Methods for decomposing contaminated plastic waste
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2026-03-24
AI Technical Summary
Current methods for treating contaminated plastic waste are inefficient, uneconomical, and environmentally harmful, with less than 15% of plastic being recycled due to high resource and labor intensity, and existing bioremediation methods are expensive and difficult to scale, failing to produce economically valuable products.
A method involving the decomposition of contaminated plastic waste in a reaction vessel with an oxidizing agent and catalyst under controlled temperature, pressure, and residence time, producing decomposition products such as dicarboxylic acids and esters, which can be further processed to create value-added products.
The method effectively decomposes plastic waste into valuable chemical products like succinic acid and its esters, overcoming the limitations of existing methods by providing an economically viable and scalable solution.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to the field of decomposition of contaminated plastic waste. More specifically, the present invention comprises methods and systems for decomposing contaminated plastic waste and converting it into value-added products. [Background technology]
[0002] background All publications in this specification are incorporated by reference to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference. The following description contains information that may be useful in understanding the present invention. It is not an admission that the information provided herein is prior art or relevant to the present invention, or that any publication specifically or implicitly referenced is prior art.
[0003] Plastic pollution is a global environmental crisis for many reasons. Plastics are designed to be durable, not degradable. Those designed to be biodegradable present drawbacks, such as high production costs and performance issues, which make them challenging to produce or use on a large scale. Furthermore, the existence of a wide variety of plastic polymers increases public confusion about what can be recycled. Plastic consumerism is inevitable and continues to expand. Not only is existing plastic pollution pervasive and ubiquitous, but new plastic waste is being generated at an alarming rate. This global plastic waste surplus harms the environment and contaminates the food chain.
[0004] A common component of municipal waste streams and marine debris is contaminated plastic or contaminated plastic waste. Current methods for treating contaminated plastic or contaminated plastic waste include pyrolysis, incineration, landfill disposal, and mechanical recycling after extensive cleaning. Pyrolysis of plastic is energy intensive, and the fuels produced are low-grade and require expensive refining steps to convert them into useful chemicals. This is not economically feasible. Incineration of plastic requires a large upfront investment to establish, requires significant power and maintenance, and, like landfill disposal of plastic, has harmful environmental consequences. These expensive methods pollute the environment and do not utilize contaminated plastic waste material that can be used as raw feedstock for new products. Nearly all contaminated plastic waste after post-consumer and industrial uses is collected at material recovery facilities, where it may become further contaminated. Mechanical recycling is not economically viable due to the resource- and labor-intensive nature of cleaning contaminated plastic or contaminated plastic waste.
[0005] Less than 15% of the plastic produced worldwide is recycled because the process is uneconomical. As much as 50% of the contents of recycling bins in the United States are thought to be contaminated and are typically discarded through conventional recycling processes. Although plastic is the most abundant material in the waste collection stream, with the exception of water bottles and milk jugs, most plastics have few or no viable downstream markets, making them the least preferred material for recycling. In 2014, the EPA calculated that the amount of plastic film that was not recycled was 3.6 million tons. Since then, the widespread adoption of food delivery and online shopping has led to an increase in the amount of packaging plastics in waste treatment plants.
[0006] Although much research has been done on the bioremediation of plastic pollution, biological methods alone are expensive, inefficient and difficult to scale, and techniques, including ex vivo cellular degradation or digestion by insect larvae, have yet to link plastic waste treatment with the production of economically value-added products.
[0007] Therefore, there is a need in the art for methods and systems that allow for the decomposition of contaminated plastic waste that overcome the limitations of known methods. Summary of the Invention
[0008] The following embodiments and aspects thereof are described and illustrated in the context of systems, compositions, methods, and articles of manufacture that are intended to be exemplary and illustrative, not limiting in scope.
[0009] In various embodiments, the present invention provides a method for decomposing contaminated plastic waste, the method comprising the steps of: adding the contaminated plastic waste to a reaction vessel; adding at least one oxidizing agent to the reaction vessel; and subjecting the contaminated plastic waste to conditions effective to decompose the contaminated plastic waste to produce a decomposition mixture.
[0010] In some embodiments, the methods of the present invention further comprise adding at least one solid catalyst to the reaction vessel.
[0011] In some embodiments, the conditions include a temperature range; an initial pressure range of the gas; and a residence time within the reaction vessel.
[0012] In some embodiments, the contaminated plastic waste comprises at least one plastic material and at least one non-plastic material.
[0013] In some embodiments, the plastic material comprises at least one selected from the group consisting of plastic film, plastic foam, plastic packaging, plastic bags, plastic wrap, and combinations thereof.
[0014] In some embodiments, the plastic material comprises polyethylene.
[0015] In some embodiments, the plastic material comprises at least one selected from the group consisting of very low density polyethylene, low density polyethylene, linear low density polyethylene, medium density polyethylene, cross-linked polyethylene, high density polyethylene, high density cross-linked polyethylene, high molecular weight polyethylene, ultra low molecular weight polyethylene, ultra high molecular weight polyethylene, and combinations thereof.
[0016] In some embodiments, the non-plastic material comprises at least one selected from the group consisting of a non-plastic organic material, an inorganic material, a fluid, and combinations thereof.
[0017] In some embodiments, the methods of the present invention further comprise separating the decomposition mixture into a solid phase and a liquid phase.
[0018] In some embodiments, the solid phase comprises at least one selected from the group consisting of an oligomer, a polymer, and combinations thereof.
[0019] In some embodiments, the solid phase further comprises at least one solid catalyst.
[0020] In some embodiments, the liquid phase comprises at least one compound containing at least one carboxyl group.
[0021] In some embodiments, the at least one compound containing at least one carboxyl group is at least one organic acid.
[0022] In some embodiments, the method of the present invention further comprises converting said at least one organic acid to at least one corresponding ester.
[0023] In some embodiments, the at least one organic acid is at least one selected from the group consisting of a monocarboxylic acid, a dicarboxylic acid, a polycarboxylic acid, and combinations thereof.
[0024] In some embodiments, the at least one organic acid is an α,ω-dicarboxylic acid.
[0025] In some embodiments, the at least one organic acid is selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, and combinations thereof.
[0026] In some embodiments, the method further comprises separating said at least one organic acid.
[0027] In some embodiments, the method of the present invention further comprises the step of isolating said at least one corresponding ester.
[0028] In some embodiments, the at least one solid catalyst is selected from the group consisting of zeolites, aluminas, silicoaluminophosphates, sulfated zirconia, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, iron carbonate, calcium carbide, and combinations thereof.
[0029] In some embodiments, the at least one oxidizing agent is selected from the group consisting of oxygen (O), nitric oxide (NO), nitrous oxide (NO), nitrogen dioxide (NO), nitric acid (HNO), aqueous nitric acid (HNO), and combinations thereof.
[0030] In some embodiments, the temperature range is 60°C to 200°C.
[0031] In some embodiments, the gas is at least one selected from the group consisting of air, nitrogen (N2), oxygen (O2), and combinations thereof.
[0032] In some embodiments, the initial pressure of the gas is between 0 psi and 1000 psi.
[0033] In some embodiments, the residence time in the reaction vessel is one selected from the group consisting of 30 minutes to 30 hours, less than 30 minutes, and more than 30 hours.
[0034] In some embodiments, the method further comprises feeding the oligomer, polymer, and combinations thereof back into the reactor.
[0035] In some embodiments, the liquid phase further comprises said at least one oxidizing agent.
[0036] In some embodiments, the methods of the present invention further comprise collecting and regenerating said at least one oxidizing agent.
[0037] In some embodiments, the at least one corresponding ester is selected from the group consisting of dimethyl succinate, dimethyl glutarate, dimethyl adipate, dimethyl pimelate, dimethyl suberate, dimethyl azelaate, dimethyl sebacate, dimethyl undecanedioate, dimethyl dodecanedioate, and combinations thereof.
[0038] Some embodiments described herein relate to compositions comprising succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or salts or esters thereof; and at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof.
[0039] In some embodiments, succinic acid is present in an amount of about 5 to about 18 wt%, glutaric acid is present in an amount of about 8 to about 28 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 8 to about 13 wt%, or equivalent amounts of salts or esters thereof; and oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of about 1 to about 8 wt%, dodecanedioic acid, if present, is present up to about 5 wt%, tridecanedioic acid, if present, is present up to about 4 wt%, and tetradecanedioic acid, if present, is present up to about 2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.4 wt %, or the equivalent amount of a salt or ester thereof.
[0040] In some embodiments, succinic acid is present in an amount of about 10 to about 11 wt%, glutaric acid is present in an amount of about 15 to about 18 wt%, adipic acid is present in an amount of about 16 to about 18 wt%, pimelic acid is present in an amount of about 15 to about 17 wt%, and azelaic acid is present in an amount of about 10 to about 12 wt%, or equivalent amounts of salts or esters thereof; and oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of about 1 to about 3 wt%, and tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%. % by weight, tetradecanedioic acid, if present, being present up to about 0.2 wt%, and pentadecanedioic acid, if present, being present up to about 0.2 wt%, or equivalent amounts of their salts or esters.
[0041] In some embodiments, succinic acid is present in an amount of about 5 to about 40 wt%, glutaric acid is present in an amount of about 8 to about 27 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 1 to about 13 wt%, or equivalent amounts of salts or esters thereof; and oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, and tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.4 wt %, or the equivalent amount of a salt or ester thereof.
[0042] In some embodiments, the composition may further comprise at least one of nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, the dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0043] Some embodiments described herein include succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or salts or esters thereof, and at least one C-C substituted with a single nitro group. 20 The present invention relates to a composition comprising a dicarboxylic acid, or a salt or ester thereof.
[0044] In some embodiments, C-C substituted with a single nitro group 20 The dicarboxylic acid may be nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, and nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, C8-C 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0045] In some embodiments, the at least one C-C substituted with a single nitro group. 20 The dicarboxylic acid may be present in the composition at up to 1 wt%.
[0046] In some embodiments, the composition may further comprise at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof.
[0047] In some embodiments, succinic acid may be present in an amount of about 5 to about 18 wt%, glutaric acid is present in an amount of about 8 to about 28 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 8 to about 13 wt%, or equivalent amounts of salts or esters thereof; and oxalic acid, if present, may be present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of about 1 to about 8 wt%, dodecanedioic acid, if present, is present up to about 5 wt%, tridecanedioic acid, if present, is present up to about 4 wt%, and tetradecanedioic acid, if present, is present up to about 2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.4 wt %, or the equivalent amount of a salt or ester thereof.
[0048] In some embodiments, succinic acid is present in an amount of about 10 to about 11 wt%, glutaric acid is present in an amount of about 15 to about 18 wt%, adipic acid is present in an amount of about 16 to about 18 wt%, pimelic acid is present in an amount of about 15 to about 17 wt%, and azelaic acid is present in an amount of about 10 to about 12 wt%, or equivalent amounts of salts or esters thereof; and oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of about 1 to about 3 wt%, and tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%. % by weight, tetradecanedioic acid, if present, being present up to about 0.2 wt%, and pentadecanedioic acid, if present, being present up to about 0.2 wt%, or equivalent amounts of their salts or esters.
[0049] In some embodiments, succinic acid is present in an amount of about 5 to about 40 wt%, glutaric acid is present in an amount of about 8 to about 27 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 1 to about 13 wt%, or an equivalent amount of a salt or ester thereof; and oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, and tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.4 wt %, or the equivalent amount of a salt or ester thereof.
[0050] In some embodiments, the acid may be at least partially in the form of an alkali metal salt.
[0051] In some embodiments, the acid may be at least partially in the form of an ester.
[0052] In some embodiments, the ester is C 1~4 It may also be an alkyl ester.
[0053] In some embodiments, the acid may be in the free acid form.
[0054] Some embodiments described herein relate to a method for decomposing plastic waste, the method comprising: a. adding plastic waste to a reaction vessel; b. adding an aqueous solution of nitric acid (HNO) to the reaction vessel to provide a mixture, wherein the weight ratio of the plastic waste to the aqueous solution of nitric acid is greater than 1:3; and c. subjecting the mixture obtained in b. to conditions effective to decompose the plastic waste to produce decomposition products, wherein the decomposition products comprise succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, and at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid.
[0055] Some embodiments described herein relate to a method for decomposing plastic waste, the method comprising: a. adding plastic waste to a reaction vessel; b. adding an aqueous solution of nitric acid (HNO) to the reaction vessel to provide a mixture, wherein the weight ratio of the plastic waste to the aqueous solution of nitric acid is greater than 1:3; and c. subjecting the mixture obtained in b. to conditions effective to decompose the plastic waste to produce degradation products, wherein the degradation products are succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, and C8-C hydroxybenzoates substituted with a single nitro group. 20 and at least one of a dicarboxylic acid, or a salt or ester thereof.
[0056] In some embodiments, the at least one C-C substituted with a single nitro group. 20The dicarboxylic acid may be nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, the C8-C 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0057] In some embodiments, the at least one C-C substituted with a single nitro group. 20 The dicarboxylic acid may be present in the composition at up to 1 wt%.
[0058] In some embodiments, the plastic waste may include polyethylene.
[0059] In some embodiments, the plastic waste further comprises at least one non-plastic waste.
[0060] In some embodiments, the nitric acid may have a concentration of 10-90 wt%.
[0061] In some embodiments, the nitric acid may have a concentration of about 67 to about 70 wt %.
[0062] In some embodiments, the weight ratio of plastic waste to nitric acid may be 1:10 to 1:100.
[0063] In some embodiments, the method for decomposing plastic waste may further comprise adding at least one solid catalyst to the reaction vessel.
[0064] In some embodiments, the at least one solid catalyst may be a zeolite, alumina, silicoaluminophosphate, sulfated zirconia, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, iron carbonate, calcium carbide, or a combination thereof.
[0065] In some embodiments, the effective conditions may include a temperature range of about 60°C to about 200°C.
[0066] In some embodiments, the effective conditions may include a batch process having a residence time in the reaction vessel of from about 1 hour to about 10 hours.
[0067] In some embodiments, the effective conditions may include a batch process having a residence time in the reaction vessel of about 3 hours to about 6 hours.
[0068] In some embodiments, the effective conditions may comprise a continuous process.
[0069] In some embodiments, the continuous process may include the continuous addition of plastic waste and aqueous nitric acid to a reaction vessel and the continuous removal of decomposition products. In some embodiments, the plastic waste and aqueous nitric acid are continuously added to the reaction vessel through a screw conveyor. In some embodiments, the decomposition products are continuously removed from the reaction vessel through a screw conveyor.
[0070] In some embodiments, the degradation products include succinic acid present in an amount of about 5 to about 18 wt%, glutaric acid present in an amount of about 8 to about 28 wt%, adipic acid present in an amount of about 10 to about 29 wt%, pimelic acid present in an amount of about 10 to about 20 wt%, and azelaic acid present in an amount of about 8 to about 13 wt%; and wherein oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of about 1 to about 8 wt%, dodecanedioic acid, if present, is present up to about 5 wt%, tridecanedioic acid, if present, is present up to about 4 wt%, and tetradecanedioic acid, if present, is present up to about 2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.4 wt%.
[0071] In some embodiments, the degradation products may include succinic acid present in an amount of about 10 to about 11 wt%, glutaric acid present in an amount of about 15 to about 18 wt%, adipic acid present in an amount of about 16 to about 18 wt%, pimelic acid present in an amount of about 15 to about 17 wt%, and azelaic acid present in an amount of about 10 to about 12 wt%; and wherein oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of 1 to 3 wt%, tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%, and tetradecanedioic acid, if present, is present in an amount up to about 0.2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.2 wt%.
[0072] In some embodiments, succinic acid is present in an amount of about 5 to about 40 wt%, glutaric acid is present in an amount of about 8 to about 27 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 1 to about 13 wt%, or an equivalent amount of a salt or ester thereof; and oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, and tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%. % by weight, and pentadecanedioic acid, if present, is present up to about 0.4 wt %, or the equivalent amount of a salt or ester thereof.
[0073] In some embodiments, the effective conditions further comprise the presence of a zeolite catalyst.
[0074] In some embodiments, the methods of the present invention further comprise isolating the degradation products. In some embodiments, the degradation products may be isolated by removing insoluble products. In some embodiments, the removal of insoluble products is performed by filtration.
[0075] In some embodiments, the method of the present invention may further comprise evaporation of the solvent. In some embodiments, the solvent may comprise nitric acid.
[0076] Some embodiments described herein relate to a method for decomposing polyethylene, the method comprising the steps of: reacting polyethylene with an oxidant in a reactor to produce a reaction product and a reaction gas; feeding the reaction gas to an absorption unit to recover the oxidant from the reaction gas; and recycling the oxidant from the absorption unit to the reactor.
[0077] In some embodiments, the oxidizing agent may be nitric acid.
[0078] In some embodiments, the reaction product may include a dicarboxylic acid.
[0079] In some embodiments, the reaction products may include succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or salts or esters thereof; and at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof.
[0080] In some embodiments, the reaction product may comprise at least one of 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0081] In some embodiments, the reaction products are succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid; and C-C substituted with a single nitro group. 20 and at least one of a dicarboxylic acid, or a salt or ester thereof.
[0082] In some embodiments, C-C substituted with a single nitro group 20The dicarboxylic acid may be nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, the C8-C 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0083] In some embodiments, the method of the present invention may further comprise reacting the polyethylene and the oxidizing agent with a catalyst selected from the group consisting of hydrochloric acid, hydrobromic acid, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, zeolite, alumina, silicoaluminophosphate, iron carbonate, calcium carbide, sulfated zirconia, and combinations thereof.
[0084] In some embodiments, the method may further comprise separating the reaction products from the oxidant in a separation unit. In some embodiments, the method may further comprise recycling the oxidant recovered from the separation unit to the reactor. In some embodiments, the method may further comprise concentrating the oxidant recovered from the separation unit prior to recycling the oxidant to the reactor.
[0085] In some embodiments, the method of the present invention may further comprise mixing the reactant gas with air, enriched air, or oxygen prior to feeding the reactant gas to the absorption unit.
[0086] In some embodiments, the polyethylene and oxidizing agent may be reacted in a reactor at a temperature of from about 60°C to about 200°C.
[0087] In some embodiments, the ratio of the mass of polyethylene to the mass of oxidant in the reactor may be 1:3 to 1:100. In some embodiments, the ratio of the mass of polyethylene to the mass of oxidant in the reactor may be 1:10 to 1:100.
[0088] Some embodiments described herein relate to a system for decomposing polyethylene, including a reactor configured to react polyethylene with an oxidant to produce reaction products and a reaction gas; an absorption unit configured to recover the oxidant from the reaction gas and return the oxidant to the reactor; and a separation unit configured to separate the reaction products from the oxidant.
[0089] In some embodiments, the separation unit may include an evaporator, which may be a wiped-film evaporator, a falling film evaporator, a forced circulation evaporator, or a flash evaporator.
[0090] In some embodiments, the separation unit may further comprise an oxidant harvester.
[0091] In some embodiments, the oxidant harvester may be selected from the group of a chromatography column, a crystallizer, a liquid-liquid extractor, and a Nutsche filter dryer.
[0092] In some embodiments, the separation unit may further include a dryer.
[0093] In some embodiments, the reactor may comprise a stirred tank reactor.
[0094] In some embodiments, the reactor may include chopping blades configured to blend and break down the polyethylene.
[0095] In some embodiments, the reactor may include a screw conveyor configured to convey the polyethylene into or through the reactor.
[0096] In some embodiments, the separation unit may be configured to recycle the separated oxidant to the reactor.
[0097] In some embodiments, the system of the present invention may further include a distillation unit configured to concentrate the oxidant before recycling it from the absorption unit to the reactor.
[0098] In some embodiments, the systems of the present invention may further include a condenser for condensing reaction gases from the reactor. [The present invention 1001] (a) with succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or their salts or esters; (b) at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof; A composition comprising: [The present invention 1002] (a) succinic acid is present in an amount of about 5 to about 18 wt %, glutaric acid is present in an amount of about 8 to about 28 wt %, adipic acid is present in an amount of about 10 to about 29 wt %, pimelic acid is present in an amount of about 10 to about 20 wt %, and azelaic acid is present in an amount of about 8 to about 13 wt %, or equivalent amounts of salts or esters thereof; and (b) oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of from about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of from about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of from about 1 to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%, or equivalent amounts of salts or esters thereof; The composition of the present invention 1001. [The present invention 1003] (a) succinic acid is present in an amount of about 10 to about 11 wt %, glutaric acid is present in an amount of about 15 to about 18 wt %, adipic acid is present in an amount of about 16 to about 18 wt %, pimelic acid is present in an amount of about 15 to about 17 wt %, and azelaic acid is present in an amount of about 10 to about 12 wt %, or equivalent amounts of salts or esters thereof; and (b) oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of about 1 to about 3 wt%, tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%, tetradecanedioic acid, if present, is present up to about 0.2 wt%, and pentadecanedioic acid, if present, is present up to about 0.2 wt%, or equivalent amounts of salts or esters thereof; The composition of the present invention 1001. [The present invention 1004] (a) succinic acid is present in an amount of about 5 to about 40 wt %, glutaric acid is present in an amount of about 8 to about 27 wt %, adipic acid is present in an amount of about 10 to about 29 wt %, pimelic acid is present in an amount of about 10 to about 20 wt %, and azelaic acid is present in an amount of about 1 to about 13 wt %, or equivalent amounts of salts or esters thereof; and (b) oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%, or equivalent amounts of salts or esters thereof; The composition of the present invention 1001. [The present invention 1005] (c) at least one of 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid, or salts or esters thereof; Any of the compositions of 1001 to 1004 of the present invention, further comprising: [The present invention 1006] (a) with succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or their salts or esters; (b) at least one C8-C substituted with a single nitro group 20 dicarboxylic acids, or their salts or esters; A composition comprising: [The present invention 1007] at least one C8-C substituted with a single nitro group 20The dicarboxylic acid is (1) nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof; or (2) 2-nitro-suberin 1006. The composition of the present invention, wherein the acid is 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof. [The present invention 1008] at least one C8-C substituted with a single nitro group 20 The composition of any one of claims 1006 to 1007, wherein the dicarboxylic acid is present in the composition at up to 1 wt%. [The present invention 1009] (c) at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof; Any of the compositions of 1006 to 1008 of the present invention, further comprising: [The present invention 1010] (a) succinic acid is present in an amount of about 5 to about 18 wt %, glutaric acid is present in an amount of about 8 to about 28 wt %, adipic acid is present in an amount of about 10 to about 29 wt %, pimelic acid is present in an amount of about 10 to about 20 wt %, and azelaic acid is present in an amount of about 8 to about 13 wt %, or equivalent amounts of salts or esters thereof; and (c) oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of about 1 to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%, or equivalent amounts of salts or esters thereof; The composition of the present invention 1009. [The present invention 1011] (a) succinic acid is present in an amount of about 10 to about 11 wt %, glutaric acid is present in an amount of about 15 to about 18 wt %, adipic acid is present in an amount of about 16 to about 18 wt %, pimelic acid is present in an amount of about 15 to about 17 wt %, and azelaic acid is present in an amount of about 10 to about 12 wt %, or equivalent amounts of salts or esters thereof; and (c) oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of about 1 to about 3 wt%, tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%, tetradecanedioic acid, if present, is present up to about 0.2 wt%, and pentadecanedioic acid, if present, is present up to about 0.2 wt%, or equivalent amounts of salts or esters thereof; The composition of the present invention 1009. [The present invention 1012] (a) succinic acid is present in an amount of about 5 to about 40 wt %, glutaric acid is present in an amount of about 8 to about 27 wt %, adipic acid is present in an amount of about 10 to about 29 wt %, pimelic acid is present in an amount of about 10 to about 20 wt %, and azelaic acid is present in an amount of about 1 to about 13 wt %, or equivalent amounts of salts or esters thereof; and (c) oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%, or equivalent amounts of salts or esters thereof; The composition of the present invention 1009. [The present invention 1013] The composition of any one of claims 1001 to 1012, wherein the acid is at least partially in the form of an alkali metal salt. [The present invention 1014] The composition of any one of claims 1001 to 1012, wherein the acid is at least partially in the form of an ester. [The present invention 1015] Ester is C 1~4 The composition of the present invention 1014, which is an alkyl ester. [The present invention 1016] The composition of any one of claims 1001 to 1012, wherein the acid is in the form of a free acid. [The present invention 1017] 1. A method for decomposing plastic waste, comprising the steps of: (a) adding plastic waste to a reaction vessel; (b) adding an aqueous solution of nitric acid (HNO3) to the reaction vessel to provide a mixture, wherein the weight ratio of the plastic waste to the aqueous solution of nitric acid is greater than 1:3; (c) subjecting the mixture obtained in (b) to conditions effective to decompose the plastic waste to produce degradation products, wherein the degradation products comprise: (i) with succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid; (ii) at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid; Including, stages. [The present invention 1018] 1. A method for decomposing plastic waste, comprising the steps of: (a) adding plastic waste to a reaction vessel; (b) adding an aqueous solution of nitric acid (HNO3) to the reaction vessel to provide a mixture, wherein the weight ratio of the plastic waste to the aqueous solution of nitric acid is greater than 1:3; (c) subjecting the mixture obtained in (b) to conditions effective to decompose the plastic waste to produce degradation products, wherein the degradation products comprise: (i) with succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid; (ii) C8-C substituted with a single nitro group 20 and at least one of a dicarboxylic acid, or a salt or ester thereof; Including, stages. [The present invention 1019] at least one C8-C substituted with a single nitro group 20The dicarboxylic acid is (1) nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof; or (2) 2-nitro-suberic acid. 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane diacid, or a salt or ester thereof. [The present invention 1020] at least one C8-C substituted with a single nitro group 20 1018. The method of claim 1019, wherein the dicarboxylic acid is present in the composition at up to 1 wt%. [The present invention 1021] The method of any one of claims 1017 to 1020, wherein the plastic waste comprises polyethylene. [The present invention 1022] The method of any one of claims 1017 to 1021, wherein the plastic waste further comprises at least one non-plastic waste. [The present invention 1023] The method of any one of claims 1017 to 1022, wherein the nitric acid has a concentration of 10 to 90 wt%. [The present invention 1024] 1023. The method of any one of claims 1017 to 1022, wherein the nitric acid has a concentration of about 67 to about 70 wt%. [The present invention 1025] The method of any one of claims 1017 to 1024, wherein the weight ratio of the plastic waste to nitric acid is 1:10 to 1:100. [The present invention 1026] The method of any of claims 1017 to 1025, further comprising adding at least one solid catalyst to the reaction vessel. [The present invention 1027] 1026. The process of claim 1026, wherein said at least one solid catalyst is a zeolite, alumina, silicoaluminophosphate, sulfated zirconia, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, iron carbonate, calcium carbide, or a combination thereof. [The present invention 1028] 1028. The method of any one of claims 1017 to 1027, wherein the effective conditions include a temperature range of about 60°C to about 200°C. [The present invention 1029] 1029. The method of any one of claims 1017 to 1028, wherein the effective conditions include an initial pressure of 0 to 1000 psi. [The present invention 1030] 1029. The method of any of claims 1017 to 1029, wherein said effective conditions comprise a batch process in which the residence time in the reaction vessel is from about 1 hour to about 10 hours. [The present invention 1031] 1029. The method of any of claims 1017 to 1029, wherein said effective conditions comprise a batch process in which the residence time in the reaction vessel is from about 3 hours to about 6 hours. [The present invention 1032] 1029. The method of any one of claims 1017 to 1029, wherein said effective conditions comprise a continuous process. [The present invention 1033] 1032. The method of claim 1032, wherein the continuous process comprises continuous addition of plastic waste and aqueous nitric acid to a reaction vessel and continuous removal of decomposition products. [The present invention 1034] The degradation products are (a) succinic acid is present in an amount of about 5 to about 18 wt %, glutaric acid is present in an amount of about 8 to about 28 wt %, adipic acid is present in an amount of about 10 to about 29 wt %, pimelic acid is present in an amount of about 10 to about 20 wt %, and azelaic acid is present in an amount of about 8 to about 13 wt %; and (b) oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of from about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of from about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of from about 1 to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%. Any of the methods of claims 1017 to 1033 of the present invention, comprising: [This invention 1035] The degradation products are (a) succinic acid is present in an amount of about 10 to about 11 wt %, glutaric acid is present in an amount of about 15 to about 18 wt %, adipic acid is present in an amount of about 16 to about 18 wt %, pimelic acid is present in an amount of about 15 to about 17 wt %, and azelaic acid is present in an amount of about 10 to about 12 wt %; and (b) oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of 1 to 3 wt%, tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%, tetradecanedioic acid, if present, is present up to about 0.2 wt%, and pentadecanedioic acid, if present, is present up to about 0.2 wt%. Any of the methods of claims 1017 to 1033 of the present invention, comprising: [The present invention 1036] (a) succinic acid is present in an amount of about 5 to about 40 wt %, glutaric acid is present in an amount of about 8 to about 27 wt %, adipic acid is present in an amount of about 10 to about 29 wt %, pimelic acid is present in an amount of about 10 to about 20 wt %, and azelaic acid is present in an amount of about 1 to about 13 wt %, or equivalent amounts of salts or esters thereof; and (b) oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%, or equivalent amounts of salts or esters thereof; Any of the methods of the present invention 1017 to 1033. [This invention 1037] The method of any one of claims 1017 to 1036, wherein the effective conditions further comprise the presence of a zeolite catalyst. [The present invention 1038] The method of any one of claims 1017 to 1037, further comprising a step of isolating the degradation product. [This invention 1039] The method of claim 1038, wherein the degradation products are isolated by removal of insoluble products. [The present invention 1040] The process of claim 1039, wherein the removal of insoluble products is accomplished by filtration. [The present invention 1041] The method of any one of claims 1037 to 1040, further comprising evaporating the solvent. [The present invention 1042] 1041. The process of claim 1041, wherein the solvent comprises nitric acid. [This invention 1043] 1. A method for degrading polyethylene, comprising the steps of: reacting the polyethylene with an oxidizing agent in a reactor to produce reaction products and a reaction gas; feeding the reaction gas to an absorption unit to recover the oxidant from the reaction gas; and recycling the oxidant from the absorption unit to the reactor. [This invention 1044] The method of claim 1043, wherein the oxidizing agent is nitric acid. [This invention 1045] The process of any one of claims 1043 to 1044, wherein the reaction product comprises a dicarboxylic acid. [The present invention 1046] The reaction product is (a) with succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or their salts or esters; (b) at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof; Any of the methods of 1043 to 1045 of the present invention, comprising: [This invention 1047] The reaction product is (c) at least one of 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid, or salts or esters thereof; Any of the methods of claims 1043 to 1046, further comprising: [This invention 1048] The reaction product is (a) with succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid; (b) C8-C substituted with a single nitro group 20 and at least one of a dicarboxylic acid, or a salt or ester thereof; Any of the methods of 1043 to 1047 of the present invention, comprising: [This invention 1049] C8-C substituted with a single nitro group 20The dicarboxylic acid is (1) nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof; or (2) 2-nitro-suberic acid. 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane diacid, or a salt or ester thereof. [The present invention 1050] The process of any of claims 1043 to 1049, further comprising reacting the polyethylene and oxidizing agent with a catalyst selected from the group consisting of hydrochloric acid, hydrobromic acid, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, zeolite, alumina, silicoaluminophosphate, iron carbonate, calcium carbide, sulfated zirconia, and combinations thereof. [This invention 1051] The method of any of claims 1043 to 1050, further comprising separating the reaction product from the oxidant in a separation unit. [This invention 1052] The process of claim 1051, further comprising recycling the oxidant recovered from the separation unit to the reactor. [This invention 1053] The process of claim 1052, further comprising concentrating the oxidant recovered from the separation unit prior to recycling the oxidant to the reactor. [This invention 1054] The method of any one of claims 1043 to 1053, further comprising mixing the reaction gas with air, enriched air, or oxygen prior to the step of supplying the reaction gas to the absorption unit. [This invention 1055] The process of any of claims 1043 to 1054, wherein the polyethylene and the oxidizing agent are reacted at a temperature of from about 60°C to about 200°C in a reactor containing an initial pressure of from 0 to 1000 psi. [This invention 1056] The process of any one of claims 1043 to 1055, wherein the ratio of the mass of polyethylene to the mass of the oxidizing agent in the reactor is 1:3 to 1:100. [This invention 1057] The process of any one of claims 1043 to 1056, wherein the ratio of the mass of polyethylene to the mass of the oxidizing agent in the reactor is 1:10 to 1:100. [This invention 1058] a reactor configured to react the polyethylene with the oxidant to produce reaction products and reaction gases; an absorption unit configured to recover the oxidant from the reaction gas and return the oxidant to the reactor; a separation unit configured to separate the reaction product from the oxidant; 1. A system for decomposing polyethylene, comprising: [This invention 1059] The system of claim 1058, wherein the separation unit includes an evaporator. [The present invention 1060] The system of the present invention 1059, wherein the evaporator is a wiped-film evaporator, a falling-film evaporator, a forced-circulation evaporator, or a flash evaporator. [This invention 1061] The system of any one of claims 1058 to 1060, wherein the separation unit further comprises an oxidant harvester. [This invention 1062] The system of claim 1061, wherein the oxidant harvester is selected from the group consisting of a chromatography column, a crystallizer, a liquid-liquid extractor, and a Nutsche filter dryer. [This invention 1063] The system of any one of claims 1058 to 1062, wherein the separation unit further comprises a dryer. [The present invention 1064] The system of any one of claims 1058 to 1063, wherein the reactor comprises a stirred tank reactor. [This invention 1065] The system of any of claims 1058 to 1064, wherein the reactor comprises a chopping blade configured to blend and break down the polyethylene. [The present invention 1066] The system of any of claims 1058 to 1065, wherein the reactor comprises a screw conveyor configured to convey the polyethylene to or through the reactor. [This invention 1067] The system of any one of claims 1058 to 1066, wherein the separation unit is configured to recycle the separated oxidant to the reactor. [The present invention 1068] The system of any of claims 1058 to 1067, further comprising a distillation unit configured to concentrate the oxidant before recycling the oxidant from the absorption unit to the reactor. [The present invention 1069] The system of any one of claims 1058 to 1068, further comprising a condenser for condensing reaction gas from the reactor. [Brief explanation of the drawings]
[0099] Exemplary embodiments are illustrated in the referenced drawings, in which: It is intended that the embodiments and figures disclosed herein be considered illustrative and not restrictive. [Figure 1] 1 is a schematic diagram of an inventive system for decomposing contaminated plastic waste, in accordance with various aspects of the present invention. [Figure 2] 1 is a chromatogram of PE film oxidation products showing diacids in ester form, according to various embodiments of the present invention. [Figure 3] 3A and B are TGA curves comparing the thermal decomposition patterns of a resin sample (FIG. 3A) with the thermal decomposition patterns of pure LDPE and waste PE film (FIG. 3B) according to various embodiments of the present invention. [Figure 4]1 is a DSC curve comparing the crystalline behavior of waste PE film with the crystalline behavior of resin products according to various embodiments of the present invention. [Figure 5] 1 is a flow diagram of a chemical recycling process in accordance with various aspects of the present invention. [Figure 6] FIG. 1 illustrates a continuous stirred tank reactor (CSTR) chemical recycle reactor in accordance with various embodiments of the present invention. [Figure 7] FIG. 1 illustrates a continuous stirred tank reactor series for chemical recycling in accordance with various embodiments of the present invention. [Figure 8] FIG. 1 illustrates a gravity separation reactor for chemical recycling in accordance with various aspects of the present invention. [Figure 9] FIG. 1 illustrates a long residence plug flow reactor for chemical recycling in accordance with various aspects of the present invention. [Figure 10] FIG. 1 illustrates a screw reactor for chemical recycling in accordance with various aspects of the present invention. [Figure 11] FIG. 1 illustrates a basic separation unit for separating a solid product from an aqueous oxidant according to various aspects of the present invention. [Figure 12] FIG. 1 illustrates a separation unit for separating a solid product from an aqueous oxidant according to various embodiments of the present invention. [Figure 13] FIG. 1 illustrates a separation unit with centrifugation and filtration and oxidant reintroduction into the reactor according to various aspects of the present invention. [Figure 14] FIG. 1 illustrates a separation unit with centrifugation and oxidant reintroduction into the reactor according to various aspects of the present invention. [Figure 15] FIG. 1 illustrates a separation unit without evaporation or condensation, according to various aspects of the present invention. [Figure 16] FIG. 1 illustrates a separation unit for direct separation into products and oxidants according to various embodiments of the present invention. [Figure 17]FIG. 1 illustrates a separation unit that combines filtration and drying in a single stage, according to various aspects of the present invention. [Figure 18] FIG. 1 illustrates a basic absorption unit for capturing and reconverting reactant gases to oxidants in accordance with various aspects of the present invention. [Figure 19] 1 illustrates a hybrid reactor-absorber unit according to various embodiments of the present invention. [Figure 20] FIG. 1 illustrates a catalytic gas scrubbing reflux condenser according to various aspects of the present invention. [Figure 21] 1 is a flow diagram of a method for converting polyethylene to reaction products in accordance with various embodiments of the present invention. [Figure 22A] 1 is a table showing various dicarboxylic acids detected in reaction products by liquid chromatography mass spectrometry (LCMS) according to various embodiments of the present invention. [Figure 22B] 1 is a table showing various dicarboxylic acids detected in reaction products by liquid chromatography mass spectrometry (LCMS) according to various embodiments of the present invention. [Figure 22C] 1 is a table showing various dicarboxylic acids detected in reaction products by liquid chromatography mass spectrometry (LCMS) according to various embodiments of the present invention. [Figure 23] 1 is a graph illustrating the analysis of methyl esters of dicarboxylic acids in reaction products in accordance with various embodiments of the present invention. [Figure 24] 1 is a graph illustrating the yield of dicarboxylic acids at different temperatures according to various embodiments of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0100] Detailed Description of the Invention All references cited herein are incorporated by reference in their entirety as if fully set forth. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art of the present invention.
[0101] Those skilled in the art will recognize many methods and materials similar or equivalent to those described herein, which could be used in the practice of the present invention. Other features and advantages of the present invention will become apparent from the following detailed description, taken in conjunction with the accompanying drawings, which illustrate, by way of example, various features of aspects of the present invention. Indeed, the present invention is in no way limited to the methods and materials described herein. For convenience, certain terms employed in the specification, examples, and claims are collected here.
[0102] Unless otherwise stated or clear from the context, the following terms and phrases include the meanings provided below. Unless otherwise stated or clear from the context, the following terms and phrases do not exclude the meaning that the term or phrase has acquired in the art. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art of the invention. It should be understood that the present invention is not limited to the specific methodology, protocols, and reagents, etc., described herein, which may vary. The definitions and terminology used herein are provided to aid in the description of particular embodiments and are not intended to limit the claimed invention; the present invention is limited only by the scope of the claims.
[0103] As used herein, the term "comprising" or "comprises" is used in reference to compositions, methods, systems, articles of manufacture, and their respective components that are useful in a certain embodiment, but does not preclude the inclusion of unspecified elements, whether useful or not. As will be understood by those skilled in the art, in general, the terms used herein are generally intended as "open" terms (e.g., the term "including" should be interpreted as "including but not limited to," the term "having" should be interpreted as "having at least," the term "includes" should be interpreted as "including but not limited to," etc.). As used herein, the term "comprising" or "comprises" means that in addition to the presented and defined elements, other elements may also be present. The use of "comprise" indicates inclusion rather than limitation. The open-ended term "comprising" is used herein to describe and claim the present invention as synonymous with terms such as include, contain, or have, although the present invention or aspects thereof may alternatively be described using alternative terms such as "consisting of" or "consisting essentially of."
[0104] Unless otherwise stated, the terms "a," "an," and "the," and similar references, when used in the context of describing particular embodiments of this application (particularly in the context of the claims), may be construed to cover both the singular and the plural. The recitation of ranges of values herein is merely intended to serve as a shorthand method of referring individually to each separate value falling within the range. Unless otherwise stated herein, each individual value is incorporated herein as if individually recited herein. All methods described herein can be performed in any suitable order unless otherwise stated herein or clearly contradicted by context. Any use of examples and illustrative language (e.g., "such as") provided herein with respect to particular embodiments is intended merely to clarify the application and does not pose a limitation on the scope of the application as claimed. The abbreviation "eg" is derived from the Latin "exempli gratia" and is used herein to indicate a non-limiting example. Thus, the abbreviation "eg" is synonymous with the term "for example." No language in the specification should be construed as indicating any non-claimed element essential to the practice of the application.
[0105] Groupings of alternative elements or aspects of the invention disclosed herein are not to be construed as limiting. Each group member may be referenced and claimed individually, or in any combination with other members of the group or other elements described herein. One or more members of a group may be included in or deleted from a group for reasons of convenience and / or patentability. When such inclusion or deletion occurs, the specification shall be deemed to satisfy the description of all Markush groups used in the appended claims, including the group as modified.
[0106] "Optional" or "optionally" means that the subsequently described circumstance may or may not occur, and thus the description includes instances in which the circumstance occurs and instances in which it does not occur.
[0107] As used herein, the term "substituted" refers to the independent replacement of one or more (typically 1, 2, 3, 4, or 5) hydrogen atoms on the moiety being substituted with a substituent independently selected from the group of substituents listed in the definition of "substituent" below, or as otherwise specified. In general, a non-hydrogen substituent may be any substituent that can be bonded to the atom of a given moiety that is specified for substitution. Examples of substituents include, but are not limited to, acyl, acylamino, acyloxy, aldehyde, alicyclic, aliphatic, alkanesulfonamido, alkanesulfonyl, alkaryl, alkenyl, alkoxy, alkoxycarbonyl, alkyl, alkylamino, alkylcarbanoyl, alkylene, alkylidene, alkylthio, alkynyl, amide, amido, amino, amidine, aminoalkyl, aralkyl, aralkylsulfonamido, arenesulfonamido, arenesulfonyl, aromatic, aryl, arylamino, arylcarbanoyl, aryloxy, azido, carbamoyl, carbamino ... Examples of substituents include carboxy, carbonyls including ketones, carboxy, carboxylates, CF, cyano (CN), cycloalkyl, cycloalkylene, ester, ether, haloalkyl, halogen, heteroaryl, heterocyclyl, hydroxy, hydroxyalkyl, imino, iminoketone, ketone, mercapto, nitro, oxaalkyl, oxo, oxoalkyl, phosphoryl (including phosphonate and phosphinate), silyl groups, sulfonamido, sulfonyl (including sulfate, sulfamoyl, and sulfonate), thiols, and ureido moieties, each of which may also be optionally substituted or unsubstituted. In some cases, two substituents, together with the carbons to which they are attached, may form a ring. In some cases, two or more substituents, together with the carbons to which they are attached, may form one or more rings.
[0108] Substituents may be protected as necessary, and any protecting group commonly used in the art may be used. Non-limiting examples of protecting groups are described, for example, in Greene and Wuts, Protective Groups in Organic Synthesis, 44 th . Ed., Wiley & Sons, 2006.
[0109] The term "carboxy" refers to the radical -C(O)O-. It should be noted that compounds described herein containing a carboxy moiety may include protected derivatives thereof, i.e., those in which the oxygen is replaced with a protecting group. Suitable protecting groups for carboxy moieties include benzyl, tert-butyl, methyl, ethyl, and the like. The term "carboxyl" refers to -COOH.
[0110] The term "polymer" refers to a substance, compound, or mixture of compounds having a molecular structure consisting primarily or entirely of many similar units (e.g., monomer units) linked together. Among these, linear polymers are also called straight-chain because they consist of long strings of carbon-carbon bonds; branched polymers have branches at irregular intervals along the polymer chain; cross-linked polymers contain branches that connect the polymer chains via covalent, ionic, or H-bonds; and optionally substituted polymers are polymers that contain functionality at random points along the hydrocarbon chain backbone, where one or more of the hydrogen atoms linked to the backbone may, but need not, be substituted with a substituent independently selected from the group of substituents provided in the definition of "substituent" herein or as otherwise specified. Such polymers are generally said to be substituted because they do not exhibit a regular substitution pattern along the backbone; addition polymers are formed by adding a monomer to a growing polymer chain; condensation polymers are formed when a small molecule condenses out during a polymerization reaction; homopolymers are formed by polymerizing a single monomer; copolymers are formed by polymerizing more than one monomer; synthetic polymers are synthesized through chemical reactions; natural polymers are derived from nature and can be extracted; biopolymers are produced by organisms and can be modified or natural; and organic polymers are polymers that contain carbon atoms in the backbone of the polymer chain.
[0111] The term "oligomer" refers to a substance, compound, or mixture of compounds having a molecular structure that consists primarily or entirely of a small number of similar units (e.g., monomeric units) joined together.
[0112] The term "plastic" refers to synthetic materials that include a wide range of organic polymers, such as polyolefins, polyesters, polyamides, etc., that can be molded while soft and then set into rigid, semi-elastic, or elastic forms.
[0113] The term "about" means ±10% of the recited number. For example, "about 100" means 90 to 110, inclusive.
[0114] Various Non-Limiting Aspects of the Invention It is an object of the present invention to provide a method and system that allows for the decomposition of contaminated plastic waste that overcomes the limitations of known methods and systems.
[0115] Referring to FIG. 1, a reactor system for decomposing contaminated waste plastics according to embodiments of the present invention is illustrated; like numbers in the figure represent like parts.
[0116] Referring to FIG. 1, at least one oxidant (1) and contaminated plastic waste (2) enter reactor 1, which is then heated to a desired temperature. During the reaction, the contents are agitated or stirred, and the vapor is condensed back into a liquid. Gases (3) that pass through the condenser are directed into a pollution abatement system (8) to regenerate the oxidant (5). Other off-gases (4) are scrubbed. An aqueous product stream (6) carrying the diacid enters distillation 1, and the oxidant is distilled and collected in an enricher. The oxidant (5) and oxidant (7) are combined and enter the enricher, which adjusts the oxidant (9) to a desired starting concentration. Near the end of the distillation, a slurry of the diacid (10) and residual oxidant are transferred into reactor 2, where methanol (11) is added for esterification. The product stream (12) carrying the dibasic ester, excess methanol, and residual oxidant enters Distillation 2, where its three types of outputs (13, 14, 15) are separated. In some embodiments, the reactor system shown in Figure 1 may be modified to accommodate batch, continuous, substantially continuous, and / or semi-continuous processes.
[0117] Other useful flow schemes are also contemplated by various aspects of the present invention.
[0118] In various embodiments, the equipment that may be used in the methods (processes) and / or systems described herein includes conventional reactors, piping, etc. The equipment is amenable and economical for use in process plants that may be large or small.
[0119] In various embodiments, the present invention provides methods for decomposing contaminated plastic waste, the methods comprising: adding the contaminated plastic waste to a first reaction vessel; adding at least one oxidizing agent to the first reaction vessel; and subjecting the contaminated plastic waste in the first reaction vessel to conditions effective to decompose the contaminated plastic waste to produce a decomposed mixture. In some embodiments, the methods further comprise producing at least one first off-gas. In some embodiments, the methods further comprise collecting and regenerating the oxidizing agent. In some embodiments, the methods further comprise transferring the decomposed mixture to a first distillation unit. In some embodiments, the methods further comprise removing at least a portion of the oxidizing agent from the decomposed mixture to form a decomposed slurry. In some embodiments, the decomposed slurry comprises at least one compound containing at least one carboxyl group and at least one residual oxidizing agent. In some embodiments, the at least one compound containing at least one carboxyl group is at least one organic acid. In some embodiments, the methods further comprise transferring the decomposed slurry to a second reaction vessel. In some embodiments, the method further comprises adding at least one alcohol to a second reaction vessel to form an esterification reaction mixture; and subjecting the esterification reaction mixture to conditions effective to form an esterification product mixture. In some embodiments, the esterification product mixture comprises at least one residual oxidizing agent, at least one alcohol, and at least one ester. In some embodiments, the method further comprises transferring the esterification product mixture to a second distillation unit. In some embodiments, the method further comprises separating the esterification product mixture in the second distillation unit into a waste stream of residual oxidizing agent, an ester stream, and an alcohol stream. In some embodiments, the ester stream comprises at least one organic acid in the form of at least one ester. In some embodiments, the method further comprises adding at least one solid catalyst to the first reaction vessel.In some embodiments, the method of the present invention optionally includes adding at least one solid catalyst to the first reactor vessel. In some embodiments, the method of the present invention may include adding at least one solid catalyst to the first reactor vessel.
[0120] In various embodiments, the present invention provides methods for decomposing contaminated plastic waste, the methods comprising: adding the contaminated plastic waste to a reaction vessel; adding at least one oxidizing agent to the reaction vessel; and subjecting the contaminated plastic waste to conditions effective to decompose the contaminated plastic waste to produce a decomposition mixture. In some embodiments, the methods of the present invention further comprise adding at least one solid catalyst to the reaction vessel. In some embodiments, the methods of the present invention optionally comprise adding at least one solid catalyst to the reaction vessel. In some embodiments, the methods of the present invention may comprise adding at least one solid catalyst to the reaction vessel. In some embodiments, the conditions comprise a temperature range; an initial gas pressure range; and a residence time within the reaction vessel.
[0121] In various embodiments, the present invention provides methods for decomposing contaminated plastic waste, the methods comprising: adding the contaminated plastic waste to a reaction vessel; adding at least one oxidizing agent to the reaction vessel; optionally adding at least one solid catalyst to the reaction vessel; and subjecting the contaminated plastic waste to conditions effective to decompose the contaminated plastic waste to produce a decomposition mixture. In some embodiments, the conditions include a temperature range; an initial gas pressure range; and a residence time within the reaction vessel.
[0122] In various aspects, the present invention provides methods for decomposing contaminated plastic waste, comprising the steps of adding the contaminated plastic waste to a reaction vessel; adding at least one oxidizing agent to the reaction vessel; optionally adding at least one solid catalyst to the reaction vessel; and subjecting the contaminated plastic waste to conditions effective to decompose the contaminated plastic waste to produce a decomposition mixture; the conditions comprising a temperature range; an initial gas pressure range; and a residence time within the reaction vessel.
[0123] In some embodiments, the method of the present invention is selected from the group consisting of a batch process, a continuous process, a substantially continuous process, and a semi-continuous process.
[0124] In some embodiments, the present invention provides a system for decomposing contaminated plastic waste comprising a first reaction vessel, a condenser, a pollution abatement unit, an enricher unit, a first distillation unit, a second reaction vessel, and a second distillation unit; the first reaction vessel is connected to the condenser and the first distillation unit; the condenser is connected to the pollution abatement unit and the first reaction vessel; the pollution abatement unit is connected to the enricher unit; the enricher unit is connected to the pollution abatement unit; the first distillation unit is connected to the enricher unit and the second reaction vessel; the second reaction vessel is connected to the second distillation unit; and the second distillation unit is connected to the second reaction vessel.
[0125] reaction vessel Non-limiting examples of reaction vessels suitable for use in the processes and / or methods of the invention (e.g., reactors, glass-lined reactors, glass flasks, containers, etc., in which the processes and / or methods of the invention are carried out) are generally closed (not open to the surrounding ambient air) and, optionally, pressurizable reactors; non-limiting types of closed, pressurizable reactors particularly suitable for batch, continuous, substantially continuous, or semi-continuous processes according to the invention include reactors and autoclaves from Parr Instrument Company, Amar Equipments, Buchiglas, and Berghof. In some embodiments, the reaction vessel is pressurized. In some embodiments, the reaction vessel is not pressurized.
[0126] In some embodiments, the reaction vessel is at least one selected from the group consisting of a reactor, a glass flask, a glass-lined reactor, and combinations thereof.
[0127] In some embodiments, related types of reaction vessels for carrying out batch, or continuous, substantially continuous, or semi-continuous processes include substantially vertically oriented reaction vessels into which the contaminated plastic waste and any additional reagents / materials of interest (e.g., gases, liquids, solids) may be contained, and into which gas may be introduced—continuously or at intervals—under pressure or at ambient pressure via one or more inlets, ports, or valves, etc., located at or near the bottom of the reaction vessel and / or at other locations along the length of the reaction vessel; such reaction vessels may be essentially cylindrical, tubular, or of any other suitable shape, preferably but optionally having an upper headspace or free volume. In some embodiments, reaction vessels for carrying out batch, or continuous, substantially continuous, or semi-continuous processes include substantially horizontally oriented reactors.
[0128] In batch, continuous, substantially continuous, or semi-continuous processes, it is generally desirable to cause mixing of the contaminated plastic waste, any additional reagents / materials (e.g., gases, liquids, solids), and any solid, liquid, and gas phases that may be present in the reaction vessel, if possible. In some embodiments, mixing may be suitably achieved by mechanical stirring, although agitation of the entire reaction vessel or other means of causing mixing may also be applicable. In some embodiments, mixing may be suitably achieved by recirculation by means such as a pump, impeller wheel, or rotating scraper.
[0129] Heat may be supplied to the reaction mixture and / or reaction system (e.g., to the contaminated plastic waste and any additional reagents / materials (e.g., gas, liquid, solid), as well as any solid, liquid, and gas phases that may be present in the reactor) by any suitable method. Non-limiting examples include immersion of the reaction vessel in a suitable heating bath (containing, e.g., oil, molten salt or molten salt mixture, superheated steam, etc.); by means of thermally conductive (typically metal) tubing wrapped around the outside of the reaction vessel and / or immersed in the reaction medium itself, through which hot oil, superheated steam, or the like is suitably passed; or—similarly—by means of one or more electrical resistance heating elements wrapped around the outside of the reaction vessel and / or immersed in the reaction medium; by a heating mantle; or by means of a jacketed reactor, as known in the art. Other suitable methods of heating include induction heating (e.g., of a metal reactor housing) and microwave heating.
[0130] In some embodiments, the reaction is carried out in a batch process. In other embodiments, the reaction is carried out in a continuous process.
[0131] In a batch process, in some embodiments, an oxidizing agent (e.g., nitric acid) is added to the reactor before heating and stirring begin. Once the reactor reaches the desired temperature, a plastic (e.g., polyethylene) is added, and the reaction proceeds with stirring for a desired period of time. In some embodiments, a condenser is used to reflux the oxidizing agent (e.g., nitric oxide) within the reaction vessel during the process. After the reaction is complete, the reactor is allowed to cool, and the reaction mixture (including a liquid stream and a solid stream) is filtered, for example, through filter paper, a sieve, or a Buchner funnel. The solid stream contains unreacted or underreacted plastic. The liquid stream contains dilute nitric acid, dissolved dicarboxylic acids, and other compounds, such as nitro-substituted dicarboxylic acids. In some embodiments, the liquid stream is then heated, and the oxidizing agent (e.g., nitric acid) and water are separated from the dicarboxylic acids by distillation.
[0132] In a continuous process, in some embodiments, a desired initial amount of oxidizing agent (e.g., nitric acid) is added to the reactor before heating and stirring begin. Once the reactor reaches the desired temperature, plastic (e.g., polyethylene) is added. The reactor outlet valve is then opened and the amount of product exiting the reactor is adjusted to a constant flow rate approximately equal to the amount of plastic and oxidizing agent being added to the reactor; this maintains approximately constant reactant and product flow rates within the reactor throughout the process. In some embodiments, a condenser is used to reflux the oxidizing agent (e.g., nitric acid) within the reactor during the process. In some embodiments, samples are taken at timed intervals, cooled, and filtered, for example, using filter paper, a sieve, or a Buchner funnel. The liquid stream contains dilute nitric acid, dissolved dicarboxylic acids, and other compounds, such as nitro-substituted dicarboxylic acids. In some embodiments, the liquid stream is then heated, and the oxidizing agent (e.g., nitric acid) and water are separated from the dicarboxylic acids by distillation.
[0133] Temperature range In some embodiments, the temperature range is 60° C. to 200° C. In some embodiments, the temperature range within the reaction vessel is 60° C. to 200° C. In some embodiments, the reaction vessel is a first reaction vessel.
[0134] In some embodiments, the temperature range is 60°C to 200°C, 60°C to 175°C, 60°C to 150°C, 60°C to 125°C, 60°C to 100°C, 60°C to 90°C, 60°C to 80°C, or 60°C to 70°C.
[0135] In some embodiments, the temperature range is 60°C to 200°C, 70°C to 200°C, 80°C to 200°C, 90°C to 200°C, 100°C to 200°C, 100°C to 200°C, 120°C to 200°C, 130°C to 200°C, 140°C to 200°C, 150°C to 200°C, 160°C to 200°C, 170°C to 200°C, 180°C to 200°C, or 190°C to 200°C.
[0136] Initial pressure range of gas In some embodiments, the initial pressure of the gas is between 0 psi and 1000 psi. In some embodiments, the initial pressure of the gas in the reaction vessel is between 0 psi and 1000 psi. In some embodiments, the reaction vessel is a first reaction vessel.
[0137] In some embodiments, the initial pressure of the gas is between 0 psi and 900 psi, between 0 psi and 800 psi, between 0 psi and 700 psi, between 0 psi and 600 psi, between 0 psi and 500 psi, between 0 psi and 400 psi, between 0 psi and 300 psi, between 0 psi and 200 psi, or between 0 psi and 100 psi.
[0138] Residence time in the reactor In some embodiments, the residence time in the reaction vessel is one selected from the group consisting of 30 minutes to 30 hours, less than 30 minutes, and more than 30 hours. In some embodiments, the reaction vessel is a first reaction vessel.
[0139] In some embodiments, the residence time in the reaction vessel is between 30 minutes and 30 hours, between 30 minutes and 29 hours, between 30 minutes and 28 hours, between 30 minutes and 27 hours, between 30 minutes and 26 hours, between 30 minutes and 25 hours, between 30 minutes and 24 hours, between 30 minutes and 23 hours, between 30 minutes and 22 hours, between 30 minutes and 21 hours, between 30 minutes and 20 hours, between 30 minutes and 19 hours, between 30 minutes and 18 hours, between 30 minutes and 17 hours, between 30 minutes and 16 hours, between 30 minutes and 15 hours, between 30 minutes and 14 hours, between 30 minutes and 13 hours, between 30 minutes and 12 hours, between 30 minutes and 11 hours, between 30 minutes and 10 hours, between 30 minutes and 9 hours, between 30 minutes and 8 hours, between 30 minutes and 7 hours, between 30 minutes and 6 hours, between 30 minutes and 5 hours, between 30 minutes and 4 hours, between 30 minutes and 3 hours, between 30 minutes and 2 hours, or between 30 minutes and 1 hour.
[0140] In some embodiments, the residence time in the reaction vessel is 30 minutes, 25 minutes, 20 minutes, 15 minutes, 10 minutes, or 5 minutes.
[0141] In some embodiments, the residence time in the reaction vessel is 30 hours, 35 hours, 40 hours, 45 hours, 50 hours, 55 hours, 60 hours, 65 hours, 70 hours, or 75 hours. In some embodiments, the residence time in the reaction vessel is about 1 hour to about 10 hours. In some embodiments, the residence time in the reaction vessel is about 3 hours to about 6 hours.
[0142] In some embodiments, the reaction vessel for a batch process is Reactor 1 (e.g., Reactor 1 as identified in Figure 1). In some embodiments, the reaction vessel is the first reaction vessel. In some embodiments, the reaction vessel is Reactor 2 (e.g., Reactor 2 as identified in Figure 1). In some embodiments, the reaction vessel is the second reaction vessel.
[0143] Effects of time, temperature, pressure, and concentration The reaction time, temperature, and pressure affect the products and amounts of products obtained. Generally, shorter reaction times result in longer-chain dicarboxylic acids, and longer reaction times result in less long-chain dicarboxylic acids. Shorter reaction times and lower reaction temperatures (e.g., 100°C vs. 110°C vs. 120°C) result in higher amounts of oxalic acid. Mild reaction conditions result in oxalic acid as the primary reaction product. Oxalic acid is the primary product at 100°C when the reaction time is less than 6 hours. Oxalic acid is produced in large quantities even at higher temperatures when the reaction time is short. See the Examples.
[0144] The concentration of nitric acid and the ratio of polyethylene to nitric acid also affect the resulting product and the amount of product. For example, when a 70 wt% aqueous nitric acid solution is used as the solvent, the product is enriched with C4-C9 dicarboxylic acids. When the aqueous nitric acid solution is 50 and 60 wt%, the reaction slows down significantly, and the product contains more oxalic acid and a significantly increased amount of C 10 ~C 15 and dicarboxylic acids. A higher ratio of nitric acid to polyethylene results in higher amounts of C4-C9 dicarboxylic acids, lower amounts of oxalic acid, and shorter chain dicarboxylic acids. A higher concentration of nitric acid results in a faster reaction. A faster reaction decomposes more long chain dicarboxylic acids into C4-C9 dicarboxylic acids. Longer reaction times and more severe conditions reduce the amount of oxalic acid. See examples.
[0145] The reaction pressure also affects the resulting products and the amount of product. Lower nitric acid concentrations and higher pressures result in higher dicarboxylic acid yields compared to reactions conducted at atmospheric pressure and higher nitric acid concentrations. For example, a 70 wt% aqueous nitric acid solution, a 1:10 weight ratio of polyethylene to nitric acid, a 6-hour reaction time at 150°C, and atmospheric pressure resulted in a 29% dicarboxylic acid yield. Meanwhile, a 25 wt% aqueous nitric acid solution, a 1:10 weight ratio of polyethylene to nitric acid, a 6-hour reaction time at 150°C, and a 500 psi pressure resulted in a 42% dicarboxylic acid yield, with significantly higher amounts of short-chain dicarboxylic acids. See the Examples.
[0146] oxidizing agent In some embodiments, the at least one oxidizing agent is selected from the group consisting of oxygen (O), nitric oxide (NO), nitrous oxide (NO), nitrogen dioxide (NO), nitric acid (HNO), aqueous nitric acid (HNO), and combinations thereof.
[0147] In some embodiments, the aqueous nitric acid solution has a concentration of 10% to 100% by weight, 10% to 90% by weight, 10% to 80% by weight, 10% to 70% by weight, 10% to 60% by weight, 10% to 50% by weight, 10% to 40% by weight, 10% to 30% by weight, or 10% to 20% by weight.
[0148] In some embodiments, the aqueous nitric acid solution has a concentration of 10% to 100% by weight, 20% to 100% by weight, 30% to 100% by weight, 40% to 100% by weight, 50% to 100% by weight, 60% to 100% by weight, 70% to 100% by weight, 80% to 100% by weight, or 90% to 100% by weight. In some embodiments, the aqueous nitric acid solution has a concentration of about 67% to about 70% by weight.
[0149] solid catalyst In some embodiments, the at least one solid catalyst is selected from the group consisting of zeolites, aluminas, silicoaluminophosphates, sulfated zirconia, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, iron carbonate, calcium carbide, and combinations thereof.
[0150] Contaminated plastic waste In various embodiments, the plastic waste may be contaminated with non-plastic waste and may be obtained from at least one of the following sources, but is not limited to: municipal solid waste or marine debris.
[0151] The term "municipal solid waste" refers to waste types commonly known as trash, garbage, refuse, or rubbish, consisting of various items discarded by the public. The composition of municipal solid waste can include various waste types, can vary from municipality to municipality, and can also change over time. In some embodiments, municipal solid waste may further include at least one other waste type, such as biodegradable waste, recyclable materials, inert waste, electrical and electronic waste, composite waste, contaminated plastic waste, and combinations thereof.
[0152] The term "marine debris" refers to human-created waste types that are intentionally or accidentally released into lakes, rivers, seas, oceans, canals, or waterways. In some cases, marine debris may be mixed with naturally occurring materials (e.g., driftwood, kelp, microorganisms, etc.). In some embodiments, the marine debris includes at least one contaminated plastic waste.
[0153] The term "contaminated plastic waste" refers to plastics and / or plastic materials that are mixed with or contaminated by at least one non-plastic material and discarded after use and / or production. In various embodiments, the contaminated plastic waste comprises at least one plastic material and at least one non-plastic material. In various embodiments, the contaminated plastic waste consists of at least one plastic material and at least one non-plastic material. In various embodiments, the contaminated plastic waste consists essentially of at least one plastic material and at least one non-plastic material.
[0154] Non-limiting examples of biodegradable waste include food and kitchen waste, green waste, paper, etc. Non-limiting examples of recyclable materials include paper, cardboard, glass, bottles, jars, tin cans, aluminum cans, aluminum foil, metals, certain plastics, fabric, cloth, tires, batteries, etc. Non-limiting examples of inert waste include construction and demolition waste, soil, rocks, debris, sand, concrete, etc. Non-limiting examples of e-waste include appliances, light bulbs, washing machines, TVs, computers, screens, mobile phones, alarm clocks, watches, etc. Non-limiting examples of mixed waste include discarded clothing, toys, etc.
[0155] plastic materials In various embodiments, the plastic material comprises at least one selected from the group consisting of a plastic film, a plastic foam, a plastic package, a plastic bag, a plastic wrap, and combinations thereof. In some embodiments, the plastic material is at least one selected from the group consisting of a plastic film, a plastic foam, a plastic package, a plastic bag, a plastic wrap, and combinations thereof.
[0156] In various embodiments, the plastic material comprises polyethylene.
[0157] In various embodiments, the plastic material comprises at least one selected from the group consisting of polyethylene (PE), very low density polyethylene, low density polyethylene (LDPE), linear low density polyethylene, medium density polyethylene, cross-linked polyethylene, high density polyethylene (HDPE), high density cross-linked polyethylene, high molecular weight polyethylene, ultra low molecular weight polyethylene, ultra high molecular weight polyethylene, and combinations thereof. In some embodiments, the plastic material is at least one selected from the group consisting of polyethylene, very low density polyethylene, low density polyethylene, linear low density polyethylene, medium density polyethylene, cross-linked polyethylene, high density polyethylene, high density cross-linked polyethylene, high molecular weight polyethylene, ultra low molecular weight polyethylene, ultra high molecular weight polyethylene, and combinations thereof.
[0158] Non-plastic materials In the broadest sense, a non-plastic material is any material that is not a plastic or plastic material. Non-limiting examples of non-plastic materials include non-plastic organic materials, inorganic materials, fluids (non-plastic fluids), etc. In various embodiments, the non-plastic material comprises at least one selected from the group consisting of non-plastic organic materials, inorganic materials, fluids, and combinations thereof.
[0159] Non-plastic organic materials In some embodiments, the non-plastic organic material is at least one selected from the group consisting of plant material, animal material, algal material, bacterial material, fungal material, viral material, biological material, cellulose material, cellulose-based material, cellulose-containing material, and combinations thereof.
[0160] As used herein, the term "biological material" refers to material that originates from, is harvested, isolated, derived, and / or obtained from a biological organism.
[0161] In some embodiments, the non-plastic organic material is at least one selected from the group consisting of plant-derived materials, animal-derived materials, algae-derived materials, bacterial-derived materials, fungal-derived materials, virus-based materials, biologically-derived materials, and combinations thereof.
[0162] In some embodiments, the non-plastic organic material is at least one cellulose-based material, hi some embodiments, the at least one cellulose-based material is at least one selected from the group consisting of paper-based materials, paper, paperboard, wood, engineered wood, plant fibers, textiles, fabrics, and combinations thereof.
[0163] inorganic material In its broadest sense, the term "inorganic material" generally refers to a material that is not an organic compound or material. Non-limiting examples of inorganic materials include rocks, minerals, glass, ceramics, metals, etc.
[0164] fluid Non-limiting examples of fluids include water, hydrocarbons, synthetic fluids, naturally occurring fluids, acids, bases, or biological fluids, or any mixture or combination thereof.
[0165] In some embodiments, the fluid is at least one selected from the group consisting of water, hydrocarbons, synthetic fluids, naturally occurring fluids, acids, bases, biological fluids, and combinations thereof.
[0166] Non-limiting examples of water include saltwater, seawater, freshwater, reclaimed water, recycled water, or wastewater, or any mixture or combination thereof.
[0167] In some embodiments, the water is at least one selected from the group consisting of saltwater, seawater, freshwater, reclaimed water, recycled water, wastewater, and combinations thereof.
[0168] decomposition mixture In various embodiments, the degradation mixture comprises a solid phase and a liquid phase.
[0169] In various embodiments, the solid phase comprises at least one selected from the group consisting of an oligomer, a polymer, and combinations thereof.
[0170] In various embodiments, the solid phase further comprises at least one solid catalyst. In some embodiments, the solid phase optionally comprises at least one solid catalyst. In some embodiments, the solid phase may comprise at least one solid catalyst.
[0171] In various embodiments, the liquid phase comprises at least one compound comprising at least one carboxyl group. In various embodiments, the liquid phase comprises at least one compound containing at least one carboxyl group.
[0172] In various embodiments, the at least one compound comprising at least one carboxyl group is at least one organic acid. In various embodiments, the at least one compound containing at least one carboxyl group is at least one organic acid.
[0173] In some embodiments, the at least one organic acid is at least one selected from the group consisting of an optionally substituted organic acid, a substituted organic acid, and an unsubstituted organic acid.
[0174] In some embodiments, the at least one organic acid is at least one selected from the group consisting of a monocarboxylic acid, a dicarboxylic acid, a polycarboxylic acid, and combinations thereof.
[0175] In some embodiments, the at least one monocarboxylic acid is at least one selected from the group consisting of optionally substituted monocarboxylic acids, substituted monocarboxylic acids, unsubstituted monocarboxylic acids, and combinations thereof.
[0176] In some embodiments, the at least one dicarboxylic acid is at least one selected from the group consisting of optionally substituted dicarboxylic acids, substituted dicarboxylic acids, unsubstituted dicarboxylic acids, and combinations thereof.
[0177] In some embodiments, the at least one polycarboxylic acid is at least one selected from the group consisting of optionally substituted polycarboxylic acids, substituted polycarboxylic acids, unsubstituted polycarboxylic acids, and combinations thereof.
[0178] In some embodiments, the at least one organic acid is at least one α,ω-dicarboxylic acid.
[0179] In some embodiments, the at least one α,ω-dicarboxylic acid is at least one selected from the group consisting of optionally substituted α,ω-dicarboxylic acids, substituted α,ω-dicarboxylic acids, unsubstituted α,ω-dicarboxylic acids, and combinations thereof.
[0180] In some embodiments, the at least one organic acid is at least one selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, and combinations thereof.
[0181] In some embodiments, the at least one organic acid is selected from the group consisting of 5-50% succinic acid, 5-50% glutaric acid, 5-50% adipic acid, 5-50% pimelic acid, 0-30% suberic acid, 0-30% azelaic acid, 0-20% sebacic acid, 0-10% undecanedioic acid, 0-10% dodecanedioic acid, and combinations thereof.
[0182] In some embodiments, the degradation mixture comprises a composition comprising at least one selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, and combinations thereof.
[0183] In some embodiments, the degradation mixture comprises a composition comprising at least one selected from the group consisting of 5-50% succinic acid, 5-50% glutaric acid, 5-50% adipic acid, 5-50% pimelic acid, 0-30% suberic acid, 0-30% azelaic acid, 0-20% sebacic acid, 0-10% undecanedioic acid, 0-10% dodecanedioic acid, and combinations thereof.
[0184] In some embodiments, the degradation mixture comprises: a. succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or their salts or esters; and b. At least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, or salts or esters thereof.
[0185] In some embodiments, a. succinic acid is present in an amount of about 5 to about 18 wt%, glutaric acid is present in an amount of about 8 to about 28 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 8 to about 13 wt%, or equivalent amounts of salts or esters thereof; and b. oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 9 to about 20 wt%, sebacic acid, if present, is present in an amount of about 1 to about 10 wt%, undecanedioic acid, if present, is present in an amount of about 1 to about 8 wt%, dodecanedioic acid, if present, is present up to about 5 wt%, tridecanedioic acid, if present, is present up to about 4 wt%, tetradecanedioic acid, if present, is present up to about 2 wt%, and pentadecanedioic acid, if present, is present up to about 0.4 wt%, or equivalent amounts of salts or esters thereof.
[0186] In some embodiments, a. succinic acid is present in an amount of about 10 to about 11 wt%, glutaric acid is present in an amount of about 15 to about 18 wt%, adipic acid is present in an amount of about 16 to about 18 wt%, pimelic acid is present in an amount of about 15 to about 17 wt%, and azelaic acid is present in an amount of about 10 to about 12 wt%, or equivalent amounts of salts or esters thereof; and b. oxalic acid, if present, is present in an amount up to 10 wt%, suberic acid, if present, is present in an amount of about 13 to about 15 wt%, sebacic acid, if present, is present in an amount of about 5 to about 9 wt%, undecanedioic acid, if present, is present in an amount of about 3 to about 6 wt%, dodecanedioic acid, if present, is present in an amount of about 1 to about 3 wt%, tridecanedioic acid, if present, is present in an amount of about 0.5 to about 1.5 wt%, tetradecanedioic acid, if present, is present up to about 0.2 wt%, and pentadecanedioic acid, if present, is present up to about 0.2 wt%, or equivalent amounts of salts or esters thereof.
[0187] In some embodiments, a. succinic acid is present in an amount of about 5 to about 40 wt%, glutaric acid is present in an amount of about 8 to about 27 wt%, adipic acid is present in an amount of about 10 to about 29 wt%, pimelic acid is present in an amount of about 10 to about 20 wt%, and azelaic acid is present in an amount of about 1 to about 13 wt%, or equivalent amounts of salts or esters thereof; and b. oxalic acid, if present, is present in an amount of up to 10 wt%, suberic acid, if present, is present in an amount of about 4 to about 20 wt%, sebacic acid, if present, is present in an amount of up to about 10 wt%, undecanedioic acid, if present, is present in an amount of up to about 8 wt%, dodecanedioic acid, if present, is present in an amount of up to about 5 wt%, tridecanedioic acid, if present, is present in an amount of up to about 4 wt%, tetradecanedioic acid, if present, is present in an amount of up to about 2 wt%, and pentadecanedioic acid, if present, is present in an amount of up to about 0.4 wt%, or equivalent amounts of salts or esters thereof.
[0188] In some embodiments, the degradation mixture further comprises: c. at least one of 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid, or salts or esters thereof.
[0189] In some embodiments, the degradation mixture comprises: a. succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or their salts or esters; and b. C8-C substituted with a single nitro group 20 At least one of a dicarboxylic acid, or a salt or ester thereof.
[0190] In some embodiments, the at least one C-C substituted with a single nitro group. 20The dicarboxylic acid is nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, the dicarboxylic acid is C8-C 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, the at least one C8-C substituted with a single nitro group 20 Dicarboxylic acids are present in the decomposition mixture at up to 1 wt%.
[0191] In some embodiments, the liquid phase comprises a composition comprising at least one selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, and combinations thereof.
[0192] In some embodiments, the liquid phase comprises a composition comprising at least one selected from the group consisting of 5-50% succinic acid, 5-50% glutaric acid, 5-50% adipic acid, 5-50% pimelic acid, 0-30% suberic acid, 0-30% azelaic acid, 0-20% sebacic acid, 0-10% undecanedioic acid, 0-10% dodecanedioic acid, and combinations thereof.
[0193] In some embodiments, the method further comprises separating said at least one organic acid.
[0194] Non-limiting examples of separation techniques include simple distillation, fractional distillation, azeotropic distillation, co-distillation, fractional crystallization, standard crystallization, freeze-drying, supercritical fluid extraction, solvent extraction, precipitation, and combinations thereof. In some embodiments, the separation is carried out by at least one selected from the group consisting of simple distillation, fractional distillation, azeotropic distillation, co-distillation, fractional crystallization, standard crystallization, freeze-drying, supercritical fluid extraction, solvent extraction, precipitation, and combinations thereof.
[0195] Esterification Without being bound by theory, it is hypothesized that the conversion of at least one compound (e.g., organic acid) containing at least one carboxyl group from an acid form to an ester form occurs by a process commonly known in the art as esterification. In some embodiments, the conversion of the at least one compound containing at least one carboxyl group from an acid form to an ester form is carried out under esterification conditions. In some embodiments, the dicarboxylic acid is at least partially in the form of an ester.
[0196] In some embodiments, the method of the present invention further comprises converting the at least one organic acid to at least one corresponding ester. In some embodiments, the at least one corresponding ester is at least one selected from the group consisting of methyl ester, ethyl ester, propyl ester, isopropyl ester, butyl ester, isobutyl ester, sec-butyl ester, tert-butyl ester, pentyl ester, and hexyl ester, and combinations thereof. In some embodiments, the at least one corresponding ester is a methyl ester. In some embodiments, the conversion is carried out by esterification or an esterification process.
[0197] In some embodiments, the method of the present invention further comprises combining the at least one organic acid with at least one alcohol to form an esterification mixture; and subjecting the esterification mixture to conditions effective to form at least one ester. Any suitable esterification conditions known in the art may be used to form the at least one ester. For example, the at least one organic acid may be mixed with at least one alcohol, and the mixture may be heated to cause esterification. A mineral acid may be added as a catalyst.
[0198] In some embodiments, the at least one alcohol is at least one selected from the group consisting of straight chain alcohols, branched alcohols, cyclic alcohols, and combinations thereof. In some embodiments, the at least one alcohol is at least one selected from the group consisting of methanol, ethanol, propanol, isopropanol, butanol, isobutanol, sec-butanol, tert-butanol, pentanol, hexanol, and combinations thereof. In some embodiments, the at least one alcohol is C1-C 10 In some embodiments, the at least one alcohol is a C1-C4 alcohol. In some embodiments, the at least one alcohol is methanol.
[0199] In some embodiments, the at least one organic acid is independently in at least one ester form. In some embodiments, the at least one ester or ester form is at least one selected from the group consisting of methyl ester, ethyl ester, propyl ester, isopropyl ester, butyl ester, isobutyl ester, sec-butyl ester, tert-butyl ester, pentyl ester, and hexyl ester, and combinations thereof. In some embodiments, the at least one ester form or ester is a methyl ester.
[0200] In some embodiments, the at least one organic acid is in ester form. In some embodiments, an α,ω-dicarboxylic acid is in ester form. In some embodiments, succinic acid is in ester form. In some embodiments, glutaric acid is in ester form. In some embodiments, adipic acid is in ester form. In some embodiments, pimelic acid is in ester form. In some embodiments, suberic acid is in ester form. In some embodiments, azelaic acid is in ester form. In some embodiments, sebacic acid is in ester form. In some embodiments, undecanedioic acid is in ester form. In some embodiments, dodecanedioic acid is in ester form.
[0201] In some embodiments, succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, and azelaic acid are each independently in an ester form.
[0202] In some embodiments, oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid are independently in ester form.
[0203] In some embodiments, 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid are independently in ester form.
[0204] In some embodiments, C-C substituted with a single nitro group 20The dicarboxylic acid is in the form of an ester. In some embodiments, a C8-C substituted with a single nitro group is in the form of an ester. 20 The dicarboxylic acid is nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, or nitro-icosane dioic acid. 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, the ester form is selected from the group consisting of monoesters, diesters, polyesters, mixed diesters, mixed polyesters, and combinations thereof.
[0205] As used herein, the term "multiester" means an ester formed by converting more than one carboxyl group from the acid form to the ester form under esterifying conditions.
[0206] In some embodiments, the ester forms include α,ω-diesters, optionally substituted α,ω-dicarboxylic acids or substituted α,ω-dicarboxylic acids, unsubstituted α,ω-dicarboxylic acids, and combinations thereof.
[0207] In some embodiments, the at least one ester is dimethyl succinate, dimethyl glutarate, dimethyl adipate, dimethyl pimelate, dimethyl suberate, dimethyl azelate, dimethyl sebacate, dimethyl undecanedioate, dimethyl dodecanedioate, dimethyl oxalate, dimethyl tridecanedioate, dimethyl tetradecanedioate, dimethyl pentadecanedioate, dimethyl 2-octenedioate, dimethyl 2-nonenedioate, 2-dimethyl 2-decenedioate, dimethyl 2-undecenedioate, dimethyl 2-nitro-suberate, dimethyl 2-nitro-azelate, dimethyl 2-nitro-sebacate, dimethyl 2-nitro-undecenedio ... dimethyl 2-nitro-pentadecanedioate, dimethyl 2-nitro-hexadecanedioate, 2-nitro-heptadecanedioate, dimethyl 2-nitro-tetradecanedioate, dimethyl 2-nitro-pentadecanedioate, dimethyl 2-nitro-hexadecanedioate, 2-nitro-heptadecanedioate salt, dimethyl 2-nitro-suberate, dimethyl 2-nitro-sebacate, dimethyl 2-nitro-undecanedioate, dimethyl 2-nitro-dodecanedioate, dimethyl 2-nitro-tetradecanedioate, and dimethyl 2-nitro-pentadecanedioate, and combinations thereof.
[0208] In some embodiments, the at least one corresponding ester comprises dimethyl succinate, dimethyl glutarate, dimethyl adipate, dimethyl pimelate, dimethyl suberate, dimethyl azelaate, dimethyl sebacate, dimethyl undecanedioate, dimethyl dodecanedioate, and combinations thereof.
[0209] In some embodiments, the at least one ester comprises 5-50% dimethyl succinate, 5-50% dimethyl glutarate, 5-50% dimethyl adipate, 5-50% dimethyl pimelate, 0-30% dimethyl suberate, 0-30% dimethyl azelaate, 0-20% dimethyl sebacate, 0-10% dimethyl undecanedioate, 0-10% dimethyl dodecanedioate, and combinations thereof.
[0210] In some embodiments, the at least one corresponding ester comprises 5-50% dimethyl succinate, 5-50% dimethyl glutarate, 5-50% dimethyl adipate, 5-50% dimethyl pimelate, 0-30% dimethyl suberate, 0-30% dimethyl azelaate, 0-20% dimethyl sebacate, 0-10% dimethyl undecanedioate, 0-10% dimethyl dodecanedioate, and combinations thereof.
[0211] In some embodiments, the esterification mixture comprises a composition comprising at least one of dimethyl succinate, dimethyl glutarate, dimethyl adipate, dimethyl pimelate, dimethyl suberate, dimethyl azelaate, dimethyl sebacate, dimethyl undecanedioate, dimethyl dodecanedioate, and combinations thereof.
[0212] In some embodiments, the esterification mixture comprises a composition comprising at least one of 5-50% dimethyl succinate, 5-50% dimethyl glutarate, 5-50% dimethyl adipate, 5-50% dimethyl pimelate, 0-30% dimethyl suberate, 0-30% dimethyl azelaate, 0-20% dimethyl sebacate, 0-10% dimethyl undecanedioate, 0-10% dimethyl dodecanedioate, and combinations thereof.
[0213] In some embodiments, the esterification mixture comprises at least one of dimethyl succinate in an amount of about 5 to about 18 wt %, dimethyl glutarate in an amount of about 8 to about 28 wt %, dimethyl adipate in an amount of about 10 to about 29 wt %, dimethyl pimelate in an amount of about 10 to about 20 wt %, and dimethyl azelaate in an amount of about 8 to about 13 wt %, and combinations thereof.
[0214] In some embodiments, the esterification mixture comprises at least one of dimethyl oxalate in an amount of up to 10 wt%, dimethyl suberate in an amount of about 9 to about 20 wt%, dimethyl sebacate in an amount of about 1 to about 10 wt%, dimethyl undecanedioate in an amount of about 1 to about 8 wt%, dimethyl dodecanedioate up to about 5 wt%, dimethyl tridecanedioate up to about 4 wt%, dimethyl tetradecanedioate up to about 2 wt%, and dimethyl pentadecanedioate up to about 0.4 wt%, and combinations thereof.
[0215] In some embodiments, the esterification mixture comprises at least one of dimethyl succinate in an amount of about 5 to about 40 wt %, dimethyl glutarate in an amount of about 8 to about 27 wt %, dimethyl adipate in an amount of about 10 to about 29 wt %, dimethyl pimelate in an amount of about 10 to about 20 wt %, and dimethyl azelaate in an amount of about 1 to about 13 wt %, and combinations thereof.
[0216] In some embodiments, the esterification mixture comprises at least one of dimethyl oxalate in an amount of up to 10 wt%, dimethyl suberate in an amount from about 4 to about 20 wt%, dimethyl sebacate up to about 10 wt%, dimethyl undecanedioate up to about 8 wt%, dimethyl dodecanedioate up to about 5 wt%, dimethyl tridecanedioate up to about 4 wt%, dimethyl tetradecanedioate up to about 2 wt%, and dimethyl pentadecanedioate up to about 0.4 wt%, and combinations thereof.
[0217] In some embodiments, the method further comprises separating the at least one corresponding ester. In some embodiments, the separation is performed by distillation. In some embodiments, the separation of the at least one corresponding ester is performed by distillation. In some embodiments, the distillation is at least one selected from the group consisting of simple distillation, fractional distillation, vacuum distillation, azeotropic distillation, co-distillation, and combinations thereof.
[0218] In some embodiments, the method further comprises converting the at least one compound containing at least one carboxyl group from an ester form to an acid form (e.g., converting the ester form back to the acid form). In some embodiments, the conversion from the ester form to the acid form is carried out under ester hydrolysis conditions.
[0219] salt In some embodiments, the method of the present invention further comprises converting the at least one dicarboxylic acid to at least one corresponding salt. In some embodiments, the at least one corresponding salt is prepared by reacting the at least one dicarboxylic acid with a base to form an ionic salt of the at least one dicarboxylic acid. Bases include, but are not limited to, alkali metal salts, alkaline earth metal salts, and other metal ions. Exemplary ions include aluminum, calcium, lithium, magnesium, potassium, sodium, and zinc in their normal valences. Organic ions include protonated tertiary amine and quaternary ammonium cations, some of which include trimethylamine, diethylamine, N,N'-dibenzylethylenediamine, chloroprocaine, choline, diethanolamine, ethylenediamine, meglumine (N-methylglucamine), and procaine.
[0220] In some embodiments, the dicarboxylic acid is converted to an alkali metal salt. In some embodiments, the dicarboxylic acid is at least partially in the form of an alkali metal salt. The alkali metal salt may be made by reacting the dicarboxylic acid with an alkali metal hydroxide. Exemplary alkali metal hydroxides include sodium hydroxide, potassium hydroxide, and lithium hydroxide. Exemplary alkali metal salts of dicarboxylic acids include sodium salts, potassium salts, and lithium salts.
[0221] In some embodiments, oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid are independently in the form of an alkali metal salt.
[0222] In some embodiments, 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid are in the form of an alkali metal salt.
[0223] In some embodiments, C-C substituted with a single nitro group 20 The dicarboxylic acid is in the form of an alkali metal salt. In some embodiments, a C8-C substituted with a single nitro group 20 The dicarboxylic acids are nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, and nitro-icosane dioic acid in the form of their alkali metal salts. 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0224] Some aspects of the present invention may be defined as in any of the following numbered paragraphs: 1. A method for decomposing contaminated plastic waste, the method comprising the steps of: adding the contaminated plastic waste to a reaction vessel; adding at least one oxidizing agent to the reaction vessel; and subjecting the contaminated plastic waste to conditions effective to decompose the contaminated plastic waste to produce a decomposition mixture. 2. The method of paragraph 1, further comprising adding at least one solid catalyst to the reaction vessel. 3. The method of paragraph 1, wherein the conditions include a temperature range; an initial pressure range of the gas; and a residence time within the reaction vessel. 4. The method of paragraph 1, wherein the contaminated plastic waste comprises at least one plastic material and at least one non-plastic material. 5. The method of paragraph 4, wherein the plastic material comprises at least one selected from the group consisting of plastic film, plastic foam, plastic packaging, plastic bags, plastic wrap, and combinations thereof. 6. The method of paragraph 4, wherein the plastic material comprises polyethylene. 7. The method of paragraph 4, wherein the plastic material comprises at least one selected from the group consisting of very low density polyethylene, low density polyethylene, linear low density polyethylene, medium density polyethylene, cross-linked polyethylene, high density polyethylene, high density cross-linked polyethylene, high molecular weight polyethylene, ultra low molecular weight polyethylene, ultra high molecular weight polyethylene, and combinations thereof. 8. The method of paragraph 4, wherein the non-plastic material comprises at least one selected from the group consisting of a non-plastic organic material, an inorganic material, a fluid, and combinations thereof. 9. The method of paragraph 1, further comprising separating the decomposition mixture into a solid phase and a liquid phase. 10. The method of paragraph 9, wherein the solid phase comprises at least one selected from the group consisting of an oligomer, a polymer, and combinations thereof. 11. The method of paragraph 10, wherein the solid phase further comprises at least one solid catalyst. 12. The method of paragraph 9, wherein the liquid phase comprises at least one compound containing at least one carboxyl group. 13. The method of paragraph 12, wherein the at least one compound containing at least one carboxyl group is at least one organic acid. 14. The method of paragraph 13, further comprising converting the at least one organic acid to at least one corresponding ester. 15. The method of paragraph 13, wherein the at least one organic acid is selected from the group consisting of monocarboxylic acids, dicarboxylic acids, polycarboxylic acids, and combinations thereof. 16. The method of paragraph 13, wherein the at least one organic acid is an α,ω-dicarboxylic acid. 17. The method of paragraph 13, wherein the at least one organic acid is selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, and combinations thereof. 18. The method of paragraph 13, further comprising separating the at least one organic acid. 19. The method of paragraph 14, further comprising isolating the at least one corresponding ester. 20. The method of paragraph 2, wherein the at least one solid catalyst is selected from the group consisting of zeolites, aluminas, silicoaluminophosphates, sulfated zirconia, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, iron carbonate, calcium carbide, and combinations thereof. 21. The method of paragraph 1, wherein the at least one oxidizing agent is selected from the group consisting of oxygen (O2), nitric oxide (NO), nitrous oxide (N2O), nitrogen dioxide (NO2), nitric acid (HNO3), aqueous nitric acid (HNO3), and combinations thereof. 22. The method of paragraph 3, wherein the temperature range is 60°C to 200°C. 23. The method of paragraph 3, wherein the gas is at least one selected from the group consisting of air, nitrogen (N2), oxygen (O2), and combinations thereof. 24. The method of paragraph 3, wherein the initial pressure of the gas is between 0 psi and 1000 psi. 25. The method of paragraph 3, wherein the residence time in the reaction vessel is one selected from the group consisting of 30 minutes to 30 hours, less than 30 minutes, and more than 30 hours. 26. The method of paragraph 10, further comprising feeding the oligomer, polymer, and combinations thereof back into the reactor. 27. The method of paragraph 9, wherein the liquid phase further comprises said at least one oxidizing agent. 28. The method of paragraph 27, further comprising collecting and regenerating the at least one oxidant. 29. The method of paragraph 11, wherein the at least one solid catalyst is selected from the group consisting of zeolites, aluminas, silicoaluminophosphates, sulfated zirconia, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, iron carbonate, calcium carbide, and combinations thereof. 30. The method of paragraph 14, wherein the at least one corresponding ester is selected from the group consisting of dimethyl succinate, dimethyl glutarate, dimethyl adipate, dimethyl pimelate, dimethyl suberate, dimethyl azelaate, dimethyl sebacate, dimethyl undecanedioate, dimethyl dodecanedioate, and combinations thereof.
[0225] Some embodiments described herein relate to a system that combines polyethylene (definition provided at the end of the document) with an oxidant in a reactor to break down the polyethylene into products (definition provided at the end of the document) and recycle the oxidant (definition provided at the end of the document). The system of the present invention is constructed with multiple units and aims to increase the conversion of polyethylene, reduce waste production, and minimize oxidant make-up. To increase the reaction rate or product yield, a catalyst (definition provided at the end of the document) may be used in the process in addition to the oxidant. The main components of the system of the present invention include a reactor, a reaction gas (definition provided at the end of the document) recovery and regeneration unit, a product recovery unit, and an oxidant concentration unit. The process may be operated in multiple modes of operation: batch, semi-batch, and continuous. The process layout will vary depending on the mode of operation.
[0226] This disclosure defines a complete polyethylene chemical recycling system that does not currently exist commercially. The chemical recycling process disclosed herein is unique and addresses the enormous plastic waste problem by diverting polyethylene from landfills. The process converts polyethylene into products that can be used in value-added industrial applications (e.g., functional materials, polymers, fibers, compostable plastics, paints and coatings, lubricants, adhesives, fragrances, skin care products, etc.) that serve as drop-in replacements for existing chemical intermediates or as new chemical intermediates.
[0227] Previous literature has attempted to convert polyethylene into compounds such as dicarboxylic acids. Pifer et al. ("Chemical Recycling of Plastics to Useful Organic Compounds by Oxidative Degradation," Angewandte Chemie International Edition, Vol. 37, Issue 23; pp. 3306-3308, 1998) and Remias et al. ("Oxidative Chemical Recycling of Polyethene," Comptes Rendus de lAcademie des Sciences - Series IIC - Chemistry, Vol. 3, Issue 7; pp. 627-629, 2000) converted low-density and high-density polyethylene into valuable chemicals, including succinic acid, glutaric acid, adipic acid, and pimelic acid. However, these methods involve the use of reactive gases (i.e., nitric oxide) in pressurized autoclaves, and the high operational and capital expenditures suggest that scale-up is challenging. The systems and methods disclosed herein can produce valuable chemicals, such as the dicarboxylic acids mentioned above, from polyethylene using a reflux process with an industrially common oxidizing agent (e.g., nitric acid). Garaeva et al. ("Composition, Properties, and Application of Products Formed in Oxidation of Polyethylene by Nitric Acid," Russian Journal of Applied Chemistry, Vol. 83, Issue 1; pp. 97-101, 2010) attempted to reflux nitric acid with polyethylene, but the output produced by the research group was mostly nitrocarboxylic acids; nitrocarboxylic acids are less valuable and have fewer industrial uses than the non-nitrated dicarboxylic acids that can be produced as disclosed herein.
[0228] In this disclosure, polyethylene is a polymer with many repeating carbon units that are successively broken down into shorter segments and functionalized (e.g., carbon chains can be oxidized to form dicarboxylic or monocarboxylic acids). The scission events continue until the chain length reaches a terminal length range and cannot be further broken down (e.g., C2-C9 dicarboxylic acids), at which point an oxidizing agent depolymerizes the long-chain polymer into progressively shorter-chain species. Alternatively, the reaction process can be controlled to terminate the scission events early to achieve chain lengths longer than the terminal length range. These various chain lengths are collectively considered products. To enable the reaction of polyethylene into products, an appropriate amount of oxidizing agent is added to break the polymer down to the desired chain length; and to produce a large enough quantity of product for commercial use, the oxidizing agent should be at an appropriate concentration, and the ratio of polyethylene to oxidizing agent should also be appropriate. The process and equipment described in this disclosure allow for control over the process to enable the conversion of polyethylene into products, including terminal reactive species and / or other species of desired chain lengths.
[0229] Both the overall process and individual units are optimized to economically convert polyethylene into products and minimize oxidant and catalyst use. A polyethylene chemical recycling facility is designed to optimize process performance metrics within its units (e.g., the reactor is designed to maximize polyethylene conversion, the separation unit is designed to recover and recycle the oxidant back to the reactor, and the absorption unit is designed to recover the reaction gases and regenerate the oxidant). These units are designed to minimize energy use and are combined into a process system that recovers and reuses oxidant and catalyst to minimize their recharge into the process. The process is also designed to minimize waste in the gas and solid phases. Overall, this process can significantly improve the economics of producing products while diverting polyethylene from waste streams (e.g., landfills and oceans) and extends carbon life. Additionally, using polyethylene as a product reduces the use of petrochemical feedstocks traditionally used to make the product.
[0230] Method for converting polyethylene into reaction products Disclosed herein is a method / process for converting polyethylene into a reaction product or "product" using an oxidant and specific operating conditions (e.g., temperatures between 60°C and 200°C). This is a controlled chemical reaction within a reactor. The problem is that the oxidant is partially converted into reaction gases that exit the reactor as a gas phase. To make the process economical, this reaction gas is converted back to oxidant and recycled to the reactor. The remaining product and oxidant in the liquid phase are removed from the reactor and the product is separated. This disclosure details a solution for separating, recovering, and recycling the oxidant and recovering the product.
[0231] In one embodiment of a method 500 for decomposing polyethylene, as shown in Figure 21, polyethylene and an oxidant are fed to a reactor where they react to produce a reaction gas and a reaction product 510. The reaction gas is fed to an absorption unit 520 to recover the oxidant from the reaction gas. To improve the economics of the decomposition process, the oxidant recovered from the absorption unit is then recycled to the reactor 530. The reaction product may be fed to a separation unit to separate the product and the oxidant. The oxidant recovered from the separation unit may also be recycled to the reactor.
[0232] System for using an oxidant to break down polyethylene into products and recycling the oxidant A schematic diagram of the process flow 100 for the chemical recycle process is shown in Figure 5. The primary process for producing the product consists of four main units: reactor (React.) 120; oxidant regeneration in absorption unit (Abs.) 140; product / oxidant separation unit 160, which separates the oxidant and product (Evap) into two separate streams; and unit 170, which then concentrates the oxidant back into reactor 120 to the required concentration for recycling. The chemical reactor 120 breaks down polyethylene into product. Key reaction variables are the relative amount of polyethylene to oxidant fed into reactor 120, the concentration of oxidant in the aqueous phase, and other process variables such as pressure, temperature, mixing, and residence time. Additionally, a catalyst may be fed into reactor 120 to speed the conversion of polyethylene to product. The relative amount of polyethylene mass to oxidant mass added into reactor 120 and the concentration of the oxidant will determine the reaction rate at which the polyethylene is converted to products and will also determine the type of chemical reactor used. For stirred tank reactors, the amount of polyethylene to oxidant on a mass basis may be in the range of (e.g., 1:3 to 1:100, e.g., 1:10 to 1:100, e.g., 1:3 to 1:50, e.g., 1:3 to 1:25, e.g., 1:3 to 1:10, e.g., 1:3 to 1:5).
[0233] In Figure 5, the reactor section 121 of the process is highlighted and enclosed within a dashed box. Two feed streams, labeled 1 and 2, contain polyethylene and oxidant, respectively. Many different reactor types, geometries, and configurations are possible, as are many different ways in which the feed streams are added to the reactor. Once in reactor 120, the polyethylene and oxidant react at elevated temperatures (e.g., 60°C to 200°C, e.g., 75°C to 150°C, e.g., 100°C to 125°C) to produce reaction gases. The reaction gases, along with the volatilized oxidant and entrained liquid / solid droplets, exit the top of reactor 120 [Stream 3] and may enter condenser unit (Cond.) 150 or directly into absorption unit 140. The purpose of the condenser unit 150 is to condense the vaporized liquid if the process is operated near the boiling point of the oxidant (e.g., boiling liquid vapor is cooled in the condenser and sent back to the reactor) [Stream 7]. The non-condensable gases then feed the absorption unit 140 [Stream 8]. The absorption unit 140 is designed to convert the reactant gases back to the oxidant. One intermediate step is to fully oxidize the reactant gases (e.g., convert NO to NO) using air, enriched oxygen, or pure oxygen. The air, enriched oxygen, or pure oxygen stream is either fed into the absorption unit 140 or mixed with the reactant gases [Stream 8] before being fed into the absorption unit 140. It is also possible to add air or enriched oxygen directly into the reactor 120. The reactant gases, which may be regenerated and returned directly to the oxidant, flow upward through an absorption column packed with different internal materials or trays and come into contact with a liquid phase [Stream 15] fed from the top of the absorption column. The reactant gases are absorbed into the liquid phase (e.g., NO, NO2, N2O3, N2O4 are absorbed in water), reacting and converting back to the oxidant (e.g., HNO3).The recovered and regenerated oxidant in this stream 9 may be sent directly back to the reactor 120 or may be sent to a unit 170 used to concentrate the oxidant (e.g., it may be mixed with stream 18). The gas leaving the absorption unit [stream 12] will likely contain very small amounts of reactant gases and may be released to the atmosphere or sent to additional units to remove VOCs or further reduce the reactant gas concentration.
[0234] At the bottom of the reactor 120, a liquid is withdrawn [Stream 4] and can be sent directly to the separation section (Evap.) 160 to separate the product (e.g., 1 wt% to 20 wt% dicarboxylic acid) from the oxidant, or can be sent to another unit (e.g., liquid-liquid separator 130 or another reactor) before separation. Figure 5 shows an intermediate liquid-liquid separation unit (L / L Sep.) 130 before the separation unit 160. The purpose of the liquid-liquid separation unit 130 is to allow recycling of separate phases of unreacted or partially reacted polyethylene, either solid or liquid. The liquid-liquid separation unit 130 can be a vessel designed to separate two or more phases of different densities and then remove each phase individually (e.g., a lower-density phase is removed from the top of the vessel and a higher-density phase is removed from the bottom of the vessel). Unreacted or partially reacted polyethylene [Stream 5] is either recycled back to the reactor [Stream 13], sent to another unit in Stream 14, or purged from the system to prevent the accumulation of inerts or unreacted species. The liquid-liquid separation unit 130 may be a separation vessel, a centrifugal type device (cyclone or hydrocyclone), a mechanical device such as a continuous flow centrifuge, or the like. The liquid-liquid separation unit 130 may also incorporate filtration to remove solids or additional modifications to handle solids that may enter the process in the form of contamination on the polyethylene (e.g., the separation vessel may be designed for three or more phases: gas, low density liquid, high density liquid, and high density solid).
[0235] The product stream [Stream 6] from the reactor 120 and the liquid-liquid separation unit contains mainly product and oxidant. This stream is sent to a separation unit (Evap.) 160 to separate the product from the oxidant. This may be done in a single stage or multiple stages and may be done using different physical principles. For example, taking advantage of the different boiling points of the different species, Stream 6 may be sent to an evaporator where the oxidant is vaporized [Stream 18] and the product [Stream 19] remains liquid. The type of evaporator may be, for example, a wiped film evaporator, a falling film evaporator, a forced circulation evaporator, or a flash evaporator. The degree of separation may vary. In one case, all low boiling point materials are removed, causing the product to form a solid (e.g., all oxidant is removed), and almost all of the oxidant is recovered. This is thought to improve overall economics and may simplify product storage and transportation. The following types of equipment are capable of completely removing all product from Stream 6 in solid form: 1. Hybrid wiped film evaporators with internal structures, such as screw conveyors, to prevent solids buildup and convey the solids out of the facility; and 2. A spray dryer in which all of the volatile liquid and active oxidant are evaporated. This may also include the optional option of removing some of the volatile liquid in stream 6 in the equipment described above to concentrate the product stream (e.g., removing 25-90% of the volatile liquid in stream 6), and then sending the concentrated product stream to a spray dryer, or a fluidized bed dryer or rotary drum dryer where the remaining liquid is removed.
[0236] Separation unit 160 may also be a crystallizer in which the product is solidified and removed via filtration or some other technique. Separation unit 160 may also be an extraction unit in which stream 18 is contacted with another liquid in which the product is soluble but the oxidizing agent is insoluble.
[0237] The vaporized and separated oxidant stream [Stream 18] leaving Separation Unit 160 may be recycled directly to Reactor 120 (e.g., by connecting and mixing with Streams 21 or 10), or the oxidant may need to be concentrated in a separate unit. This unit may be Distillation Unit (Dist.) 170, where the aqueous phase is partially separated from the oxidant and removed [Stream 17], thereby concentrating the oxidant to the concentration required for recycle to Reactor 120 (e.g., 45 wt% to 95 wt%, e.g., 50 wt% to 75 wt%) [Stream 16]. This concentration section may be a distillation column with different internals or packing, or a rectification column attached on top of the evaporation unit, to which vapor Stream 18 serves as the feed. The feed to Distillation Unit 170 may be a mixture of any number of streams in the process, with the oxidant concentration in the combined stream being lower than that required for Reactor 120. Stream 16 from distillation column 170 or oxidant concentrator may flow at a rate necessary to supply all of the oxidant to reactor 120 (e.g., 1 to 50 times the polyethylene feed rate); or, reactor 120 may be partially fed with oxidant, in which case additional oxidant is added to the process [Stream 2]. Additionally, to provide more process feed options and potentially reduce costs, a make-up dilute oxidant stream may be sent to distillation unit 170 (e.g., [Stream 2] is dilute oxidant mixed with [Stream 18] instead of being fed directly to the reactor). In this scenario, distillation column 170 or concentrator unit supplies all of the oxidant to reactor 120.
[0238] As an example of the overall process, consider one process configuration, among many. This example illustrates the importance of each step and how, when combined, they create an efficient and complete process. The basics considered for this example are a 1000 kg / hr polyethylene feed and a 1:20 ratio of polyethylene to oxidant fed into reactor 120 (the amount of oxidant fed into the reactor, including recycle and make-up, can be 20,000 kg / hr). In the case of a single stirred-tank reactor, polyethylene is added to the system, and oxidant is also added. The polyethylene and oxidant react to form products and reactant gases. In this example, 100% of the polyethylene is converted to products by mass (the relative fraction of dicarboxylic acids to other species is 80%). The oxidant reacts with the polyethylene, converting 15 wt% of the oxidant to reactant gases and products (or, for each mole of oxidant reacted, one mole of reactant gas is produced). The product and unreacted oxidant stream exits the bottom of reactor 120 and is fed to a first unit (e.g., an evaporator) for separation of the oxidant and product. In this unit, 92 wt% of the stream is vaporized, and all of the product and a portion of the oxidant exit the bottom of the unit (e.g., about 5 wt% to 20 wt% of this stream is oxidant) and may proceed to further processing to purify the product and remove residual oxidant (e.g., separate dicarboxylic acids from other species or separate dicarboxylic acids into individual species). The vapor stream exiting the first unit (e.g., an evaporator) is primarily oxidant at a lower concentration (e.g., 55 wt% to 63 wt%) than the specified feed oxidant concentration (e.g., 65 wt% to 70 wt%); this is because a fraction of the oxidant has reacted and been converted to reactant gases and products. The vapor is sent to another separation unit (e.g., a distillation column or an addition tank) to concentrate the oxidant to a desired starting concentration (e.g., to remove water from aqueous oxidant or to add a more concentrated oxidant). This recovered oxidant is recycled back to reactor 120 and accounts for approximately 85% of the oxidant added to reactor 120 as the oxidant feed.At the top of the reactor 120, the reactant gases are mixed with air to oxidize a portion of the reactant gases (e.g., convert NO to NO). The reactant gas stream is then sent to an absorption column 140 where the reactant gases are converted to an oxidant by reaction with water (e.g., contacting the reactant gases with water to produce the oxidant). The regenerated oxidant is recycled back to the reactor 120, and the tail gas exiting the absorption column 140 is mostly N (e.g., about 95%). By recovering and recycling the concentrated oxidant separated from the products exiting the bottom of the reactor, as well as the oxidant regenerated from the reactant gases, >97.5 wt% of the oxidant can be recovered, requiring only a small make-up oxidant stream. This overall process example highlights how different process units can be integrated to enable the efficient conversion of polyethylene to products, thereby minimizing waste and oxidant consumption needs and reducing process operating costs.
[0239] The process may have multiple reactor units 120, different types of reactor units, and different sizes of reactor units. The reactor units 120 may be in a series or parallel configuration with heating, cooling, or different types of equipment (such as a liquid-liquid separator to separate polyethylene from incompletely reacted products) between the reactor units. The process may be operated in batch, semi-batch, or continuous mode. Different sections may be operated in different modes. For example, multiple reactors connected in parallel may be operated individually in batch mode. The reactor process is staggered so that one reactor is always being emptied to feed another part of the process. After being emptied, that reactor is refilled and another reactor that has completed the process is emptied.
[0240] The layout of the piping connecting the process equipment and how the streams are mixed and added within each unit can vary. The flow rates, pressures, temperatures, and Reynolds numbers of the fluids in the pipes can vary, as can the size and materials of the piping and lines.
[0241] The layout and construction of the system may be an entirely new plant (greenfield), constructed on an existing plant site (brownfield), a process retrofit with some applicable existing process equipment, a field assembled plant, a single modular plant, or a modular plant where each unit is a separate module.
[0242] Reactor for converting polyethylene into products Reactor 120 is used to convert polyethylene into products. The chemical reactions involved in this conversion occur in chemical reactors referred to in this disclosure.
[0243] One embodiment includes a reactor 120 as a component of the overall process, which uses an oxidant to convert polyethylene into chemical products and generate reaction gases. The reactor 120 may be a continuous stirred tank reactor, a semi-continuous reactor, or a batch reactor with controlled heating, agitation to mix the reactor contents, reflux to condense vapors, control valves to control the flow of the product stream from the reactor to a separation unit, and a feeder unit to feed the input at a uniform rate. Multiple reaction vessels may also be present to allow for multistage reactions.
[0244] Typically, pretreated or untreated polyethylene enters reactor 120 along with an oxidizing agent (e.g., 45 wt% to 95 wt% nitric acid). This pretreatment involves one or more unit operations, including crushing, cleaning, grinding, melting, washing, and drying. Reactor 120 can be designed to handle different forms of polyethylene and can be operated at a variety of temperatures, agitation, and mixture flow rates. When reactor 120 reaches a desired temperature (e.g., a temperature between 60°C and 200°C, e.g., 80°C to 150°C), the conversion reaction begins. Near the start of the reaction, the oxidizing agent allows the polyethylene to depolymerize into shorter chain species, which are further broken down into products as the reaction proceeds. Reaction gases are produced. Unreacted polyethylene or the short chain species may be further reacted into products.
[0245] FIG. 6 shows a stirred tank reactor (120) that may be operated in batch, semi-batch, or continuous mode (in one embodiment, continuous mode). The reactor 120 has multiple ports (e.g., feed, recycle, outlet, etc.) for adding and removing materials from the reactor 120. The oxidant is added to the reactor 120 at a specified concentration through a recycle stream 122 or a make-up feed stream, or both. The polyethylene is added separately to the reactor 120, but make-up oxidant may be combined with the polyethylene to create a dispersion that is fed into the reactor 120. The reactor 120 may also include a system 124, such as a screw conveyor, for adding the polyethylene to the reactor 120 or for melting the polyethylene and extruding the liquid polyethylene into the reactor. The shape factor and size of the polyethylene are also important to the process. The smaller the size of the polyethylene, the greater the exposed surface area per unit volume of dispersed or emulsified polyethylene that is exposed to the oxidant, resulting in a faster reaction rate. The tank can be agitated to create high turbulence and shear rates to disperse and mix the polyethylene and oxidant. Different types of impellers 126 can be used (e.g., paddle, anchor, helical, propeller, pitched blade, etc.). An additional feature may be present at the bottom of the reactor: a motor driving a chopper blade 128 within the reactor 120. The chopper blade 128 acts to further blend and break down the polyethylene by using very high rotational speeds to create very high shear stresses, similar to those in a blender (e.g., rotating at 500-10,000 rpm). This chopper blade 128 may be used instead of or in combination with feeding pretreated polyethylene. The reactor 120 may also have different geometries and features. This may include a boot at the bottom to separate the oxidant phase from the fresh or under-reacted polyethylene phase, allowing for a product stream that is solely or primarily oxidant and product.Reaction vessels may have different sizes and geometries, with the size being determined primarily by the desired residence time in the reactor (e.g., 30 minutes to 12 hours, e.g., 1 hour to 9 hours, e.g., 1 hour to 5 hours, e.g., 3 hours to 9 hours, e.g., 3 hours to 5 hours). Residence time may vary depending on process conditions (e.g., higher temperatures may require shorter residence times). Residence time is scale independent and is determined by the mass of material in the reactor divided by the combined flow rate of all feedstreams entering the reactor.
[0246] For example, 1 metric ton of polyethylene per hour is added to reactor 120. The polyethylene to oxidant ratio is 1:100, resulting in a combined mass flow rate of 100 metric tons per hour of oxidant, including recycle and make-up. For a 3-hour residence time, the required reactor volume is 3 hours x 101 metric tons / hour, or 303 metric tons. To process the same polyethylene feed rate, a more concentrated feed ratio of 1:10 requires a feedstream flow of 1 metric ton per hour of polyethylene and a combined mass flow rate of 10 metric tons per hour of oxidant, including recycle and make-up. For a 3-hour residence time, the reactor volume is only 33 metric tons. For a more concentrated feed ratio of 1:3, the required feedstream flow is 1 metric ton per hour of polyethylene and a combined mass flow rate of 3 metric tons per hour of oxidant, including recycle and make-up. For a 3-hour residence time, the reactor volume is only 12 metric tons. A higher polyethylene to oxidant ratio is preferred to reduce reactor size and volume. However, higher ratios of polyethylene to oxidant may require different residence times (e.g., 3-12 hours, e.g., 3-9 hours, e.g., 3-5 hours) and may require different oxidant concentrations in the single reactor or multiple reactors to allow for oxidant replenishment to increase the oxidant concentration and speed the breakdown of the polyethylene.
[0247] Figure 7 shows a reactor scheme used to promote complete conversion of polyethylene to products. The scheme shows multiple stirred-tank reactors 120 in series, with the effluent from one reactor 120 fed into the next. Fresh oxidant can be added to the feed of the next reactor 120 at a specified concentration, which, when mixed, increases the oxidant concentration in the tank. The number of stirred tanks can be influenced by the relative amount of polyethylene to the oxidant phase in the first reactor. The more polyethylene added to the system, the more reactors may be required, and the more oxidant may need to be added to maintain a high reaction rate. In this multiple-reactor scheme, stirred tanks and plug flow reactors may alternate (e.g., a plug flow reactor followed by a stirred tank, or vice versa).
[0248] Figure 8 shows gravity-flow reactor 220, a tall vessel maintained at a specified temperature and pressure. The oxidant phase is added to the top of the reactor vessel and flows downward through reactor 220. Polyethylene is added to the bottom of the reactor vessel by adding solid polyethylene or by melting the polyethylene and extruding it into the vessel in liquid form. Because polyethylene is less dense than the oxidant phase, the polyethylene (in either solid or liquid state) will rise through reactor 220 if the velocity of the solid particles or liquid droplets is greater than the downward velocity of the aqueous fluid. As the particles or droplets rise through reactor 220, they react with the oxidant. The oxidant concentration is lowest at the bottom of reactor 220 and increases toward the top, where fresh, "rich" oxidant is added. As the solid particles or liquid droplets rise through reactor 220, they react and shrink in diameter. Additionally, as they rise, the oxidant concentration increases, increasing velocity, consuming more polyethylene and further reducing their diameter. This countercurrent reactor maximizes the driving force for the reaction throughout the reactor. Product is removed from the bottom of reactor 220, and unreacted polyethylene and reaction gases are separated and removed separately. Unreacted or partially reacted polyethylene may be removed or recycled back into reactor 220. Additionally, specified concentrations of oxidant may be added at different locations within reactor 220 to increase the oxidant concentration.
[0249] Figure 9 shows a plug flow reactor 320. Polyethylene and oxidant are pumped through temperature- and pressure-controlled tubing 322. Mixing may be enhanced using a static mixer or other in-line mixer 324. The diameter and length of the reactor tubing 322 are selected to accommodate specific residence times and fluid flow regimes. The polyethylene and oxygen continue to react as the fluid mixture moves through the reactor 320. Pumps and knockout vessels may be added periodically to move the fluids and also remove reaction gases. Additionally, specified concentrations of oxidant may be added at different locations within the reactor to increase the oxidant concentration.
[0250] Figure 10 shows a reactor 420 that may be useful for very viscous mixtures (e.g., polyethylene to oxidant feed ratios between 5:1 and 1:2 by mass) or for untreated polyethylene. Here, polyethylene is added to a hopper 422 along with the oxidant. The mixture is drawn into the entrance of a reactor tube 424 equipped with a screw auger (single or twin). The auger blades are designed to both mix the mixture and convey it through the reactor 420. The reactor walls are heated, and the polyethylene and oxidant continue to react as the fluid mixture moves through the reactor. The auger may act to mix and break down the polyethylene. This reactor system may have multiple sections, with partitions 428 allowing separation of the reactant gas and reintroduction of fresh oxidant. Fresh oxidant may also be added through holes in the reactor wall at designated locations along the length of the reactor tube.
[0251] A variety of materials may be used to construct the reactor, impeller, piping, and valves (some options include wetted parts made from Teflon, Hastelloy C, fiberglass reinforced steel, titanium, tantalum, fiberglass reinforced plastic, glass, and glass-lined steel). Other variables to consider include: ·Reactor size (length and diameter) and pipe sizing. Reactor temperature: 50℃~300℃. · Reactor pressure: 10 torr to 10 bar. · Type of reactor (stirred tank, plug flow, slurry). · Mode of operation (batch, semi-batch, continuous). There may be a reactor train of multiple reactors in parallel or in series, which may be of the same or different size and type. Heating source (induction heating, oil jacket type, etc.). The reactor may be insulated or jacketed. The temperature of the reactor or its heating elements may be adjusted: higher temperature ranges may provide more severe conditions for breaking down the polyethylene. The pressure of the reactor system may be adjusted: a higher pressure range may increase the reaction rate and may also allow for higher temperatures. Residence time determines how long the reactants remain in the reactor before exiting the reactor. Residence times can range from 30 minutes to 30 hours. · Type of feedstock and physical form of the feed. Reflux capacity. The amount of polyethylene relative to the oxidant, on a mass basis, in the feed entering the reactor. - Polyethylene [mass]:oxidizer [mass] is 5:1 to 1:2. - Polyethylene [mass]:oxidizer [mass] is 1:3 to 1:10. - Polyethylene [mass]:oxidizer [mass] is 1:10~1:20. - Polyethylene [mass]:oxidizer [mass] is 1:20~1:50. - Polyethylene [mass]:oxidizer [mass] is 1:50 to 1:100. - Polyethylene [mass]:oxidizer [mass] is 1:100~1:500.
[0252] The relative amounts of polyethylene to oxidant, by mass, affect the reactor type and process. For feed ratios between 1:1 and 1:20, a high concentration of oxidant to polyethylene is preferred to maintain a high reaction rate and also to completely depolymerize the polyethylene to its terminal state. In these cases, the reaction mixture may be viscous, and therefore helical or screw-type mixing and conveying elements (e.g., the chemical recycle screw reactor in Figure 10) may be required to move the mixture through the reactor. Fresh oxidant may be added at different locations in the reactor to maintain a high oxidant concentration and increase the rate of polyethylene breakdown and product formation. Additionally, multiple reactors may be used in series, as shown in Figure 7.
[0253] Stirred tank reactors and plug flow reactors are commercially available units for controlling chemical reactions.
[0254] Separation of oxidizing agents from products produced in a process for chemically recycling polyethylene. In one embodiment of this process, polyethylene is combined with an oxidant in a reactor, where the polyethylene is broken down and oxidized (sequentially or simultaneously) to products (e.g., 1 wt% to 20 wt% dicarboxylic acids), water (e.g., 10 wt% to 90 wt% aqueous reaction contents), and reaction gases (e.g., 10 wt% to 60 wt% NO and 40 wt% to 90 wt% NO). One challenge is that the products are highly miscible with the oxidant at and below the reaction temperature; this can make separating the products from the oxidant difficult. Additionally, as the conversion of polyethylene increases, the oxidant concentration decreases due to the formation of water and reaction gases. To make the process economical, the products are separated from the oxidant; the oxidant should then be recycled back to the reactor. This disclosure details solutions for separating the products and oxidant and recycling the oxidant back to the reactor.
[0255] This separation unit is a component of a system for converting polyethylene into high-value chemicals. In this system, polyethylene is combined with an oxidant in a reactor to produce liquid-phase products and reaction gases. The polyethylene is decomposed into products that can be used in value-added products (e.g., functional materials, paints and coatings, lubricants, adhesives, fragrances, skin care products, etc.) that serve as drop-in replacements for existing chemical intermediates or as new chemical intermediates. By combining this separation step with a polyethylene recycling process, it is possible to isolate the high-value chemicals and recover a majority of the oxidant. The present disclosure enables the recycling of the oxidant and also limits the generation of oxidant waste.
[0256] Figure 11 shows a basic separation unit 160 for converting polyethylene to a product. The polyethylene conversion product and oxidant exit the system's reactor during the process and are passed through an evaporator 161 or concentrator (e.g., a thin-film evaporator) to remove the oxidant (e.g., 10 wt% to 80 wt% of the reactor stream) from the product. The concentrated product and oxidant mixture is then passed through an oxidant stripper / harvester 162 (e.g., a Nutsche filter dryer) to separate the product and remaining oxidant in a solid state. The separated product is then passed through a dryer (e.g., a spray dryer) 164 to remove residual oxidant. All oxidant streams produced from the separation process are combined and passed through an oxidant concentrator (e.g., a distillation column) as needed, then recycled back to the reactor section of the polyethylene conversion system for reuse. This component of the system is designed to recover >90% of the product and >90% of the oxidant while minimizing the need to add additional oxidant to the system. The evaporator / concentrator 161 may be a thin film evaporator, centrifugal evaporator, blowdown evaporator, vortex evaporator, and / or combinations thereof as a single unit, multiple units in series or parallel. The oxidant stripper / harvester 162 may be a chromatography column, a crystallizer, a liquid-liquid extractor, a Nutsche filter dryer, and / or combinations thereof as a single unit or multiple units in series. The dryer 164 may be a freeze dryer, a spray dryer, a rotary dryer, a centrifugal dryer, a vacuum dryer, and / or a combination thereof as a single unit or multiple units in series. The oxidant concentrator may be a distillation column, an absorption column, and / or a combination thereof as a single unit or multiple units in series.
[0257] Separation unit 160 may have many unique and process-specific features tailored to the processing of products from polyethylene conversion. Separation unit 160 may operate continuously and may handle the unique liquid flows and chemical compositions exiting the reactor. If the oxidant after separation from the products is not at the desired concentration, it may be sent to an oxidant concentrator (e.g., a distillation column) for further purification so that it can be introduced directly into the reactor.
[0258] Another unique application is envisioned to be combining the separation unit with an absorption column. The reaction gases released in the separation unit may be combined with a reaction gas absorption unit to regenerate the oxidant for direct introduction into the reactor.
[0259] Figure 12 shows modifications to separation unit 160. The concentrated product (e.g., 15 wt% to 80 wt% dicarboxylic acid) and oxidant (e.g., 5 wt% to 85 wt% nitric acid) may be passed through a filter 163 (e.g., a Nutsche filter) to collect the oxidant and introduce it directly into the reactor for polyethylene conversion. Additionally, in cases where reactive species from incomplete conversion of polyethylene exit the reactor, a filtration step helps recover such species and oxidant in the filtrate; they may be reintroduced into the reactor for further conversion to product. Filter 163 may be a gravity filter, a vacuum filter, a turbo filter, a centrifugal filter, a membrane filter, and / or a combination thereof.
[0260] An additional modification is shown in Figure 13. The concentrated product (e.g., 15 wt% to 80 wt% dicarboxylic acid) and oxidant (e.g., 45 wt% to 95 wt% nitric acid) are first centrifuged 169 and then passed through a filter 163. Centrifugation settles solid particles in the concentrated product and oxidant mixture, minimizing clogging of the filter pores and speeding the filtration process.
[0261] Alternatively, the oxidant may be collected directly after centrifugation and introduced directly into the reactor without an additional filtration step, as shown in Figure 14. Centrifugation may also be applied depending on the viscosity of the concentrated product and oxidant mixture. Highly viscous mixtures are difficult to filter, and an additional centrifugation step may be more effective for separating the product from the oxidant.
[0262] FIG. 14 shows the process of FIG. 13 without the post-centrifugation filtration step.
[0263] Figure 15 shows an additional modification to Figure 11. The evaporator / concentrator has been eliminated in this system because in some cases it can be combined with the oxidant stripper / harvester. In cases where oxidant losses from the separation are low, it may be eliminated entirely or combined into a single stage without the need for separate equipment to recover the oxidant and product.
[0264] 16 shows a separation unit 160 equipped with a dryer 164 (e.g., a spray dryer) to directly obtain a dried product (e.g., 90 wt% to 99.9 wt% dicarboxylic acid) and an oxidant (e.g., 45 wt% to 95 wt% nitric acid) in a single stage. Rapid drying of the liquid stream exiting the reactor can be achieved by blowing hot air into the stream to remove most of the oxidant. This method can be applied to low-viscosity liquid streams that can be easily dispersed into droplets of controlled size.
[0265] Figure 17 shows a separation unit 160 in which filtration and drying are combined in a single stage. This may be achieved with a filter dryer 167 (e.g., a Nutsche filter) at the desired temperature and may be operated either under vacuum or pressure. The method may be used with or without agitation depending on the drying rate required. Faster drying is possible with agitation and by varying the agitation speed. Vacuum filtration may also be applied for faster drying. Other variables include: · Flow rate of the post-polyethylene process liquid stream entering the evaporator / concentrator. The residence time of the liquid stream in the evaporator, which may be modified to vary the amount of oxidant removed and may also be modified depending on the flow rate of the liquid stream exiting the reactor. The temperature of the evaporator / concentrator (e.g., thin film evaporator) may be adjusted to adjust the evaporation rate required based on the flow rate leaving the reactor and entering the separation unit. A faster flow rate leaving the reactor would require a higher temperature, and a slower flow rate leaving the reactor would require a lower temperature. Evaporator / Concentrator Pressure. Lower temperatures and lower pressures, and higher temperatures and higher pressures, result in faster evaporation. Running the evaporator / concentrator at lower or higher pressures can incur additional costs and equipment. The evaporator / concentrator may be a single unit for cumulative removal of oxidant, or multiple units for sequential removal of oxidant. The oxidant stripper / harvester may be at ambient or reduced pressure. Reduced pressure improves filtration rates, but this may incur additional costs and other equipment such as vacuum pumps. Dryer temperature and pressure. Condenser temperature. · Centrifuge speed. Oxidant concentrator temperature and pressure. Lower temperatures and lower pressures, and higher temperatures and higher pressures, result in faster evaporation. -Filter pore size. Materials for constructing evaporators / concentrators, filters, dryers, distillations, oxidant strippers / harvesters, and centrifuges (some options include wetted parts made from Teflon, Hastelloy C, fiberglass reinforced steel, titanium, tantalum, fiberglass reinforced plastic, glass, and glass-lined steel). Heating sources (induction heating, oil jacketed) for evaporators / concentrators, distillers / driers, and oxidant strippers / harvesters.
[0266] Recovery and regeneration of oxidizing agents for chemical recycling of polyethylene In one embodiment of this process, the reaction gas is formed after the oxidizing agent oxidizes the polyethylene. Commercially, nitric acid is converted to NO using an absorption column in a continuous mode of operation. xNitric acid is produced from the absorption of nitric acid (produced from ammonia) into water. These plants are typically designed to produce significant volumes of nitric acid, and therefore the absorption column is tailored for this application. The inventors are not currently aware of any cases in which this technology has been applied to polyethylene recycling. Furthermore, many features of the chemical recycling process are unique. In addition to recovering the oxidant, the reaction gases are also reduced to below threshold levels for release into the environment, as defined by state or local regulations. The absorption column may be capable of reducing the composition of the reaction gases to these levels.
[0267] This absorption / reaction unit is a component of a chemical recycle system, in which polyethylene is combined with an oxidant in a reactor to produce liquid-phase products and reaction gases. The reaction gases may be absorbed in water, reacted, and converted back to the oxidant. By combining this absorption step with a chemical recycle process, a large portion of the reaction gases produced can be recovered, which allows for recycling of the oxidant and limits the release of reaction gases from the process. The tail gas from the process is a scrubbed gas (e.g., <1 wt% NO and <1 wt% NO).
[0268] Figure 18 shows a basic absorption unit 140 for chemically recycling polyethylene. Reactant gases (e.g., 10-60 wt% NO and 40-90 wt% NO) exit reactors and other process units and are combined and mixed with air, enriched air, or oxygen to convert the reactant gases to an oxidized state (e.g., converting NO to NO). The gases then enter the bottom of the absorption column 140 and are sparged there. The reactant gases flow upward through the column, which has internals 142 (trays or other packing) to increase the contact area and transport the reactant gases into the aqueous phase, establishing equilibrium at all positions in the system. Pure water is added to the top of the absorption column 140 to absorb the reactant gases that are reacted and converted to oxidants (e.g., NO, NO, NO, and NO react with water to form HNO); the oxidant concentration continually increases as you move toward the bottom of the column. At the bottom of column 140, the oxidant can reach high concentrations (e.g., 40 wt% to 70 wt% HNO3). The oxidant is then recycled back into the reactor section of the chemical recycle system for reuse. This component of the system is designed to recover and convert as much as 99.9% of the reactant gases back into oxidant, minimizing the need to add additional oxidant into the system. High recovery also allows the scrubbed gases to be released into the atmosphere if the reactant gas concentration is low enough.
[0269] For example, the reactor gas may exit the reactor with a composition of 50 mol% NO and 50 mol% NO. If it flows at 1 kmol / hour, 0.5 kmol of NO can be oxidized to NO. To provide enough oxygen to oxidize the NO, air at a flow rate equal to or greater than 1.7 kmol / hour is mixed with the reactant gas stream. After the NO is oxidized to NO, the combined stream contains N and mostly NO (and other species found in air at lower concentrations). The stream contains approximately 1 kmol / hour of NO and approximately 1.35 kmol / hour of N. The combined stream is sent through an absorption column 140, where the NO is absorbed into water, ultimately converting most of the NO back into the oxidant (e.g., HNO is converted to a flow rate of 1 kmol / hour). The water flow rate is selected to maximize the concentration of HNO in the aqueous phase.
[0270] Absorption column 140 may have a number of unique, process-specific features tailored to the polyethylene recycling process. Absorption column 140 may operate continuously and may handle specific reaction gas compositions exiting the reactor (e.g., 60 wt% to 99 wt% NO and 10 wt% to 60 wt% NO). In addition, less concentrated oxidant from other parts of the process may be added to the column at intermediate stages. If the oxidant exiting absorption column 140 is not sufficiently concentrated for the process (i.e., the concentration required for the reactor), it may be sent to an additional separation unit (e.g., a distillation column) for further purification.
[0271] 19 shows another unique application in which an absorber column 140 is combined with a reactor 120. In this system, the absorber column 140 serves multiple functions. Because the fluids in the reactor 120 are at their boiling points and both the reactant gases and the oxidant exit the reactor 120 in the gas phase, a reflux component is required to recondense the vaporized oxidant. By adding an absorber column 140 with chilled water on top, the absorber column 140 can perform the dual functions of absorbing the reactant gases and directly condensing the vaporized oxidant.
[0272] Figure 20 shows another modification for partial absorption in the reflux section of the reactor. Here, a packed column 140 is located at the top of the reactor 120. Near the bottom of the column 140, there are trays or some internals to partially remove condensed liquid from the column. This liquid is pumped through a cooler 148 to further reduce its temperature (e.g., 90°C to 150°C) and then sprayed from the top of the column 140 onto the packing material within the column 140. The reactant gases exiting the reactor 120 are cooled, and the vaporized oxidant recondenses and flows back into the reactor 120. Because the oxidant has been consumed, its concentration in the reactor 120 and in the vapor is lower than that in the feed, so some reactant gas is absorbed. This reduces the amount of reactant gas going to the next section and also helps keep the oxidant concentration high.
[0273] Other variables include: The temperature of the water and reactant gases may be adjusted before entering the absorption column or cooled within the column (e.g., 5°C to 50°C). Typically, the cooler the fluid, the better the recovery and conversion of the oxidant. Pressure may also be adjusted. Higher pressure improves recovery and separation, but this may incur additional costs and other equipment such as compressors. The relative flow rates of the reactant gases to the water. These flow rates affect the composition of the scrubbed gas and aqueous oxidant. · Column length and diameter. · Column internals and packing materials. · Number of columns. The position in the column where the stream is added.
[0274] Definitions and Aspects Oxidizing agent: A chemical component used to make a reaction possible.
[0275] The oxidizing agent includes at least one selected from the group consisting of nitric acid, sulfuric acid, hydrogen peroxide, molecular oxygen, ozone, and combinations thereof.
[0276] In some embodiments, the oxidizing agent comprises at least one selected from the group consisting of aqueous nitric acid, aqueous sulfuric acid, aqueous hydrogen peroxide, molecular oxygen, ozone, and combinations thereof.
[0277] In some embodiments, the oxidizing agent comprises an aqueous solution of nitric acid.
[0278] In some embodiments, the oxidizing agent comprises 45-95 wt% aqueous nitric acid solution.
[0279] In some embodiments, the oxidizing agent comprises 50-75 wt% aqueous nitric acid solution.
[0280] In some embodiments, the oxidizing agent comprises 60-70 wt% aqueous nitric acid solution.
[0281] In some embodiments, the oxidizing agent comprises 70-80 wt% aqueous nitric acid solution.
[0282] Catalyst: A chemical component used to enhance a reaction.
[0283] The catalyst comprises at least one selected from the group consisting of hydrochloric acid, hydrobromic acid, zinc oxide, titanium oxide, zirconium oxide, niobium oxide, zeolite, alumina, silicoaluminophosphate, iron carbonate, calcium carbide, sulfated zirconia, and combinations thereof.
[0284] In some embodiments, the catalyst comprises a zeolite.
[0285] In some embodiments, the catalyst comprises a ZSM-5 zeolite.
[0286] In some embodiments, the catalyst comprises alumina.
[0287] In some embodiments, the catalyst comprises hydrochloric acid.
[0288] Polyethylene: Feedstock for the reaction.
[0289] The polyethylene includes at least one selected from the group consisting of very low density polyethylene, low density polyethylene, linear low density polyethylene, medium density polyethylene, cross-linked polyethylene, high density polyethylene, high density cross-linked polyethylene, high molecular weight polyethylene, ultra low molecular weight polyethylene, ultra high molecular weight polyethylene, and combinations thereof.
[0290] In some embodiments, the polyethylene comprises at least one selected from the group consisting of low density polyethylene, linear low density polyethylene, high density polyethylene, and combinations thereof.
[0291] In some embodiments, the polyethylene is from a contaminated source.
[0292] In some embodiments, the polyethylene has at least one contaminant selected from the group consisting of dyes, additives, dirt, grease, debris, glass, paper, fluids, and combinations thereof.
[0293] In some embodiments, the polyethylene may be in at least one form selected from the group consisting of a film, a flake, a strip, a powder, a rigid body, a resin, a melt, and combinations thereof.
[0294] Reaction gas: Gas produced during a reaction.
[0295] The reactive gas comprises at least one selected from the group consisting of N2, O2, Ar, CO2, H2O, CO, NO, NO2, N2O, N2O3, N2O4, N2O5, HNO3, SO2, SO3, Cl2, Br2, VOCs, and combinations thereof.
[0296] In some embodiments, the reactant gases include NO2, NO, HNO3, CO, CO2, and H2O.
[0297] In some embodiments, the reaction gas comprises 10-60 wt% NO and 40-90 wt% NO2.
[0298] In some embodiments, the reaction gas comprises 10-60 wt% NO and 60-99 wt% NO2.
[0299] In some embodiments, the reactant gas comprises 10-40 wt% NO, 40-99 wt% NO, 0-10 wt% CO, 0-5 wt% CO, 0-10 wt% HNO, and 0-10 wt% HO. In some embodiments, the reactant gas comprises 10-40 wt% NO, 40-99 wt% NO, 0-10 wt% CO, 0-5 wt% CO, 0-10 wt% HNO, and 0-10 wt% VOCs.
[0300] Product: The harvestable chemical output from a reaction.
[0301] The product comprises at least one selected from the group consisting of C2 dicarboxylic acid, C3 dicarboxylic acid, C4 dicarboxylic acid, C5 dicarboxylic acid, C6 dicarboxylic acid, C7 dicarboxylic acid, C8 dicarboxylic acid, C9 dicarboxylic acid, C10 dicarboxylic acid, C11 dicarboxylic acid, C12 dicarboxylic acid, C13 dicarboxylic acid, C14 dicarboxylic acid, C15 dicarboxylic acid, C16 dicarboxylic acid, C17 dicarboxylic acid, C18 dicarboxylic acid, C19 dicarboxylic acid, C20 dicarboxylic acid, C20+ dicarboxylic acid, C2 monocarboxylic acid, C3 monocarboxylic acid, C4 monocarboxylic acid, C5 monocarboxylic acid, C6 monocarboxylic acid, C7 monocarboxylic acid, C8 monocarboxylic acid, C9 monocarboxylic acid, C10 monocarboxylic acid, C11 monocarboxylic acid, C12 monocarboxylic acid, C13 monocarboxylic acid, C14 monocarboxylic acid, C15 monocarboxylic acid, C16 monocarboxylic acid, C17 monocarboxylic acid, C18 monocarboxylic acid, C19 monocarboxylic acid, C20 monocarboxylic acid, C20+ monocarboxylic acid, and combinations thereof.
[0302] In some embodiments, the product comprises at least one selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, azelaic acid, or salts or esters thereof; and at least one of oxalic acid, suberic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, tridecanedioic acid, tetradecanedioic acid, pentadecanedioic acid, 2-octenedioic acid, 2-nonenedioic acid, 2-decenedioic acid, and 2-undecenedioic acid, and salts, esters, and combinations thereof.
[0303] In some embodiments, the product comprises at least one selected from the group consisting of 5-50% succinic acid, 5-50% glutaric acid, 5-50% adipic acid, 5-50% pimelic acid, 0-30% suberic acid, 0-30% azelaic acid, 0-20% sebacic acid, 0-10% undecanedioic acid, 0-10% dodecanedioic acid, and combinations thereof.
[0304] In some embodiments, the product comprises at least one selected from the group consisting of succinic acid, glutaric acid, adipic acid, pimelic acid, azelaic acid, sebacic acid, and combinations thereof.
[0305] In some embodiments, the product is a C8-C substituted with a single nitro group. 20 and at least one of a C8-C dicarboxylic acid, or a salt or ester thereof. 20 The dicarboxylic acid may be nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanedioic acid, nitro-dodecanedioic acid, nitro-brassylic acid, nitro-tetradecanedioic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanedioic acid, nitro-nonadecanedioic acid, and nitro-icosane dioic acid, or a salt or ester thereof. In some embodiments, C8-C 20 The dicarboxylic acid is 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0306] In some embodiments, the product comprises a nitrated carboxylic acid. The product may include at least one of 2-nitro-suberic acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanedioic acid, 2-nitro-dodecanedioic acid, 2-nitro-brassylic acid, 2-nitro-tetradecanedioic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanedioic acid, 2-nitro-nonadecanedioic acid, and 2-nitro-icosane dioic acid, or a salt or ester thereof.
[0307] In some embodiments, at least one species in the product may be a chemical intermediate for industrial use.
[0308] It is to be understood that this invention is not limited to the particular methodology, protocols, and reagents, etc., described herein, as these may vary. The terminology used herein is for the purpose of describing particular embodiments only, and is not intended to limit the scope of the present invention, which is defined solely by the appended claims. [Example]
[0309] The present invention is further illustrated by the following examples, which are intended to be purely exemplary of the present invention and should not be construed as limiting the present invention in any way. The following examples are merely illustrative and are not intended to limit the aspects described herein in any way. The following examples are provided to better illustrate the claimed invention and should not be construed as limiting the scope of the invention. To the extent that specific materials are mentioned, they are for illustrative purposes only and are not intended to limit the invention. Those skilled in the art may be able to develop equivalent means or reactants without the exercise of inventive capacity and without departing from the scope of the invention.
[0310] Example 1 The feedstock for Example 1 was contaminated plastic film from a materials recovery facility. The composition of these films included LDPE, HDPE, and other categories that were not identified. The contaminated plastic film was cut into 2-inch squares and strips.
[0311] Five grams of feedstock was placed in a glass-lined reactor. 75 mL of 20% nitric acid diluted with water was added to the reactor, submerging the plastic in the liquid solution. The reactor was sealed, pressurized with air (600 psi), and heated while stirring the contents at 500 rpm. Once the desired temperature (120°C) was reached, the reaction was allowed to proceed for two hours. The reactor was then allowed to cool to room temperature with continued stirring.
[0312] After releasing the pressure, 30 mL of acetone was added to the reactor to help the remaining solid pieces separate from the stirrer, and the mixture was stirred for an additional 10 minutes. The contents of the reactor were filtered through filter paper to remove the solid, which was an oligomeric resin. 50 mL of 5 M NaOH was added to the liquid to adjust the pH to 12-13. A precipitate formed and was collected on the filter paper; this is the NaOH product. 4 mL of 10 M HCl was added to the remaining liquid to adjust the pH to 2. A precipitate formed. The solution was left at 4°C for 30 minutes to allow further precipitation. This precipitate was also collected on the filter paper; this is the HCl product. The remaining filtrate was completely evaporated by boiling on a hot plate. 20 mL of acetone was added to the dried crystals. The medium was mixed by vortexing. Undissolved crystals were removed with filter paper. The remaining clear filtrate was left overnight at 50°C for slow evaporation. Finally, the dried solid was collected; this is the acetone product.
[0313] Table 1: Data from Example 1 TIFF2025163132000001.tif30166
[0314] Examples 2a to 2d The feedstock for Examples 2a-2d was contaminated plastic film from a materials recovery facility. The compositions of these films included LDPE, HDPE, and other categories that were not identified. The contaminated plastic film was cut into 2-inch squares and strips.
[0315] X grams of feedstock was placed in a glass-lined reactor. Y mL of 20% or 25% nitric acid was added to the reactor, submerging the plastic in the liquid solution. The reactor was sealed, pressurized with air (600 psi), and heated. Once the desired temperature (120°C) was reached, the reaction was allowed to proceed for 2 hours. Agitation (500 rpm) was initiated after the first hour and continued for the remainder of the reaction. The reactor was then allowed to cool to room temperature with continued agitation. (See Table 2 below for specific values of X and Y used in Examples 2a-2d.)
[0316] After releasing the pressure, the solid phase was separated from the liquid phase by filtration. The solid phase was allowed to air dry, while the liquid phase was heated on a hot plate. The solid phase contained oligomers. To prevent the remaining liquid phase from burning or scorching, the solution was removed from the heat source and allowed to air dry until all liquid was removed. This remaining product contained crude dicarboxylic acid.
[0317] Table 2: Data from Examples 2a-2d TIFF2025163132000002.tif66128
[0318] Example 3 The feedstock for Example 3 was LDPE bubble packaging film. The LDPE bubble packaging film was cut into 2-inch squares and strips.
[0319] Five grams of feedstock was placed in a glass-lined reactor. 75 mL of 20% nitric acid diluted with water was added to the reactor, submerging the plastic in the liquid solution. The reactor was sealed, pressurized with air (600 psi), and heated; no agitator was used. Once the desired temperature (120°C) was reached, the reaction was allowed to proceed for two hours. The reactor was then allowed to cool to room temperature.
[0320] This example (ie, Example 3) followed the same product collection method as described in Example 2.
[0321] Table 3: Data from Example 3 TIFF2025163132000003.tif22128
[0322] Example 4 The feedstocks for Example 4 were HDPE pellets with a diameter of 0.5 cm. The reaction and product collection procedures were similar to those described in Example 3.
[0323] Table 4: Data from Example 4 TIFF2025163132000004.tif23128
[0324] Examples 5a to 5c The feedstock for Examples 5a-5c was contaminated plastic films from a materials recovery facility. The compositions of these films included LDPE, HDPE, and other categories that were not identified. Surface contamination included soil, debris, food residues, and grease. The films were crushed into non-uniform pieces with an average size of 20 cm x 20 cm.
[0325] X grams of feedstock was placed in a round-bottom flask. Y mL of 69% nitric acid was added to the flask; the plastic was submerged in the liquid solution. The bottom of the flask was heated in a heating mantle; the opening of the flask was connected to a condenser. A stir bar was used to agitate the contents. Once the desired temperature (120°C) was reached, the reaction was allowed to proceed for Z hours. The flask was then allowed to cool to room temperature with continued stirring. (See Table 5 below for specific values of X, Y, and Z used in Examples 5a-5c.)
[0326] The oligomeric resin was then separated from the liquid solution by filtration through filter paper. The liquid solution was heated to 130°C for 60 minutes to remove the nitric acid. The remaining crystalline solid contained the dicarboxylic acid product.
[0327] Table 5: Data from Examples 5a-5c TIFF2025163132000005.tif57128
[0328] Examples 6a to 6d The feedstock for Examples 6a-6d was contaminated plastic films from a materials recovery facility. The compositions of these films included LDPE, HDPE, and other categories that were not identified. Surface contamination included soil, debris, food residues, and grease. The films were crushed into non-uniform pieces with an average size of 20 cm x 20 cm.
[0329] X grams of feedstock were placed in a round-bottom flask. Y mL of 69% nitric acid and Z grams of solid catalyst were added to the flask; the plastic was submerged in the liquid solution. The bottom of the flask was heated in a heating mantle; the opening of the flask was connected to a condenser. A stir bar was used to agitate the contents. Once the desired temperature was reached, the reaction was allowed to proceed for K hours. The flask was then allowed to cool to room temperature with continued stirring. (See Table 6 below for specific values of X, Y, Z, and K used in Examples 6a-6d.)
[0330] The solids (oligomeric resin and solid catalyst) were then separated from the liquid by filtration through filter paper. The liquid solution was distilled for 1 hour to recover the nitric acid. The remaining crystalline solid was placed in a desiccator overnight. The dried crystals weighed 40 percent of the film's initial weight. The solid contained a mixture of C4-C10 dibasic acids.
[0331] Table 6: Data from Examples 6a-6d TIFF2025163132000006.tif70166
[0332] Example 7 200 mg of LDPE (cut from air / bubble packaging) was added to a 100 mL glass-lined stainless steel pressure reactor and the reactor was sealed. The reactor was purged with N2 and then pressurized to 40 psi with NO, 460 psi with N2, and 100 psi with O2. The reactor was heated to 110°C for 1 hour, followed by cooling and releasing the pressure. The resulting crude product mixture (decomposition mixture) was removed and extracted with methanol. The methanol-soluble product mixture consisted of dibasic acids with a 69% weight recovery.
[0333] Example 8 200 mg of LDPE (cut from air / bubble packaging) and 200 mg of HDPE (cut from a food-grade plastic bag) were added to a 100 mL glass-lined stainless steel pressure reactor and the reactor was sealed. The reactor was purged with N2 and then pressurized to 40 psi with NO, 460 psi with N2, and 100 psi with O2. The reactor was heated to 120°C for 2 hours, followed by cooling and releasing the pressure. The resulting crude product mixture (decomposition mixture) was removed and extracted with methanol. The methanol-soluble product mixture was recovered in 49% weight percent. After methanol removal, the remaining crude product contained dicarboxylic acids, which were detected as their respective dimethyl esters.
[0334] analysis Qualitative and quantitative analysis of the acidic product was performed by GC-MS on a DB-1 column. The crude product mentioned in the previous example was esterified with methanol in the presence of acetyl chloride overnight. The derivatized product was filtered and then diluted 25x to 100x in methanol.
[0335] Calibration curves were constructed for four major compounds: dimethyl succinate (C4), dimethyl glutarate (C5), dimethyl adipate (C6), and dimethyl pimelate (C7). Quantification was based on TIC, and percentage values were calculated based on the mass of each sample. GC-MS also identified long-chain dimethyl esters, such as dimethyl suberate (C8), dimethyl azelaate (C9), dimethyl sebacate (C10), and occasionally undecanedioic acid dimethyl ester (C11), and dodecanedioic acid dimethyl ester (C12), but these were not quantified. Such chromatograms are shown in Figure 2.
[0336] The oligomer resins were preliminarily characterized by thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC). These oligomer resins had different chemical properties than the original PE feedstock. Figures 3A-3B compare the decomposition patterns of the oligomer resins (Figure 3A) and PE (Figure 3B).
[0337] Figure 4 shows that the waste PE film has crystallinity around 120°C, while the resin product loses crystallinity.
[0338] Example 9 The feedstock for this example was 10 g of polyethylene and 100 g of 70 wt% aqueous nitric acid. The batch reaction was carried out at 120°C and atmospheric pressure for 9 hours. The products were dicarboxylic acids (50-65 wt%) and a separate fraction (35-50 wt%) containing other components, including nitro-substituted dicarboxylic acids. The dicarboxylic acids were isolated by fractional distillation of the reaction filtrate, followed by evaporation to remove most of the aqueous nitric acid solution. Table 7 provides the range of various dicarboxylic acids found in the fractions.
[0339] (Table 7) TIFF2025163132000007.tif166128
[0340] Example 10 A 250 mL round-bottom flask equipped with a magnetic stir bar was loaded with 10 g of polyethylene and 100 g of 67 wt% HNO3. The reaction flask was equipped with a glass thermometer and placed on a temperature-controlled IKA heating plate attached to a water condenser. The reaction flask was stirred at maximum stirring rate (set at 2000 RPM) and heated to the desired reaction temperature. The reaction time began when the desired temperature was reached (approximately 15-20 minutes). After the reaction time, the heater was turned off, the reaction flask was lifted from the heater, and allowed to cool rapidly with stirring (approximately 15-20 minutes). The final mixture (aqueous product stream) was filtered through filter paper on a Hirsch funnel into a 250 mL beaker. The filtrate collected in the 250 mL beaker was evaporated on a 75 °C hot plate to obtain the crude dicarboxylic acid product. The crude dicarboxylic acid was subjected to GC analysis for dicarboxylic acid composition and LC analysis for further product composition. The results are shown in Table 8.
[0341] (Table 8) TIFF2025163132000008.tif166128
[0342] Example 11 Powdered pure polyethylene was added to a beaker, and a 67 wt% aqueous solution of nitric acid was added at a mass ratio of 10:1 between the aqueous solution and polyethylene. The mixture was heated at 120 °C for 6 hours, and a sample was obtained for analysis by quadrupole time-of-flight liquid chromatography mass spectrometry (QTOF-LCMS). The major compounds detected were dicarboxylic acids and their nitration products. Figures 22A-C provide a summary of the LCMS results for the same sample.
[0343] Example 12 To prepare the methyl esters of dicarboxylic acids for analysis, approximately 60 mg of sample was dissolved in approximately 6 g of MeOH in a 20 mL scintillation vial. Approximately 200 μL of AcCl was added. (The addition of AcCl was exothermic; therefore, the addition was performed dropwise on a small scale and in an ice bath on a large scale.) The target concentration for the above solution was approximately 10,000 ppm. If >10,000 ppm, necessary dilutions were made. Approximately 1 mL of solution with approximately >10,000 ppm of sample was transferred to an 8 mL vial. 175 mg of anhydrous Na2SO4 was added. The mixture was placed in a 40 °C oven or on a hot plate for 1 hour. After 1 hour, the mixture was allowed to cool to RT and diluted 40x. The mass and density of each diluted and solution preparation were recorded to allow for calculation of the respective volumes. The results are shown in Figure 23.
[0344] Example 13 This example demonstrates the effect of pressure and temperature on the reaction products.
[0345] Two grams of polyethylene (PE) powder and 20 grams of 25% nitric acid (PE to nitric acid ratio 1:10) were added to a 100 mL glass liner. The liner was loaded into a 100 mL Parr reactor vessel made of corrosion-resistant Carpenter 20 material and clamped to the reactor head. The Parr reactor was equipped with a gas line for gas addition, a pressure gauge, a digital pressure sensor, a magnetic stirrer, a thermocouple, and a ceramic heater. A controller was used to control the heating and stirring within the reactor.
[0346] The vessel was purged three times with nitrogen gas to remove oxygen / air from inside. The vessel was then pressurized and leak tested to detect leaks, indicated by a drop in pressure over time. The leak was corrected and the leak test repeated until no leaks were detected, and the reactor was then depressurized.
[0347] The heater (set at 120-180°C) and agitator (set at 300 RPM) were turned on via a controller. Once the temperature inside the reaction vessel reached the desired temperature (approximately 15-20 minutes), the start time was recorded and the reaction was allowed to proceed for 6 hours. (Because this was a closed system, as the temperature increased, the pressure inside the reaction vessel also increased due to the increase in liquid volume and the production of gas.)
[0348] After the reaction was complete, the reactor was cooled to room temperature (approximately 20-30 minutes) using an external fan, and then vented and purged with nitrogen to remove any remaining gases before opening the reactor.
[0349] The product mixture, containing a solid stream (unreacted or under-reacted PE) and a liquid stream (dicarboxylic acids dissolved in nitric acid), was separated by gravity filtration. The dilute nitric acid in the liquid stream was removed by distillation, and the remaining solids (containing dicarboxylic acids) were analyzed using GC-MS. The results are shown in Figure 24 and Table 9 below.
[0350] (Table 9) TIFF2025163132000009.tif55128
[0351] As shown in Figure 24 and Table 9, the % yield of dicarboxylic acids (grams of dicarboxylic acid produced per gram of PE feed) increased as the temperature increased from 120°C to 150°C. This is likely because the higher temperature aided in the breakdown of PE into dicarboxylic acid products. The % yield of dicarboxylic acids decreased as the temperature was further increased from 160°C to 180°C; these higher temperatures may have further converted the dicarboxylic acids to gases and other undesirable species.
[0352] At lower nitric acid concentrations, the pressure reaction yielded more dicarboxylic acids than reactions conducted at atmospheric pressure with higher nitric acid concentrations. In comparison, the atmospheric reflux experiment (70% nitric acid, 1:10 PE to nitric acid ratio, 6 hours, 120°C, 0 psi) gave a dicarboxylic acid yield of 29%, while the pressure reaction (25% nitric acid, 1:10 PE to nitric acid ratio, 6 hours, 150°C, 500 psi) gave a dicarboxylic acid yield of 42%, with a significantly higher concentration of shorter-chain dicarboxylic acids (see data in Table 10 below).
[0353] (Table 10) TIFF2025163132000010.tif30155
[0354] The various methods and techniques described above provide numerous ways to implement the present application. Of course, it should be understood that a particular embodiment described herein may not necessarily achieve all of the objects and advantages described herein. Thus, for example, one skilled in the art will recognize that the methods of the present invention can be practiced in a manner that achieves one advantage or a group of advantages as taught herein, but without necessarily achieving other objects or advantages taught or suggested herein. Various alternatives are mentioned herein. It should be understood that some embodiments specifically include one, another, or more features; other embodiments specifically exclude one, another, or more features; and other embodiments include one, another, or more advantageous features while attenuating a particular feature.
[0355] Moreover, those skilled in the art will recognize the applicability of various features from different embodiments. Similarly, the various elements, features, and steps described above, and other known equivalents to such elements, features, or steps, may be used in various combinations by those skilled in the art to perform methods based on the principles described herein. In various embodiments, some of the various elements, features, and steps will be specifically included, and others will be specifically excluded.
[0356] Although the present application has been disclosed in the context of particular embodiments and examples, those skilled in the art will recognize that aspects of the present application extend beyond the specifically disclosed embodiments to other alternative embodiments and / or uses and modifications thereof, and equivalents thereof.
[0357] Various aspects of the present application are described herein, including the best mode known to the inventors for carrying out the application. Variations on these aspects will become apparent to those skilled in the art upon reading the foregoing description. It is contemplated that those skilled in the art can employ such variations as appropriate, and that the application may be practiced in ways other than as specifically described herein. Accordingly, many aspects of the present application include all modifications and equivalents of the subject matter recited in the claims appended hereto to the extent permitted by applicable law. Moreover, any combination of the above-described elements in all possible variations thereof is encompassed by this application unless otherwise indicated herein or otherwise clearly contradicted by context.
[0358] All patents, patent applications, published patent applications, and other materials, such as articles, books, specifications, publications, documents, and / or articles, referenced herein are incorporated herein by this reference in their entirety for all purposes, except for any prosecution history documents related thereto that may be inconsistent or conflicting with this document or that may have a limiting effect on the broadest scope of any patent claims now or hereafter related to this document. By way of example, to the extent that a conflict or inconsistency exists between a description, definition, and / or term usage associated with any of the incorporated materials and that associated with this document, the description, definition, and / or term usage in this document will control.
[0359] It should be understood that the aspects of the present application disclosed herein are illustrative of the principles of the aspects of the present application. Other modifications that may be employed may fall within the scope of the present application. Thus, by way of example, but not of limitation, alternative configurations of the aspects of the present application may be utilized based on the teachings herein. Accordingly, the aspects of the present application are not limited to that precisely as shown and described.
[0360] Various aspects of the present invention have been described in the above detailed description. While these descriptions directly describe the above-mentioned aspects, it is understood that those skilled in the art may envision modifications and / or variations to the specific embodiments shown and described herein. Any such modifications and variations that fall within the scope of this description are also intended to be included herein. Unless specifically noted, it is the inventors' intention that the words and phrases in the specification and claims be given their ordinary and familiar meanings.
[0361] The foregoing description of various aspects of the present invention known to applicant at the time of filing this application is presented and is intended for purposes of illustration and description. This description is not intended to be exhaustive or to limit the invention to the precise form disclosed, as numerous modifications and variations are possible in light of the above teachings. The described aspects serve to illustrate the principles of the present invention and its practical application, and to enable others skilled in the art to utilize the present invention in various embodiments and with various modifications as may be suitable for the particular use contemplated. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed for carrying out the invention.
[0362] While particular embodiments of the present invention have been shown and described, it will be apparent to those skilled in the art, based on the teachings herein, that changes and modifications may be made without departing from this invention and its broader aspects, and therefore, the appended claims are intended to encompass within their scope all such changes and modifications as are within the true spirit and scope of this invention.
Claims
1. (a) succinic acid, glutaric acid, adipic acid, pimelic acid, and azelaic acid, or salts or esters thereof; (b) At least one C substituted with a single nitro group 8 ~C 20 Dicarboxylic acids, or their salts or esters A composition containing the following:
2. The at least one C substituted with a single nitro group 8 ~C 20 The dicarboxylic acid is (1) nitro-suberic acid, nitro-azelaic acid, nitro-sebacic acid, nitro-undecanediic acid, nitro-dodecanediic acid, nitro-brasilicic acid, nitro-tetradecanediic acid, nitro-pentadecanedioic acid, nitro-hexadecanedioic acid, nitro-heptadecanedioic acid, nitro-octadecanediic acid, nitro-nonadecanedioic acid, or nitro-icosanedioic acid, or a salt or ester thereof; or (2) 2-nitro-suberic acid The composition according to claim 1, which is nitro-acid, 2-nitro-azelaic acid, 2-nitro-sebacic acid, 2-nitro-undecanediic acid, 2-nitro-dodecanediic acid, 2-nitro-brassic acid, 2-nitro-tetradecanediic acid, 2-nitro-pentadecanedioic acid, 2-nitro-hexadecanedioic acid, 2-nitro-heptadecanedioic acid, 2-nitro-octadecanediic acid, 2-nitro-nonadecanedioic acid, or 2-nitro-icosanedioic acid, or a salt or ester thereof.
3. The at least one C substituted with a single nitro group 8 ~C 20 The composition according to claim 1, wherein a dicarboxylic acid is present in the composition in an amount of up to 1 wt%.
4. (c) At least one of oxalic acid, suberic acid, sebacic acid, undecanediic acid, dodecanediic acid, tridecanediic acid, tetradecanediic acid, pentadecanediic acid, 2-octenodioic acid, 2-nonenodioic acid, 2-decenodioic acid, and 2-undecenodioic acid, or salts or esters thereof The composition according to claim 1, further comprising:
5. (a) Succinic acid is present in amounts of approximately 5 to approximately 18 wt%, glutaric acid in amounts of approximately 8 to approximately 28 wt%, adipic acid in amounts of approximately 10 to approximately 29 wt%, pimelic acid in amounts of approximately 10 to approximately 20 wt%, and azelaic acid in amounts of approximately 8 to approximately 13 wt%, or equivalent amounts of their salts or esters; and (c) Oxalic acid, if present, may be present in amounts up to 10 wt%, suberic acid, if present, may be present in amounts of approximately 9 to 20 wt%, sebacic acid, if present, may be present in amounts of approximately 1 to 10 wt%, undecanedioic acid, if present, may be present in amounts of approximately 1 to 8 wt%, dodecanedioic acid, if present, may be present in amounts up to approximately 5 wt%, tridecanedioic acid, if present, may be present in amounts up to approximately 4 wt%, tetradecanedioic acid, if present, may be present in amounts up to approximately 2 wt%, and pentadecanedioic acid, if present, may be present in amounts up to approximately 0.4 wt%, or equivalent amounts of their salts or esters. The composition according to claim 4.
6. (a) Succinic acid is present in amounts of approximately 10 to 11 wt%, glutaric acid in amounts of approximately 15 to 18 wt%, adipic acid in amounts of approximately 16 to 18 wt%, pimelic acid in amounts of approximately 15 to 17 wt%, and azelaic acid is present in amounts of approximately 10 to 12 wt%, or equivalent amounts of their salts or esters; and (c) Oxalic acid, if present, may be present in amounts up to 10 wt%, suberic acid, if present, may be present in amounts of approximately 13 to 15 wt%, sebacic acid, if present, may be present in amounts of approximately 5 to 9 wt%, undecanedioic acid, if present, may be present in amounts of approximately 3 to 6 wt%, dodecanedioic acid, if present, may be present in amounts of approximately 1 to 3 wt%, tridecanedioic acid, if present, may be present in amounts of approximately 0.5 to 1.5 wt%, tetradecanedioic acid, if present, may be present in amounts up to approximately 0.2 wt%, and pentadecanedioic acid, if present, may be present in amounts up to approximately 0.2 wt%, or equivalent amounts of their salts or esters. The composition according to claim 4.
7. (a) Succinic acid is present in amounts of approximately 5 to approximately 40 wt%, glutaric acid in amounts of approximately 8 to approximately 27 wt%, adipic acid in amounts of approximately 10 to approximately 29 wt%, pimelic acid in amounts of approximately 10 to approximately 20 wt%, and azelaic acid is present in amounts of approximately 1 to approximately 13 wt%, or equivalent amounts of their salts or esters; and (c) Oxalic acid, if present, may be present in amounts up to 10 wt%, suberic acid, if present, may be present in amounts of approximately 4 to 20 wt%, sebacic acid, if present, may be present in amounts up to approximately 10 wt%, undecanedioic acid, if present, may be present in amounts up to approximately 8 wt%, dodecanedioic acid, if present, may be present in amounts up to approximately 5 wt%, tridecanedioic acid, if present, may be present in amounts up to approximately 4 wt%, tetradecanedioic acid, if present, may be present in amounts up to approximately 2 wt%, and pentadecanedioic acid, if present, may be present in amounts up to approximately 0.4 wt%, or equivalent amounts of their salts or esters. The composition according to claim 4.