Styrene-assisted polyolefin depolymerization.

Thermally depolymerizing polyolefins with styrene oligomers or polymers as initiators addresses inefficiencies in recycling, achieving rapid and predictable conversion to useful products, reducing landfill waste and energy use.

JP7766682B2Active Publication Date: 2025-11-10BASELL POLIOLEFINE ITALIA SRL
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Patent Information

Application Number
JP2023519310
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-09
Filing Date
2021-10-07
Publication Date
2025-11-10
Estimated Expiration
2041-10-07

AI Technical Summary

Technical Problem

Existing methods for recycling polyolefin plastics are inefficient, expensive, and result in unpredictable products due to side reactions and catalyst poisoning, with a significant burden on landfills and environmental emissions.

Method used

Thermally depolymerizing polyolefin-based materials in the presence of styrene oligomers or polymers, which act as radical initiators, reducing the depolymerization half-life and minimizing branched or aromatized products.

Benefits of technology

The method achieves faster and more predictable depolymerization of polyolefins into useful liquid products, reducing landfill waste and energy consumption, while maintaining product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

Described herein is a method for depolymerizing polyolefin-based materials into useful petrochemical products using styrene oligomers or polymers and heat, which improves depolymerization by shortening the depolymerization half-life, resulting in higher depolymerization rates and shorter residence times in the depolymerization unit, thereby allowing for predictable depolymerization and reducing branched or aromatized formations in the product.
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Description

[Technical Field]

[0001] The present disclosure relates to a method for depolymerizing polyolefin-based materials using styrene oligomers or polymers and heating to form useful petrochemical products. [Background technology]

[0002] Rising living standards and urbanization are driving demand for polymer products, especially polyolefin plastics. Polyolefins are commonly used in commercial plastic applications due to their outstanding performance and cost characteristics. For example, polyethylene (PE) is one of the most widely used and recognized polyolefins due to its high strength, exceptional toughness, and durability, which allows it to be highly engineered for a variety of applications. Similarly, polypropylene (PP) is mechanically strong yet flexible, heat-resistant, and resistant to many chemical solvents, including bases and acids. Therefore, polypropylene is ideal for a variety of end-use industries, primarily used in packaging and labeling, textiles, plastic components, and various types of reusable containers.

[0003] The downside of the demand for polyolefin plastics is the increase in waste. Post-consumer plastic waste typically ends up in landfills, with approximately 12% being incinerated and approximately 9% being recycled. In landfills, most plastics do not decompose rapidly, making them a major source of waste, contributing to the overburdened landfills. Incineration is also not an ideal solution for treating plastic waste because it results in the formation of carbon dioxide and the emission of other greenhouse gases. Therefore, there has been a great deal of attention being paid to developing methods for recycling plastic waste to reduce the burden on landfills while being environmentally friendly.

[0004] A drawback of recycling plastic waste is the difficulty of successfully producing commercially usable or desired products. Plastic waste recovery currently involves cleaning the material and mechanically reprocessing it. However, the resulting particles are still contaminated with impurities such as food residues, dyes, and flavorings. From the perspective of performance and appearance, these impurities make them unsuitable for most applications.

[0005] Recent advances have focused on converting plastic waste into useful products, such as fuel sources or commercially important raw materials. Processes have been developed for the pyrolysis of plastic waste streams followed by catalytic depolymerization to produce a variety of products: gas, gasoline fractions, kerosene fractions, diesel fractions, and waxes.

[0006] Unfortunately, these processes are expensive and time-consuming due to the large amount of energy required to completely decompose the polyolefin waste into useful product classes. Furthermore, the reaction products themselves are unpredictable because side reactions occur under pyrolysis conditions, resulting in the formation of branched and aromatized products. The catalysts themselves also tend to be poisoned by impurities in the polymer feed.

[0007] Despite advances in polymer recycling, there is a continuing need to develop robust processes for converting plastics into useful petrochemical products that minimize the formation of branched and / or aromatized products. Summary of the Invention [Problem to be solved by the invention]

[0008] The present disclosure provides an improved method for thermally depolymerizing polyolefin-based materials. The improved method relies on thermally depolymerizing a feedstream with one or more polyolefins in the presence of styrene oligomers or polymers. Specifically, styrene oligomers or polymers, such as oligostyrenes and polystyrenes, are mixed with the polyolefin-based material in a depolymerization unit and heated in the absence of oxygen. The styrene oligomers or polymers initiate a radical depolymerization reaction with a faster depolymerization rate (shorter depolymerization half-life) than the depolymerization of polyolefin-based materials without the styrene oligomers or polymers. This radical depolymerization results in the formation of minimally branched or aromatized liquid products. The liquid products can then be used directly or further processed, such as by olefin cracking, to improve the feedstock.

[0009] The methods described herein can be used to process any polyolefin-based material, including post-industrial and post-consumer waste. Given the excessive burden on landfills and the potential for generating raw materials from waste, the processing of post-consumer polyolefin waste is particularly important. The methods described herein relate to processing post-consumer waste after it has been separated by a processing center in a landfill or other recycling center to separate polyolefin-based materials from other recyclable materials, such as glass, cellulose (paper), and polyethylene-based polymers. [Means for solving the problem]

[0010] The present disclosure includes any of the following embodiments in any combination.

[0011] A method for depolymerizing polyolefins includes adding a polyolefin feed stream and a styrene oligomer or polymer to a depolymerization unit heated to a predetermined temperature, and reacting the polyolefin feed stream with the styrene oligomer or polymer to depolymerize the polyolefin feed stream.

[0012] A method for depolymerizing polyolefins includes adding a polyolefin feed stream and a styrene oligomer to a depolymerization unit heated to a predetermined temperature, and reacting the polyolefin feed stream with the styrene oligomer to depolymerize the polyolefin feed stream.

[0013] A method for depolymerizing polyolefins includes adding a polyolefin feed stream and a styrene polymer to a depolymerization unit heated to a predetermined temperature, and reacting the polyolefin feed stream with the styrene polymer to depolymerize the polyolefin feed stream.

[0014] In any one of the methods described herein, the depolymerization rate of the polyolefin-based feed stream is at least 10% greater than the depolymerization rate of a polyolefin-based feed stream that does not contain styrene oligomers or polymers.

[0015] In any one of the methods described herein, the depolymerization onset temperature of the polyolefin-based feed stream is at least 5% lower than the depolymerization onset temperature of a polyolefin-based feed stream that does not contain styrene oligomers or polymers.

[0016] In any one of the methods described herein, the depolymerization half-life of the polyolefin-based feedstream is at least 30% less than the depolymerization half-life of a polyolefin-based feedstream that does not include styrene oligomers or polymers.

[0017] In any one of the methods described herein, the styrene oligomer is an oligostyrene.

[0018] In any one of the methods described herein, the styrene polymer is polystyrene.

[0019] In any one of the methods described herein, the styrene oligomers and polymers have an average molecular weight of from 500 Da to 20 kDa.

[0020] In any one of the methods described herein, the polyolefin-based feedstream is low density polyethylene, high density polyethylene, polypropylene, or a combination thereof.

[0021] In any one of the methods described herein, the polyolefin-based feedstream is post-consumer waste.

[0022] In any one of the methods described herein, the polyolefin-based feedstream is a post-industrial waste stream.

[0023] In any one of the methods described herein, the polyolefin-based feedstream comprises both post-industrial and post-consumer waste.

[0024] In any one of the methods described herein, the styrene polymer is post-consumer waste, post-industrial waste, or a combination thereof.

[0025] In any one of the methods described herein, the styrene oligomer is post-consumer waste, post-industrial waste, or a combination thereof.

[0026] In any one of the methods described herein, the concentration of the styrene oligomer or polymer is from greater than 0 wt% to about 20 wt%.

[0027] In any one of the methods described herein, the concentration of the styrene oligomer or polymer is from about 2.5 wt % to about 5 wt %.

[0028] In any one of the methods described herein, the predetermined temperature is from about 200°C to about 600°C.

[0029] A method for depolymerizing polyolefins, comprising: adding a polyolefin feed stream and a styrene oligomer or polymer to a depolymerization unit heated to a temperature of from about 200° C. to about 600° C.; and reacting the polyolefin feed stream with the styrene oligomer or polymer to depolymerize the polyolefin feed stream. In some embodiments, the depolymerization rate of the polyolefin feed stream is at least 10% higher than the depolymerization rate of a polyolefin feed stream that does not contain the styrene oligomer or polymer. Additionally, or alternatively, the depolymerization onset temperature of the polyolefin feed stream is 5% lower than the onset temperature of the polyolefin feed stream that does not contain the styrene oligomer or polymer.

[0030] This Summary is provided to introduce some concepts that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used as an aid in limiting the scope of the claimed subject matter.

[0031] definition As used herein, the term "depolymerization half time" or "half time of depolymerization" refers to the time required to achieve 50% mass loss of a sample at a particular temperature during a TGA pyrolysis reaction.

[0032] As used herein, "residence time" refers to the time required to depolymerize one batch of polymer waste in a depolymerization unit.

[0033] As used herein, "pyrolysis" refers to a pyrolytic polymerization reaction that occurs in the absence of oxygen.

[0034] As used herein, "post-consumer waste" refers to waste generated by the ultimate consumer of a material stream.

[0035] As used herein, "post-industrial waste" refers to waste generated during the manufacturing process of a product.

[0036] Unless otherwise specified, all concentrations herein are expressed as weight percent ("wt%").

[0037] As used herein, "oligomer" refers to a molecule consisting of a few (≦100) repeating units. As used herein, "polymer" refers to a molecule consisting of a large number (>100) repeating units. Both oligomers and polymers can be synthesized from one or more monomers.

[0038] The term "oligostyrene" refers to an oligomer containing repeat units derived exclusively from styrene monomers. The term "polystyrene" refers to a polymer containing repeat units derived exclusively from styrene monomers.

[0039] In the claims or specification, when used in conjunction with the word "comprises," the words "a" or "an" mean one or more, unless the context indicates otherwise.

[0040] The term "about" refers to the stated value plus or minus the margin of error of measurement, or plus or minus 10%.

[0041] The term "or" in the claims is used to mean "and / or" unless expressly specifying that only alternatives are referred to or that the alternatives are mutually exclusive.

[0042] The terms "comprise," "have," "include," and "contain" (and variations thereof) are open linking verbs that, when used in the claims, allow for the addition of other elements.

[0043] The phrase "consisting of" is closed and excludes all additional elements.

[0044] The phrase "consisting essentially of" excludes additional material elements, but allows for the inclusion of non-material elements that do not materially alter the essence of the invention.

[0045] The following abbreviations are used herein: [Table 1] DETAILED DESCRIPTION OF THE INVENTION

[0046] The present disclosure provides an improved method for recycling polyolefinic materials into commercially important feedstocks using styrene oligomers or polymers. Specifically, in a depolymerization unit, styrene oligomers or polymers are mixed with a polyolefinic feed stream containing at least one polyolefinic material. Upon heating the mixture, a pyrolysis reaction occurs in which the styrene oligomers or polymers cause the depolymerization of the polyolefinic material to produce useful liquid products having minimal branched or aromatized morphology.

[0047] There are many advantages to using styrene oligomers or polymers to improve the thermal depolymerization of polyolefins. As mentioned above, styrene oligomers or polymers are not catalysts in the recycling process. Rather, they act as initiators. More specifically, the double bonds (C=C) in the backbone of styrene oligomers or polymers undergo homolytic cleavage at low temperatures, thereby generating radicals stabilized by aromatic rings. These radicals then initiate chain reactions with polyolefins, thereby promoting the radical depolymerization of polyolefins in the feedstream. This limits isomerization reactions during depolymerization and results in a simpler mixture of reaction products similar to those from the same feedstream depolymerized in the absence of styrene oligomers and polymers. Therefore, the reaction products of a given polymer feedstream composition are readily predictable.

[0048] Another advantage of using styrene oligomers and polymers is that they are readily available as post-consumer and post-industrial waste, particularly in the form of expanded polystyrene foam (EPS). Over the past 15 years, the global EPS industry has devised a method for recovering an average of 19% post-consumer EPS and 25% post-industrial EPS, with the remaining waste being disposed of in landfills. The method of the present invention allows landfill-bound polystyrene to be easily combined with post-consumer and post-industrial polyolefin waste. As an example, polyolefin-based materials separated by processing centers at landfills or other recycling centers can be combined with Styrofoam cups and other polystyrene food containers in a depolymerization unit. Thus, not only are polyolefin-based materials depolymerized and recycled, but less polystyrene foam is also disposed of in landfills. Alternatively, "virgin" polystyrene or other styrene oligomers and polymers can be specially produced for use in the method.

[0049] Finally, styrene oligomers and polymers are more robust than other conventional depolymerization catalysts because they are less susceptible to "poisons" in the polymer feedstream, allowing for a wider range of polyolefin feed compositions than other depolymerization methods.

[0050] The addition of styrene oligomers and polymers over a wide range of weight percentages can improve the depolymerization rate of polyolefins. In some embodiments, the styrene oligomers and polymers are present in concentrations of greater than 0 wt% to about 50 wt% of the feed stream. Alternatively, the styrene oligomers and polymers are present in concentrations of greater than 0 wt% to about 30 wt%, about 2.5 wt% to about 10 wt%, about 5 wt% to about 20 wt%, about 15 wt% to about 30 wt%, about 25 wt% to about 50 wt%, or about 35 wt% to about 50 wt%. In other embodiments, the styrene oligomers and polymers are present in concentrations of 2.5 wt%, 5 wt%, 10 wt%, 15 wt%, or 20 wt%.

[0051] The styrene oligomers and polymers can have an average molecular weight of 500 Da to 20 kDa. In some embodiments, the added styrene component has only styrene repeat units, such as, for example, oligostyrenes and polystyrenes. In some embodiments, the added styrene component has one or more repeat units other than styrene. In other embodiments, the added styrene component is an oligostyrene having from 10 to about 80 repeat units. Alternatively, the oligostyrene has from 10 to about 50 repeat units. Alternatively, the oligostyrene has from 40 to about 80 repeat units.

[0052] The presently described method is applicable to feedstreams containing materials having a single polyolefin component or a mixture of polyolefin components in any amount. A wide variety of polyolefins can be present in the feedstream, including, but not limited to, polyethylene (high- and low-density), polypropylene, ethylene-propylene copolymers, polybutene-1, polyisobutene, and copolymers thereof. Furthermore, the waste is not limited to any particular form; films, foams, textiles, or other molding materials can be processed in this manner. The feed can include post-consumer polyolefin waste, post-industrial polyolefin waste, or both post-industrial and post-consumer polyolefin waste.

[0053] The polyolefin-based material in combination with styrene oligomers and polymers is processed in a depolymerization unit having an operating temperature of about 200° C. to about 600° C. Alternatively, the operating temperature of the depolymerization unit is about 225° C. to about 500° C. In yet another alternative, the operating temperature of the depolymerization unit is about 250° C. to about 450° C., or about 400° C.

[0054] In the depolymerization unit, the polyolefin feed stream is batch-processed, taking into account the residence time required for complete depolymerization. Depending on the thermal conductivity of the depolymerization unit and the amount of styrene oligomer or polymer, the estimated residence time per batch is about 30 minutes to about 180 minutes. Alternatively, the estimated residence time is about 60 minutes.

[0055] Under the above reaction conditions, batches containing even small amounts (less than 5 wt%) of styrene oligomers and polymers are expected to have a depolymerization half-life that is at least 30% lower than polyolefin batches without added styrene oligomers and polymers. In some examples, the depolymerization half-life is reduced by at least 40%. At higher amounts of styrene oligomers and polymers (about 10 wt% to about 20 wt%), the depolymerization half-life is reduced by at least 59%, depending on the polyolefin content.

[0056] Thus, the depolymerization methods of the present disclosure allow for the rapid depolymerization of polyolefinic materials into predictable liquid products with minimal branched or aromatized morphology. The liquid products can then be used directly or further processed to improve the quality of the product stream. These methods also reduce the amount of styrene oligomer and polymer waste in landfills.

[0057] Example The following examples are included to illustrate embodiments of the appended claims that utilize the above-described method for depolymerizing polyolefins. These examples are for illustrative purposes and are not intended to unduly limit the scope of the appended claims. Those skilled in the art will appreciate that various modifications can be made to the specific embodiments disclosed while still achieving the same or similar results without departing from the spirit and scope of the disclosure herein. The following examples should in no way be construed as limiting or defining the scope of the appended claims.

[0058] TGA depolymerization A series of single-component polyolefin feedstreams were treated using thermogravimetric analysis (TGA) as a depolymerization unit to investigate the effect of polystyrene as a depolymerization initiator. The feed consisted of high-density polyethylene (grade ACP9255, LyondellBasell) or polypropylene (grade Moplen HP522H, LyondellBasell). Homogeneous samples were prepared by melt-mixing 10 g of polyolefin feedstock with varying amounts of polystyrene (PS 3010-01, Sigma-Aldrich) in a HAAK MiniCTW mixer at 200 °C and 200 RPM for 5 minutes.

[0059] For TGA pyrolysis reactions, prepared samples were heated under nitrogen in a Mettler Toledo TGA / DSC 3+ (Mettler Toledo, Columbus, OH) at 10 K / min to the desired depolymerization temperature and held for 1 h. In these examples, a depolymerization temperature of 400 °C was used. The depolymerization half-life (defined as the time required for a 50% mass loss) at a particular temperature was either recorded directly if this value was less than 60 min, or determined under the assumption of first-order decomposition kinetics according to t = 0.693 / k, where k is the first-order rate constant, versus time, and determined graphically.

[0060] The depolymerization half-life is relative to the residence time required in a large-scale depolymerization unit. The shorter the half-life, the shorter the residence time of the polymer feed batch in the depolymerization unit and the higher the depolymerization rate.

[0061] The catalytic activity of polystyrene on HDPE is shown in Table 1. Comparative Example 1 was depolymerized in the absence of polystyrene. The depolymerization half-life for Comparative Example 1 was 347 minutes at 400°C. The addition of polystyrene reduced the half-life of this HDPE feed. Even at low polystyrene concentrations (≦5%), a significant reduction in the depolymerization half-life was observed. A 40% reduction in the half-life was observed at polystyrene concentrations as low as 2.5%. At a polystyrene concentration of 20%, the half-life was reduced by approximately 82%. This demonstrates that the addition of even small amounts of polystyrene can reduce the residence time required to completely depolymerize HDPE into useful petrochemical products. [Table 2]

[0062] A similar decrease in depolymerization half-life is observed when polyolefins are converted to PP (with a corresponding increase in depolymerization rate). As shown in Table 2, even at low polystyrene concentrations (≤5%), a significant decrease in the depolymerization half-life of PP was observed. At a polystyrene concentration of 20%, the depolymerization half-life decreased by approximately 62%. This is lower than the decrease observed for the HDPE stream, but the decrease in half-life for the PP stream with 20 wt% polystyrene is faster than that of Comparative Example 2. [Table 3]

[0063] Polystyrene can show improved depolymerization rates for a variety of polyolefins from 2.5% to 20% concentration, which means it reduces the time required to depolymerize these compounds in larger scale reactors.

[0064] Polystyrene concentrations above 20% also reduce the depolymerization rate of HDPE and PP. However, this benefit is offset by the production of more aromatic products, namely styrene, in the resulting reaction product. The presence of aromatic products impacts the quality of the resulting feedstock. Therefore, depending on the end use of the reaction product, an additional step to hydrogenate the reaction product may be required.

[0065] Although the examples are illustrated using polystyrene, other styrene polymers can also be used. Additionally, styrene oligomers having from a few to 100 repeat units, such as oligostyrenes, can also reduce the depolymerization rate of the polyolefin feed.

[0066] The presently described methods that use styrene oligomers or polymers for the depolymerization of polyolefin streams can offer lower energy efficiency (i.e., better cost effectiveness) when compared to methods that do not use styrene oligomers or polymers.

[0067] This application claims priority to U.S. Provisional Patent Application No. 63 / 089,706, filed under the Patent Cooperation Treaty and filed October 9, 2020, the entire contents of which are incorporated herein by reference.

[0068] Federally funded research report Not applicable.

[0069] See microfiche appendix Not applicable.

Claims

1. a) adding a polyolefin feedstream and a styrene oligomer or polymer to a depolymerization unit heated to a temperature of from about 200°C to about 600°C; b) reacting said polyolefinic feed stream with said styrene oligomer or said styrene polymer to depolymerize said polyolefinic feed stream.

2. 10. The method of claim 1, wherein the polyolefin-based feedstream is combined with the styrene oligomers.

3. 3. The method of claim 2, wherein the styrene oligomer is an oligostyrene.

4. 10. The method of claim 1, wherein the polyolefinic feedstream is combined with the styrene polymer.

5. The method of claim 4 wherein the styrene polymer is polystyrene.

6. 10. The method of claim 1, wherein the polyolefin-based feed stream is low density polyethylene, high density polyethylene, polypropylene, or a combination thereof.

7. 10. The method of claim 1, wherein the polyolefin-based feedstream is a post-consumer waste stream.

8. 10. The method of claim 1, wherein the polyolefin-based feedstream is a post-industrial waste stream.

9. 10. The method of claim 1, wherein the polyolefin-based feedstream comprises both post-industrial and post-consumer waste.

10. 6. The method of claim 5, wherein the polystyrene is post-consumer waste, post-industrial waste, or a combination thereof.

11. 10. The method of claim 1, wherein the concentration of the styrene oligomer or the styrene polymer is from greater than 0 wt % to about 20 wt %.

12. 12. The method of claim 11, wherein the concentration of the styrene oligomer or the styrene polymer is from about 2.5 wt % to about 5 wt %.

Citation Information

Patent Citations

  • Depolymerization of plastic materials

    WO2012061236A2

  • Recycling method for styrene-containing plastic waste

    WO2018224482A1

  • Hot-melt formulations utilizing depolymerized polymeric material

    WO2019195915A1