Polyurethane foam compositions comprising aromatic polyester polyol compounds and articles made therefrom
Polyurethane foam compositions using aromatic polyester polyol compounds with imide moieties address the drawbacks of flame retardants by enhancing flame resistance, reducing costs, and improving handling, suitable for construction and insulation.
Patent Information
- Application Number
- JP2022507820
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-08-09
- Filing Date
- 2020-08-05
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2040-08-05
AI Technical Summary
The use of flame retardant additives in polyurethane and polyisocyanurate foam compositions increases costs and can cause storage and handling issues, while still being necessary to meet flammability standards for building construction.
Formulations of polyurethane foam compositions that include an aromatic polyester polyol compound with an imide moiety, an isocyanate compound, a blowing agent, and optional additives, which eliminate or reduce the need for flame retardants by enhancing flame resistance through the use of a specific reactive compound mixture.
The compositions maintain or improve flame resistance without the need for traditional flame retardants, reducing costs and handling issues, and are suitable for various applications including building construction, transportation, and insulation.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE DISCLOSURE The present disclosure relates generally to polyurethane foam compositions comprising aromatic polyester polyol compounds, and articles made therefrom. [Background technology]
[0002] Polyurethane (PU) and polyisocyanurate (PIR) based foam products are widely used in the building construction industry due to their superior sealing and insulating properties when compared to other building insulation solutions used in this industry.
[0003] Local building codes often dictate that materials used in building construction, such as PU and / or PIR-based foam products, must pass certain flammability standards before the product can be used in building construction. Accordingly, formulators of these foam products often include flame retardant additives in the foam compositions to ensure that the final foam product passes the relevant building codes.
[0004] While the use of flame retardant additives in foam compositions is advantageous in most cases, there are inherent drawbacks associated with using such additives in foam compositions. For example, the use of flame retardant additives can increase the overall cost of the composition, thereby affecting the economic benefits of using PU and / or PIR foam products in building construction. Furthermore, the addition of flame retardant additives to foam compositions can create storage and handling problems (e.g., uneven distribution or changes in reactivity) that can discourage contractors from using PU and / or PIR foam products in building construction. [Brief explanation of the drawings]
[0005] A complete understanding of the present disclosure can be obtained when the following description of specific embodiments of the disclosure is read in conjunction with the accompanying drawings. [Figure 1]Photographs comparing three polyurethane foam products subjected to a flame test. DETAILED DESCRIPTION OF THE INVENTION
[0006] As used herein, unless expressly specified otherwise, all numbers, such as those expressing values, ranges, amounts, or percentages, can be read as if the term "about" were preceding the term even if not expressly present. The plural encompasses the singular and vice versa.
[0007] As used herein, "plurality" means two or more, while the term "number" means one or an integer greater than one.
[0008] As used herein, "including" and similar terms mean "including without limitation."
[0009] When referring to a numerical range, it is understood that such range includes each number and / or fraction between the minimum and maximum of the stated range. For example, a range of "1 to 10" includes all subranges (sub-ranges) between (and including) the recited minimum of 1 and the recited maximum of 10, i.e., having a minimum of 1 or more and a maximum of 10 or less. This includes the following:
[0010] As used herein, "molecular weight" means weight average molecular weight (Mw) as determined by gel permeation chromatography.
[0011] Unless otherwise stated herein, any reference to a compound is intended to include any isomers (eg, stereoisomers) of such compound.
[0012] As used herein, "Isocyanate Index" or "NCO Index" is the ratio of isocyanate groups to isocyanate-reactive hydrogen atoms present in a composition given as a percentage: [NCO] x 100 (%) [Active hydrogen]
[0013] It should be noted that the NCO index represents the percentage of isocyanate used in the composition relative to the amount of isocyanate theoretically required to react with the amount of isocyanate-reactive hydrogen in the composition during the polymerization stage. Any isocyanate groups consumed in a previous step to form a modified polyisocyanate compound (e.g., a pre-polymer) or any active hydrogen consumed in a previous step (e.g., reacting with isocyanate to form a modified polyol or polyamine) are not taken into account in calculating the NCO index. Only the free isocyanate groups and free isocyanate-reactive hydrogens (including those of water, if used) present in the actual polymerization stage are taken into account in calculating the NCO index.
[0014] For purposes of calculating the Isocyanate Index, the expression "isocyanate-reactive hydrogen atoms" refers to all active hydrogen atoms of hydroxyl and amine functional groups present in the composition. In other words, during the polymerization stage, one hydroxyl group is considered to contain one reactive hydrogen, one primary amine group is considered to contain one reactive hydrogen, and one water molecule is considered to contain two reactive hydrogens.
[0015] As used herein, "liquid" means having a viscosity of less than 200 Pa.s when measured according to ASTM D445-1 1a at 20°C.
[0016] As used herein, "trimerization catalyst" means a catalyst that catalyzes (promotes) the formation of isocyanurate groups from isocyanates.
[0017] Polyurethane / Polyisocyanurate Foam Composition PU and PIR foam products are used in a variety of applications, such as building construction, transportation, pipelines, shipbuilding, sporting goods, furniture, and packaging. Their widespread use across many industries is due to the fact that they can be formulated to have a wide range of properties.
[0018] For example, in building construction applications, low-density (e.g., 0.5-4 pcf) PU and PIR foams are used as insulators in sandwiches or building panels (e.g., panels used in roofs, walls, ceilings, and floors) or as spray-in-place foams because of their: (i) heavy-duty insulating / sealing properties; (ii) ability to meet or exceed building codes for flammability and heat resistance / retardation; and (iii) ability to enhance the structural integrity of structures, even when the structures are subjected to high heat.
[0019] Similarly, low density (e.g., 1.5-4 pcf) PU and PIR foams are also used as insulators in transportation, pipeline, and shipbuilding applications. These products are widely used in refrigerated vehicles, district heating systems (e.g., pipelines used to transport steam or hot water), and industrial pipelines or storage tanks used to transport and store oil and other hydrocarbons.
[0020] In contrast to low density PU and PIR foams, high density PU and PIR foams are often used in non-insulating applications such as vehicle interior trim and headliners, office furniture, molded chair shells, imitation wood furniture, and rigid moldings.
[0021] As previously mentioned, some PU and PIR foam compositions contain flame retardants to improve the overall flame resistance of the final foam product. However, there are inherent drawbacks associated with using flame retardant additives in foam compositions. The polyurethane foam compositions of the present disclosure, however, allow for formulations that may reduce or eliminate the need for flame retardant additives in polyurethane compositions, while still maintaining the flame resistance exhibited by polyurethane compositions that use flame retardants.
[0022] The polyurethane composition disclosed herein comprises: (A) an isocyanate compound; and (B) one or more isocyanate-reactive compounds, wherein at least one of the isocyanate-reactive compounds comprises an aromatic polyester polyol compound comprising an imide moiety, wherein the aromatic polyester polyol is the reaction product of: (i) a cyclic anhydride compound comprising structure (1), structure (2), or a combination thereof; (ii) a phthalic acid-based compound; a primary amine compound comprising structure (3) (described below); (iii) a primary amine compound; and (iv) an aliphatic diol compound; wherein the weight ratio of component (i) to component (ii) is 1:24 to 24:1, and wherein the aromatic polyester polyol is a liquid at 25°C and comprises a hydroxyl number in the range of 30 to 600; (C) a blowing agent; and (D) optionally other additives.
[0023] Isocyanate compounds The polyurethane foam compositions disclosed herein comprise one or more isocyanate compounds. In some embodiments, the isocyanate compound is a polyisocyanate compound. Suitable polyisocyanate compounds that can be used include aliphatic, araliphatic, and / or aromatic polyisocyanates. Isocyanate compounds generally have the structure R—(NCO) xwhere x is at least 2 and R comprises an aromatic, aliphatic, or combined aromatic / aliphatic group. Non-limiting examples of suitable polyisocyanates include diphenylmethane diisocyanate ("MDI") type isocyanates (e.g., 2,4'-, 2,2'-, 4,4'-MDI, or mixtures thereof), mixtures of MDI and their oligomers (e.g., polymeric MDI or "crude" MDI), and reaction products of polyisocyanates with components containing isocyanate-reactive hydrogen atoms (e.g., polymeric polyisocyanates or prepolymers). Accordingly, suitable isocyanate compounds that can be used include SUPRASEC® DNR isocyanate, SUPRASEC® 2185 isocyanate, RUBINATE® M isocyanate, and RUBINATE® 1840 isocyanate, or combinations thereof. SUPRASEC® and RUBINATE® isocyanates are all available from Huntsman Corporation.
[0024] Other examples of suitable isocyanate compounds include toluene diisocyanate (“TDI”) (e.g., 2,4TDI, 2,6TDI, or combinations thereof), hexamethylene diisocyanate (“HMDI” or “HDI”), isophorone diisocyanate (“IPDI”), butylene diisocyanate, trimethylhexamethylene diisocyanate, di(isocyanatocyclohexyl)methane (e.g., 4,4′-diisocyanatodicyclohexyl), diisocyanatocyclohexyl, ... xylmethane), isocyanatomethyl-1,8-octane diisocyanate, tetramethylxylene diisocyanate (“TMXDI”), 1,5-naphthalene diisocyanate (“NDI”), p-phenylene diisocyanate (“PPDI”), 1,4-cyclohexane diisocyanate (“CDI”), toluidine diisocyanate (“TODI”), or combinations thereof. Modified polyisocyanates containing isocyanurate, carbodiimide, or uretonimide groups can also be used as component (1).
[0025] Blocked polyisocyanates can also be used as component (1), provided the reaction product has a blocking temperature below the temperature at which component (1) reacts with component (2). Suitable blocked polyisocyanates can include (a) the reaction product of a phenol or oxime compound and a polyisocyanate, or (b) the reaction product of a polyisocyanate with an acid compound such as benzyl chloride, hydrochloric acid, thionyl chloride, or a combination. In certain embodiments, the polyisocyanate can be blocked prior to being incorporated into the reactive materials / components used in the compositions disclosed herein.
[0026] Mixtures of isocyanates can also be used as component (1), such as mixtures of TDI isomers (e.g., 2,4- and 2,6-TDI isomers), or mixtures of di- and higher polyisocyanates produced by phosgenation of aniline / formaldehyde condensates.
[0027] In some embodiments, the isocyanate compound is a liquid at room temperature. The mixture of isocyanate compounds can be produced according to techniques well known in the art. The isomer content of the diphenyl-methane diisocyanate can be adjusted to the desired range as needed by methods well known in the art. For example, one technique for varying the isomer content is to add monomeric MDI (e.g., 2,4-MDI) to a mixture of MDI containing a higher than desired amount of polymeric MDI (e.g., 30% to 80% by weight of 4,4'-MDI, with the remainder of the MDI comprising MDI oligomers and MDI homologs).
[0028] In some embodiments, the isocyanate compound comprises 30% to 65% by weight (e.g., 33% to 62% by weight, or 35% to 60% by weight) of the total polyurethane foam composition.
[0029] Isocyanate-reactive compounds The polyurethane foam compositions disclosed herein comprise one or more isocyanate-reactive compounds. As previously mentioned, at least one isocyanate-reactive compound used in the polyurethane foam composition comprises an aromatic polyester polyol compound comprising an imide moiety ("Imide Moiety-Containing Aromatic Polyol Compound"). Known organic compounds containing at least two isocyanate-reactive moieties per molecule may also be used as other isocyanate-reactive compounds ("Other Polyol Compounds") in the polyurethane foam composition.
[0030] In some embodiments, the isocyanate-reactive compound comprises 20% to 50% by weight (eg, 23% to 47% or 25% to 45%) by weight of the polyurethane foam composition.
[0031] Aromatic polyol compounds containing imide moieties The aromatic polyol compounds containing imide moieties used in the present disclosure are: (i) cyclic anhydride compounds; (ii) phthalic acid compounds; (iii) primary amine compounds; (iv) aliphatic diamine compounds. (v) an optionally high functionality, low molecular weight polyether polyol compound; and (vi) an optionally hydrophobic compound, wherein the weight ratio of component (i) to component (ii) is 1:24 to 24:1 (collectively "Imide Moiety Polyol Composition"). A detailed description of the various reactive components used to form the imide moiety-containing aromatic polyol compound can be found below.
[0032] In some embodiments, the aromatic polyol compound containing imide moieties is formed by combining components (i)-(iv) and reacting one or more reactive ingredients. In some embodiments, the aromatic polyol compound containing imide moieties is synthesized using a single-pot (i.e., one-pot synthesis) and not a multi-pot process. For example, in certain embodiments, components (i) through (iv) are placed in the same reaction vessel along with optional reactive components (e.g., components (v) and (vi)) and subjected to esterification / transesterification reaction conditions. In certain embodiments, such reaction conditions occur at temperatures ranging from 0°C to 300°C (e.g., 70°C to 250°C) for periods ranging from 1 hour to 24 hours (e.g., 3 hours to 10 hours). In certain embodiments, the aromatic polyol compound containing imide moieties may be preformed before being added to the reaction vessel containing the optional reactive components. The aromatic polyol compound containing imide moieties and optional reactive components are then subjected to esterification / transesterification reaction conditions.
[0033] In certain embodiments, an esterification / transesterification catalyst can be used to increase the reaction rate of the reactants. Examples of suitable catalysts include tin catalysts (e.g., Fastcat® (tin oxide-based) catalysts, available from Arkema, Inc.), titanium catalysts (e.g., titanium catalysts include Tyzor® TBT (titanium tetra-N-butoxide) catalyst; Tyzor® TE (triethanolamine titanate complex) catalysts, available from Dorf Ketal Specialty Catalysts), alkaline catalysts (e.g., NaOH, KOH, sodium and potassium alkoxides), acid catalysts (e.g., sulfuric acid, phosphoric acid, hydrochloric acid, and sulfonic acid), enzymes, or combinations thereof. In some embodiments, the catalyst can be used in an amount ranging from 0.001 to 0.2 weight percent based on the total weight of the imide portion polyol composition.
[0034] One advantage of using a single-pot synthesis method to form aromatic polyol compounds containing imide moieties is that such a method can be easily adapted to an industrial manufacturing setting. For example, the use of a single-pot synthesis method not only reduces the overall capital costs and equipment required to produce aromatic polyol compounds containing imide moieties, but also reduces the total amount of space required to produce aromatic polyol compounds containing imide moieties.
[0035] It should be noted that in some embodiments, the imide portion polyol composition is solvent-free. As used herein, "solvent-free" means that there is no solvent (e.g., acetone, tetrahydrofuran) present in the composition, although in some cases there may be trace or minor amounts (e.g., by weight of the total imide portion polyol composition) present in the composition. < 5%, < 3%, < 1%) of solvent may be present.
[0036] It should be noted that in some embodiments, trace amounts of component (iv) may be present after formation of the aromatic polyol compound containing imide moieties. Thus, the composition may contain up to 30 weight percent (e.g., 0% to 20%, or 1% to 15%) of component (iv) (i.e., unreacted free aliphatic diol) based on the total weight of the imide moiety polyol composition. There is a possibility.
[0037] Component (i): cyclic anhydride compound Suitable cyclic anhydride compounds that can be used as component (i) of the imide portion polyol composition include one or more cyclic anhydride compounds comprising structure (1), structure (2), or a combination thereof: Structure (1): [ka] Structure (2): [ka] wherein X is a cyclic anhydride moiety, OH, or COOH, attached to the structure directly or through R, R is an aromatic ring, aliphatic ring, or aliphatic chain radical, each containing 1 to 12 carbon atoms, with or without alkyl branching, and with or without heteroatoms such as O, N, or S, and n is an integer from 0 to 1.
[0038] Examples of suitable cyclic anhydrides that can be used as component (i) include trimellitic anhydride, hemimellitic anhydride, pyromellitic dianhydride, mellophanic dianhydride, 3,3',4,4'-biphenyltetracarboxylic dianhydride, 3-hydroxyphthalic anhydride, 4-hydroxyphthalic anhydride, bis(3,4-dicarboxyphenyl)ether dianhydride, 2,3,6,7-naphthalenetetracarboxylic dianhydride, cyclobutanetetracarboxylic dianhydride, carballylic anhydride, 3-hydroxynaphthalene anhydride, naphthalenetetracarboxylic anhydride, and α-(2-carboxyethyl)glutaric anhydride.
[0039] In some embodiments, component (i) comprises from 1 wt % to 68 wt % (eg, from 3 wt % to 20 wt %) based on the total weight of the imide portion polyol composition.
[0040] Component (ii): Phthalic acid compounds Examples of suitable phthalate-based compounds that can be used as component (ii) of the imide portion polyol composition include: (a) one or more phthalate-based compounds derived from a substantially pure source of phthalic acid, such as phthalic anhydride, phthalic acid, isophthalic acid, terephthalic acid, 2,6-naphthalenedicarboxylic acid; methyl esters of phthalic acid, isophthalic acid, terephthalic acid, 2,6-naphthalenedicarboxylic acid; dimethyl terephthalate, polyethylene terephthalate, or combinations thereof; or (b) more complex materials, such as one or more phthalate-based compounds derived from sidestream, waste, and / or scrap residues from the manufacture of phthalic acid, terephthalic acid, dimethyl terephthalate, polyethylene terephthalate, polybutylene terephthalate, polytrimethylene terephthalate, polyethylene naphthalate, or combinations thereof.
[0041] In some embodiments, component (ii) comprises 1 wt % to 70 wt % (e.g., 1 wt % to 50 wt %, 2 wt % to 40 wt %) based on the total weight of the imide portion polyol composition. In more particular embodiments, the weight ratio of component (i) to component (ii) ranges from 1:24 to 24:1 (e.g., 1:19 to 9:1 or 1:20 to 4:1).
[0042] Component (iii): Primary amine compound Suitable primary amine compounds that can be used as component (iii) of the imide moiety polyol composition include primary amine compounds comprising structure (3): Structure (3): NH2-RX where X is -NH2, -OH, or -COOH, and R is Aromatic ring, aliphatic ring, and aliphatic chain radicals, each of which has a number of Contains 12 carbon atoms, with or without alkyl branching; and heterocyclic groups comprising O, N, S, or combinations thereof. It may or may not contain atoms.
[0043] Examples of suitable amine compounds that can be used as component (iii) include diamines, e.g. Suitable amines include ethylenediamine, 1,3 propanediamine, tetramethylenediamine, hexamethylenediamine, isophoronediamine, diaminodiphenylmethane, diaminodiphenylether, methylene-4, 4'-cyclohexyldiamine, acetoguanamine, phenylediamine, xylenediamine, 1,2 cyclohexanediamine, 1,4 cyclohexanediamine, and mixtures thereof. Suitable amines also include amino alcohols, such as monoethanolamine, monopropanolamine, aminobenzyl alcohol, aminiphenyl alcohol, hydroxyethylaniline, and mixtures thereof. Suitable amines also include aminocarboxylic acids, such as glycine, alanine, valine, aminopropionic acid, aminocaproic acid, or aminobenzoic acid, and mixtures thereof.
[0044] In some embodiments, component (iii) comprises 0.3 wt % to 25 wt % (eg, 1 wt % to 15 wt %) based on the total weight of the imide portion polyol composition.
[0045] Component (iv): Aliphatic diol compound Suitable aliphatic diol compounds that can be used as component (iv) include aliphatic diol compounds comprising structure (4): Structure (4): OH-R-OH where R is: (x) 1 to 12 alkyl groups with or without branching; or (y) an alkylene radical comprising carbon atoms of structure (5): Structure (5): -[(R'O) n -R']- where R' is an alkylene radical containing 2-4 carbon atoms, and n is an integer between 1 and 10 is a divalent radical selected from the group comprising the radical:
[0046] Examples of suitable aliphatic diol compounds that can be used as component (iv) include ethylene glycol; diethylene glycol; propylene glycol; dipropylene glycol; trimethylene glycol; triethylene glycol; tetraethylene glycol; butylene glycol; 1,4 butanediol; neopentyl glycol; 2-methyl-2,4-pentanediol; 1,6-hexanediol; 1,2-cyclohexanediol; and poly(oxyalkylene) polyols, each containing from 2 to 4 alkylene radicals derived from the condensation of ethylene oxide, propylene oxide, or combinations thereof.
[0047] In some embodiments, component (iv) comprises 5% to 70% by weight (eg, 5% to 40% by weight, 10% to 30% by weight) based on the total weight of the imide portion polyol composition.
[0048] Component (v): Highly functional, low molecular weight polyether polyol The reactive mixture used to form the aromatic polyol compound containing imide moieties can also comprise a high functionality (i.e., 3 or more active hydrogen atoms per molecule), low molecular weight (i.e., up to 1,000 daltons) polyether polyol compound. Examples of suitable high functionality, low molecular weight polyether polyols include glycerin, alkoxylated glycerin, 1,1,1-trimethylolpropane, 1,1-trimethylolethane, pentaerythritol, dipentaerythritol, sucrose, alkoxylated sucrose, methyl glucoside, alkoxylated methyl glucoside, glucose, alkoxylated glucose, fructose, alkoxylated fructose, sorbitol, alkoxylated sorbitol, lactose, alkoxylated lactose, or combinations thereof.
[0049] In some embodiments, component (v) is present in an amount of about 100 wt. % based on the total weight of the imide portion polyol composition. 0% to about 30% by weight (e.g., 0% to 20% by weight, 0% to 10% by weight) % by volume.
[0050] Component (vi): Hydrophobic compound The reactive mixture used to form the aromatic polyol compound containing imide moieties can also contain a hydrophobic compound. As used herein, "hydrophobic compound" refers to a compound or mixture of compounds comprising one or more substantially non-polar organic moieties. Hydrophobic compounds are generally water-insoluble and typically contain at least one functional group that can be esterified or transesterified (e.g., a monocarboxylic acid group, a monocarboxylic acid ester group, a hydroxyl group, or a combination thereof). As used herein, "monocarboxylic acid group" and "monocarboxylic acid ester group" mean that the carboxylic acid moiety present in the hydrophobic compound is monoacid.
[0051] In some embodiments, the hydrophobic compound used as component (vi) is a non-phthalate-derived material.
[0052] Suitable hydrophobic compounds that can be used as component (vi) include carboxylic acids (e.g., fatty acid compounds such as caproic acid, caprylic acid, 2-ethylhexanoic acid, capric acid, lauric acid, myristic acid, palmitic acid, stearic acid, oleic acid, linoleic acid, linolenic acid, and ricinoleic acid), lower alkanol esters of carboxylic acids (e.g., fatty acid methyl ester compounds such as methyl caproic acid, methyl caprylic acid, methyl capric acid, methyl lauric acid, methyl myristic acid, methyl palmitic acid, methyl oleic acid, methyl stearic acid, methyl linoleic acid, and methyl linolenic acid), fatty acid alkanolamides (e.g., tall oil fatty acid diethanolamine), and the like. oleic acid monoethanolamide, lauric acid diethanolamide, and oleic acid monoethanolamide), triglycerides (including fats and oils such as castor oil, coconut (including cochin) oil, corn oil, cottonseed oil, linseed oil, olive oil, palm oil, palm kernel oil, peanut oil, soybean oil, sunflower oil, tall oil, tallow, and derivatives of natural oils or functionalized natural oils such as epoxidized), alkyl alcohols (including alcohols containing 4 to 18 carbon atoms per molecule such as decyl alcohol, oleyl alcohol, cetyl alcohol, isodecyl alcohol, tridecyl alcohol, lauryl alcohol, and mixed C 12 -C 14 alcohol) or a combination thereof.
[0053] In some embodiments, component (vi) comprises 0 to 30 wt % (eg, 0 to 20 wt %, 0 to 10 wt %) based on the total weight of the imide moiety polyol composition.
[0054] emulsifier The aromatic polyol compound composition containing imide moieties can also contain a nonionic emulsifier (i.e., a compound containing one or more hydrophobic moieties and one or more hydrophilic moieties, and having no moieties that dissociate in aqueous solution or disperse into cations and anions). While virtually any nonionic emulsifier compound can be used, in some embodiments, the nonionic emulsifier can be a polyoxyalkylene emulsifier containing an average of about 4 to about 200 individual oxyalkylene groups per molecule, the oxyalkylene groups typically being selected from the group consisting of oxyethylene and oxypropylene. Typically, the nonionic emulsifier can comprise, for example, about 0% to about 20% by weight (e.g., 0% to about 10% by weight) of the composition.
[0055] Properties of polyol compounds containing imide moieties In some aspects, the polyol compounds containing imide moieties of the present disclosure have an average hydroxyl functionality ranging from 1.3 to 4 (eg, 1.5 to 3.5, or 1.8 to 3).
[0056] In some embodiments, the polyol compounds containing imide moieties have an average hydroxyl number ranging from 30 to 600 mg KOH / g (e.g., 50 to 500 mg KOH / g or 100 to 450 mg KOH / g), taking into account any free glycol that may be present.
[0057] In some embodiments, the polyol compound containing the imide moiety has an acid number in the range of 0.5 to 5 mg KOH / g (e.g., 0.5 to 2 mg KOH / g).
[0058] In some embodiments, the polyol compound containing the imide moiety has a viscosity in the range of 200 to 150,000 centipoise (cps) at 25° C. (e.g., 1,000 to 100,000 cps or 1,500 to 50,000) as measured using a Brookfield viscometer.
[0059] Surprisingly, in some embodiments, the thermal stability of polyol compounds containing imide moieties has been found to be at least 5% greater than that of conventional aromatic polyester polyol compounds when measured at 500°C under anaerobic conditions and at 400°C under aerobic conditions (wherein thermal stability is measured as TGA using the method described in the Examples below under "Thermal Stability Test for Polyols"). As used herein, a "conventional aromatic polyester polyol compound" is an aromatic polyester polyol compound having the same hydroxyl number as a polyol compound containing imide moieties and prepared using the same reactive materials (except for components (i) and (iii)) and under the same reaction conditions as a polyol compound containing imide moieties. In other words, a conventional aromatic polyester compound lacks components (i) and (iii).
[0060] While aromatic polyol compounds containing imide moieties are reactive materials in the disclosed polyurethane foam compositions, aromatic polyol compounds containing imide moieties can also be used as polyol compounds in any composition that uses polyols. However, in certain aspects of the present disclosure, aromatic polyol compounds containing imide moieties are not used in coating applications. That is, aromatic polyol compounds containing imide moieties are not used in coating compositions. It is not used in such coating compositions.
[0061] Other polyol compounds As mentioned above, the polyurethane foam compositions disclosed herein can comprise other polyol compounds in addition to the aromatic polyol compounds containing imide moieties described in the preceding sections. Polyol compounds or mixtures thereof that are liquid at 25°C and have a molecular weight ranging from 60 to 10,000 (e.g., 300 to 10,000 or less than 5,000), a nominal hydroxyl functionality of at least 2, and a hydroxyl equivalent weight of 30 to 2000 (e.g., 30 to 1500, or 30 to 800) can be used as other polyol compounds.
[0062] Examples of suitable polyols that can be used as the other polyol compound include polyether polyols containing 2 to 8 active hydrogen atoms per molecule, such as those made by adding an alkylene oxide to an initiator. In some embodiments, the initiator includes glycol, glycerol, trimethylolpropane, triethanolamine, pentaerythritol, sorbitol, sucrose, ethylenediamine, ethanolamine, diethanolamine, aniline, toluenediamine (e.g., 2,4 and 2,6 toluenediamine), polymethylene polyphenylene polyamines, N-alkylphenylene diamines, o-chloroaniline, p-aminoaniline, diaminonaphthalene, or a combination thereof. Suitable alkylene oxides that can be used to form the polyether polyol include ethylene oxide, propylene oxide, and butylene oxide, or a combination thereof.
[0063] Other suitable polyol compounds that can be used as the other polyol compound include Mannich polyols having a nominal hydroxyl functionality of at least two and at least one secondary or tertiary amine nitrogen atom per molecule. In some embodiments, the Mannich polyol is a condensation product of an aromatic compound, an aldehyde, and an alkanolamine. For example, a Mannich condensation product can be produced by the condensation of either or both of phenol and alkylphenol with formaldehyde and one or more of monoethanolamine, diethanolamine, and diisopropanolamine. In some embodiments, the Mannich condensation product comprises the reaction product of phenol or nonylphenol with formaldehyde and diethanolamine. The Mannich condensation products of the present disclosure can be prepared by any known method. In some embodiments, the Mannich condensation product serves as an initiator for alkoxylation. Any alkylene oxide (such as those described above) can be used to alkoxylate one or more Mannich condensation products. Once polymerization is complete, the Mannich polyols comprise primary and / or secondary hydroxyl groups attached to fatty acid carbon atoms.
[0064] In certain embodiments, the polyols used are polyether polyols comprising propylene oxide ("PO"), ethylene oxide ("EO"), or a combination of PO and EO groups or moieties in the polymer structure of the polyol. These PO and EO units can be arranged randomly or in block segments throughout the polymer structure. In certain embodiments, the EO content of the polyol ranges from 0 to 100 wt % (e.g., 50 wt % to 100 wt %) based on the total weight of the polyol. In some embodiments, the PO content of the polyol ranges from 100 to 0 wt % (e.g., 100 wt % to 50 wt %) based on the total weight of the polyol. Thus, in some embodiments, the EO content of the polyol can range from 99 wt % to 33 wt % by weight of the polyol, while the PO content ranges from 1 wt % to 67 wt % by weight of the polyol. Furthermore, in some embodiments, the EO and / or PO units can be located either at the terminal ends of the polymer structure of the polyol or in internal segments within the polymer backbone structure of the polyol. Suitable Suitable polyether polyols include poly(oxyethyleneoxypropylene) diols and triols obtained by the sequential addition of propylene and ethylene oxide to di- or trifunctional initiators, as known in the art. In certain embodiments, the other polyol compound comprises a diol or triol, or a mixture thereof, as described above.
[0065] Polyether polyols also include the reaction products obtained by the polymerization of ethylene oxide with another cyclic oxide (e.g., propylene oxide) in the presence of a polyfunctional initiator such as water or a low molecular weight polyol. Suitable low molecular weight polyols include ethylene glycol, propylene glycol, diethylene glycol, dipropylene glycol, cyclohexanedimethanol, resorcinol, bisphenol A, glycerol, trimethylolpropane, 1,2,6-hexanetriol, pentaerythritol, or combinations thereof.
[0066] Polyester polyols that can be used as other polyol compounds include polyesters with a linear polymer structure and a number average molecular weight (Mn) of about 500 to about 10,000 (e.g., preferably about 700 to about 5,000 or 700 to about 4,000), and an acid number generally less than 1.3 (e.g., less than 0.8). The molecular weight is measured by assaying for terminal functional groups and is related to the number average molecular weight. Polyester polymers can be produced using techniques known in the art, such as: (1) the esterification reaction of one or more glycols with one or more dicarboxylic acids or anhydrides; or (2) transesterification (i.e., the reaction of one or more glycols with esters of dicarboxylic acids). A molar ratio of greater than one mole of glycol to acid is generally preferred to obtain linear polymer chains with terminal hydroxyl groups. Suitable polyester polyols also include various lactones, typically prepared from difunctional initiators such as caprolactone and diethylene glycol. The dicarboxylic acids of the desired polyester can be aliphatic, cycloaliphatic, aromatic, or combinations thereof. Suitable dicarboxylic acids, which can be used alone or in mixtures, generally have a total of 4 to 15 carbon atoms and include succinic acid, glutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, dodecanedioic acid, isophthalic acid, terephthalic acid, cyclohexanedicarboxylic acid, or combinations thereof. Anhydrides of dicarboxylic acids (e.g., phthalic anhydride, tetrahydrophthalic anhydride, or combinations thereof) can also be used. In some embodiments, adipic acid is a preferred acid. Glycols used to form suitable polyester polyols can include aliphatic and aromatic glycols having a total of 2 to 12 carbon atoms. Examples of such glycols include ethylene glycol, 1,2-propanediol, 1,3-propanediol, 1,3-butanediol, 1,4-butanediol, 1,5-pentanediol, 1,6-hexanediol, 2,2-dimethyl-1,3-propanediol, 1,4-cyclohexanedimethanol, decamethylene glycol, dodecamethylene glycol, or combinations thereof.
[0067] Additional examples of suitable polyols include hydroxyl-terminated polythioethers, polyamides, polyesteramides, polycarbonates, polyacetals, polyolefins, polysiloxanes, and simple glycols such as ethylene glycol, butanediol, diethylene glycol, triethylene glycol, propylene glycol, dipropylene glycol, tripropylene glycol, and mixtures thereof.
[0068] Additional examples of suitable polyols include those derived from natural sources such as vegetable oils, fish oils, lard, and tallow. Plant-based polyols can be made from any vegetable oil or blend of oils containing unsaturation, including, but not limited to, soybean oil, castor oil, palm oil, canola oil, linseed oil, rapeseed oil, sunflower oil, safflower oil, olive oil, peanut oil, sesame oil, cottonseed oil, walnut oil, and tung oil.
[0069] Active hydrogen-containing materials can include other isocyanate-reactive materials such as polyamines and polythiols. Suitable polyamines include primary and secondary amine-terminated polyethers, aromatic diamines such as diethyltoluenediamine, aromatic polyamines, or combinations thereof.
[0070] Blowing Agent Compound As mentioned above, the polyurethane foam compositions disclosed herein also comprise a blowing agent compound. Any physical blowing agent known in the PU and PIR foam art can be used in the compositions. For example, suitable blowing agent compounds include hydrocarbons, hydrochlorofluorocarbons, hydrofluorocarbons, hydrohaloolefins, or combinations thereof.
[0071] Examples of hydrocarbon blowing agents that can be used include lower aliphatic or cyclic, straight-chain or branched hydrocarbons (e.g., alkanes, alkenes, and cycloalkanes, preferably those having 4 to 8 carbon atoms). Specific examples of suitable blowing agent compounds include n-butane, isobutane, 2,3-dimethylbutane, cyclobutane, n-pentane, isopentane, technical grade pentane mixtures, cyclopentane, methylcyclopentane, neopentane, n-hexane, isohexane, n-heptane, isoheptane, cyclohexane, methylcyclohexane, 1-pentene, 2-methylbutene, 3-methylbutene, 1-hexene, or combinations thereof.
[0072] Examples of suitable hydrochlorofluorocarbons include l-chloro-l,2-difluoroethane, l-chloro-2,2-difluoroethane, l-chloro-l,l-difluoroethane, 1,1-dichloro-l-fluoroethane, monochlorodifluoromethane, or combinations thereof.
[0073] Examples of suitable hydrofluorocarbons include 1,1,1,2-tetrafluoroethane (HFC 134a), 1,1,2,2-tetrafluoroethane, trifluoromethane, heptafluoropropane, 1,1,1-trifluoroethane, 1,1,2-trifluoroethane, 1,1,1,2,2-pentafluoropropane, 1,1,1,3-tetrafluoropropane, 1,1,1,3,3-pentafluoropropane (HFC 245fa), 1,1,3,3,3-pentafluoropropane, 1,1,1,3,3-pentafluoro-n-butane (HFC 365mfc), 1,1,1,4,4,4-hexafluoro-n-butane, 1,1,1,2,3,3,3-heptafluoropropane (HFC 227ea), or combinations thereof.
[0074] Examples of suitable hydrohaloolefins include trans-1-chloro-3,3,3-fluoropropane (HFO 1233zd), trans-1,3,3,3-tetrafluoropropene (HFO 1234ze), cis- and trans-1,1,1,4,4,4-hexafluoro-2-butene (HFO 1336mzz), or combinations thereof.
[0075] Other suitable physical blowing agents include tertiary butanol (2-methyl-2-propanol), dimethoxymethane, and methyl formate.
[0076] Chemical blowing agents such as water, mono- and polycarboxylic acids (e.g., formic acid) can also be used as the sole blowing agent in the polyurethane foam compositions disclosed herein, or alternatively, such chemical blowing agents can be used in combination with the aforementioned physical blowing agents as co-blowing agents.
[0077] In some embodiments, the blowing agent compound provides a final foam product with a blowing rate of 20 lb / cu.ft ( for example < 10 lb / cu.Ft. or < It is used in an amount sufficient to give a desired density of less than 4 lb / cu.ft.
[0078] Auxiliary Compounds and Additives The polyurethane foam compositions disclosed herein may also incorporate one or more auxiliary compounds or additives that can be added to impart specific physical properties to the final foam product formed from the polyurethane foam composition. Examples of suitable auxiliary compounds and additives include catalysts, surfactants, flame retardants, smoke suppressants, crosslinkers (e.g., triethanolamine and / or glycerol), viscosity reducers (e.g., propylene carbonate and / or dibasic esters), infrared pacifiers (e.g., carbon black, titanium dioxide, and metal flakes), cell-size reducing compounds (e.g., inserts, insoluble fluorinated and perfluorinated compounds), pigments (e.g., azo / diazo dyes and phthalocyanines), fillers (e.g., calcium carbonate), reinforcing agents (e.g., fiberglass and / or ground foam product waste), mold release agents (e.g., zinc stearate), antioxidants (e.g., butylated hydroxytoluene), dyes, antistatic agents, biocides, or combinations thereof.
[0079] Catalyst compounds capable of accelerating / promoting the reaction between (P) an isocyanate compound and an isocyanate-reactive compound; or (I) the formation of an isocyanurate (e.g., a reaction between isocyanate compounds) can be used in the polyurethane foam compositions of the present disclosure. Suitable catalysts include urethane catalysts (e.g., tertiary amine catalysts), blowing catalysts, trimerization catalysts, or combinations thereof. Examples of such catalysts include dimethylcyclohexylamine, triethylamine, pentamethylenediethylenetriamine, tris(dimethylaminopropyl)hexahydrotriazine, dimethylbenzylamine, bis-(2-dimethylaminoethyl)ether, dimethylethanolamine, 2-(2-dimethylaminoethoxy)ethanol; organometallic compounds such as potassium octanoate, potassium acetate, dibutyltin dilaurate, dibutyltin diacetate, bismuth neodecanoate, 1,1',1",1"'-(1,2-ethanediyldinitrilo)tetrakis[2-propanol] neodecanoate complex, 2,2',2",2"'-(1,2-ethanediyldinitrilo)tetrakis[ethanol] neodecanoate complex, quaternary ammonium salts such as 2-hydroxypropyltrimethylammonium formate, or combinations thereof.
[0080] In some embodiments, the catalyst compound may be used in an amount up to 5 wt. % (eg, 0.5 wt. % to 3 wt. %) by weight of the polyurethane foam composition.
[0081] Foam formulators commonly use surfactants in their foam compositions to control the cell structure of the final foam product. Accordingly, a variety of surfactants (e.g., silicone and / or non-silicone surfactants) can be used in the polyurethane foam compositions of the present disclosure. Examples of suitable surfactants include: (i) silicone surfactants, including: (a) L-5345, L-5440, L-6100, L-6642, L-6900, L-6942, L-6884, L-6972 from Evonik Industries; DC-193, DC5357, Si3102, Si3103 from Momentive Performance Materials, Inc., respectively; (b) Tegostab 8490, 8496, 8536, 84205, 84210, 84501, 84701, 84715 (each available from Evonik Industries), polyorganosiloxane polyether copolymers (e.g., polysiloxane polyoxyalkylene block copolymers); (ii) non-silicone surfactants, including nonionic, anionic, cationic, amphoteric, semi-polar, and zwitterionic organic surfactants; (ii) i) Nonionic surfactants, including phenol alkoxylates (e.g., ethoxylated phenolic compounds), alkylphenol alkoxylates (e.g., ethoxylated nonylphenolic compounds), LK-443 (available from Evonik Industries), Vorasurf 504 (available from Dow Chemical Co), (iv) or combinations thereof.
[0082] In some embodiments, surfactants can be used in amounts up to 5 wt. % (eg, 0.5 wt. % to 3 wt. %) by weight of the polyurethane foam composition.
[0083] One of the primary goals of the present disclosure is to provide polyurethane foam compositions that contain little or no flame retardants, although these compounds can still be used in the polyurethane foam compositions of the present disclosure. Examples of suitable flame retardants that can be used include: (i) organophosphorus compounds, such as organophosphates, phosphites, phosphonates, polyphosphates, polyphosphites, polyphosphonates, ammonium polyphosphate, ethyl phosphate, tris(2-chloropropyl)phosphate, diethyl ethyl phosphonate, diethyl hydroxymethyl phosphonate; dialkyl hydroxymethyl phosphonate, diethyl N,N-bis(2-hydroxyethyl)aminomethyl phosphonate; (ii) halogenated flame retardants (e.g., tetrabromophthalate diol and chlorinated paraffin compounds); or (iii) combinations thereof.
[0084] In some embodiments, the flame retardant may be used in an amount of up to 15 wt. % (eg, up to 10 wt. %) by weight of the polyurethane foam composition.
[0085] Polyurethane / Polyisocyanurate Foam Products PU and / or PIR foam products are formed from the polyurethane foam compositions of the present disclosure. In certain embodiments, PU and / or PIR foams can be formed from the polyurethane foam compositions disclosed herein by combining the following polyurethane foam composition components and reacting the reactive components: (1) an isocyanate compound; (2) one or more isocyanate-reactive compounds (including polyol compounds containing imide moieties); (3) a blowing agent; and (4) additional additives. To form PU foam products, the molar ratio of isocyanate compound to one or more isocyanate-reactive compounds is close to 1:1 (e.g., usually less than 2:1), while when forming PIR foam products, the molar ratio of isocyanate compound to one or more isocyanate-reactive compounds is greater than 1:1 (e.g., 2:1).
[0086] The above materials can be used as components 1, 2, 3, or 4. The components can be introduced to each other in multiple streams (i.e., at least two streams). In some embodiments, one stream comprises an isocyanate compound, while another stream comprises one or more isocyanate-reactive compounds. In certain embodiments, the stream comprising the isocyanate-reactive compounds can also contain other materials (e.g., auxiliary additives / compounds) as long as they are not reactive with the isocyanate-reactive compounds. Note that the stream comprising the isocyanate compounds can also contain other materials (e.g., auxiliary additives / compounds) as long as they are not reactive with the isocyanate compounds. In some embodiments, the blowing agent is introduced in a third stream, separate and distinct from the streams comprising the isocyanate compound and the isocyanate-reactive compound. While the auxiliary additives / compounds can be introduced in one or more streams, the auxiliary additives can also be introduced in one or more additional streams (e.g., catalyst streams) that are separate and distinct from the aforementioned streams, if desired.
[0087] The mixing of the streams can be accomplished by a spray device (e.g., a spray gun), a mixhead (with or without a static mixer), or a polyurethane foam mixer as disclosed herein. This can be done in any of several other types of containers configured to spray or otherwise deposit the components of the composition onto a substrate.
[0088] In some embodiments, the isocyanate compound and one or more isocyanate-reactive compounds of the polyurethane foam composition are reacted at an NCO index of up to 1000%. In some embodiments, the NCO index ranges from 20% to 180% (e.g., 40% to 160%). For urethane-modified polyisocyanurate foams, the NCO index is generally higher (e.g., 180% to 1000%, or 200% to 500%, or 250% to 500%).
[0089] The PU and / or PIR foam products may be closed-cell or open-cell. As used herein, a foam is defined as a foam having a closed cell content of greater than 70% (e.g., 80%) as measured by ASTM D6226-15. > 80% or > 85%) would be considered "closed cell." A foam must have a closed cell content of less than 50% (e.g., 85%) when measured by ASTM D6226-15. < 40% or < 30%) would be considered an "open cell."
[0090] In some embodiments, the PU and / or PIR foam product has a modulus of elasticity of 0.10 to 0.17 Btu-in / hr.ft when measured by ASTM C518-17 at an average plate temperature of 75°F. 2 °F (e.g., 0.11 to 0.16 Btu-in / hr.ft 2 °F or 0.12 to 0.15 Btu-in / hr.ft 2 It expresses the thermal conductivity (K value) in the range of °F.
[0091] In certain embodiments, the PU and / or PIR foam products have superior ASTM E1354-17 performance to a comparable foam made from the same composition in which the imide-containing aromatic polyester polyol is replaced with an imide-free aromatic polyester polyol, where the weight ratio of component (i) to component (ii) is 0:100.
[0092] In another embodiment, the PU and / or PIR foam product has ASTM E1354-17 performance equivalent to a comparative foam made from the same composition wherein the imide-containing aromatic polyester polyol is replaced with an imide-free aromatic polyester polyol d, wherein the weight ratio of component (i) to component (ii) is 0:100, and wherein the polyurethane foam uses less flame retardant than the comparative foam.
[0093] Use of polyurethane foam composition The polyurethane foam compositions disclosed herein have high heat resistance / thermal resistance ( > 121.1°C), heat distortion, burn resistance, and / or char integrity. PU and / or PIR foam products made from the polyurethane foam compositions disclosed herein can be produced in forms well known to those skilled in the polyurethane art. For example, suitable forms include slabstock, molded products, cavity filling (e.g., pour-in-place foam), spray-in-place foam, frothed foam, or laminates (e.g., foam products combined with another material such as paper, metal, plastic, or wood board).
[0094] Construction and other industrial applications In the United States, model building codes require materials used in commercial and residential buildings and homes to meet specific fire performance standards, depending on whether the materials are used in roofs, walls, ceilings, attics, or confined spaces such as underfloor spaces. These standards include ASTM E84, E108, E119, E662, E2074; FM 4450, 4880; NFPA 28 and UL 1040,1256. PUR and PIR foams produced from the polyurethane foam compositions disclosed herein can be used to meet one or more of the aforementioned flame tests while significantly reducing or eliminating the use of flame retardants.
[0095] The polyurethane foam compositions disclosed herein can be applied to a variety of substrates, and in some embodiments, the substrate is a rigid or flexible facing sheet made of foil or other material (including other layers that may or may not resemble polyurethane foam) that is transported (continuously or discontinuously) along a production line by means such as a conveyor belt. In certain embodiments, the facing sheet is used to produce siding used in the construction industry.
[0096] In another embodiment, the polyurethane foam compositions disclosed herein are used in the continuous production of PU and PIR-based metal panels. In this application, the polyurethane foam composition is applied to a metal layer (which may be contoured) below a double-band laminator through one or more mixheads. In some embodiments, the laminator line speed is set to 75 ft / min or less. The laminator produces a continuously formed metal panel when the rising foam composition reaches the upper surface layer. The formed metal panel is then cut to the desired length at the exit end of the laminator. Suitable metals for this application include aluminum or steel, which can be coated with a polyester or epoxy layer that helps reduce rust formation and simultaneously promote foam adhesion to the metal layer. In some embodiments, the final foam metal panel comprises a foam thickness ranging from 1 to 8 inches.
[0097] In another embodiment, the polyurethane foam compositions disclosed herein are used in the continuous production of PU and / or PIR foam laminate insulation boards or coverboards, commonly referred to as board stock. In this process, the foaming mixture is applied to the lower facer layer of a double-band laminator through one or more mixheads. In some embodiments, the laminator line speed is set at 300 ft / min or less. The laminator produces a continuously forming board when the rising foam mixture reaches the upper facer layer. Like the metal panels described above, the board is then cut to the desired length at the exit end of the laminator. Suitable materials that can be used for this face include aluminum foil, cellulose fiber, reinforced cellulose fiber, kraft paper, coated fiberglass mat, uncoated fiberglass mat, chopped glass, or combinations thereof. In some embodiments, the final foam laminate board has a foam thickness ranging from 0.25 inches to 5 inches.
[0098] It should be noted that in the above examples, an upper surface layer can be applied onto the coated composition after the polyurethane foam composition has either partially or fully cured.
[0099] In another embodiment, the polyurethane foam compositions disclosed herein can be poured into an open mold (including dispensed via a device that lowers the composition into the open mold) or simply coated (i.e., in-situ pour-in application) at or within a desired location, such as between the interior and exterior walls of a structure. Generally, such applications can be achieved using known one-shot, prepolymer, or semi-prepolymer techniques used in conjunction with conventional mixing methods. Upon reaction, the polyurethane foam composition will assume the shape of the mold or deposit onto a coated substrate. The polyurethane foam composition can then be cured in-situ, either fully or partially.
[0100] In certain embodiments, the polyurethane composition can be injected into a closed mold to form a molded polyurethane foam product. In such applications, the polyurethane composition can be injected with or without vacuum assistance.
[0101] If a mold is used (whether it is an open or closed mold), the mold can be heated to facilitate handling and workability of the polyurethane composition (e.g., to facilitate flow of the polyurethane foam composition in the mold).
[0102] Pipeline Applications To achieve the desired heat / temperature and flame resistance requirements, the polyurethane foam compositions disclosed herein can be used in pipeline applications (e.g., pipelines used to transport oil, bitumen, natural gas, petroleum, hot water, or steam (both under pressure and without pressure)). For example, the polyurethane foam compositions disclosed herein can be used in the production of pre-insulated pipes in the European Union for use in district heating. The European Union requires such pipes to meet or exceed the DIN EN-253 standard, which requires pipe assemblies to have a service life of at least 30 years at a continuous operating temperature of 120°C.
[0103] In plumbing applications, the polyurethane foam composition disclosed herein can be intermittently introduced into the hollow space between a pipe (e.g., a metal pipe made from steel) and a sheath (e.g., a plastic sheath made from polyethylene), thereby forming an insulating pulp. Alternatively, the polyurethane foam composition can be continuously applied to the pipe, and a sheath layer is then placed around the pipe, either before or after the polyurethane foam composition has fully cured, thereby forming the insulating pulp.
[0104] spray foam The polyurethane foam compositions disclosed herein can be applied onto a substrate using a proportioning system or some other spraying means. The mixing system, which can be a fixed ratio system, comprises a resin composition supply container, an isocyanate component supply container, a sprayer, and a spray gun with a mixing chamber. The polyurethane foam composition comprises an isocyanate-reactive compound (e.g., an aromatic polyol compound containing an imide moiety), a blowing agent, and other auxiliary additives. The compositions (collectively "Resin Composition") are pumped in a first stream from a resin composition supply container to the sprayer. The isocyanate compound is pumped in a second stream (which is separate and distinct from the Resin Composition) from an isocyanate component supply container to the sprayer. The isocyanate component and resin composition are heated and pressurized in the sprayer and delivered to a spray gun in two separate head hoses to form a polyurethane foam composition. The polyurethane composition is then provided to a spray gun, which is used to: (i) mix the isocyanate compound and resin composition, and (ii) spray the polyurethane composition onto a substrate.
[0105] Suitable substrates onto which the polyurethane foam composition can be sprayed include covering materials (e.g., oriented strand board (OSB), plywood, gypsum, gypsum board, foam board, fiberboard, and cellulose coatings); wood, concrete, polyvinyl chloride, metal, or combinations thereof. In certain embodiments, the PU and / or PIR foam products can be formed in situ on regular or irregular surfaces of structures (e.g., commercial and residential walls, ceilings, or other substrates).
[0106] In some embodiments, in situ foams made from the polyurethane foam compositions disclosed herein are The sprayed foam can reach ASTM E84 Class I standards without the use of flame retardants such as tris(1-chloro-2-propyl) phosphate (TCPP).
[0107] qualification Although specific embodiments of the present disclosure have been described in detail, it will be appreciated that those skilled in the art will be able to develop various modifications and alternatives to these details in light of the overall teachings of the disclosure. Accordingly, the disclosed arrangements are intended to be illustrative only and not limiting on the scope of the disclosure, which is to be accorded the full breadth of the appended claims and all equivalents thereof. Accordingly, any of the above-described features, characteristics, and / or elements may be combined with each other in any combination and still fall within the breadth of the present disclosure. [Example]
[0108] Ingredients and Components: The following reaction components, materials and terminology are referred to in the examples:
[0109] PTA: Purified terephthalic acid (available from Grupo Petrotemex, SA de CV).
[0110] DEG: Diethylene glycol (available from Equistar Chemicals, LP).
[0111] TEG: Triethylene glycol (available from The Dow Chemical Company).
[0112] PEG 200: Polyethylene glycol 200 (available from Huntsman International LLC).
[0113] Glycerin (available from Terra Biochem LLC).
[0114] TYZOR® TE: 80 wt % titanium (triethanolaminato) isopropoxide solution in isopropanol (available from Dorff Ketal Specialty Catalyst LLC).
[0115] TMA: trimellitic anhydride (1,2,4-benzenetricarboxylic anhydride from Sigma-Aldrich Corporation).
[0116] Glycine (available from Sigma-Aldrich Corporation).
[0117] MDA: 4,4′-diaminodiphenylmethane (available from Sigma-Aldrich Corporation).
[0118] TEROL® 250: An aromatic polyester polyol having an OH number of 250 mg KOH / g (available from Huntsman International LLC).
[0119] JEFFOL® R-470X: A reactive aromatic amine polyol having an OH number of 470 mg KOH / g (available from Huntsman International LLC).
[0120] JEFFCAT® H-1: A gel-blow balanced polyurethane amine catalyst (available from Huntsman International LLC).
[0121] Pel-Cat 9540-A: Potassium 2-ethylhexanoate solution in diethylene glycol (available from Ele Corporation).
[0122] DC193: Silicone surfactant (available from Evonik Industries as DABCO® DC193 surfactant).
[0123] BICAT 8210: Bismuth 2-ethylhexanoate (Shepherd Chemical) (Available from Shepherd Chemical Company).
[0124] TCPP: Tris(2-chloroisopropyl)phosphate (available from Lanxess Corporation as LEVAGARD® PP).
[0125] SOLSTICE® LBA: 1-chloro-3,3,3-trifluoropropene (available from Honeywell International Inc.).
[0126] RUBINATE® M: Polymeric MDI with an NCO number of 30.5% (available from Huntsman International LLC).
[0127] Analysis and testing: The following terms are referred to in the examples:
[0128] Acid Number: A measure of the amount of residual acid in a polyester polyol as determined by standard titration methods, such as ASTM D4662.
[0129] OH Number: Hydroxyl number is a measure of the number of OH groups determined by standard titration methods, such as ASTM D4274.
[0130] Viscosity: Viscosity measured using a Brookfield viscometer such as a Brookfield DV-II viscometer.
[0131] TGA Analysis: Thermogravimetric analysis (TGA) was performed using a TGA Q5000 from TA Instrument-Water LLC, which is a method of thermal analysis in which the mass of a sample is measured over time as the temperature changes.
[0132] Cream time: The time elapsed between the moment the isocyanate component of the composition is mixed with the isocyanate-reactive component of the composition and the time when a fine froth or cream forms in the composition.
[0133] Gel Time: The time elapsed between the moment the isocyanate component of the composition is mixed with the isocyanate-reactive component of the composition and the point at which the expanded foam begins to gel by crosslinking. Empirically, such gel is determined by pressing a 6" wooden depressor (e.g., Puritan 705) onto the surface of the rising foam and when a string forms when it is removed. To be measured.
[0134] Tack-Free Time: The time elapsed between the moment the isocyanate component of the composition is mixed with the isocyanate-reactive component of the composition and the point at which the foam skin loses its tack or adhesive properties. Empirically, such loss of tack is measured by contacting a 6" wooden depressor (e.g., Puritan 705) with the surface of the reaction mixture and when it becomes tack-free when removed from the surface.
[0135] FRD (Free rise density): The density of a sample foam taken from the center of a cup foam.
[0136] Tg (glass transition temperature): The temperature at which an amorphous material passes from a hard and relatively brittle "glassy" state to a viscous, rubbery state.
[0137] Cone calorimeter test: This test is performed at 30 kW / m 2 The test was carried out in accordance with test method ASTM E1354-17 at a radiant heat intensity of 1000 kJ / min. The following parameters were recorded:
[0138] PHRR: Peak Heat Release Rate, the highest rate at which heat is produced by a flame.
[0139] THR: The total amount of heat produced by a flame in a specific period of time.
[0140] TSR: The total amount of smoke produced by a fire in a specific time period.
[0141] ML%: Percentage of mass loss during combustion at a specific time.
[0142] Polyol Synthesis Explained Polyol-1: 286 g of PTA, 73 g of trimellitic anhydride (TMA), 38 g of MDA, 11 g of glycerin, 73 g of PEG 200, 194 g of TEG, and 197 g of DEG were added to a 500 mL cylindrical glass reactor. Under a nitrogen flow of 0.3 to 0.5 liters per minute (LPM), the reaction mixture was heated to 80°C and maintained at that temperature for 30 minutes. The mixture was then heated to 140°C and maintained at that temperature for 30 minutes, after which it was heated to 246°C. The temperature was then maintained at 246°C, and condensed water was collected. When the head temperature dropped below 70°C (after ~2 hours), 0.8 g of Tyzor TE was added. The reaction was then heated at 240°C until the acid number was less than 2.0 mg KOH / g (~3 hours). The reaction was cooled to below 100°C, and Polyol-1 was collected. The OH number was measured, and then DEG was added to adjust the OH number to a calculated 250 mg KOH / g while blending for 30 minutes at 80° C. The polyol was then cooled to room temperature, and the final OH number and viscosity were measured.
[0143] Polyol-2: 273 g of PTA, 79 g of trimellitic anhydride (TMA), 31 g of glycine, 11 g of glycerin, 76 g of PEG 200, 202 g of TEG, and 205 g of DEG were added to a 500 mL cylindrical glass reactor. Under a nitrogen flow of 0.3 to 0.5 liters per minute (LPM), the reaction mixture was heated to 80°C and maintained at that temperature for 30 minutes. The mixture was then heated to 140°C and maintained at that temperature for 30 minutes, after which it was heated to 246°C. The temperature was maintained at 246°C, and condensed water was collected. When the head temperature dropped below 70°C (after ~3 hours), 0.8 g of Tyzor TE was added. The reaction was then heated at 240°C until the acid number was less than 2.0 mg KOH / g (~5 hours). The reaction was cooled to below 100°C, and Polyol-2 was collected. OH number was measured and then at 80°C DEG was added to adjust the OH number to a calculated 250 mg KOH / g while blending for 30 minutes. The polyol was then cooled to room temperature and the final OH number and viscosity were measured.
[0144] Summary of polyol properties: [Table 1]
[0145] Polyol Thermal Stability Test: The thermal stability of inventive Polyol-1, Polyol-2, and the comparative TEROL® 250 polyol was evaluated using TGA under nitrogen and air, respectively. TGA is a widely accepted analytical method that provides an indication of the relative thermal stability of the materials under consideration. All polyols were heated from 25°C to 700°C at a temperature ramp rate of 10°C / min. The percent foam weight retention at a given temperature, relative to the initial weight of the foam at 25°C, is summarized in Tables 2 and 3 below. As expected, in all cases, higher temperatures resulted in greater polyol decomposition and lower percent retention. Inventive Polyol-1 and Polyol-2 exhibited higher weight retention than the comparative TEROL® 250 polyol under both anaerobic and aerobic conditions. Higher weight retention at a given temperature in the TGA suggests better thermal stability for Polyol-1 (where the ratio of TMA to PTA is 0.29) and Polyol-2 (where the ratio of TMA to PTA is 0.255) when compared to TEROL® 250 (where the ratio of TMA to PTA was 0). [Table 2] [Table 3]
[0146] Instructions for making polyurethane cup foam The compositions of the two foam formulations (i.e., Formulation-1 and Formulation-2) are listed in Table 4. Formulation-1 represents a polyurethane foam system containing a flame retardant (TCPP), while Formulation-2 does not contain any TCPP. The isocyanate to polyol premix ratio is 1.10 for Formulation-1 and 1.15 for Formulation-2, so both formulations have the same isocyanate index of 169. The foams used for the thermal stability and flame property tests were made by the following steps: (i) pouring the contents of the A-side and B-side into a 32-oz unwaxed paper cup (e.g., Solo H4325-2050) so that the two components were combined, resulting in a total weight of A-side and B-side of between 110 and 120 grams; (ii) mixing the combined components for 4-5 seconds at 2500-3000 rpm using a mechanical mixer (e.g., Caframo BDC3030 agitator); (iii) allowing the components of the composition to react, thereby forming a polyurethane foam product, and recording the reactivity (cream time, gel time, tack-free time); (iv) mixing the foam. and (v) a 4 cm x 4 cm x 4 cm sample was cut from approximately 6 cm below the top surface of the foam to measure the free rise density (FRD). The reactivity and FRDs are summarized in Table 5. [Table 4]
[0147] Foam Thermal Stability and Flame Property Testing Glass transition temperature (Tg) measurement: A piece of foam was taken from the center above the cup rim height and tested under compression mode using a TA Instruments RSA-G2 solids analyzer. The compression mode direction was aligned with the foam rise direction. Temperature scans were performed at a frequency of 1 Hz and with a dynamic strain within the linear region of viscoelasticity. After the temperature scan procedure was completed, the temperature at the peak of tan delta was selected as Tg (summarized in Table 5). Polyurethane foams exhibiting higher glass transition temperatures can maintain better physical properties, such as foam strength, at elevated temperatures.
[0148] Cone Calorimeter Test: A 10cm x 10cm x 2.5cm sample was cut from approximately 3cm below the top surface of the cup form and tested for flame properties in a cone calorimeter. Table 5 summarizes the data for PHRR, as well as THR, TSR, and ML% (all at 2 minutes). In the cone calorimeter test, a lower PHRR and lower THR indicates a lower fuel contribution of the material being tested to the flame, i.e., better flame properties. A lower TSR indicates less smoke produced by the material being tested. Again, this indicates better flame properties. A lower ML% indicates a greater amount of original material remaining after exposure to radiant heat. Also, for foams, a lower ML% indicates better flame properties.
[0149] Figure 1 shows the residue remaining after a cone calorimeter flame test for foams made using Formulation 1. Residues from foams made using Polyol-1 and Polyol-2 of the present invention showed monolithic and intumescent charring compared to foams made using the comparative TEROL® 250 polyol. Monolithic charring is advantageous because it indicates that the foam tends to maintain its structural integrity in a burning flame, and is superior to foams that exhibit numerous cracks / cracking. Intumescent charring is superior to conventional charring because it slows down the transfer of heat from the exposed side of the assembly to the unexposed side. [Table 5]
[0150] Foam Thermal Stability Testing Using TGA: The thermal stability of foams made with Polyol-1 and Polyol-2 of the present invention and comparative TEROL® 250 was evaluated using TGA under nitrogen. TGA analysis under high temperature and anaerobic conditions can mimic the degradation of polyurethane foams, which generates gaseous fuels in a flame. The first test used the same ramping method as the polyol stability test, using a 10°C / min ramp from 25°C to 700°C. The second test involved a 100°C / min ramp from 25°C to 550°C, followed by an isothermal period at 550°C for 60 minutes. The results are summarized in Tables 6 and 7 below. Foams made with the polyols of the present invention exhibited higher mass retention than the control foam at a given temperature in both tests, suggesting slower and less thermal decomposition. [Table 6] [Table 7]
[0151] It is also noteworthy that the foam products made from the compositions disclosed herein had excellent internal appearance (e.g., uniform internal cell size and absence of internal voids) and fine internal cells with no evidence of cell collapse. In other words, good quality foam products were produced using the compositions disclosed herein.
Claims
1. 1. A polyurethane foam composition comprising: an isocyanate compound; one or more isocyanate-reactive compounds, wherein at least one of the isocyanate-reactive compounds comprises an aromatic polyester polyol compound comprising an imide moiety; wherein the aromatic polyester polyol is: (i) cyclic anhydride compounds comprising trimellitic anhydride, hemimellitic anhydride, pyromellitic dianhydride, mellophanic dianhydride, 3,3',4,4'-biphenyltetracarboxylic dianhydride, 3-hydroxyphthalic anhydride, 4-hydroxyphthalic anhydride, bis(3,4-dicarboxyphenyl)ether dianhydride, 2,3,6,7-naphthalenetetracarboxylic dianhydride, cyclobutanetetracarboxylic dianhydride, carballylic anhydride, 3-hydroxynaphthalene anhydride, naphthalenetetracarboxylic anhydride, α-(2-carboxyethyl)glutaric anhydride, or combinations thereof; (ii) phthalic acid compounds; (iii) Structure (3): NH 2 -R-X where X is -NH2, -OH or -COOH, and R is an aromatic ring, an aliphatic ring, or aliphatic ring and chain radicals, each containing 1 to 12 carbon atoms; It may or may not contain alkyl branches and may contain O, N, S, or combinations thereof. containing or not containing heteroatoms comprising a primary amine compound comprising: (iv) an aliphatic diol compound; (v) optionally, 3 or more active hydrogen atoms and up to 1,000 daltons per molecule; a polyether polyol compound having a molecular weight; (vi) optionally a hydrophobic compound and wherein the weight ratio of component (i) to component (ii) is 1: 24 to 24:1, and wherein the aromatic polyester polyol is isocyanates which are liquid and comprise a hydroxy value ranging from 30 to 600; a hydroxy-reactive compound; and a blowing agent.
2. 10. The polyurethane foam composition of claim 1, wherein the aromatic polyester polyol compound comprising an imide moiety has a viscosity in the range of 200 to 150,000 centipoise at 25°C.
3. 10. The polyurethane foam composition of claim 1, wherein the aromatic polyester polyol compound comprising an imide moiety has an acid number ranging from 0.1 mg KOH / g to 10 mg KOH / g.
4. 10. The polyurethane foam composition of claim 1, wherein the aromatic polyester polyol compound comprising an imide moiety is solvent-free.
5. 10. The polyurethane foam of claim 1, wherein the polyurethane foam is applied to the surface of a roof, wall, pipe, or storage tank assembly.
6. 10. The polyurethane foam of claim 1, wherein the polyurethane foam is attached to a roof, wall, pipe, or storage tank assembly.
7. 1. A method of forming a polyurethane foam product, comprising: in the presence of a blowing agent, with a reaction mixture comprising an isocyanate compound and one or more isocyanate-reactive compounds, wherein at least one of the isocyanate-reactive compounds comprises an aromatic polyester polyol compound comprising an imide moiety, wherein the aromatic polyester polyol is: (i) cyclic anhydride compounds comprising trimellitic anhydride, hemimellitic anhydride, pyromellitic dianhydride, mellophanic dianhydride, 3,3',4,4'-biphenyltetracarboxylic dianhydride, 3-hydroxyphthalic anhydride, 4-hydroxyphthalic anhydride, bis(3,4-dicarboxyphenyl)ether dianhydride, 2,3,6,7-naphthalenetetracarboxylic dianhydride, cyclobutanetetracarboxylic dianhydride, carballylic anhydride, 3-hydroxynaphthalene anhydride, naphthalenetetracarboxylic anhydride, α-(2-carboxyethyl)glutaric anhydride, or combinations thereof; (ii) phthalic acid compounds; (iii) Structure (3): NH 2 -R-X where X is -NH2, -OH or -COOH, and R is an aromatic ring, an aliphatic ring, or aliphatic ring and chain radicals, each containing 1 to 12 carbon atoms; It may or may not contain alkyl branches and may contain O, N, S, or combinations thereof. containing or not containing heteroatoms comprising a primary amine compound comprising: (iv) an aliphatic diol compound; (v) optionally, 3 or more active hydrogen atoms per molecule and up to 1,000 daltons a polyether polyol compound having an amount of: (vi) optionally, a hydrophobic compound and wherein the weight ratio of component (i) to component (ii) is 1: 24 to 24:1, and wherein the aromatic polyester polyol is and comprising a hydroxy value ranging from 30 to 600. The method of claim 1.
8. The method of claim 7, wherein the viscosity of the aromatic polyester polyol compound ranges from 200 to 150,000 centipoise at 25°C.
9. 8. The method of claim 7, wherein the acid number of the aromatic polyester polyol compound ranges from 0.1 mg KOH / g to 10 mg KOH / g.
10. The method of claim 7, wherein the polyurethane foam composition is solvent-free.
11. 8. The method of claim 7, wherein the polyurethane foam is applied to a surface of a roof, wall, pipe, or storage tank assembly.
Citation Information
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