted for particular solid raw materials or solid raw materials in special form
- C10B53/07—Destructive distillation, specially adapted for particular solid raw materials or solid raw materials in special form of solid raw materials consisting of synthetic polymeric materials, e.g. tyres
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G1/00—Production of liquid hydrocarbon mixtures from oil-shale, oil-sand, or non-melting solid carbonaceous or similar materials, e.g. wood, coal
- C10G1/002—Production of liquid hydrocarbon mixtures from oil-shale, oil-sand, or non-melting solid carbonaceous or similar materials, e.g. wood, coal in combination with oil conversion- or refining processes
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G1/00—Production of liquid hydrocarbon mixtures from oil-shale, oil-sand, or non-melting solid carbonaceous or similar materials, e.g. wood, coal
- C10G1/10—Production of liquid hydrocarbon mixtures from oil-shale, oil-sand, or non-melting solid carbonaceous or similar materials, e.g. wood, coal from rubber or rubber waste
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- C—CHEMISTRY; METALLURGY
- C10—PETROLEUM, GAS OR COKE INDUSTRIES; TECHNICAL GASES CONTAINING CARBON MONOXIDE; FUELS; LUBRICANTS; PEAT
- C10G—CRACKING HYDROCARBON OILS; PRODUCTION OF LIQUID HYDROCARBON MIXTURES, e.g. BY DESTRUCTIVE HYDROGENATION, OLIGOMERISATION, POLYMERISATION; RECOVERY OF HYDROCARBON OILS FROM OIL-SHALE, OIL-SAND, OR GASES; REFINING MIXTURES MAINLY CONSISTING OF HYDROCARBONS; REFORMING OF NAPHTHA; MINERAL WAXES
- C10G9/00—Thermal non-catalytic cracking, in the absence of hydrogen, of hydrocarbon oils
- C10G9/34—Thermal non-catalytic cracking, in the absence of hydrogen, of hydrocarbon oils by direct contact with inert preheated fluids, e.g. with molten metals or salts
- C10G9/36—Thermal non-catalytic cracking, in the absence of hydrogen, of hydrocarbon oils by direct contact with inert preheated fluids, e.g. with molten metals or salts with heated gases or vapours
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02W—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
- Y02W30/00—Technologies for solid waste management
- Y02W30/50—Reuse, recycling or recovery technologies
- Y02W30/62—Plastics recycling; Rubber recycling
Definitions
- the present invention relates to a process for pyrolyzing a polyolefin recovered from a solid material M containing said polyolefin and a production unit for carrying out said process.
- the present invention further relates to a pyrolysis oil obtainable or obtained by the aforementioned process as well as the use of said oil.
- the light gases might consist of CO, CO2, methane, ethane, which are contaminated with undesired components such as acidic gases like HCI, NOx, HCN, and so forth and/or the solid residue can contain substantial amounts of rare earth metals, PAH, and so on.
- the solid residue has to be landfilled or incinerated.
- the obtained pyrolysis oil from such materials usually becomes richer and richer in oxygen and/or nitrogen due to the presence of polyamide, polyurethane, polyester, polyether, which leads to increased effort in purification after pyrolysis. These heteroatoms have to be removed in a laborious manner by hydrogenation reactions in the hydrotreatment.
- Pre-hydrogenation may even be necessary to deplete dienes, styrene and chlorine before any hydrotreatment may be possible.
- silicone in the waste streams, it is known that siloxanes formed during pyrolysis interfere with the hydrotreatment and are also undesirable in the steam cracker or in the partial oxidation (POX).
- US 2019/0322832 A1 relates to methods for recovering polymers and hydrocarbons mixtures from sorted waste feedstock or mixtures of waste. The methods therein rely on an extraction process which uses a non-polar solvent for extracting polymers from polymer blends followed by reversal of the solvent polarity by adding the non-polar solvated extract to a more polar solvent in order to precipitate the product.
- there is still a need to provide an improved process for recycling polyolefin contained in a solid material, such as waste plastic material.
- the process of the present invention exhibits better yield and is more cost effective. Indeed, the process of the present invention permits to simplify the overall polyolefin recycling process which permits to reduce costs. Hence, using a method of pyrolyzing a polyolefin recovered from a solid material comprising said polyolefin according to the present invention permits to reduce the CO2 footprint.
- the present invention relates to a process for pyrolyzing a polyolefin recovered from a solid material M containing said polyolefin, the process comprising
- One of the advantages of the present process is that hydrogenation of the obtained pyrolysis oil is not necessary or the effort for hydrogenation is reduced due to the lower concentration of atoms other than carbon or hydrogen. Further, no pre-treatment prior to pyrolysis of the polyolefin is necessarily required, such as thermal treatment to remove PVC, additional washing steps or pre-pyrolysis. Also due to the lower amount of gas and the reduced amount of components such as NOx, sulfuric components, halogenated component (HCI, HBr, halogenated hydrocarbons, cyanic acid, CO, CO2) the treatment of the gaseous phase before release to the environment is reduced. Thus, the process according to the present invention is more efficient as it simplifies the recycling of polyolefin and is more cost effective compared to known processes.
- the process for pyrolyzing a polyolefin recovered from a solid material M containing said polyolefin according to the present invention comprises
- the polyolefin is selected from the group consisting of polyethylene (PE), polypropylene (PP), polymethylpentene (PMP), polybutene-1 (PB-1 ), ethylene-octene copolymers, stereoblock PP, olefin block copolymers, propylene-butane copolymers, polyisobutylene (PIB), ethylene propylene rubber (EPR), ethylene propylene diene monomer (M-class) rubber (EPDM rubber), and a mixture of two or more thereof, more preferably selected from the group consisting of polyethylene, polypropylene, and a mixture of polyethylene and polypropylene.
- PE polyethylene
- PP polypropylene
- PMP polymethylpentene
- PB-1 polybutene-1
- ethylene-octene copolymers stereoblock PP
- olefin block copolymers propylene-butane copolymers
- PIB polyisobutylene
- EPR
- the polyolefin can preferably be a mixture of the same polyolefin, namely a mixture of PE or PP, or a mixture of two or more different polyolefins, such as a mixture of PE and PP.
- providing the solid material M containing the polyolefin according to (i.1 ) comprises shredding the solid material M containing the polyolefin in a shredding unit US1.
- the liquid stream SLS provided in (i.2) preferably consists essentially of, more preferably consists of, the non-polar solvent.
- the non-polar solvent is selected from the group consisting of xylene, toluene, n- heptane, pentyl acetate, n-amyl acetate, isobutyl acetate, n-propyl propanoate, n-butyl propano- ate, heptan-2-one, methyl-cyclohexane, cyclohexane, and a mixture of two or more thereof, more preferably is selected from the group consisting of xylene, toluene, pentyl acetate, cyclohexane, and a mixture of two or more thereof, more preferably is xylene.
- Preferably (i) comprises providing a liquid stream SP containing a polyolefin dissolved in one non-polar solvent.
- the non-polar solvent is a single solvent selected from the group consisting of xylene, toluene, n-heptane, pentyl acetate, n-amyl acetate, isobutyl acetate, n-propyl propanoate, n-butyl propanoate, heptan-2-one, methyl-cyclohexane, and cyclohexane, more preferably the non-polar solvent is a single solvent selected from the group consisting of xylene, toluene, pentyl acetate, and cyclohexane, more preferably the non-polar solvent is xylene.
- the present invention offers several improvements over systems like those described in US2019/0322832 A1. More specifically, the present process has an improved polymer extraction and isolation method by using a non-polar solvent, preferably at elevated temperatures, to extract the desired polymers which are then precipitating, for example by cooling, the desired polyolefin from supersaturated solutions of a single solvent. Without wanted to be bound to any theory, this approach permits to simplify the overall process including the recycling of solvent as well as the equipment needed for carrying out the process on large continuous scale while reducing the energy expenditure compared to the prior art.
- xylene refers to all isomers and mixtures thereof of xylene, preferably refers to a mixture of ortho-xylene, meta-xylene and para-xylene isomers.
- the process for pyrolyzing a polyolefin recovered from a solid material M containing said polyolefin according to the present invention comprises
- a pyrolysis oil OP wherein the non-polar solvent is selected from the group consisting of xylene, toluene, n-hep- tane, pentyl acetate, n-amyl acetate, isobutyl acetate, n-propyl propanoate, n-butyl propanoate, heptan-2-one, methyl-cyclohexane and cyclohexane.
- the non-polar solvent has a Hansen solubility parameter 5H in the range of from 0 to 10 MPa 1/2 , more preferably in the range of from 0 to 8 MPa 1/2 , more preferably in the range of from 0 to 7 MPa 1/2 .
- the Hansen solubility parameter 5H is a known parameter which characterizes the solubility of a compound. 5H relates to the energy from hydrogen bonds between molecules. For numerous compounds, such as xylene, toluene and cyclohexane, the Hansen parameter 5H can be found in standard chemical books.
- the Hansen solubility parameters 5H mentioned in the present invention refers to values tabulated in: Hansen, C.M., Hansen Solubility Parameters - A user’s handbook, 2. Edition, CRC Press, Boca Raton, USA, 2007.
- the solid material M provided according to (i.1) comprises, more preferably consists of waste material, wherein said waste material more preferably comprises plastic waste material.
- plastic waste material or “mixed plastic waste material” refers to plastic waste material containing different kinds of plastic objects. Often plastic is sorted before it is used for treatment/recycling, such as the plastic waste material can be only plastic bags or plastic foils to be treated or recycled. This can be done upfront by different companies. However, in the context of the present invention, there is no such presorting requirement, the mixed plastic waste material or plastic waste material is municipal plastic waste material as obtained from households, such as a mixture of plastic bags, plastic packaging, plastic tubes, etc. According to the present invention, a good quality oil can be directly formed from these plastic waste materials.
- from 5 to 99 weight-%, more preferably from 20 to 98.5 weight-%, more preferably from 30 to 98 weight-%, more preferably from 40 to 98 weight-%, of M consist of the polyolefin.
- the solid material M comprises, in addition to the polyolefin, one or more of polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyurethane (PU), paper, aluminum, and polyamide.
- PET polyethylene terephthalate
- PVC polyvinyl chloride
- PU polyurethane
- the solid material M has a N content of at most 5 weight-%, more preferably in the range of from 0.55 to 3 weight-%, based on the weight of the solid material M, the N content being determined as described in Analytics 3.
- the solid material M has a O content of at most 20 weight-%, more preferably in the range of from 4 to 15 weight-%, based on the weight of the solid material M, the O content being determined as described in Analytics 3.
- the solid material M has a S content of at most 1000 wppm, more preferably in the range of from 0 to 800 wppm, more preferably in the range of from 0 to 500 wppm, based on the weight of the solid material M, the S content being determined as described in Analytics 3.
- the solid material M has a Si content in the range of from 300 to 15000 wppm, more preferably in the range of from 300 to 14500 wppm, based on the weight of the solid material M, the Si content being determined as described in Analytics 3.
- Tsis is in the range of from 55 to 150 °C, more preferably in the range of from 60 to 140 °C.
- TD is in the range of from 55 to 150 °C, more preferably in the range of from 60 to 140 °C.
- the present invention offers several improvements over systems like those described in US2019/0322832 A1 . More specifically, the present inventive process has an improved polymer extraction and isolation method by using a non-polar solvent at elevated temperatures, i.e. preferably from 55 to 150 °C, to extract the desired polymers which are then obtained by precipitating (for example by cooling) the desired polyolefins from supersaturated solutions of the single non-polar solvent.
- a non-polar solvent at elevated temperatures, i.e. preferably from 55 to 150 °C
- the solid material M containing the polyolefin is fed into the reactor unit RD via gravity or pneumatic transport.
- (i.3) comprises bringing into contact and mixing, more preferably stirring, the solid material M provided according to (i.1) with the liquid stream SLS provided according to (i.2) in a reactor unit RD at a temperature TD and a pressure PD, with TD ⁇ TES, obtaining a liquid stream SP containing the polyolefin dissolved in the non-polar solvent.
- z>1 at least 2 reactors RDI are arranged in parallel, more preferably z reactors RDI are arranged in parallel.
- the temperature TDI in the z reactor(s) RDI is maintained by heating the z reactor(s) RDI content, more preferably by passing a heating medium through a heating jacket of RDI.
- reactors RDI are heated directly using a heater beneath said reactors for example.
- the process further comprises, prior to (ii), maintaining the temperature TSP of the liquid stream SP containing the polyolefin dissolved in the non-polar solvent obtained according to (i.3) such that 50 °C ⁇ TSP ⁇ TES.
- the temperature TSP is essentially maintained, more preferably maintained, via one or more heated tubes used for transferring the liquid stream SP into SLU.
- the solid-liquid separation unit SLU is a filtration unit F1 , more preferably a stirred pressure filter, the filtration unit F1 more preferably has a mesh size in the range of from 1 to 100 micrometers, more preferably in the range of from 1 to 20 micrometers.
- the solid-liquid separation can alternatively be done by sedimentation or centrifugation (see Handbuch der mechanischen Fest-Flussig-Trennung Taschenbuch
- the filtration unit F1 comprises a filter for blocking the solid contaminants and a receiving vessel for the liquid stream SSLU comprising the polyolefin dissolved in the non-polar solvent; wherein the solid contaminants comprises one or more of a polymer other than polyolefin, polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyurethane (PU), and polyamide (PA).
- PET polyethylene terephthalate
- PVC polyvinyl chloride
- PU polyurethane
- PA polyamide
- PF is in the range of from 2 to 4 bar(abs), more preferably 2.5 to 3.5 bar(abs) and that TSP is in the range of from 110 to 130 °C.
- (iii.1) subjecting the liquid stream SSLU comprising the polyolefin dissolved in the non-polar solvent obtained according to (ii) to precipitation at a temperature TP and a pressure pp, with TP ⁇ TD and TP ⁇ 100 °C, obtaining a solid mixture comprising the precipitated polyolefin PP.
- (iii.1 ) comprises cooling the liquid stream SSLU, comprising the polyolefin dissolved in the non-polar solvent, for precipitation at a temperature TP and a pressure pp, with TP ⁇ TD and TP ⁇ 100 °C, obtaining a stream P comprising the polyolefin precipitated in the non-polar solvent.
- TP ⁇ TD - 5 °C more preferably TP ⁇ TD - 10 °C, more preferably TP ⁇ TD - 30 °C, more preferably TP ⁇ TD - 30 °C.
- cooling according to (iii.1) comprises
- the cooling rate is in the range of from 2 to 200 K/h, more preferably in the range of from 3 to 150 K/h, more preferably 20 to 120 K/h.
- (iii) comprises
- contacting SLU with a polar solvent is performed at a temperature in the range of from 10 to 120 °C, more preferably in the range of from 20 to 60 °C.
- contacting SLU with a polar solvent is performed at a pressure in the range of from 0 to 10 bar(abs), more preferably in the range of from 0.5 to 2 bar(abs).
- the polar solvent is selected from the group consisting of water, ethanol, methanol, propanol, butanol, acetone, dimethylsulfoxide, acetonitrile, dimethylformamide, ethylacetate, sulfolane, dichloromethane, tetrahydrofurane, and a mixture of two or more thereof, more preferably selected from the group consisting of water, acetone, ethanol, methanol and a mixture of two or more thereof.
- the polar solvent has an Hansen solubility parameter 5H of more than 5 MPa 1/2 , preferably in the range of from 6 to 50 MPa 1/2 , more preferably in the range of from 10 to 30 MPa 1/2 .
- (iii) comprises
- (iii) further comprises
- the distillation unit D is heated by a heating source, more preferably steam.
- a heating source preferably is generated from the recycled gas stream obtained after pyrolysis.
- (iii.5 ’) further comprises recycling the polar solvent more preferably in (iii.1 ’). Recycling the polar solvent more preferably comprises
- the precipitated polyolefin has a N content of at most 2 weight-%, more preferably of at most 1 weight-%, more preferably of at most 0.5 weight-%, based on the weight of the precipitated polyolefin, the N content being determined as described in Analytics 3.2.
- the precipitated polyolefin has a S content of at most 1000 wppm, more preferably in the range of from 0 to 800 wppm, more preferably in the range of from 0 to 500 wppm, based on the weight of the precipitated polyolefin, the S content being determined as described in Analytics 3.2.
- the precipitated polyolefin has a Si content of at most 300 wppm, more preferably in the range of from 0 to 200 wppm, more preferably in the range of from 0 to 100 wppm, more preferably in the range of from 0 to 70 wppm, based on the weight of the precipitated polyolefin, the Si content being determined as described in Analytics 3.2.
- the flakes obtained according to (iii.6) have an average thickness in the range of from 0.01 to 5 cm, more preferably in the range of from 0.1 to 2 cm.
- Figure 2 shows the flakes of the precipitated polyolefins.
- the solid mixture obtained according to (iii) comprises the precipitated olefin in an amount in the range of from 90 to 100 weight-%, more preferably in the range of from 95 to 100 weight-%, based on the weight of the solid mixture.
- no solvent other than the non-polar solvent is involved in the precipitation conditions.
- the polarity of the non-polar solvent according to (iii) is not changed by addition of a solvent with increased polarity relative to the polarity of the non-polar solvent.
- (iv) comprises (iv.1 ) feeding the solid mixture comprising the precipitated polyolefin PP obtained according to (iii), more preferably according to (iii.2), optionally according to (iii.4), optionally according to (iii.6), into a pyrolysis reactor RP;
- feeding the precipitated polyolefin obtained according to (iii), preferably according to (iii.2), optionally according to (iii.4), optionally according to (iii.6), is performed via a dosing unit, the dosing unit being more preferably one or more of a screw, an extruder and a rotary valve.
- the precipitated polyolefin is fed via pneumatic conveyor or liquid injector into the pyrolysis reactor Rp.
- (iv.1 ) may further comprise pre-heating the solid mixture comprising the precipitated polyolefin, more preferably in an extruder by internal friction or by a heat exchanger.
- the heat exchanger uses electricity of the combustion energy from the pyrolysis gas or other heat sources.
- the solid mixture comprising the precipitated polyolefin may be subjected to a pre-pyrolysis at a temperature in the range of from 220 to 360 °C.
- a pre-pyrolysis at low temperature permits to pyrolysed PVC if present in the solid mixture.
- such step can be avoided in view of the particular process steps (i) to (iii) prior to (iv) of the process according to the present invention.
- the pyrolysis is performed in the pyrolysis reactor RP under an atmosphere exempt of oxygen.
- the pyrolysis is performed by thermal cracking (absence of catalyst) or catalytic cracking, more preferably thermal cracking.
- the pyrolysis according to (iv) is not a hydrothermal treatment.
- the pyrolysis reactor RP is free of water.
- the precipitated polyolefins obtained according to (iii) of the present process are advantageously pyrolyzed under thermal conditions in absence of water at pressures close to atmospheric pressure.
- the present inventive process does not require either water or hydrothermal reactors which greatly reduces the equipment cost and complexity since hydrothermal conditions are well known to be corrosive. Furthermore, hydrothermal conditions are also not as easily implemented under continuous processes which are often necessary on large scale. Finally, by avoiding a hydrothermal treatment as in US2019/0322832 A1 , further water treatment steps and equipment to remove contaminants are not necessary. Further, non-desirable side products such as coke that builds up in the hydrothermal reactors is also reduced with the process of the present invention.
- the gas stream V exiting the pyrolysis reactor is passed through a catalyst bed or an adsorption bed, in order to reduce the concentration of impurities and atoms other than C and H.
- the gas stream V is passed through a filtration unit, more preferably a filter, or a cyclone.
- Such filtration unit or cyclone permits to remove dust particles from the gas stream V before condensation.
- a catalyst bed or an adsorption bed can be used upstream thereof or downstream thereof to reduce the concentration of impurities and atoms other than C and H.
- V is subjected to a condensation step in LGU at a temperature in the range of from 0 to 80 °C; wherein more preferably LGU is a condenser, a scrubber or a quench.
- the gas stream V in (iv.3) is subjected to a first condensation step at a temperature in the range of from 50 to 150 °C and to a second condensation step at a temperature in the range of from 35 to 0°C, obtaining the pyrolysis oil OP; each of the first and second condensation steps more preferably being performed in a separate condenser or quench.
- the gas stream V in (iv.3) is preferably subjected to only one condensation step at a temperature in the range of from 0 to 80 °C.
- the non-condensable “permanent” gases G exiting LGU can be used to generate process heat /electricity by burning in a gas burner, gas motor or combined heat and power plant.
- the flue gases of this combustion might need to be cleaned according to emission laws to remove dust, ashes and other components.
- the solid residues SR from the pyrolysis can be disposed or treated further to recover valuable substances such as fibers, metals, carbon black depending on the specific properties and composition of the solid material M.
- the process further comprises
- the purification unit PU comprises one or more of a filter, a centrifuge, a decanter, and a decanter centrifuge, more preferably one or more of a filter, a centrifuge and a decanter.
- the pyrolysis oil obtained according to (iv), more preferably (iv.3), can be filtered including the possible use of a filter agent to remove solids.
- said pyrolysis oil can be centrifuged to remove solids.
- water residue can be removed from the pyrolysis oil by decanting or centrifugation.
- the pH can be adjusted to a pH value of at most 3 or, alternatively, a pH value of at least 8, preferably at least 9.
- the adjustement is performed by the addition of an acid or a base such as an alkali metal hydroxide, for example sodium hydroxide (NaOH), potassium hydroxide (KOH), alkaline earth metal hydroxide, for example calcium hydroxide (Ca(OH)2, NH3, or mixtures thereof sulfuric acid (H2SO4), nitric acid (HNO3) or phosphoric acid (H3PO4).
- an alkali metal hydroxide for example sodium hydroxide (NaOH), potassium hydroxide (KOH), alkaline earth metal hydroxide, for example calcium hydroxide (Ca(OH)2, NH3, or mixtures thereof sulfuric acid (H2SO4), nitric acid (HNO3) or phosphoric acid (H3PO4).
- (v) comprises
- (v) further comprises
- the pyrolysis oil is preferably further treated to remove halogens, for example by hydrotreatment.
- a hydrotreatment or hydroprocessing is a catalytic reductive process for upgrading hydrocarbons.
- the objective of the hydrotreatment being to add hydrogen while simultaneously removing undesired heteroatoms such as but not limited to N, P, O, S, Si, F, Cl, Br, I, present in the pyrolysis oil and to reduce the amount of double bonds and if necessary aromatics.
- Such treatments are well known in the art and disclosed in “CHAPTER TWO - Distillate Hydrotreating”, Refinery Refining Processes Handbook, 2003, Pages 29-61.
- the hydrotreatment can be followed by a hydrocracking step. Further, it is conceivable that after the hydrotreatment/hydrocracking, the pyrolysis oil is further distillated to separate the oil in different fractions.
- the process is a continuous process or a semi-continuous process, preferably the process is a continuous process.
- the present invention further relates to a production unit for carrying out the process of the present invention, the production unit comprising
- the production unit of the present invention further comprises the units and elements listed in the foregoing in order to carry out the process according to the present invention.
- the production unit further comprises one or more of a shredding unit US1 , a comminuting unit US2, a distillation column D, a gas-liquid separation unit LGU and a purification unit PU, wherein said units are as defined herein in the context of the inventive process.
- the present invention further relates to a pyrolysis oil obtainable or obtained by a process according to the present invention.
- the pyrolysis oil has a C content of at least 80 weight-%, more preferably in the range of from 82 to 87 weight-%, more preferably in the range of from 82 to 86 weight-%, based on the weight of the pyrolysis oil, the C content being determined as described in Analytics 3.
- the pyrolysis oil has a N content of at most 0.5 weight-%, more preferably of at most 0.3 weight-%, more preferably at most 0.1 weight-%, based on the weight of the pyrolysis oil, the N content being determined as described in Analytics 3.2. More preferably, the pyrolysis oil has a N content of at most 500 wppm, more preferably of at most 100 wppm, the N content being determined as described in Analytics 3.2.
- the pyrolysis oil has a S content of at most 50 wppm, more preferably in the range of from 0 to 30 wppm, more preferably in the range of from 0 to 20 wppm, based on the weight of the pyrolysis oil, the S content being determined as described in Analytics 3.2.
- the present invention further relates to the use of the pyrolysis oil according to the present invention as a naphtha substitute in steam crackers or in the production of synthesis gas.
- polyolefin is selected from the group consisting of polyethylene (PE), polypropylene (PP), polymethylpentene (PMP), polybutene-1 (PB-1), ethylene-octene copolymers, stereo-block PP, olefin block copolymers, propyl- ene-butane copolymers, polyisobutylene (PIB), ethylene propylene rubber (EPR), ethylene propylene diene monomer (M-class) rubber (EPDM rubber), and a mixture of two or more thereof, preferably selected from the group consisting of polyethylene, polypropylene, and a mixture of polyethylene and polypropylene.
- PE polyethylene
- PP polypropylene
- PMP polymethylpentene
- PB-1 polybutene-1
- ethylene-octene copolymers stereo-block PP
- olefin block copolymers propyl- ene-butane copolymers
- PIB polyiso
- non-polar solvent is selected from the group consisting of xylene, toluene, n-heptane, pentyl acetate, n-amyl acetate, isobutyl acetate, n-propyl propanoate, n-butyl propanoate, heptan-2-one, methyl-cyclohex- ane, cyclohexane, and a mixture of two or more thereof, preferably is selected from the group consisting of xylene, toluene, pentyl acetate, cyclohexane, and a mixture of two or more thereof, more preferably is selected from the group consisting of xylene, toluene, pentyl acetate and cyclohexane, more preferably is xylene.
- the solid material M comprises, in addition to the polyolefin, one or more of polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyurethane (PU), paper, aluminum, and polyamide.
- PET polyethylene terephthalate
- PVC polyvinyl chloride
- PU polyurethane
- the solid-liquid separation unit SLU is a filtration unit F1 , preferably a stirred pressure filter
- the filtration unit F1 preferably has a mesh size in the range of from 1 to 100 micrometers, more preferably in the range of from 1 to 20 micrometers.
- the filtration unit F1 comprises a filter for blocking the solid contaminants and a receiving vessel for the liquid stream SSLU comprising the polyolefin dissolved in the non-polar solvent; wherein the solid contaminants are one or more of a polymer other than polyolefin, polyethylene terephthalate (PET), polyvinyl chloride (PVC), polyurethane (PU), and polyamide (PA).
- PET polyethylene terephthalate
- PVC polyvinyl chloride
- PU polyurethane
- PA polyamide
- cooling according to (iii.1) comprises (iii.1. a) passing a cooling medium into a cooling jacket of the receiving vessel of the filtration unit containing SSLU; or
- any one of embodiments 29 to 32 wherein the pyrolysis reactor RP is selected from the group consisting of a fluidized bed, a moving bed, an entrained flow, an auger, a screw reactor, an extruder, a stirred tank reactor and a rotary kiln, more preferably a fluidized bed.
- the process of any one of embodiments 1 to 34 wherein the pyrolysis is performed by thermal cracking or catalytic cracking, preferably thermal cracking.
- (v.3) optionally adjusting the pH of the pyrolysis oil obtained according to (v.2) such that the pH be of at most 3 or at least 8;
- the pyrolysis oil of embodiment 47 having a C content of at least 80 weight-%, preferably in the range of from 82 to 87 weight-%, more preferably in the range of from 82 to 86 weight-%, based on the weight of the pyrolysis oil, the C content being determined as described in Analytics 3.2.
- the pyrolysis oil of embodiment 47 or 48 having a N content of at most 0.5 weight-%, more preferably of at most 0.3 weight-%, more preferably at most 0.1 weight-%, based on the weight of the pyrolysis oil, the N content being determined as described in Analytics 3.2; wherein more preferably the pyrolysis oil has a N content of at most 500 wppm, more preferably of at most 100 wppm, the N content being determined as described in Analytics 3.2.
- the pyrolysis oil of any one of embodiments 47 to 49 having a O content of at most 2 weight-%, preferably of at most 1 weight-%, more preferably of at most 0.5 weight-%, more preferably of at most 0.3 weight-%, based on the weight of the pyrolysis oil, the O content being determined as described in Analytics 3.2.
- the pyrolysis oil of any one of embodiments 47 to 50 having a S content of at most 50 wppm, preferably in the range of from 0 to 30 wppm, more preferably in the range of from 0 to 20 wppm, based on the weight of the pyrolysis oil, the S content being determined as described in Analytics 3.2.
- X is a chemical element and A, B and C are concrete elements such as Li, Na, and K, or X is a temperature and A, B and C are concrete temperatures such as 10 °C, 20 °C, and 30 °C.
- non-polar solvent used in the present invention refers to a solvent that dissolves non-polar compounds, has a low dielectric constant, has non-polar bond.
- the nonpolar solvents can be as described in the foregoing.
- gas stream and “gaseous stream” can be used interchangeably, both terms means that the stream is in gas phase.
- the present invention is further illustrated by the following example.
- the particle size distribution of the polyolefin flakes after solvolysis has be obtained via static image analysis from Figure 2 (optical granulometry technique). Therefore, the particles have been dispersed as much as possible and a background with a big contrast to the individual particles has been used.
- the projection area of the individual particles has been measured with an automatic image analyzing tool (imaged). From the projected areas of the individual particles, the diameter of the sphere that has the same surface area as the individual particles were calculated: where
- the average particle size (volume-based: index 3) x 3 has been calculated by: where x is the arithmetic average particle size in a discrete particle size interval x and x+i is the amount of particle in the discrete particle size interval (from cumulative particle size distribution).
- the sample (1 - 10 mg or 10 - 30 pl) was combusted in oxygen with argon as carrier gas at about 1000°C. Dilution of the sample could be used to extend the linear dynamic range of the method.
- the combustion gases (NO) reacts with ozone to form exited species. The light emitted during the relaxation was detected.
- Analyzer TE Instruments, e.g. model TN/TS
- the sample (1 - 10 mg) was weighed into a tin capsule and placed into the analyser.
- the sample was combusted catalytically in an argon/oxygen atmosphere and the sulphur was converted hereby to a mixture of SO2 and SO3.
- the formed SO3 was subsequently reduced to SO2 with copper granules. After drying and separation of the combustion gases, sulphur was detected and quantified as SO2 via IR spectrometry.
- Analyser Elementar, Unicube
- the sample (1 - 10 mg) was combusted in oxygen with argon as carrier gas at ca. 1000°C.
- the combustion gases SO2 are transferred into the coulometric cell for detection.
- UV- Fluorescence can be used for detection after combustion.
- TE Instruments e.g. model TX/TS (coulometry) (or TN/TS (UV-Fluorescence))
- Chlorine calculated from sum Chlorine-Bromine-lodine (Coulometry) (typically for concentration below 0,5 g/100 g)
- the sample (1 - 10 mg) was combusted in oxygen with nitrogen as carrier gas at about 1000°C.
- the resulting hydrochloric acid in the form of gas is cleaned from by-products of the combustion (e.g. water) in concentrated sulfuric acid and then transferred into the coulometric cell for detection.
- the method does not distinguish between halides, therefore, the result is presented as a sum parameter (chlorine, bromine, iodine) calculated with the molar mass of chlorine.
- Analyzer TE Instruments, model TX/TS
- polyolefins 22 g of polyolefins, namely a mixture of polyethylene (PE) (86 % by weight) and polypropylene (PP), (16% by weight), were obtained.
- PE polyethylene
- PP polypropylene
- the proportions of PE and PP before drying were determined by NMR analysis as defined under Analytics 2 above (NMR: 82% PE, 13%PP, 5% Xylene)
- the obtained polyolefins flakes were fed into a pyrolysis tank reactor RP (1 ).
- the average particle size of the flakes was of 15.9 mm. Some of the flakes had to be cut to be fed into the reactor.
- a bench scale pyrolysis system was used. A flow scheme of the system is shown in Figure 5.
- the pyrolysis system consists of the tank reactor (1 ) of about 0.14 L volume, an electrically heated oven (5), two condensers (7) and (8) and two washing bottles (10) & (11). As a first step the reactor (1 ) was filled with the weighed obtained precipitated polyolefins. Then a pressure-test was carried out to ensure that the system is air-tight.
- the oven (5) was pre-heated to 570°C. After the pressure-test and inertization the oven (5) was elevated to enclose the reactor (1 ). Subsequently the reactor (1 ) was heated up to reaction temperature of 550°C (1.1 bar(abs)). The reaction temperature was measured via a NiCrNi-thermocouple (4). The reaction temperature was reached after about 15 min, which corresponds to an average heating rate of about 35 K/min.
- the effluent pyrolysis vapors and gases coming from the reactor (1) flow through a heated pipe (6) to prevent condensation before the cold traps (7) & (8).
- the pyrolysis gas streams V are condensed in the two cold traps (7) & (8), obtaining the pyrolysis product oil Op.
- the temperature of the first cold trap (7) was adjusted via a heating plate (9) to 45°C, while the temperature of the second cold trap (8) was adjusted via a cooling bath with ice water (10) to about 0°C.
- the non-condensable gases were cleaned in two washing bottles (11) with NaOH & (12) with distilled water.
- the off-gas (13) was vented into the air-discharge vent of the digestorium. 30 min after the reaction temperature of 550°C was reached the pyrolysis was complete and the oven heating (5) was turned off.
- LDPE low density polyethylene
- the pyrolysis yield with the process according to the present invention is very similar to the yield obtained after pyrolysis of LDPE (virgin plastic) which demonstrates that the process of the present invention permits to obtain yields with mixed municipal plastic waste which are as high as for virgin polyolefinic plastics.
- the comparison of Ex. 1 and Comp. Ex. 1 shows that the particular pre-treatment disclosed in the present invention permits to greatly improve the oil yield, namely from 66.6 to 82.4 wt.-%, and greatly reduce the impurities, from 14.7 wt.-% char to only 0.7 weight-%.
- the pyrolysis oil obtained according to the process of the present invention has lower Cl content, namely about 39.6 times lower than with Comp. Ex. 1 , as well as lower N, O and S contents, for example the N & S contents were reduced by a factor of 66 & 8, respectively.
- the process according to present invention exhibits better pyrolysis oil yield and is more cost effective as the further treatments of the oils can be greatly reduced.
- the improved reduction of char compared to the prior art is of great importance in term of CO2 footprint (reduce the need to use landfill/incinerators).
- the process of the present invention permits to simplify the overall polyolefin recycling process which permits to also reduce costs.
- using a method of pyrolyzing a polyolefin recovered from a solid material comprising said polyolefin according to the present invention permits to reduce the CO2 footprint.
- Figure 1 is a schematic representation of a production unit used for the process according to preferred embodiments of the invention.
- the production unit comprises a reactor unit RD, a shredding unit US1 , a solid-liquid separation unit SLU comprising a filter F1 , a pyrolysis reactor RP, a filter F2, a liquid-gas separation unit LGU and optionally a distillation unit D, a washing and drying unit W/D and a purification unit U.
- the solid material M e.g. plastic waste, comprising the polyolefin, preferably PP and PE, is fed into a shredding unit US1 .
- the flakes/pieces of M obtained from US are fed into the reactor unit RD.
- a liquid stream SLS containing a non-polar solvent is also fed into the reactor unit RD for dissolving the solid material M at a temperature TD and a pressure PD, with TD ⁇ TES, TES being the ebullition temperature of the non-polar solvent of SLS as detailed in the foregoing.
- a liquid stream SP is removed from the bottom of RD, SP comprising the polyolefin dissolved in the nonpolar solvent.
- the liquid stream SP is fed into the solid-liquid separation unit SLU obtaining a liquid stream SSLU comprising the polyolefin dissolved in the non-polar solvent.
- the liquid stream SSLU is subjected to precipitation, preferably by cooling the temperature of the solvent in SLU as detailed in the foregoing.
- the liquid stream P exiting SLU and comprising the precipitated polyolefin PP and the non-polar solvent is fed into a filter F2, PP is blocked on F2 and the non-polar solvent SNP passes through.
- the solid waste w1 is removed from F1 , w1 comprising among other non-dissolved polyolefins and contaminants such as those listed in the foregoing.
- the precipitated polyolefin PP is then fed into the pyrolysis reactor RP, after having optionally been washed and dried in W/D. Prior to pyrolysis, PP can be comminuted in US2 not shown in Figure 1 .
- the precipitated polyolefins PP (flakes) are subjected to pyrolysis as detailed in the foregoing, obtaining at the top of the reactor a gas stream V comprising hydrocarbons and at the bottom of the reactor solid residues SR.
- the stream V is fed into the liquid-gas separation unit LGU, obtaining a liquid stream of pyrolysis oil OP and a gas stream G of non-condensable pyrolysis gases.
- the pyrolysis oil OP is optionally further purified in the purification unit PU to obtain a purified pyrolysis oil OPP.
- Figure 2 shows a picture of the flakes of the precipitated polyolefins (inventive process).
- Figure 3 shows a picture of the solid material comprising the mixed municipal solid plastic waste obtained after the shredding unit US1 (starting material for the process of Example 1 and of Comparative Example 1 ). Scale: cm.
- Figure 4 shows the particle size distribution of the flakes of precipitated polyolefin obtained according to (iii) to be pyrolyzed according to (iv).
- the average particle size of the flakes was 15.9 mm.
- Figure 5 is a schematic drawing of the pyrolysis setup used for Example 1 , Comparative Example 1 and Reference Example 1 - 1.
- Reactor 2. Plastic feedstock; 3. Nitrogen (inertization & flushing of reactor); 4. Thermocouple; 5. electrically heated oven; 6. heated pipe; 7. 1st cold trap; 8. 2nd cold trap; 9. heating plate; 10. cooling bath; 11. washing bottle (NaOH); 12. washing bottle (distilled water); 13. off-gas.
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Abstract
Description
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Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP22202124 | 2022-10-18 | ||
| PCT/EP2023/078748 WO2024083776A1 (en) | 2022-10-18 | 2023-10-17 | A process for pyrolyzing a polyolefin recovered from a solid material comprising said polyolefin |
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| CN114479900B (en) * | 2020-10-28 | 2023-05-05 | 中国石油化工股份有限公司 | Catalytic cracking method and system for waste plastics |
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