The application is directed at improving the cold flow properties of synthetic feedstock from plastics.
Plastic is the fastest growing waste product and poses a significant environmental problem. Converting waste plastic into useful, higher value products such as crude oil or feedstock for the production of olefins in a steam cracker provides an opportunity to deal with the plastic waste problem.
Plastic is primarily made up of polyethylene and polypropylene. Through various processes such as pyrolysis, the carbon-carbon bonds and carbon-hydrogen bonds of the plastics are broken into shorter (oligomeric) chains. The resultant products from such processes can contain varying amounts of the oligomeric chains from the breakdown of the plastic that can be conformationally similar to wax molecules, such as paraffin and olefins.
The presence of these wax-like structures can result in solidifying or precipitating when the temperature drops, for example below 0° C. As additional wax precipitates, the crystals grow and, finally, if the temperature is decreased far enough, the crystals will grow together to form a three-dimensional network that immobilizes the fuel or oil. This solidification process is sometimes referred to as gelation. The precipitation of the wax can cause problems during the recovery, transport, storage or use of the synthetic feedstocks. The precipitated wax-like materials can block filters, pumps, pipelines, and other installations or be deposited in tanks, thus entailing additional cleaning.
Hence, additives that can depress or lower the pour points to maintain the fluidity of the synthetic feedstocks (e.g., fuel or oil) at lower temperatures are desired.
Described herein are compositions and methods for improving the cold flow properties such as reducing or lowering the pour points of synthetic feedstocks from plastics.
In one aspect is a method of improving the cold flow properties of a plastic-derived synthetic feedstock composition comprising:
In another aspect is a method of obtaining the synthetic feedstock comprising:
In another aspect is a composition comprising a synthetic feedstock derived from plastic and a pour point depressant.
In yet another aspect is a composition comprising a pour point depressant and a synthetic feedstock, wherein the pour point depressant is a polymer added to the synthetic feedstock, the synthetic feedstock is provided by the method comprising:
The pour point depressant is used to lower the temperature of the pour point of the synthetic feedstocks derived from plastics during recovery, transport, storage or use of the synthetic feedstocks.
Although the present disclosure provides references to various embodiments, persons skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the application. Various embodiments will be described in detail with reference to the figures. Reference to various embodiments does not limit the scope of the claims attached hereto. Additionally, any examples set forth in this application are not intended to be limiting and merely set forth some of the many possible embodiments for the appended claims.
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. In case of conflict, the present document, including definitions, will control. Methods and materials are described below, although methods and materials similar or equivalent to those described herein can be used in practice or testing of the present application. All publications, patent applications, patents and other references mentioned herein are incorporated by reference in their entirety.
The terms “copolymer”, “copolymerize” include not only polymers comprising two monomer residues and polymerization of two different monomers together respectively, but also includes copolymers comprising more than two monomer residues and polymerizing together more than two or more other monomers. Therefore, the term copolymer, for example, includes terpolymer; quadrapolymer; and polymers made from more than four different monomers, and/or polymers comprising, consisting of, or consisting essentially of two different monomer residues.
The term “pour point” is the lowest temperature at which a liquid will pour or flow under a specific set of conditions. Exemplary pour point standards include ASTM D97-11, D585311, and D5949-10.
The term “pour point depressants” or “PPDs” are polymers that reduce or inhibit wax crystal formation in feedstocks such as feedstocks derived from plastic, resulting in lower pour point and improved low or cold temperature flow performance.
The term “synthetic feedstock” refers to hydrocarbons obtained from treatment or processes on plastics. For example, the plastic can be thermally converted to e.g., pyrolysis oil or pyrolysate.
As used herein, the terms “comprise(s),” “include(s),” “having,” “has,” “can,” “contain(s),” and variants thereof are intended to be open-ended transitional phrases, terms, or words that do not preclude the possibility of additional acts or structures. The singular forms “a,” “and” and “the” include plural references unless the context clearly dictates otherwise. The present disclosure also contemplates other embodiments “comprising,” “consisting of” and “consisting essentially of,” the embodiments or elements presented herein, whether explicitly set forth or not.
As used herein, the term “optional” or “optionally” means that the subsequently described event or circumstance may but need not occur, and that the description includes instances where the event or circumstance occurs and instances in which it does not.
As used herein, the term “about” modifying, for example, the quantity of an ingredient in a composition, concentration, volume, process temperature, process time, yield, flow rate, pressure, and like values, and ranges thereof, employed in describing the embodiments of the disclosure, refers to variation in the numerical quantity that can occur, for example, through typical measuring and handling procedures used for making compounds, compositions, concentrates or use formulations; through inadvertent error in these procedures; through differences in the manufacture, source, or purity of starting materials or ingredients used to carry out the methods, and like proximate considerations. The term “about” also encompasses amounts that differ due to aging of a formulation with a particular initial concentration or mixture, and amounts that differ due to mixing or processing a formulation with a particular initial concentration or mixture. Where modified by the term “about” the claims appended hereto include equivalents to these quantities. Further, where “about” is employed to describe a range of values, for example “about 1 to 5” the recitation means “1 to 5” and “about 1 to about 5” and “1 to about 5” and “about 1 to 5” unless specifically limited by context.
As used herein, the term “substantially” means “consisting essentially of” and includes “consisting of” “Consisting essentially of” and “consisting of” are construed as in U.S. patent law. For example, a solution that is “substantially free” of a specified compound or material may be free of that compound or material, or may have a minor amount of that compound or material present, such as through unintended contamination, side reactions, or incomplete purification. A “minor amount” may be a trace, an unmeasurable amount, an amount that does not interfere with a value or property, or some other amount as provided in context. A composition that has “substantially only” a provided list of components may consist of only those components, or have a trace amount of some other component present, or have one or more additional components that do not materially affect the properties of the composition. Additionally, “substantially” modifying, for example, the type or quantity of an ingredient in a composition, a property, a measurable quantity, a method, a value, or a range, employed in describing the embodiments of the disclosure, refers to a variation that does not affect the overall recited composition, property, quantity, method, value, or range thereof in a manner that negates an intended composition, property, quantity, method, value, or range. Where modified by the term “substantially” the claims appended hereto include equivalents according to this definition.
As used herein, any recited ranges of values contemplate all values within the range and are to be construed as support for claims reciting any sub-ranges having endpoints which are real number values within the recited range. By way of example, a disclosure in this specification of a range of from 1 to 5 shall be considered to support claims to any of the following ranges: 1-5; 1-4; 1-3; 1-2; 2-5; 2-4; 2-3; 3-5; 3-4; and 4-5.
Described are compositions and methods that improve the cold flow properties of synthetic feedstocks from plastics. The cold flow properties can be improved by additives that prevent the formation of wax-like structures and lower the temperature at which the synthetic feedstock solidifies. This addition in turn ensures uninterrupted flow of the synthetic feedstock. Such additives are referred to as pour point depressants or flow improvers.
Several processes are known in which plastic (e.g., waste plastic) is converted to lower molecular weight hydrocarbon materials particularly to hydrocarbon fuel materials. For example, see U.S. Pat. Nos. 6,150,577; 9,200,207; and 9,624,439; each of these publications incorporated herein by reference in their entireties.
Such processes broadly described include breaking the long-chain plastic polymers by pyrolysis—high heat (e.g., from 400° C.-850° C.) with limited or no oxygen and above atmospheric pressure. The resultant pyrolysis effluent is distilled and then condensed. As shown in
The thermal cracking reactors to accomplish this pyrolysis reaction have been described in detail in a number of patents, e.g., U.S. Pat. Nos. 9,624,439; 10,131,847; 10,208,253; and PCT International Pat. Appl. Pub. No. WO 2013/123377A1, each of these publications incorporated herein by reference in their entireties.
In some embodiments, the method of obtaining the synthetic feedstock comprises:
In some embodiments, the method of obtaining the synthetic feedstock is in the presence or absence of catalysts.
The pyrolysis reaction produces a range of hydrocarbon products from gases (at temperatures from 10° C. to 50° C. and 0.5-1.5 atmospheric pressure and having 5 carbons or less); modest boiling point liquids (like gasoline (40-200° C.) or diesel fuel 180-360° C.); a higher (e.g., at 250-475° C.) boiling point liquid (oils and waxes), and some solid residues, commonly referred to as char. Char is the material that is left once the pyrolytic process is complete and the fuel recovered. Char contains the additives and contaminants that enter the system as part of the feedstock. The char can be a powdery residue or substance that is more like sludge with a heavy oil component. Glass, metal, calcium carbonate/oxide, clay and carbon black are just a few of the contaminants and additives that will remain after the conversion process is complete and become part of the char.
Various plastic types such a thermoplastic and thermoset waste plastics can be used in the above-described process. The types of plastics commonly encountered in waste-plastic feedstock include, without limitation, low-density polyethylene, high-density polyethylene, polypropylene, polystyrene, nylons, and the like, and combinations thereof.
In some embodiments, the pyrolysis reaction (e.g., pyrolysis effluent) results in 2-30% gas (C1-C4 hydrocarbon); (2) 10-50% oil (C5-C15 hydrocarbon); (3) 10-40% waxes (≥C16 hydrocarbon); and (4) 1-5% char and tar. After completion of the pyrolysis process, the pyrolysate or pyrolysis oil can range from 20-85% oils (C5-C15) and 15-95% waxes (≥C16) or from 35-80% oils (C5-C15) and 20-65% waxes (≥C16).
The hydrocarbons that derive from the pyrolysis of waste plastic are a mixture of alkanes, alkenes, olefins and diolefins; the olefin group is generally between C1 and C2, i.e. alpha-olefin, but some alk-2-ene is also produced, the diene is generally in the alpha and omega position, i.e. alk-α,ω-diene; or the dienes are conjugated dienes. In some embodiments, the pyrolysis of plastic produces paraffin compounds, isoparaffins, olefins, diolefins, naphthenes and aromatics.
In some embodiments, the percentage of 1-olefins in the pyrolysis effluent is from 25 to 75% wt; from 40-60 wt %. Pyrolysis conditions include a temperature from about 400-850° C., from about 500-700° C., or from about 600-700° C.
Depending on the processing conditions synthetic feedstock having characteristics similar to crude oil from petroleum sources but can have ash and wax of different ranges. In some embodiments, the synthetic feedstock derived from waste plastic contains waxy hydrocarbons from C16-C36; C16-C20; C21-C29; or C30-C36. In other embodiments, the synthetic feedstock derived from waste plastic contains waxy hydrocarbons with the C16-C20 fraction representing 50-60% of the wax molecules, the C21-C29 fraction being about 40-50% of the waxy molecules and C30+ fraction being less than 2% of the wax fraction; the waxy fraction is about 10-20% of the recovered synthetic feedstock fraction. In still other embodiments, the synthetic feedstocks have 15-20 wt % C9-C16; 75-87% C16-C29; 2-5% C30+, where the carbon chains are predominantly a mixture of alkanes, alkenes and diolefins. In other embodiments, the synthetic feedstocks have 10 wt %<C12, 25 wt % C12-C20, 30 wt % C21-C40 and 35 wt %>C41, where the carbon chains are predominantly a mixture of alkanes, alkenes and diolefins.
Unlike the synthetic feedstock derived from plastics, conventional crude oil that suffers from pour point issues has a broad range of hydrocarbon species where the non-waxy components may help offset some of the waxy nature of these troublesome crude oils. In a conventional waxy crude oil, the waxy components range from C16 to C80+. In one example of a crude, the waxy molecules with a carbon chain range of C22-C40, display a roughly Gaussian distribution and the majority of the waxy molecules were in the C28-C36 range. In another example of a crude, the waxy carbon chain length ranged from C15 to C110, the distribution can be bimodal with the majority of the waxy molecules being in the C24 to C28 or C36 to C52 range.
While there are known dewaxing methods for reducing waxy feeds, either by solvent removal or catalytic dewaxing or isomerization, most of these processes are expensive. Disclosed herein are pour point depressants that lower pour points of synthetic feedstocks derived from plastics (e.g., waste plastic).
In some embodiments, the synthetic feedstock composition has waxy constituents which can precipitate from the synthetic feedstock composition at a temperature greater than its desired or intended storage, transport, or use temperature. In some embodiments, the synthetic feedstock composition can have a wax content greater than 1 weight percent; greater than 5 weight percent; or greater than 10 weight percent. In some embodiments the wax content in the synthetic feedstocks is, 5-95 weight percent; 15-95 weight percent; 20-65 weight percent; 5-40 weight percent; 5-30 weight percent; from 10-25 weight percent; 15-20 weight percent; 10-20 weight percent; or 10-30 weight percent.
In some embodiments, the compounds used in the compositions and methods for lowering or depressing the pour points of synthetic feedstock are polymers (e.g., synthetic). In some embodiments, the polymers are vinyl carboxylic acid ester polymers. In some embodiments the pour point depressants are polymers such as ethylene vinyl acetate, vinyl acetate-acrylate copolymers, alpha olefin maleic anhydride polymers or combinations thereof.
In some embodiments, the pour depressant is a copolymer of ethylene. In some embodiments the copolymer of ethylene is with at least one ethylenically unsaturated monomer, wherein the ethylenically unsaturated monomer is a vinyl carboxylic acid ester.
In some embodiments, vinyl carboxylic esters are, the vinyl esters of carboxylic acids having 2 to 20 carbon atoms, the hydrocarbon radical of which may be linear or branched. Among the carboxylic acids with a branched hydrocarbon radical, some are those whose branching is in the α-position to the carboxyl group, the α-carbon atom being particularly preferably tertiary, i.e., the carboxylic acid being a so-called neocarboxylic acid. In some embodiments, the hydrocarbon radical of the carboxylic acid is linear.
Examples of suitable vinyl carboxylic esters are vinyl acetate, vinyl propionate, vinyl butyrate, vinyl neopentanoate, vinyl hexanoate, vinyl neononanoate, vinyl neodecanoate. In other embodiments the ethylene copolymer is acrylonitrile, or alpha-olefins such as octane, butane, propylene, comb polymers with alkyl side chains such as methacrylate ester copolymers, maleic-olefinic ester copolymers, and maleic-olefinic amide copolymers; and branched copolymers having alkyl side chains such as alkylphenol-formaldehyde copolymers and polyethyleneimines and the like. In some embodiments, the pour point depressant is an ethylene vinyl acetate copolymer.
Also suitable are copolymers which contain two or more mutually different alkenyl carboxylic acid esters in copolymerized form, these differing in the alkenyl function or in the carboxylic acid group. Also suitable are copolymers which, in addition to the alkenyl carboxylic ester (s), contain at least one olefin or at least one (meth) acrylic acid ester in copolymerized form.
Suitable olefins are, for example, those having 3 to 10 carbon atoms and having 1 to 3, 1 or 2, or having one carbon-carbon double bond. In the latter case, the carbon-carbon double bond can be arranged both terminally (α-olefin), internally, or both. In some embodiments the α-olefins have 3 to 6 carbon atoms, such as propene, 1-butene, 1-pentene and 1-hexene.
Suitable (meth) acrylic esters are, for example, esters of (meth) acrylic acid with C 1-C 10-alkanols, in particular with methanol, ethanol, propanol, isopropanol, n-butanol, sec-butanol, isobutanol, tert-butanol, pentanol, hexanol, Heptanol, octanol, 2-ethylhexanol, nonanol and decanol.
In some embodiments the vinyl acetate in the ethylene vinyl acetate copolymer is from 5-60 wt % of the total copolymer; or from 10 to 25 wt %; from 10 to 20 wt %; from 10 to 50 wt %; from 25 to 40 wt %; from 25 to 50 wt %; or from 15 to 25 wt %.
In some embodiments, the copolymer has a molecular weight from 800 to 13,000 g/mol; from 900 to 12,000 g/mol; or from 900-10,000 g/mol. In some embodiments, the molecular weight can be determined by gel permeation chromatography (GPC).
In some embodiments, the ethylene vinyl acetate copolymers used as pour point depressants on synthetic feed stock derived from plastics are present with or without a synergist. In some embodiments the synergist is alpha olefin maleic anhydride. In still other embodiments, the ethylene vinyl acetate is about 900-12,000 molecular weight provided with a solvent and having 10-50 percent vinyl acetate content and 20-70 percent actives.
In some embodiments the copolymers are at least one ethylenically unsaturated monomer, wherein the ethylenically unsaturated monomer is a vinyl carboxylic acid ester.
In some embodiments, vinyl carboxylic esters are, the vinyl esters of carboxylic acids having 2 to 20 carbon atoms, the hydrocarbon radical of which may be linear or branched. Among the carboxylic acids with a branched hydrocarbon radical, some are those whose branching is in the α-position to the carboxyl group, the α-carbon atom being particularly tertiary, i.e., the carboxylic acid being a so-called neocarboxylic acid. In some embodiments, the hydrocarbon radical of the carboxylic acid is linear.
Examples of suitable vinyl carboxylic esters are vinyl acetate, vinyl propionate, vinyl butyrate, vinyl neopentanoate, vinyl hexanoate, vinyl neononanoate, vinyl neodecanoate. In some embodiments, the vinyl carboxylic ester is copolymerized with an acrylate.
In some embodiments the acrylates are acrylate esters. In some embodiments, the acrylate esters are of C1-C20-alkanols, such as methyl acrylate, ethyl acrylate, propyl acrylate, isopropyl acrylate, n-butyl acrylate, isobutyl acrylate, tert-butyl acrylate, n-pentyl acrylate, neopentyl acrylate, hexyl acrylate, heptyl acrylate, octyl acrylate, neooctyl acrylate, 2-ethylhexyl acrylate, nonyl acrylate, neononyl acrylate, decyl acrylate, neodecyl acrylate, lauryl acrylate, palmityl acrylate and stearyl acrylate; also the corresponding methacrylic, crotonic and isocrotonic esters are used.
In some embodiments, the pour point depressant is a vinyl acetate-acrylate copolymer.
In some embodiments the vinyl acetate in the vinyl acetate-acrylate copolymer is from 5-30 wt % of the total copolymer; from 8-20 wt %; 10 to 25 wt %; or from 10 to 20 wt %.
In some embodiments, the copolymer has a molecular weight from 800 to 13,000 g/mol; from 900 to 12,000 g/mol; or from 900-10,000 g/mol; or from 900-9300 g/mol. In some embodiments, the molecular weight can be determined by gel permeation chromatography (GPC).
In some embodiments, the vinyl acetate-acrylate copolymers are used as pour point depressants on synthetic feed stock derived from plastics. In some embodiments the vinyl acetate-acrylate is about 900-12,000 molecular weight provided with a solvent and having 8-20 percent vinyl acetate content and 20-70 percent actives.
In some embodiments, the pour depressant is a copolymer of an alpha-olefin monomer with an ethylenically unsaturated carboxylic acid monomer or derivatives thereof such as fumaric acid, maleic anhydride, maleic acid, (meth)acrylic acid, itaconic anhydride or itaconic acid, maleimide and N-alkyl, N-aryl, and N-alkaryl maleimides, substituted moiety such as citraconic anhydride, citraconimide and N-alkyl, N-aryl, and N-alkaryl citraconimides or combinations thereof. In some embodiments, the ethylenically unsaturated carboxylic acid or derivatives thereof may be an acid or anhydride or derivatives thereof. In some embodiments, the ethylenically unsaturated carboxylic acid monomer is maleic anhydride monomer having the formula (I):
wherein R5 and R6 are independently selected from hydrogen or C1-C30 alkyl. In some embodiments, the maleic anhydride residue is further reacted with about 0.01 to 2.0 equivalents of a C12-C60 alkanol or amine per equivalent of anhydride.
In some embodiments, the one or more alpha olefin monomers having the formula (II):
wherein R1, R2, R3, and R4 are independently selected from hydrogen and C5-C40 alkyl.
In some embodiments, the alpha olefin contains from 15-40 carbon atoms or 18-36 or 20-35 carbon atoms.
In some embodiments, the olefin is linear and/or contains linear hydrocarbon chains such as alkyl or alkaryl chains attached to the double bond, then polymers of the olefin including copolymers of the olefin have pendant side chains. For example, polymers of linear alpha olefins having 14 carbon atoms or more, when polymerized and/or copolymerized, impart linear side chains of 12 carbon atoms or more to the resulting polymer. Long-chain alkenes, wherein the double bond is not in the 1-position, are also suitable because when polymerized the resulting polymer of the alkene monomer has linear side chains of at least 12 carbon atoms. Polymers of long chain alkenes with 12 carbon atoms or more on one side of the double bond and 12 carbon atoms or more on the opposing side of the double bond, when polymerized and/or copolymerized, form brush polymers. Such brush polymers have sets of opposing pendant side chains. Both brush and comb polymers are both useful in the disclosed embodiments.
In some embodiments, the pour point depressant is an alpha olefin-maleic anhydride copolymer (OMAC). In some embodiments, the copolymer of formula (I) and formula (II) is further reacted via the maleic anhydride residue with one or more alkanol or amine compounds to form the corresponding carboxylate or amide functionalities. In some such embodiments, the maleic anhydride residue is reacted with about 0.5 to 2.0 equivalents of the alkanol or amine per equivalent of anhydride. The alkanol or amine compounds are linear, branched, aromatic, or alkaromatic compounds having about 12 to 60 carbons.
In some embodiments the alpha-olefin maleic anhydride copolymer is from 10,00-70,000 g/mol; 10,00-55,000 g/mol; 20,00-50,000 g/mol; 20,00-70,000 g/mol or from 15,000-35,000 g/mol. In some embodiments, the molecular weight can be determined by gel permeation chromatography (GPC).
In some embodiments, the alpha-olefin maleic anhydride copolymer used as pour point depressants on synthetic feed stock derived from plastics is about 20,00-70,000 g/mol molecular weight provided with a solvent and having 20-90 percent actives.
Preparation of pour point depressant polymers may be made by any method known in the art such as by solution polymerization of free radical initiation or high-pressure polymerizations that may be carried out in an autoclave or suitable reactor. For example, preparation of alpha-olefin with an ethylenically unsaturated carboxylic acid (e.g., alpha-olefin maleic anhydride copolymers are known in the art. For example, see U.S. Pat. No. 5,441,545, which is incorporated herein by reference.
In some embodiments, the pour point depressant is formulated with solvents such as water, alcohols, aromatics, naphthenic, aliphatic and non-polymeric ester compounds (as disclosed in U.S. application Ser. No. 15/399,025 (U.S. Pat. Appl. Pub. No 20170190949, which is incorporated herein by reference in its entirety) and combinations thereof. In some embodiments, the solvents are heavy aromatic naphtha or light aromatic naphtha solvents.
In some embodiments the solvents are 10 wt % to 99 wt % of the pour point depressant; 10-25 wt %; 20-50 wt %; 30-75 wt %; 50-75%; 75-100 wt % of the pour point depressant.
In some embodiments, the pour point depressants are 20-99% active; 50-75%; 60-70%; 75-99% active; 20-90%; 20-70%; 30-70%; 20-50%; or 20-30% active.
In some embodiments, the pour point depressants are provided neat (viz., without a solvent). In some embodiments, the pour point depressants are provided as a concentrate. In some embodiments the pour point depressant concentrates have 1 wt % to 20 wt % pour point depressant (PPD), or about 3 wt % to 20 wt %, or about 5 wt % to 20 wt %, or about 7 wt % to 20 wt %, or about 10 wt % to 20 wt % PPD.
In some embodiments, the pour point depressant can include one or more additional components such other pour point depressants, paraffin inhibitors, asphaltene dispersants, wax dispersants, tar dispersants, neutralizers (e.g., amine neutralizers), surfactants, biocides, preservatives, stabilizers and the like or any combination thereof.
Wax dispersants can stabilize paraffin crystals which have formed and prevent them from sedimenting. The wax dispersants used may be, for example, alkylphenols, alkylphenol-formaldehyde resins or dodecylbenzenesulfonic acid.
The method of applying the pour point depressant to the synthetic feedstock is not particularly limited. One of skill will appreciate that the synthetic feedstock additives such as the pour point depressant are conventionally added by using available equipment including e.g., pipes, mixers, pumps, tanks, injection ports, and the like.
In some embodiments, the pour point depressant is added into a synthetic feedstock obtained from plastics. In some embodiments, the pour point depressant is an ethylene vinyl acetate copolymer. In other embodiments, the pour point depressant is added to a synthetic feedstock that contains waxes. In still other embodiments, ethylene vinyl acetate copolymer, vinyl acetate-acrylate copolymer, alpha olefin maleic anhydride copolymer or combinations thereof are added to a synthetic feedstock that contains waxes, char and tar. In some embodiments, the ethylene vinyl acetate copolymer, vinyl acetate-acrylate copolymer, alpha olefin maleic anhydride copolymer or combinations thereof are added to a synthetic feedstock that contains waxes having C16-C36. In some embodiments, the ethylene vinyl acetate copolymer, vinyl acetate-acrylate copolymer, alpha olefin maleic anhydride copolymer or combinations thereof are suitable pour points for synthetic feedstock having from 20-85% oils (C5-C15) and 15-95% waxes (>C16); or from 35-80% oils (C5-C15) and 20-65% waxes (≥C16); or 15-20 wt % C9-C16; 75-87% C16-C29; 2-5% C30+, where the carbon chains are predominantly a mixture of alkanes, alkenes and diolefins. In still other embodiments, the ethylene vinyl acetate copolymer, vinyl acetate-acrylate copolymer, alpha olefin maleic anhydride copolymer or combinations thereof are suitable pour points for synthetic feedstock having 10 wt %<C12, 25 wt % C12-C20, 30 wt % C21-C40 and 35 wt %>C41, where the carbon chains are predominantly a mixture of alkanes, alkenes and diolefins.
While an effective amount of the pour point depressant used depends on a number of factors such as the local operating conditions, the type of synthetic feedstock obtained from the plastic type processed, the temperature and other characteristics of the process, in some embodiments, the pour point depressant is used from 50 ppm to 10,000 ppm; 50 ppm to 5,000 ppm; 550 ppm to 5,000 ppm; 250 ppm to 1000 ppm; 50 ppm to 1,000 ppm; 150 to 450 ppm; 50 ppm to 500 ppm in the synthetic feedstock.
Flow properties of the synthetic feedstock can be evaluated by any known method or test. For example, pour points can be measured according to ASTM D97.
In some embodiments the synthetic feedstock with the pour point depressants have pour points (measured under ASTM D97) of less than −24° C., less than −20° C.; less than −10° C., less than −5° C. Such synthetic feedstock continues to flow thereby being allowed to be poured, pumped or transferred at temperatures between, for example −40° C. to 20° C. In some embodiments, the compositions containing the pour point depressants flow, and thus are pourable or pumpable, at temperatures as low as −40° C., or −40° C. to 20° C.; to −40° C., or −5° C. to −40° C., or −10° C. to −40° C., or −15° C. to −40° C., or −20° C. to −40° C., or −25° C. to −40° C., or −30° C. to −40° C.
In some embodiments the pour point depressants reduce the pour points by 3 to 42° C.; 3 to 30° C.; 3 to 20° C.; 10 to 20° C.; by 3° C. to 20° C.; 3° C. to 15° C.; 3° C. to 10° C.; or 3° C. to 5° C.
In some embodiments the pour point depressants at 250-450 ppm reduce the pour points by 3 to 42° C.; 3 to 30° C.; 3 to 20° C.; 10 to 20° C.; by 3° C. to 20° C.; 3° C. to 15° C.; 3° C. to 10° C.; or 3° C. to 5° C.
In some embodiments, the compositions comprise, consist essentially of, or consist of ethylene vinyl acetate copolymer, vinyl acetate-acrylate copolymer, alpha olefin maleic anhydride copolymer or combinations thereof in synthetic feedstock. In such embodiments, the pour points are reduced from 3 to 42° C.; when 50 ppm to 10,000 ppm are added to the synthetic feedstock derived from plastics.
The application is further described below with additional non-limiting embodiments:
1. A method of improving the cold flow properties of a plastic-derived synthetic feedstock composition comprising:
2. The method of embodiment 1, wherein the synthetic feedstock composition further comprises other pour point dispersants, paraffin inhibitors, asphaltene dispersants, wax dispersants, tar dispersants, neutralizers, surfactants, biocides, preservatives, stabilizers or any combination thereof.
3. The method as in one of embodiments 1-2, wherein the synthetic feedstock comprises from 20-85% oils (C5-C15) and 15-95% waxes (≥C16); or from 35-80% oils (C5-C15) and 20-65% waxes (≥C16).
4. The method as in one of embodiments 1-3, wherein the waxes comprise C16-C36.
5. The method as in one of embodiments 1-4, wherein the pour point depressant is a polymer.
6. The method as in one of embodiments 1-5, wherein the pour point depressant is a synthetic polymer.
7. The method as in one of embodiments 1-6 wherein the polymer comprises a vinyl carboxylate.
8. The method as in one of embodiments 1-7, wherein the pour point depressant is an ethylene vinyl acetate copolymer or a vinyl acetate-acrylate copolymer or combinations thereof.
9. The method as in one of embodiments 1-8, wherein the pour point depressant is an alpha olefin maleic anhydride.
10. The method as in one of embodiments 1-9, wherein the pour point depressant is added to the synthetic feedstock composition from about 50 ppm to 5000 ppm.
11. The method as in one of embodiments 1-10, wherein the pour point depressant lowers the pour point of the synthetic feedstock composition by 3° C. to 42° C.
12. The method as in one of embodiments 1-11, wherein the synthetic feedstock composition comprises a pour point depressant has a pour point less than −24° C.
13. A method of obtaining the synthetic feedstock comprising:
14. The method of embodiment 13, wherein the plastic comprises waste plastic.
15. The method as in one of embodiments 13-14, wherein the heating is in the presence or absence of a catalyst.
16. The method as in one of embodiments 13-15, wherein the plastic comprises polyethylene, polypropylene, polyvinylchloride, polystyrene, polyethylene terephthalate and combinations thereof.
17. The method as in one of embodiments 13-16, wherein the synthetic feedstock comprises from 20-85% oils (C5-C15) and 15-95% waxes (≥C16); or from 35-80% oils (C5-C15) and 20-65% waxes (≥C16).
18. The method as in one of embodiments 13-17, wherein the waxes comprise C16-C36.
The method as in one of embodiments 13-18, wherein the pour point depressant is a polymer.
19. The method as in one of embodiments 13-19, wherein the pour point depressant is a synthetic polymer.
20. The method as in one of embodiments 13-20, wherein the polymer comprises a vinyl carboxylate.
21. The method as in one of embodiments 13-21, wherein the pour point depressant is an ethylene vinyl acetate copolymer or a vinyl acetate-acrylate copolymer or combinations thereof.
22. The method as in one of embodiments 13-22, wherein the pour point depressant is an alpha olefin maleic anhydride.
23. The method as in one of embodiments 13-23, wherein the pour point depressant is an ethylene vinyl acetate copolymer.
24. The method as in one of embodiments 13-24, wherein the pour point depressant is added to the synthetic feedstock from about 50 ppm to 5000 ppm.
25. The method as in one of embodiments 13-25, wherein the pour point depressant lowers the pour point of the synthetic feedstock by 3° C. to 42° C.
26. The method as in one of embodiments 13-26, wherein the synthetic feedstock comprising a pour point depressant has a pour point less than −24° C.
27. A composition comprising a synthetic feedstock derived from plastic and a pour point depressant.
28. The composition of embodiment 27, wherein the synthetic feedstock comprises from 20-85% oils (C5-C15) and 15-95% waxes (≥C16); or from 35-80% oils (C5-C15) and 20-65% waxes (≥C16).
29. The composition as in one of embodiments 27-28, wherein the waxes comprise C16-C36.
30. The composition as in one of embodiments 27-29, wherein the pour point depressant comprises a polymer.
31. The composition as in one of embodiments 27-30, wherein the pour point depressant comprises a synthetic polymer.
32. The composition as in one of embodiments 27-31, wherein the pour point depressant comprises a vinyl carboxylate.
33. The composition as in one of embodiments 27-32, wherein the pour point depressant is an ethylene vinyl acetate copolymer or a vinyl acetate-acrylate copolymer or combinations thereof.
34. The composition as in one of embodiments 27-33, wherein the pour point depressant is an alpha olefin maleic anhydride.
35. The composition as in one of embodiments 27-34, wherein the pour point depressant is added to the synthetic feedstock from about 50 ppm to 5000 ppm.
36. The composition as in one of embodiments 27-35, wherein the pour point depressant lowers the pour point of the synthetic feedstock by 3° C. to 42° C.
37. The composition as in one of embodiments 27-36, wherein the synthetic feedstock comprising a pour point depressant has a pour point less than −24° C.
38. A composition comprising a pour point depressant and a synthetic feedstock, wherein the pour point depressant is a polymer added to the synthetic feedstock, the synthetic feedstock is provided by the method comprising:
39. The composition of embodiment 38, wherein the synthetic feedstock comprises from 20-85% oils (C5-C15) and 15-95% waxes (≥C16); or from 35-80% oils (C5-C15) and 20-65% waxes (≥C16).
40. The composition as in one of embodiments 38-39, wherein the waxes comprise C16-C36.
41. The composition as in one of embodiments 38-40, wherein the pour point depressant comprises a polymer.
42. The composition as in one of embodiments 38-41, wherein the pour point depressant comprises a synthetic polymer.
43. The composition as in one of embodiments 38-42, wherein the pour point depressant comprises a vinyl carboxylate.
44. The composition as in one of embodiments 38-43, wherein the pour point depressant comprises an ethylene vinyl acetate copolymer or a vinyl acetate-acrylate copolymer or combinations thereof.
45. The composition as in one of embodiments 38-44, wherein the pour point depressant comprises an alpha olefin maleic anhydride.
46. The composition as in one of embodiments 38-45, wherein the pour point depressant is added to the synthetic feedstock from about 50 ppm to 5000 ppm.
47. The composition as in one of embodiments 38-46, wherein the pour point depressant lowers the pour point of the synthetic feedstock by 3° C. to 42° C.
48. The composition as in one of embodiments 38-47, wherein the synthetic feedstock comprising a pour point depressant has a pour point less than −24° C.
49. Use of the pour point depressants as in one of embodiments 1-48 to lower the pour point of synthetic feedstocks derived from plastics.
The following examples are intended to illustrate different aspects and embodiments of the application and are not to be considered limiting the scope. It will be recognized that various modifications and changes may be made without departing from the scope of the application and claims.
The pour points of synthetic feedstock derived from plastic with various pour point depressants were determined according to ASTM D97. The synthetic feedstocks having the following carbon chains were used: Sample 1: 15-20 wt % C9-C16; 75-87% C16-C29; 2-5% C30+, where the carbon chains are predominantly a mixture of alkanes, alkenes and diolefins; and Sample 2 10 wt %<C12, 25 wt % C12-C20, 30 wt % C21-C40 and 35 wt %>C41.
The chemistries of the various pour point depressants used are shown below in Table 1:
Table 2 shows the different categories of pour point depressants tested at varying dosages in Sample 1.
Table 2 showed that while all four categories of pour point depressants tested in Sample 1 showed promising pour point depression, ethylene-vinyl acetate copolymers were the most effective at lower dosage ranges.
Table 3 shows the different categories of pour point depressants tested at varying dosages in Sample 2.
Table 3 showed that while all categories of pour point depressants tested in Sample 2 showed promising pour point depression, alpha-olefin-maleic anhydride-based copolymers and vinyl acetate-acrylate copolymers were the most effective at lower dosage ranges.
This application claims the benefit of U.S. Provisional Patent Application Ser. No. 63/078,111, filed Sep. 14, 2020 the disclosures of which is incorporated in its entirety herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
3093623 | Ilnyckyj | Jun 1963 | A |
3819589 | Fauke et al. | Jun 1974 | A |
3901951 | Nishizaki | Aug 1975 | A |
3947368 | Sweeney | Mar 1976 | A |
4030984 | Chambers | Jun 1977 | A |
4108730 | Chen et al. | Aug 1978 | A |
4118281 | Yan | Oct 1978 | A |
4121026 | Cheng et al. | Oct 1978 | A |
4175211 | Chen et al. | Nov 1979 | A |
4210491 | Schulman | Jul 1980 | A |
4211534 | Feldman | Jul 1980 | A |
4235675 | Bechthold | Nov 1980 | A |
4235676 | Chambers | Nov 1980 | A |
4252542 | Spence | Feb 1981 | A |
4731095 | Garapon et al. | Mar 1988 | A |
4732092 | Gould | Mar 1988 | A |
4874395 | Meyer | Oct 1989 | A |
4900331 | Le | Feb 1990 | A |
4900332 | Denis et al. | Feb 1990 | A |
4941952 | Betz | Jul 1990 | A |
4948495 | Coburn | Aug 1990 | A |
4970969 | Koptis et al. | Nov 1990 | A |
4983278 | Cha et al. | Jan 1991 | A |
5167772 | Parker, Sr. | Dec 1992 | A |
5182036 | Okorodudu et al. | Jan 1993 | A |
5214224 | Comer et al. | May 1993 | A |
5316734 | Yamaguchi | May 1994 | A |
5425789 | Lewtas | Jun 1995 | A |
5441545 | Lewtas et al. | Aug 1995 | A |
5464876 | Lyding et al. | Nov 1995 | A |
5468780 | Kubota et al. | Nov 1995 | A |
5509944 | Venkatadri et al. | Apr 1996 | A |
5707943 | Covitch | Jan 1998 | A |
5711767 | Gande et al. | Jan 1998 | A |
5720232 | Meador | Feb 1998 | A |
5851429 | Magyar | Dec 1998 | A |
5894012 | Denison | Apr 1999 | A |
6036124 | Takahashi et al. | Mar 2000 | A |
6143043 | Botros | Nov 2000 | A |
6149881 | Hanson et al. | Nov 2000 | A |
6150577 | Miller et al. | Nov 2000 | A |
6187083 | Malhotra et al. | Feb 2001 | B1 |
6774271 | Jiang | Aug 2004 | B2 |
6774272 | Miller | Aug 2004 | B2 |
6822126 | Miller | Nov 2004 | B2 |
6830597 | Green | Dec 2004 | B1 |
7041738 | Krull et al. | May 2006 | B2 |
7413583 | Langer et al. | Aug 2008 | B2 |
7534748 | Patel et al. | May 2009 | B2 |
7820604 | Ruhe, Jr. et al. | Oct 2010 | B2 |
7820605 | Stokes et al. | Oct 2010 | B2 |
8048333 | Vitale et al. | Nov 2011 | B2 |
8088961 | Miller | Jan 2012 | B2 |
8158842 | McCall | Apr 2012 | B2 |
8304592 | Luebke | Nov 2012 | B2 |
8329969 | McCall et al. | Dec 2012 | B2 |
8394264 | Sappok et al. | Mar 2013 | B2 |
8425627 | Dietz et al. | Apr 2013 | B2 |
8466332 | Hemmings et al. | Jun 2013 | B1 |
8703674 | Umehara et al. | Apr 2014 | B2 |
8722596 | Umehara et al. | May 2014 | B2 |
8927797 | Sarker | Jan 2015 | B2 |
8992636 | Fang et al. | Mar 2015 | B1 |
9012385 | Di Biase et al. | Apr 2015 | B2 |
9175141 | Wray et al. | Nov 2015 | B2 |
9181510 | Barton et al. | Nov 2015 | B2 |
9200207 | Huang et al. | Dec 2015 | B2 |
9234138 | Li et al. | Jan 2016 | B1 |
9315732 | Fowler | Apr 2016 | B1 |
9534183 | Papin et al. | Jan 2017 | B2 |
9556395 | Kashani-Shirazi et al. | Jan 2017 | B2 |
9624439 | Bakaya et al. | Apr 2017 | B2 |
10131847 | McNamara et al. | Nov 2018 | B2 |
10150928 | Scherer et al. | Dec 2018 | B2 |
10160927 | Hellawell et al. | Dec 2018 | B2 |
10208253 | McNamara et al. | Feb 2019 | B2 |
10233395 | Ward et al. | Mar 2019 | B2 |
20020040546 | Botros | Apr 2002 | A1 |
20030031722 | Cao et al. | Feb 2003 | A1 |
20030047437 | Stankevitch | Mar 2003 | A1 |
20030050519 | Cheng | Mar 2003 | A1 |
20030104943 | Lennon et al. | Jun 2003 | A1 |
20030166811 | Peiffer et al. | Sep 2003 | A1 |
20040152930 | O'Rear et al. | Aug 2004 | A1 |
20040192980 | Appel et al. | Sep 2004 | A1 |
20040204620 | Grispin | Oct 2004 | A1 |
20050050792 | Corkwell et al. | Mar 2005 | A1 |
20050086855 | Tack et al. | Apr 2005 | A1 |
20050131260 | Tokarz | Jun 2005 | A1 |
20060037852 | Noto | Feb 2006 | A1 |
20070051033 | Martin et al. | Mar 2007 | A1 |
20070161519 | Cravey et al. | Jun 2007 | A1 |
20070173419 | Mead et al. | Jul 2007 | A1 |
20080051520 | Srinivasan et al. | Feb 2008 | A1 |
20080103076 | Ruhe et al. | May 2008 | A1 |
20080178522 | Siggelkow et al. | Jul 2008 | A1 |
20080200738 | Grispin | Aug 2008 | A1 |
20080295397 | Muth | Dec 2008 | A1 |
20090170739 | Miller | Jul 2009 | A1 |
20100065411 | Li et al. | Mar 2010 | A1 |
20100180492 | Krull et al. | Jul 2010 | A1 |
20100320070 | DeWhitt | Dec 2010 | A1 |
20110042268 | Stark et al. | Feb 2011 | A1 |
20110083953 | Horn et al. | Apr 2011 | A1 |
20110306808 | Appel et al. | Dec 2011 | A1 |
20120215043 | Gaffney | Aug 2012 | A1 |
20120220675 | DeWhitt | Aug 2012 | A1 |
20120245063 | DiBiase et al. | Sep 2012 | A1 |
20120255222 | DiBiase et al. | Oct 2012 | A1 |
20120261247 | McNamara et al. | Oct 2012 | A1 |
20120264662 | DiBiase et al. | Oct 2012 | A1 |
20120264664 | DiBiase et al. | Oct 2012 | A1 |
20120277133 | DiBiase et al. | Nov 2012 | A1 |
20120283156 | DiBiase et al. | Nov 2012 | A1 |
20130015608 | Hamby et al. | Jan 2013 | A1 |
20130025189 | Burgazli et al. | Jan 2013 | A1 |
20130225462 | DiBiase et al. | Aug 2013 | A1 |
20130227878 | Wolf et al. | Sep 2013 | A1 |
20140054815 | Houk et al. | Feb 2014 | A1 |
20140190692 | Hibbeler et al. | Jul 2014 | A1 |
20140259923 | Blair | Sep 2014 | A1 |
20140262728 | Karanikas | Sep 2014 | A1 |
20140338253 | Jung et al. | Nov 2014 | A1 |
20150060258 | Appel et al. | Mar 2015 | A1 |
20150113859 | Voelkel et al. | Apr 2015 | A1 |
20150113867 | Voelkel et al. | Apr 2015 | A1 |
20150139889 | Horn et al. | May 2015 | A1 |
20150197692 | Wang | Jul 2015 | A1 |
20150203784 | Barton et al. | Jul 2015 | A1 |
20150232781 | Barton | Aug 2015 | A1 |
20150284495 | Reed et al. | Oct 2015 | A1 |
20160040073 | Bakaya et al. | Feb 2016 | A1 |
20160040089 | Baker et al. | Feb 2016 | A1 |
20160046880 | Combs | Feb 2016 | A1 |
20160115369 | Soriano, Jr. et al. | Apr 2016 | A1 |
20160169509 | Fowler | Jun 2016 | A1 |
20160257879 | Huang et al. | Sep 2016 | A1 |
20170015911 | Houk et al. | Jan 2017 | A1 |
20170081591 | Reed | Mar 2017 | A1 |
20170114279 | Alyaser | Apr 2017 | A1 |
20170130153 | Peretolchin et al. | May 2017 | A1 |
20170190949 | Solomon et al. | Jul 2017 | A1 |
20170218278 | Bakaya et al. | Aug 2017 | A1 |
20170321124 | Hsu et al. | Nov 2017 | A1 |
20170349836 | Duncan | Dec 2017 | A1 |
20180010048 | Oluwaseun et al. | Jan 2018 | A1 |
20180010049 | Tenore et al. | Jan 2018 | A1 |
20180010050 | Van Der Ree et al. | Jan 2018 | A1 |
20180066200 | Scherer | Mar 2018 | A1 |
20180086862 | Kundu et al. | Mar 2018 | A1 |
20180244605 | Khanlari et al. | Aug 2018 | A1 |
20180251692 | Mezger et al. | Sep 2018 | A1 |
20190168192 | Gaffney | Jun 2019 | A1 |
20190177652 | Atkins | Jun 2019 | A1 |
20190203135 | Soriano, Jr. et al. | Jul 2019 | A1 |
20200017786 | Li et al. | Jan 2020 | A1 |
20220081634 | Arst et al. | Mar 2022 | A1 |
20220396735 | Wu et al. | Dec 2022 | A1 |
Number | Date | Country |
---|---|---|
2005227358 | Jul 2006 | AU |
2013263852 | Aug 2014 | AU |
PI1004634 | Mar 2013 | BR |
102016027627 | Dec 2018 | BR |
2202941 | Oct 1998 | CA |
1149598 | May 1997 | CN |
1239108 | Dec 1999 | CN |
1338341 | Mar 2002 | CN |
1962735 | May 2007 | CN |
101172238 | May 2008 | CN |
101177502 | May 2008 | CN |
101210173 | Jul 2008 | CN |
101235279 | Aug 2008 | CN |
101328414 | Dec 2008 | CN |
101386724 | Mar 2009 | CN |
201458375 | May 2010 | CN |
101831313 | Sep 2010 | CN |
201581050 | Sep 2010 | CN |
101886020 | Nov 2010 | CN |
201648314 | Nov 2010 | CN |
102504855 | Jun 2012 | CN |
202265543 | Jun 2012 | CN |
202415456 | Sep 2012 | CN |
202705307 | Jan 2013 | CN |
102942943 | Feb 2013 | CN |
202725185 | Feb 2013 | CN |
202953992 | May 2013 | CN |
202953993 | May 2013 | CN |
103172934 | Jun 2013 | CN |
203043985 | Jul 2013 | CN |
203048877 | Jul 2013 | CN |
103242872 | Aug 2013 | CN |
103275746 | Sep 2013 | CN |
103305253 | Sep 2013 | CN |
103382398 | Nov 2013 | CN |
203269856 | Nov 2013 | CN |
103450912 | Dec 2013 | CN |
203319926 | Dec 2013 | CN |
203333590 | Dec 2013 | CN |
103571565 | Feb 2014 | CN |
203487095 | Mar 2014 | CN |
103980925 | Aug 2014 | CN |
104031665 | Sep 2014 | CN |
104073273 | Oct 2014 | CN |
104073279 | Oct 2014 | CN |
104130787 | Nov 2014 | CN |
104140827 | Nov 2014 | CN |
203960130 | Nov 2014 | CN |
204058363 | Dec 2014 | CN |
204211689 | Mar 2015 | CN |
204224524 | Mar 2015 | CN |
104531199 | Apr 2015 | CN |
104560100 | Apr 2015 | CN |
204281679 | Apr 2015 | CN |
104650943 | May 2015 | CN |
204417413 | Jun 2015 | CN |
204434552 | Jul 2015 | CN |
204644272 | Sep 2015 | CN |
104974779 | Oct 2015 | CN |
105038829 | Nov 2015 | CN |
204939396 | Jan 2016 | CN |
205088187 | Mar 2016 | CN |
105462615 | Apr 2016 | CN |
105462660 | Apr 2016 | CN |
205223110 | May 2016 | CN |
05713641 | Jun 2016 | CN |
205347348 | Jun 2016 | CN |
105733644 | Jul 2016 | CN |
105754628 | Jul 2016 | CN |
105778955 | Jul 2016 | CN |
105779017 | Jul 2016 | CN |
205473591 | Aug 2016 | CN |
105925292 | Sep 2016 | CN |
105950200 | Sep 2016 | CN |
205635485 | Oct 2016 | CN |
205653411 | Oct 2016 | CN |
106085473 | Nov 2016 | CN |
106118708 | Nov 2016 | CN |
106185938 | Dec 2016 | CN |
106185941 | Dec 2016 | CN |
106185943 | Dec 2016 | CN |
205774331 | Dec 2016 | CN |
106318546 | Jan 2017 | CN |
106338067 | Jan 2017 | CN |
106433703 | Feb 2017 | CN |
106433724 | Feb 2017 | CN |
106433725 | Feb 2017 | CN |
106433726 | Feb 2017 | CN |
106433732 | Feb 2017 | CN |
106513419 | Mar 2017 | CN |
106544050 | Mar 2017 | CN |
106544051 | Mar 2017 | CN |
106635114 | May 2017 | CN |
106635116 | May 2017 | CN |
106698421 | May 2017 | CN |
106734060 | May 2017 | CN |
106753502 | May 2017 | CN |
206308313 | Jul 2017 | CN |
206318947 | Jul 2017 | CN |
206318948 | Jul 2017 | CN |
107033941 | Aug 2017 | CN |
107057738 | Aug 2017 | CN |
107057745 | Aug 2017 | CN |
206392023 | Aug 2017 | CN |
206408173 | Aug 2017 | CN |
107151559 | Sep 2017 | CN |
107163967 | Sep 2017 | CN |
107216888 | Sep 2017 | CN |
107236568 | Oct 2017 | CN |
107267181 | Oct 2017 | CN |
107267182 | Oct 2017 | CN |
206545002 | Oct 2017 | CN |
107384447 | Nov 2017 | CN |
107384465 | Nov 2017 | CN |
107418603 | Dec 2017 | CN |
107418605 | Dec 2017 | CN |
107420912 | Dec 2017 | CN |
107433280 | Dec 2017 | CN |
107433281 | Dec 2017 | CN |
107433282 | Dec 2017 | CN |
107434977 | Dec 2017 | CN |
107446608 | Dec 2017 | CN |
107446610 | Dec 2017 | CN |
107523362 | Dec 2017 | CN |
206692598 | Dec 2017 | CN |
206720749 | Dec 2017 | CN |
107537847 | Jan 2018 | CN |
107641522 | Jan 2018 | CN |
107674695 | Feb 2018 | CN |
107828438 | Mar 2018 | CN |
108467513 | Mar 2018 | CN |
108085044 | May 2018 | CN |
207362144 | May 2018 | CN |
108117881 | Jun 2018 | CN |
207446192 | Jun 2018 | CN |
207537397 | Jun 2018 | CN |
108285800 | Jul 2018 | CN |
108299673 | Jul 2018 | CN |
108384565 | Aug 2018 | CN |
108395572 | Aug 2018 | CN |
108410007 | Aug 2018 | CN |
108441241 | Aug 2018 | CN |
108441242 | Aug 2018 | CN |
108517222 | Sep 2018 | CN |
207845569 | Sep 2018 | CN |
207845574 | Sep 2018 | CN |
207952195 | Oct 2018 | CN |
108841405 | Nov 2018 | CN |
109181738 | Jan 2019 | CN |
109266375 | Jan 2019 | CN |
109749757 | May 2019 | CN |
109776274 | May 2019 | CN |
112063403 | Dec 2020 | CN |
2725650 | Dec 1977 | DE |
131092 | May 1978 | DE |
2748510 | May 1978 | DE |
2917293 | Oct 1980 | DE |
3030593 | Mar 1982 | DE |
3205603 | Nov 1982 | DE |
3323161 | Jan 1985 | DE |
4103738 | Oct 1991 | DE |
4210237 | Sep 1993 | DE |
4234385 | Apr 1994 | DE |
4329458 | Mar 1995 | DE |
4446964 | Jun 1995 | DE |
4403128 | Aug 1995 | DE |
4417721 | Nov 1995 | DE |
4423394 | Mar 1996 | DE |
4435238 | Apr 1996 | DE |
4437881 | Apr 1996 | DE |
19505544 | May 1996 | DE |
19617450 | Nov 1997 | DE |
19800567 | Jul 1999 | DE |
19834596 | Feb 2000 | DE |
202006003429 | Aug 2007 | DE |
202006003430 | Aug 2007 | DE |
102006014457 | Oct 2007 | DE |
102008019237 | Nov 2008 | DE |
102007051373 | Apr 2009 | DE |
102007054343 | May 2009 | DE |
102012204648 | Sep 2013 | DE |
102012008457 | Oct 2013 | DE |
102012109874 | Apr 2014 | DE |
102014014816 | Apr 2016 | DE |
0072387 | Feb 1983 | EP |
0191967 | Aug 1986 | EP |
0226895 | Jul 1987 | EP |
0297420 | Jan 1989 | EP |
0316827 | May 1989 | EP |
0391735 | Oct 1990 | EP |
0410889 | Jan 1991 | EP |
0659867 | Jun 1995 | EP |
0693527 | Jan 1996 | EP |
0713906 | May 1996 | EP |
0890629 | Jan 1999 | EP |
0949321 | Oct 1999 | EP |
1302526 | Apr 2003 | EP |
1380635 | Jan 2004 | EP |
1577366 | Sep 2005 | EP |
1577367 | Sep 2005 | EP |
1686141 | Aug 2006 | EP |
1905811 | Apr 2008 | EP |
2783764 | Oct 2014 | EP |
2942382 | Nov 2015 | EP |
3085757 | Oct 2016 | EP |
3260181 | Dec 2017 | EP |
3421576 | Jan 2019 | EP |
2178061 | Nov 1973 | FR |
1525114 | Sep 1978 | GB |
2303859 | Mar 1997 | GB |
2434372 | Jul 2007 | GB |
2503065 | Dec 2013 | GB |
2515560 | Dec 2014 | GB |
2539518 | Dec 2016 | GB |
2570019 | Jul 2019 | GB |
106281384 | Jan 2017 | IN |
106338066 | Jan 2017 | IN |
S511268 | Jan 1976 | JP |
S5123988 | Jul 1976 | JP |
S5187584 | Jul 1976 | JP |
S5126473 | Aug 1976 | JP |
S5222390 | Jun 1977 | JP |
S52144074 | Dec 1977 | JP |
S5345302 | Apr 1978 | JP |
S5424981 | Feb 1979 | JP |
S5621578 | May 1981 | JP |
S5798591 | Jun 1982 | JP |
S5971395 | Apr 1984 | JP |
S6090293 | May 1985 | JP |
S61123837 | Jun 1986 | JP |
S62236893 | Oct 1987 | JP |
S63260981 | Oct 1988 | JP |
H01115918 | May 1989 | JP |
H0397788 | Apr 1991 | JP |
H03243692 | Oct 1991 | JP |
H05100427 | Apr 1993 | JP |
H05171159 | Jul 1993 | JP |
H05320658 | Dec 1993 | JP |
H06134434 | May 1994 | JP |
H06158062 | Jun 1994 | JP |
H06166880 | Jun 1994 | JP |
H0948982 | Feb 1997 | JP |
H0948983 | Feb 1997 | JP |
H0995676 | Apr 1997 | JP |
H09169982 | Jun 1997 | JP |
H09310075 | Dec 1997 | JP |
H1059704 | Mar 1998 | JP |
H10110174 | Apr 1998 | JP |
H10121056 | May 1998 | JP |
H10279950 | Oct 1998 | JP |
H10298569 | Nov 1998 | JP |
H10330761 | Dec 1998 | JP |
H10338886 | Dec 1998 | JP |
H11166184 | Jun 1999 | JP |
H11286686 | Oct 1999 | JP |
H11286687 | Oct 1999 | JP |
2000086224 | Mar 2000 | JP |
2000191766 | Jul 2000 | JP |
2000239233 | Sep 2000 | JP |
2000265172 | Sep 2000 | JP |
2000290661 | Oct 2000 | JP |
2000309781 | Nov 2000 | JP |
2000355690 | Dec 2000 | JP |
2001049263 | Feb 2001 | JP |
2001115163 | Apr 2001 | JP |
2001187406 | Jul 2001 | JP |
2001200268 | Jul 2001 | JP |
2001232634 | Aug 2001 | JP |
2001232637 | Aug 2001 | JP |
2001240406 | Sep 2001 | JP |
2002020535 | Jan 2002 | JP |
2002047493 | Feb 2002 | JP |
2002053869 | Feb 2002 | JP |
2002138286 | May 2002 | JP |
2002285165 | Oct 2002 | JP |
2002327182 | Nov 2002 | JP |
2002332380 | Nov 2002 | JP |
2003039056 | Feb 2003 | JP |
2003041265 | Feb 2003 | JP |
3383296 | Mar 2003 | JP |
2003130319 | May 2003 | JP |
2003176483 | Jun 2003 | JP |
2003205281 | Jul 2003 | JP |
2003213034 | Jul 2003 | JP |
2003236517 | Aug 2003 | JP |
2003268098 | Sep 2003 | JP |
2004002054 | Jan 2004 | JP |
2004035807 | Feb 2004 | JP |
2004099693 | Apr 2004 | JP |
2004131358 | Apr 2004 | JP |
2004161971 | Jun 2004 | JP |
2004285134 | Oct 2004 | JP |
2004285255 | Oct 2004 | JP |
2004307779 | Nov 2004 | JP |
2004307780 | Nov 2004 | JP |
2005015701 | Jan 2005 | JP |
2005097737 | Apr 2005 | JP |
2005153434 | Jun 2005 | JP |
2005154510 | Jun 2005 | JP |
2005154516 | Jun 2005 | JP |
2005194537 | Jul 2005 | JP |
2005314552 | Nov 2005 | JP |
2005314748 | Nov 2005 | JP |
2006028593 | Feb 2006 | JP |
2006036688 | Feb 2006 | JP |
2006089742 | Apr 2006 | JP |
2006096979 | Apr 2006 | JP |
2006206810 | Aug 2006 | JP |
2006220328 | Aug 2006 | JP |
2006234291 | Sep 2006 | JP |
2007139363 | Jun 2007 | JP |
2008080634 | Apr 2008 | JP |
2008150477 | Jul 2008 | JP |
2010242071 | Oct 2010 | JP |
2011006528 | Jan 2011 | JP |
2011033333 | Feb 2011 | JP |
2011111511 | Jun 2011 | JP |
2011219622 | Nov 2011 | JP |
2011219627 | Nov 2011 | JP |
2011236098 | Nov 2011 | JP |
2011236099 | Nov 2011 | JP |
2011236377 | Nov 2011 | JP |
2012087222 | May 2012 | JP |
2012136672 | Jul 2012 | JP |
2013231109 | Nov 2013 | JP |
2014156544 | Aug 2014 | JP |
2018135443 | Aug 2018 | JP |
2019135278 | Aug 2019 | JP |
2019135281 | Aug 2019 | JP |
20100103953 | Sep 2010 | KR |
101156195 | Jun 2012 | KR |
101347906 | Jan 2014 | KR |
20140114614 | Sep 2014 | KR |
101815917 | Jan 2018 | KR |
101817728 | Jan 2018 | KR |
2011013990 | Jun 2012 | MX |
2015004252 | Sep 2016 | MX |
197303690 | Sep 1973 | NL |
401930 | Jun 2014 | PL |
406360 | Jun 2015 | PL |
2011151416 | Jun 2013 | RU |
16711 | Dec 2016 | RU |
28297 | Apr 1998 | SK |
261547 | Nov 1995 | TW |
M484061 | Aug 2014 | TW |
198101713 | Jun 1981 | WO |
198700082 | Jan 1987 | WO |
198904355 | May 1989 | WO |
199111499 | Aug 1991 | WO |
199118960 | Dec 1991 | WO |
199201767 | Feb 1992 | WO |
199204423 | Mar 1992 | WO |
199209671 | Jun 1992 | WO |
199222528 | Dec 1992 | WO |
199410107 | May 1994 | WO |
199410507 | May 1994 | WO |
199413763 | Jun 1994 | WO |
199503375 | Feb 1995 | WO |
199532262 | Nov 1995 | WO |
199600268 | Jan 1996 | WO |
199612755 | May 1996 | WO |
199623104 | Aug 1996 | WO |
199701616 | Jan 1997 | WO |
199706224 | Feb 1997 | WO |
199844074 | Oct 1998 | WO |
199845239 | Oct 1998 | WO |
200006668 | Feb 2000 | WO |
200047658 | Aug 2000 | WO |
200053385 | Sep 2000 | WO |
200053699 | Sep 2000 | WO |
200064998 | Nov 2000 | WO |
200103473 | Jan 2001 | WO |
2004018592 | Mar 2001 | WO |
200148032 | Jul 2001 | WO |
200160948 | Aug 2001 | WO |
200162823 | Aug 2001 | WO |
200222498 | Mar 2002 | WO |
200231082 | Apr 2002 | WO |
2002072731 | Sep 2002 | WO |
2003029384 | Apr 2003 | WO |
2003042337 | May 2003 | WO |
2003047778 | Jun 2003 | WO |
2004011165 | Feb 2004 | WO |
2004072208 | Aug 2004 | WO |
2004076595 | Sep 2004 | WO |
2005040316 | May 2005 | WO |
2005087897 | Sep 2005 | WO |
2005097448 | Oct 2005 | WO |
2005097953 | Oct 2005 | WO |
2005108525 | Nov 2005 | WO |
2005111093 | Nov 2005 | WO |
2005121278 | Dec 2005 | WO |
2006043924 | Apr 2006 | WO |
2006096085 | Sep 2006 | WO |
2006096086 | Sep 2006 | WO |
2006124793 | Nov 2006 | WO |
2007009022 | Jan 2007 | WO |
2007014489 | Feb 2007 | WO |
2007050746 | May 2007 | WO |
2007091146 | Aug 2007 | WO |
2007115443 | Oct 2007 | WO |
2007143673 | Dec 2007 | WO |
2008030137 | Mar 2008 | WO |
2008075105 | Jun 2008 | WO |
2008079054 | Jul 2008 | WO |
2008126040 | Oct 2008 | WO |
2009064685 | May 2009 | WO |
2009087080 | Jul 2009 | WO |
2009099341 | Aug 2009 | WO |
2010049824 | May 2010 | WO |
2010053381 | May 2010 | WO |
2010106538 | Sep 2010 | WO |
2010106539 | Sep 2010 | WO |
2010116211 | Oct 2010 | WO |
2010130404 | Nov 2010 | WO |
2011008074 | Jan 2011 | WO |
2011008075 | Jan 2011 | WO |
2011009419 | Jan 2011 | WO |
2011025593 | Mar 2011 | WO |
2011028515 | Mar 2011 | WO |
2011034446 | Mar 2011 | WO |
2011079894 | Jul 2011 | WO |
2011127701 | Oct 2011 | WO |
2011131793 | Oct 2011 | WO |
2012006523 | Jan 2012 | WO |
2012014478 | Feb 2012 | WO |
2012014480 | Feb 2012 | WO |
2012018403 | Feb 2012 | WO |
2012110991 | Aug 2012 | WO |
2012127085 | Sep 2012 | WO |
2012129482 | Sep 2012 | WO |
2012131485 | Oct 2012 | WO |
2012162837 | Dec 2012 | WO |
2012172527 | Dec 2012 | WO |
2013032027 | Mar 2013 | WO |
2013036151 | Mar 2013 | WO |
2013070801 | May 2013 | WO |
2013087701 | Jun 2013 | WO |
2013089587 | Jun 2013 | WO |
2013106546 | Jul 2013 | WO |
2013119941 | Aug 2013 | WO |
2013123377 | Aug 2013 | WO |
2013171510 | Nov 2013 | WO |
2013187788 | Dec 2013 | WO |
2014032843 | Mar 2014 | WO |
2014041212 | Mar 2014 | WO |
2014043051 | Mar 2014 | WO |
2014051514 | Apr 2014 | WO |
2014057430 | Apr 2014 | WO |
2014070908 | May 2014 | WO |
2014135754 | Sep 2014 | WO |
2014167139 | Oct 2014 | WO |
2014177727 | Nov 2014 | WO |
2014184290 | Nov 2014 | WO |
2014200330 | Dec 2014 | WO |
2015019313 | Feb 2015 | WO |
2015082755 | Jun 2015 | WO |
2015162505 | Oct 2015 | WO |
2015194978 | Dec 2015 | WO |
2016030460 | Mar 2016 | WO |
2016034739 | Mar 2016 | WO |
2016187144 | Nov 2016 | WO |
2016209194 | Dec 2016 | WO |
2017009208 | Jan 2017 | WO |
2017060464 | Apr 2017 | WO |
2017088015 | Jun 2017 | WO |
2017113020 | Jul 2017 | WO |
2017115261 | Jul 2017 | WO |
2017152205 | Sep 2017 | WO |
2017168164 | Oct 2017 | WO |
2017172351 | Oct 2017 | WO |
2017173006 | Oct 2017 | WO |
2017198896 | Nov 2017 | WO |
2017205275 | Nov 2017 | WO |
2018000050 | Jan 2018 | WO |
2018084330 | May 2018 | WO |
2018085934 | May 2018 | WO |
2018104443 | Jun 2018 | WO |
2019236779 | Dec 2019 | WO |
2020178597 | Sep 2020 | WO |
2020212315 | Oct 2020 | WO |
2022212502 | Oct 2022 | WO |
Entry |
---|
Gala et al, Characterization and Distillation of Pyrolysis Liquids Coming from Polyolefins Segregated of MSW for their use as Automotive Diesel Fuel, Apr. 2020, Energy Fuels, 34: 5969-5982 (Year: 2020). |
Ghosh et al., Dodecyl methacrylate and vinyl acetate copolymers as viscosity modifier and pout point depressants for lubricating oils ,Apr. 2017, Int. J. Ind. Chem. 8:197-205 (Year: 2017). |
Turemuratov et al. (2015) “Synthesis and Properties of Depressators Based on Sopolymers in the Presence of Gossypol Pitch”, Oriental Journal of Chemistry, 31(3):1447-1453. |
Xue et al. (2016) “The influence of polymethyl acrylate as a pour point depressant for biodiesel”, Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 39(1):17-22. |
Vasile, Comelia et al. “Feedstock recycling from plastic and thermoset fractions of used computers (I): pyrolysis,” Journal of Material Cycles and Waste Management (2006) 8, pp. 99-108. |
Vouvoudi, Evangelia C. et al. “Pyrolytic degradation of common polymers present in packaging materials,” Journal of Thermal Analysis and Calorimetry (2019) 138, pp. 2683-2689. |
Williams, P.T. et al. “Recycling plastic waste by pyrolysis,” Journal of the Institute of Energy (1998) 71, pp. 81-93. |
Williams, Paul T. “Yield and Composition of Gases and Oils/Waxes from the Feedstock Recycling of Waste Plastic,” Feedstock Recycling and Pyrolysis of Waste Plastics: Converting Waste Plastics into Diesel and Other Fuels. Edited by John Scheirs. Chichester, UK: John Wiley & Sons Ltd., (2006) pp. 285-313. |
Wiriyaumpaiwong, Songchai et al. “Distillation of Pyrolytic Oil Obtained from Fast Pyrolysis of Plastic Wastes,” Energy Procedia (2017) 138, pp. 111-115. |
Xu, Shannan et al. “Synergistic effects of catalytic co-pyrolysis of macroalgae with waste plastics,” Process Safety and Environmental Protections (2020) 137, pp. 34-48. |
Yang, Bing et al. “Research and Application Development of Highly Loaded Degradable Plastic Products,” Suliao (2014) 43(4), pp. 39-42, with English abstract. |
Zahedi, Ali Reza et al. “Unsaturated polyester resin via chemical recyclying of off-grade poly(ethylene terephthalate),” Polymer International (2009) 58, pp. 1084-1091. |
Zassa, M. Della et al. “Two-steps selective thermal depolymerization of polyethylene. 1: Feasibility and effect of devolatilization heating policy,” Journal of Analytical and Applied Pyrolysis (2010) 87, pp. 248-255. |
Zhang, Huiyan et al. “Catalytic pyrolysis of black-liquor lignin by co-feeding with different plastics in a fluidized bed reactor,” Bioresource Technology (2015) 192, pp. 68-74. |
PCT Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration, PCT/US2018/067597, Mar. 20, 2019, 15 pages. |
PCT Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration, PCT/US2019/040944, Sep. 25, 2019, 10 pages. |
PCT Notification of Transmittal of the International Search Report and the Written Opinion of the International Searching Authority, or the Declaration, PCT/US2021/049790, Dec. 3, 2021, 15 pages. |
Ali, Mohammad Farhat et al. “The Conversion of Waste Plastics/Petroleum Residue Mixtures to Transportation Fuels,” Feedstock Recycling and Pyrolysis of Waste Plastics. Edited by John Scheirs. Chichester, UK: John Wiley & Sons Ltd., (2006) pp. 363-380. |
Gebauer, Manfred et al. “Olefine aus Altkunststoffen” (Olefins from waste plastics), Chemische Technik (1995) 47(4), pp. 196-199, with English abstract. |
Hajekova, Elena et al. “Recycling of low-density polyethylene and polypropylene via copyrolysis of polyalkene oil/ waxes with naphtha: product distribution and coke formation,” Journal of Analytical and Applied Pyrolysis (2005) 74, (1-2), pp. 270-281. |
Hofmann, U. et al. “Rohstoffrecycling—ein Weg zum Verwerten von Altkunststoffen,” (Raw materials recycling—an approach to the reuse of scrap plastics) Kunststoffe (1993) 83,(4) pp. 259-263, with English abstract. |
Kaminsky, W. “Recycling of mixed plastics by pyrolysis in a fluidised bed,” Macromolecular Symposia (2000) 152, pp. 191-199. |
Ke-Jian, Liao et al. “A Study on Three Kinds of Alcohols Esterified Copolymer of Maleic Anhydride and Olefins as Pour-Point Depressant for Diesels,” Petroleum Science and Technology (1998) 16(9,10), pp. 971-977. |
Kim, Su Jin “Comparison of Dimethylformamide with Dimethylsulfoxide for Quality Improvement of Distillate Recovered from Waste Plastic Pyrolysis Oil,” Processes (2020) 8(1024), pp. 1-10. |
Kodera, Yoichi et al. “Continuous-Distribution Kinetic Model for Macromolecular Conversion: Asphaltene and Polymer,” Preprints of Symposia—American Chemical Society, Division of Fuel Chemistry (1998), 43(3), pp. 658-662. |
Lach, Christian “Chemical recycling: Turning plastic waste into chemical feedstock,” BASF Research Press Conference Dec. 10, 2020, 9 pages. |
Lange, Jean-Paul “Sustainable development: efficiency and recycling in chemicals manufacturing,” Green Chemistry (2002) 4(6), pp. 546-550. |
Lehner, Markus et al. “Prozesskette zum stofflichen Recycling von Kunststoffabfallen (Process Chain for the Material Recycling of Post-Consumer Plastic),” BHM (2016) 161(6), pp. 246-251, with English abstract. |
Lin, Y.-H et al. “A combined kinetic and mechanistic modelling of the catalytic degradation of polymers,” Journal of Molecular Catalysis A: Chemical (2001) 171(1-2), pp. 143-151. |
Lin, Y.-H et al. “A novel approach for the kinetic and mechanistic modeling of acid-catalyzed degradation of polymers,” Asia-Pacific Journal of Chemical Engineering (2009) 4(2), pp. 147-153. |
Lin, Y.-H et al. “Catalytic conversion of commingled polymer waste into chemicals and fuels over spent FCC commercial catalyst in a fluidised-bed reactor,” Applied Catalysis B: Environment (2007) 69(3-4), pp. 145-153. |
Lin, Yeuh-Hui et al. “Recycling of dual hazardous wastes in a catalytic fluidizing process,” Catalysis Today (2011) 174(1), pp. 37-45. |
Lopez, A. et al. “Pyrolysis of municipal plastic wastes II: Influence of raw material composition under catalytic conditions,” Waste Management (2011) 31, pp. 1973-1983. |
Mariella, R.P. et al. “A Novel Sn1 Displacement: The Reaction of Tertiary Amines with Acetic Anhydride,” Canadian Journal of Chemistry (1971) 49, pp. 3348-3351. |
Meszaros, Mark W. “Advances in Plastics Recycling Thermal Depolymerization of Thermoplastic Mixtures,” ACS Symposium Series (1995), 609(Plastics, Rubber, and Paper Recycling), pp. 170-182. |
Miandad, R. et al. “Catalytic pyrolysis of plastic waste: A review,” Process Safety and Environment Protection (2016) 102, pp. 822-838. |
Miskolczi, Norbert et al. “Hydrocarbon Mixtures from Waste Polymer Degradation,” Progress in Rubber, Plastics and Recycling Technology (2004) 20(1), pp. 51-68. |
Miskolczi, N. et al. “Chemical Recycling of Waste Polyethylene and Polypropylene,” Petroleum and Coal (2003) 45(3-4), pp. 125-130. |
Missau, Juliano et al. “Development of a nanostructured filter for pyrolysis wax purification: Effects of particulate filter aids,” Particuology (2021) 54, pp. 164-172. |
Moinuddin, Sarker et al. “High density polyethylene (HDPE) waste plastic conversion into alternative fuel for heavy vehicles,” Journal of Environmental Research and Development (2012) 7(1), pp. 1-9. |
Kaminsky, W. et al. “Feedstock recycling of polymers by pyrolysis in a fluidised bed,” Polymer Degradation and Stability (2004) 85(3), pp. 1045-1050. |
Nishino, Junya et al. “Development of a feedstock recycling process for converting waste plastics to petrochemicals,” Ishikawajima-Harima Giho (2004) 44(1), pp. 325-332. |
Ondruschka, Bernd et al. “Conversion of mixtures of pyrolysis feedstocks and thermochemical pre-treated plastic wastes. An alternative of raw material plastics recycling,” Chemische Technik (Leipzig) (1995) 47(4), pp. 171-179, with English abstract. |
Panda, Achyut Kumar, PhD Thesis, Jul. 2011, “Studies on process optimization for production of liquid fuels from waste plastics,” Department of Chemical Engineering, National Institute of Technology, Rourkela, Odisha 769008, India. 216 pages, divided into five sections. |
Pasquali, Ricardo C. et al. “Some considerations about the hydrophilic-lipophilic balance system,” International Journal of Pharmaceutics (2008) 356, pp. 44-51. |
Pradipta, Ilham Zulfa et al. “High Grade Liquid Fuel from Plastic Waste Pyrolysis Oil by Column Distillation,” 2019 IEEE Conference on Energy Conversion, Oct. 16-17, 2019 Yogyakarta, Indonesia, pp. 240-244. |
Raheem, A.B. et al. “The conversion of post-consumer polyethylene terephthalate (PET) into a thermosetting polyester resin,” Archives of Applied Science Research (2010) 2(4), pp. 240-254. |
Sakata, Yusaku et al. “Development of a catalystic dehaologenation (Cl, Br) process for municipal waster plastic-derived oil,” Journal of Material Cycles and Waste Management (2003) 5, pp. 113-124. |
Sanchez-Rodriguez, Daniel et al. “Inhibition effect of amine compounds derived from hardening agents on the extraction of hydrogen bromide by water from the pyrolysis oil of brominated printed circuit boards,” Journal of Cleaner Production (2020) 265, pp. 1-10. |
Sarker, Moinuddin et al. “A new technology proposed to recycle waste plastics into hydrocarbon fuel in USA,” International Journal of Energy and Environment (2012) 3(5), pp. 749-760. |
Schleiffer, Andreas “Synthetic Crude Oil from Petroleum Waste Materials,” Preprints of Papers—American Chemical Society, Division of Fuel Chemistry (1994) 39(4), pp. 1060-1064. |
Serrano, D.P. et al. “Conversion of low density polyethylene into petrochemical feedstocks using a continuous screw kiln reactor,” Journal of Analytical and Applied Pyrolysis (2001) 58-59, pp. 789-801. |
Siddiqui, Mohammad Nahid et al. “Useful Liquid Products from the Pyrolysis of Mixed Plastics,” Preprints of Papers—American Chemical Society, Division of Fuel Chemistry (2007) 52(2), pp. 761-762. |
Singh, Thokchom Subhaschandra et al. “A lab scale waste to energy conversion study for pyrolysis of plastic with and without catalyst: Engine emissions testing study,” Fuel (2020) 277, pp. 1-10. |
Sojak, L. et al. “GC-MS of Polyethylene and Polypropylene Thermal Cracking Products,” Petroleum & Coal (2006) 48(1), pp. 1-14. |
Sonwane, H.W. et al. “Desulfurization of Pyrolysis Oil Obtained from Plastic Waste by Using Adsorption Method,” International Research Journal of Engineering and Technology (IRJET) (2017) 4(7), pp. 1248-1251. |
Srivastava, S.P, et al. “Flow Improvers and Paraffin Dispersants of Fuels,” Fuels and fuel-additives (2014) pp. 243-253. |
Tasheva, Yordanka et al. “Possibilities for Purification of Pyrolysis Oil to Obtain Ecological Products,” Annual of Assen Zlatarov University, Burgas, Bulgaria (2011) 40, pp. 62-65. |
Thahir, Ramli et al. “Production of liquid fuel from plastic waster using integrated pyrolysis method with refinery distillation bubble cap plate column,” Energy Reports (2019) 5, pp. 70-77. |
Bhagat, Vishal et al. “Extraction of Fuel from Plastic Waste,” International Journal of Pollution and Noise Control. 2020, 6(1), pp. 7-9. |
Borthakur, A et al. “Alkyl Fumarate-Vinyl Acetate Copolymer as Flow Improver for High Waxy Indian Crude Oils,” Energy & Fuels. 1996, 10(3), pp. 844-848. |
Buekens, Alfons et al. “Technical Methods in Plastics Pyrolysis,” Macromolecular Symposia. 1998, 135, pp. 63-81. |
Desai, J.D. “Plastic Waste Recycling Technologies—Ecofriendly Solution” Chemical Engineering World. 1999, 34(11), pp. 73-81. |
El-Gamal, I.M. et al. “Nitrogen-based copolymers as wax dispersants for paraffinic gas oils,” Fuel. 1998, 77(5), pp. 375-385. |
Aguado, J. et al. “Feedstock recycling of polyethylene in a two-step thermo-catalytic reaction system,” Journal of Analytical Applied Pyrolysis (2007) 79, pp. 415-423. |
Al-Salem, S.M. et al. “The valorization of plastic solid waste (PSW) by primary to quaternary routes: From re-use to energy and chemicals,” Progress in Energy and Combustion Science (2010) 36, pp. 103-129. |
Angyal, Andras et al. “Petrochemical feedstock by thermal cracking of plastic waste,” Journal of Analytical Applied Pyrolysis (2007) 79, pp. 409-414. |
Arabiourrutia, Miriam et al. “Pyrolysis of Polyolefins in a Conical Spouted Bed Reactor: A Way to Obtain Valuable Products,” Pyrolysis, Chapter 12. Rijeka, Croatia: InTech (2017) pp. 285-304. |
Ashiri, Masafumi “Use of Supercritical Water as Reaction Solvent,” Kagaku Sochi (1999) 41(2), pp. 31-36, with English abstract. |
Aurich, H.-P. Marl “Pyrolyse, Hydrierung, Gaserzeugung,” (Pyrolysis, Hydrogenation, Gasification), Kautschuk Gummi Kunststoffe (1994) 47(8), pp. 596-601, with English abstract. |
Bhaskar, Thallada et al. “Thermal degradation of ABS-Br mixed with PP and catalytic debromination by iron oxide carbon composite catalyst (Fe—C),” Green Chemistry (2002) 4(6), pp. 603-606. |
Datta, Janusz et al. “Thermo-Chemical Decomposition Study of Polyurethane Elastomer Through Glycerolysis Route with Using Crude and Refined Glycerine as a Transesterification Agent,” Journal of Polymers and the Environment (2018) 26(1), pp. 166-174. |
De la Puente, Gabriela et al. “Recycling polystyrene into fuels by means of FCC: performance of various acidic catalysts,” Applied Catalysis, B: Environmental (1998) 19(3,4), pp. 305-311. |
Ding, Kuan et al. “Improving hydrocarbon yield from catalytic fast co-pyrolysis of hemicellulose and plastic in the dual-catalyst bed of CaO and HZSM-5,” Bioresource Technology (2018) 261, pp. 86-92. |
Dobo, Zsolt et al. “Transportation fuel from plastic wastes: Production, purification and SI engine tests,” Energy (2019) 189, pp. 1-9. |
Ali, Mohammad Farhat et al. “Chapter 14. The Conversion of Waste Plastics/Petroleum Residue Mixtures to Transportation Fuels,” Feedstock Recycling and Pyrolysis of Waste Plastics. Edited by John Scheirs et al. Chichester, UK: John Wiley & Sons Ltd, 2006, pp. 363-380. |
Al-Shafey, H.I. et al. “Studies on the Influence of Long Chain Acrylic Esters Co-Polymers Grafted With Vinyl Acetate as Flow Improver Additives of Crude Oils,” Advances in Applied Science Research. 2011, 2(5), pp. 476-489. |
Ercole, Piero et al. “Minimizing the environmental impact of Vehicles End of Life glass recycling,” Verre (Paris, France). 2008,14(1) pp. 32-38. |
Krishna, R. et al. “Correlation of Pour Point of Gas Oil and Vacuum Gas Oil Fractions with Compositional Parameters,” Energy & Fuels. 1989, 3(1), pp. 15-20. |
Leube, Walter et al. “Wax-Crystal Modification for Fuel Oils by Self-Aggregating Partially Crystallizable Hydrocarbon Block Copolymers,” Energy & Fuels. 2000, 14(2), pp. 419-430. |
Soldi, Rafael A. et al. “Polymethacrylates: Pour point depressants in diesel oil,” European Polymer Journal. 2007, 43, pp. 3671-3678. |
Song, Yuping et al. “Study on the relationship between the structure and activities of alkyl methacrylate-maleic anhydride polymers as cold flow improvers in diesel fuels,” Fuel Processing Technology. 2005, 86, pp. 641-650. |
Soni, Hemant P. et al. “Performance-Based Designing of Wax Crystal Growth Inhibitors.” Energy & Fuels. 2008, 22(6), pp. 3930-3939. |
Xu, Jun et al. Synthesis of Poly(maleic acid alkylamide-co-r-olefin-co-styrene) Co-polymers and Their Effect on the Yield Stress and Morphology of Waxy Gels with Asphaltenes, Energy & Fuels. 2011, 25, pp. 573-579. |
Zabamick, Steven et al. “Studies of Urea Treatment on the Low-Temperature Properties of Jet Fuel,” Energy & Fuels. 2002, 16(6), pp. 1565-1570. |
Montrikool, O. et al. “Effects of maleic anhydride on degradation of PVC during pyrolysis,” Journal of Analytical and Applied Pyrolysis. 2005, 73, pp. 77-84. |
PCT International Search Report and Written Opinion for PCT/US2022/046428, mailed Jan. 26, 2023, 17 pages. |
Number | Date | Country | |
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20220081634 A1 | Mar 2022 | US |
Number | Date | Country | |
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63078111 | Sep 2020 | US |