Aqueous binder compositions are traditionally utilized in the formation of woven and non-woven fibrous products, such as insulation products, composite products, wood fiber board, and the like. Insulation products, for example fiberglass and mineral wool insulation products, are typically manufactured by fiberizing a molten composition of polymer, glass, or other mineral and spinning fine fibers from a fiberizing apparatus, such as a rotating spinner. To form an insulation product, fibers produced by a rotating spinner are drawn downwardly from the spinner towards a conveyor by a blower. As the fibers move downward, a binder material is sprayed onto the fibers and the fibers are collected into a high loft, continuous blanket on the conveyor. The binder material gives the insulation product resiliency for recovery after packaging and provides stiffness and handleability so that the insulation product can be handled and applied as needed in the insulation cavities of buildings. The binder composition also provides protection to the fibers from interfilament abrasion and promotes compatibility between the individual fibers. The blanket containing the binder-coated fibers is then passed through a curing oven and the binder is cured to set the blanket to a desired thickness.
After the binder has cured, the fiber insulation may be cut into lengths to form individual insulation products, and the insulation products may be packaged for shipping to customer locations.
Fiberglass insulation products prepared in this manner can be provided in various forms including batts, blankets, and boards (heated and compressed batts) for use in different applications. As the batt of binder-coated fibers emerges from the forming chamber, it will tend to expand as a result of the resiliency of the glass fibers. The expanded batt is then typically conveyed to and through a curing oven in which heated air is passed through the insulation product to cure the binder. In addition to curing the binder, within the curing oven, the insulation product may be compressed with flights or rollers to produce the desired dimensions and surface finish on the resulting blanket, batt or board product.
Phenol-formaldehyde (PF) binder compositions, as well as PF resins extended with urea (PUF resins), have been traditionally used in the production of fiberglass insulation products. Insulation boards, also known as “heavy density” products, such as ceiling board, duct wrap, duct liners, and the like have utilized phenol-formaldehyde binder technology for the production of heavy density products that are inexpensive and have acceptable physical and mechanical properties. However, formaldehyde binders emit undesirable emissions during the manufacturing of the fiberglass insulation.
As an alternative to formaldehyde-based binders, certain formaldehyde-free formulations have been developed for use as a binder in fiberglass insulation products. One of the challenges to developing suitable alternatives, however, is to identify formulations that have comparable mechanical and physical properties, while avoiding undesirable properties, such as discoloration. Such property challenges include hot/humid performance, stiffness, bond strength, processability (viscosity, cutting, sanding, edge painting), and achieving a light color without yellowing.
Accordingly, there is a need for an environmentally friendly, formaldehyde-free binder composition for use in the production of insulation products without experiencing a loss in physical and mechanical properties.
Various exemplary aspects of the inventive concepts are directed to an aqueous binder composition comprising at least one long-chain polyol having at least two hydroxyl groups and a number average molecular weight of at least 2,000; a cross-linking agent comprising at least two carboxylic acid groups; and a short-chain polyol having at least two hydroxyl groups and a number average molecular weight less than 2,000, wherein a ratio of molar equivalents of carboxylic acid groups to hydroxyl groups is from about 1/0.05 to about 1.0/5.0 and a ratio of long-chain polyol to short-chain polyol is from about 0.1/0.9 to about 0.9/0.1.
In some exemplary embodiments, the cross-linking agent is a polymeric polycarboxylic acid, such as a homopolymer of copolymer of acrylic acid. The cross-linking agent may be present in the binder composition in an amount from about 50 wt. % to about 85 wt. %, based on the total solids content of the aqueous binder composition. In some exemplary embodiments, the cross-linking agent is present in the binder composition in an amount from about 65 wt. % to about 80 wt. %, based on the total solids content of the aqueous binder composition.
In some exemplary embodiments, the long-chain polyol is selected from the group consisting of partially or fully hydrolyzed polyvinyl alcohol and polyvinyl acetate. The long-chain polyol may be present in the binder composition in an amount from about 5 wt. % to about 30 wt. %, based on the total solids content of the aqueous binder composition. In various exemplary embodiments, the short-chain polyol comprises one or more of a sugar alcohol, 2,2-bis(methylol)propionic acid, tri(methylol)propane, and a short-chain alkanolamine. When the short-chain polyol comprises a sugar alcohol, the sugar alcohol may be selected from the group consisting of glycerol, erythritol, arabitol, xylitol, sorbitol, maltitol, mannitol, iditol, isomaltitol, lactitol, cellobitol, palatinitol, maltotritol, syrups thereof, and mixtures thereof.
In various exemplary embodiments, the short-chain polyol is present in the binder composition in an amount from about 3 wt. % to about 30 wt. %, based on the total solids content of the aqueous binder composition.
In various exemplary embodiments, the binder composition has a water-soluble material content after cure of no greater than 6.0 wt. %.
Other exemplary aspects of the inventive concepts are directed to an insulation product comprising a plurality of randomly oriented fibers and an aqueous binder composition at least partially coating the fibers. The binder composition may comprise at least one long-chain polyol having at least two hydroxyl groups and a number average molecular weight of at least 2,000 Daltons; a cross-linking agent comprising at least two carboxylic acid groups; and a short-chain polyol having at least two hydroxyl groups and a number average molecular weight less than 2,000 Daltons. In some exemplary embodiments, the ratio of molar equivalents of carboxylic acid groups to hydroxyl groups is from about 1/0.05 to about 1.0/5.0 and the ratio of long-chain polyol to short-chain polyol is from about 0.1/0.9 to about 0.9/0.1.
The fibers of the insulation products may comprise one or more of mineral fibers, natural fibers, and synthetic fibers, and in some embodiments, the fibers comprise glass fibers.
Numerous other aspects, advantages, and/or features of the general inventive concepts will become more readily apparent from the following detailed description of exemplary embodiments and from the accompanying drawings being submitted herewith.
The general inventive concepts, as well as illustrative embodiments and advantages thereof, are described below in greater detail, by way of example, with reference to the drawings in which:
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 to which these exemplary embodiments belong. The terminology used in the description herein is for describing exemplary embodiments only and is not intended to be limiting of the exemplary embodiments. Accordingly, the general inventive concepts are not intended to be limited to the specific embodiments illustrated herein. Although other methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, the preferred methods and materials are described herein.
As used in the specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
Unless otherwise indicated, all numbers expressing quantities of ingredients, chemical and molecular properties, reaction conditions, and so forth used in the specification and claims are to be understood as being modified in all instances by the term “about.” Accordingly, unless indicated to the contrary, the numerical parameters set forth in the specification and attached claims are approximations that may vary depending upon the desired properties sought to be obtained by the present exemplary embodiments. At the very least each numerical parameter should be construed in light of the number of significant digits and ordinary rounding approaches.
Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the exemplary embodiments are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. Any numerical value, however, inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Every numerical range given throughout this specification and claims will include every narrower numerical range that falls within such broader numerical range, as if such narrower numerical ranges were all expressly written herein.
The present disclosure relates to formaldehyde-free aqueous binder compositions for use in the manufacture of insulation products that have comparable or improved mechanical and physical performance, compared to products manufactured with traditional formaldehyde-based binder compositions. The formaldehyde-free binder composition may be used in the manufacture of fiber insulation products and related products, such as thin fiber-reinforced mats (all hereinafter referred to generically as fiber reinforced products) and glass fiber or mineral wool products, especially fiberglass or mineral wool insulation products, made with the cured formaldehyde-free binder. Other products may include composite products, wood fiber board products, metal building insulation, pipe insulation, ceiling board, ceiling tile, “heavy density” products, such as ceiling board, duct wrap, duct liners, and also “light density” products.
In some exemplary embodiments, the formaldehyde-free aqueous binder composition includes at least one long-chain polyol, and at least one primary cross-linking agent, and at least one secondary cross-linking agent comprising at least one short-chain polyol.
The primary crosslinking agent may be any compound suitable for crosslinking the polyol. In exemplary embodiments, the primary crosslinking agent has a number average molecular weight greater than 90 Daltons, from about 90 Daltons to about 10,000 Daltons, or from about 190 Daltons to about 5,000 Daltons. In some exemplary embodiments, the crosslinking agent has a number average molecular weight of about 2,000 Daltons to 5,000 Daltons, or about 4,000 Daltons. Non-limiting examples of suitable crosslinking agents include materials having one or more carboxylic acid groups (—COOH), such as polycarboxylic acids (and salts thereof), anhydrides, monomeric and polymeric polycarboxylic acid with anhydride (i.e., mixed anhydrides), and homopolymer or copolymer of acrylic acid, such as polyacrylic acid (and salts thereof) and polyacrylic acid based resins such as QR-1629S and Acumer 9932, both commercially available from The Dow Chemical Company. Acumer 9932 is a polyacrylic acid/sodium hypophosphite resin having a molecular weight of about 4000 and a sodium hypophosphite content of 6-7% by weight. QR-1629S is a polyacrylic acid/glycerin mixture.
The primary cross-linking agent may, in some instances, be pre-neutralized with a neutralization agent. Such neutralization agents may include organic and/or inorganic bases, such sodium hydroxide, ammonium hydroxide, and diethylamine, and any kind of primary, secondary, or tertiary amine (including alkanol amine). In various exemplary embodiments, the neutralization agents may include at least one of sodium hydroxide and triethanolamine.
In some exemplary embodiments, the primary crosslinking agent is present in the aqueous binder composition in at least 50 wt. %, based on the total solids content of the aqueous binder composition, including, without limitation at least 55 wt. %, at least 60 wt. %, at least 63 wt. %, at least 65 wt. %, at least 70 wt. %, at least 73 wt. %, at least 75 wt. %, at least 78 wt. %, and at least 80 wt. %. In some exemplary embodiments, the primary crosslinking agent is present in the aqueous binder composition in an amount from 50% to 85% by weight, based on the total solids content of the aqueous binder composition, including without limitation 60% to 80% by weight, 62% to 78% by weight, and 65% to 75% by weight.
In some exemplary embodiments, the long-chain polyol comprises a polyol having at least two hydroxyl groups having a number average molecular weight of at least 2,000 Daltons, such as a molecular weight between 3,000 Daltons and 4,000 Daltons. In some exemplary embodiments, the long-chain polyol comprises one or more of a polymeric polyhydroxy compound, such as a polyvinyl alcohol, polyvinyl acetate, which may be partially or fully hydrolyzed, or mixtures thereof. Illustratively, when a partially hydrolyzed polyvinyl acetate serves as the polyhydroxy component, an 80%-89% hydrolyzed polyvinyl acetate may be utilized, such as, for example Poval® 385 (Kuraray America, Inc.) and Sevol™ 502 (Sekisui Specialty Chemicals America, LLC), both of which are about 85% (Poval® 385) and 88% (Selvol™ 502) hydrolyzed.
The long-chain polyol may be present in the aqueous binder composition in an amount up to about 30% by weight total solids, including without limitation, up to about 28%, 25%, 20%, 18%, 15%, and 13% by weight total solids. In some exemplary embodiments, the long-chain polyol is present in the aqueous binder composition in an amount from 5.0% to 30% by weight total solids, including without limitation 7% to 25%, 8% to 20%, 9% to 18%, and 10% to 16%, by weight total solids.
Optionally, the aqueous binder composition includes a secondary crosslinking agent, such as a short-chain polyol. The short-chain polyol may comprise a water-soluble compound having a molecular weight of less than 2,000 Daltons, including less than 750 Daltons, less than 500 Daltons and having a plurality of hydroxyl (—OH) groups. Suitable short-chain polyol components include sugar alcohols, 2,2-bis(methylol)propionic acid (bis-MPA), tri(methylol)propane (TMP), and short-chain alkanolamines, such as triethanolamine. In some exemplary embodiments, the short-chain polyol serves as a viscosity reducing agent, which breaks down the intra and inter molecular hydrogen bonds between the long-chain polyol molecules (e.g., polyvinyl alcohol) and thus lowers the viscosity of the composition. However, as these small-chain polyol molecules have similar structures to the long-chain polyols, they can react similarly with cross-linking agents, thus they do not negatively impact the binder and product performance.
Sugar alcohol is understood to mean compounds obtained when the aldo or keto groups of a sugar are reduced (e.g. by hydrogenation) to the corresponding hydroxy groups. The starting sugar might be chosen from monosaccharides, oligosaccharides, and polysaccharides, and mixtures of those products, such as syrups, molasses and starch hydrolyzates. The starting sugar also could be a dehydrated form of a sugar. Although sugar alcohols closely resemble the corresponding starting sugars, they are not sugars. Thus, for instance, sugar alcohols have no reducing ability, and cannot participate in the Maillard reaction typical of reducing sugars. In some exemplary embodiments, the sugar alcohol includes glycerol, erythritol, arabitol, xylitol, sorbitol, maltitol, mannitol, iditol, isomaltitol, lactitol, cellobitol, palatinitol, maltotritol, syrups thereof and mixtures thereof. In various exemplary embodiments, the sugar alcohol is selected from glycerol, sorbitol, xylitol, and mixtures thereof. In some exemplary embodiments, the secondary cross-linking agent is a dimeric or oligomeric condensation product of a sugar alcohol. In various exemplary embodiments, the condensation product of a sugar alcohol is isosorbide. In some exemplary embodiments, the sugar alcohol is a diol or glycol.
In some exemplary embodiments, the short-chain polyol is present in the aqueous binder composition in an amount up to about 30% by weight total solids, including without limitation, up to about 25%, 20%, 18%, 15%, 13%, 11%, and 10% by weight total solids. In some exemplary embodiments, the short-chain polyol is present in the aqueous binder composition in an amount from 0 to 30% by weight total solids, including without limitation 2% to 30%, 3% to 25%, 5% to 20%, 8% to 18%, and 9% to 15%, by weight total solids.
In various exemplary embodiments, the long-chain polyol, crosslinking agent, and small-chain polyol are present in amounts such that the ratio of the number of molar equivalents of carboxylic acid groups, anhydride groups, or salts thereof to the number of molar equivalents of hydroxyl groups is from about 1/0.05 to about 1/5, such as from about 1/0.08 to about 1/2.0, from about 1/0.1 to about 1/1.5, and about 1/0.3 to about 1/0.66. It has surprisingly been discovered, however, that within this ratio, the ratio of long-chain polyol to short-chain polyol effects the performance of the binder composition, such as the tensile strength and water solubility of the binder after cure. For instance, it has been discovered that a ratio of long-chain polyol to short-chain polyol between about 0.1/0.9 to about 0.9/0.1, such as between about 0.3/0.7 and 0.7/0.3, or between about 0.4/0.6 and 0.6/0.4 provides a balance of desirable mechanical and physical properties. In various exemplary embodiments, the ratio of long-chain polyol to short-chain polyol is approximately 0.5/0.5. The ratio of long-chain polyol to short-chain polyol may be optimized such that particular properties are optimized, depending on the needs of an end-use application. For instance, lowering the long-chain polyol concentration may decrease the tensile strength of a product formed with the binder composition. However, lowering the long-chain polyol may affect other properties, such as physical properties. Thus, a balance between various properties has been unexpectedly struck within the ratios disclosed herein.
Optionally, the aqueous binder composition may include an esterification catalyst, also known as a cure accelerator. The catalyst may include inorganic salts, Lewis acids (i.e., aluminum chloride or boron trifluoride), Bronsted acids (i.e., sulfuric acid, p-toluenesulfonic acid and boric acid) organometallic complexes (i.e., lithium carboxylates, sodium carboxylates), and/or Lewis bases (i.e., polyethyleneimine, diethylamine, or triethylamine). Additionally, the catalyst may include an alkali metal salt of a phosphorous-containing organic acid; in particular, alkali metal salts of phosphorus acid, hypophosphorus acid, or polyphosphoric. Examples of such phosphorus catalysts include, but are not limited to, sodium hypophosphite, sodium phosphate, potassium phosphate, disodium pyrophosphate, tetrasodium pyrophosphate, sodium tripolyphosphate, sodium hexametaphosphate, potassium phosphate, potassium tripolyphosphate, sodium trimetaphosphate, sodium tetrametaphosphate, and mixtures thereof. In addition, the catalyst or cure accelerator may be a fluoroborate compound such as fluoroboric acid, sodium tetrafluoroborate, potassium tetrafluoroborate, calcium tetrafluoroborate, magnesium tetrafluoroborate, zinc tetrafluoroborate, ammonium tetrafluoroborate, and mixtures thereof. Further, the catalyst may be a mixture of phosphorus and fluoroborate compounds. Other sodium salts such as, sodium sulfate, sodium nitrate, sodium carbonate may also or alternatively be used as the catalyst.
The catalyst may be present in the aqueous binder composition in an amount from about 0% to about 10% by weight of the total solids in the binder composition, including without limitation, amounts from about 1% to about 5% by weight, or from about 2% to about 4.5% by weight, or from about 2.8% to about 4.0% by weight, or from about 3.0% to about 3.8% by weight.
Optionally, the aqueous binder composition may contain at least one coupling agent. In at least one exemplary embodiment, the coupling agent is a silane coupling agent. The coupling agent(s) may be present in the binder composition in an amount from about 0.01% to about 5% by weight of the total solids in the binder composition, from about 0.01% to about 2.5% by weight, from about 0.05% to about 1.5% by weight, or from about 0.1% to about 1.0% by weight.
Non-limiting examples of silane coupling agents that may be used in the binder composition may be characterized by the functional groups alkyl, aryl, amino, epoxy, vinyl, methacryloxy, ureido, isocyanato, and mercapto. In exemplary embodiments, the silane coupling agent(s) include silanes containing one or more nitrogen atoms that have one or more functional groups such as amine (primary, secondary, tertiary, and quaternary), amino, imino, amido, imido, ureido, or isocyanato. Specific, non-limiting examples of suitable silane coupling agents include, but are not limited to, aminosilanes (e.g., triethoxyaminopropylsilane; 3-aminopropyltriethoxysilane and 3-aminopropyl-trihydroxysilane), epoxy trialkoxysilanes (e.g., 3-glycidoxypropyltrimethoxysilane and 3-glycidoxypropyltriethoxysilane), methyacryl trialkoxysilanes (e.g., 3-methacryloxypropyltrimethoxysilane and 3-methacryloxypropyltriethoxysilane), hydrocarbon trialkoxysilanes, amino trihydroxysilanes, epoxy trihydroxysilanes, methacryl trihydroxy silanes, and/or hydrocarbon trihydroxysilanes. In one or more exemplary embodiment, the silane is an aminosilane, such as γ-aminopropyltriethoxysilane.
Optionally, the aqueous binder composition may include a process aid. The process aid is not particularly limiting so long as the process aid functions to facilitate the processing of the fibers formation and orientation. The process aid can be used to improve binder application distribution uniformity, to reduce binder viscosity, to increase ramp height after forming, to improve the vertical weight distribution uniformity, and/or to accelerate binder de-watering in both forming and oven curing process. The process aid may be present in the binder composition in an amount from 0 to about 10% by weight, from about 0.1% to about 5.0% by weight, or from about 0.3% to about 2.0% by weight, or from about 0.5% to 1.0% by weight, based on the total solids content in the binder composition. In some exemplary embodiments, the aqueous binder composition is substantially or completely free of any processing aids.
Examples of processing aids include defoaming agents, such as, emulsions and/or dispersions of mineral, paraffin, or vegetable oils; dispersions of polydimethylsiloxane (PDMS) fluids, and silica which has been hydrophobized with polydimethylsiloxane or other materials. Further processing aids may include particles made of amide waxes such as ethylenebis-stearamide (EBS) or hydrophobized silica. A further process aid that may be utilized in the binder composition is a surfactant. One or more surfactants may be included in the binder composition to assist in binder atomization, wetting, and interfacial adhesion.
The surfactant is not particularly limited, and includes surfactants such as, but not limited to, ionic surfactants (e.g., sulfate, sulfonate, phosphate, and carboxylate); sulfates (e.g., alkyl sulfates, ammonium lauryl sulfate, sodium lauryl sulfate (SDS), alkyl ether sulfates, sodium laureth sulfate, and sodium myreth sulfate); amphoteric surfactants (e.g., alkylbetaines such as lauryl-betaine); sulfonates (e.g., dioctyl sodium sulfosuccinate, perfluorooctanesulfonate, perfluorobutanesulfonate, and alkyl benzene sulfonates); phosphates (e.g., alkyl aryl ether phosphate and alkyl ether phosphate); carboxylates (e.g., alkyl carboxylates, fatty acid salts (soaps), sodium stearate, sodium lauroyl sarcosinate, carboxylate fluorosurfactants, perfluoronanoate, and perfluorooctanoate); cationic (e.g., alkylamine salts such as laurylamine acetate); pH dependent surfactants (primary, secondary or tertiary amines); permanently charged quaternary ammonium cations (e.g., alkyltrimethylammonium salts, cetyl trimethylammonium bromide, cetyl trimethylammonium chloride, cetylpyridinium chloride, and benzethonium chloride); and zwitterionic surfactants, quaternary ammonium salts (e.g., lauryl trimethyl ammonium chloride and alkyl benzyl dimethylammonium chloride), and polyoxyethylenealkylamines.
Suitable nonionic surfactants that can be used in conjunction with the binder composition include polyethers (e.g., ethylene oxide and propylene oxide condensates, which include straight and branched chain alkyl and alkaryl polyethylene glycol and polypropylene glycol ethers and thioethers); alkylphenoxypoly(ethyleneoxy)ethanols having alkyl groups containing from about 7 to about 18 carbon atoms and having from about 4 to about 240 ethyleneoxy units (e.g., heptylphenoxypoly(ethyleneoxy) ethanols, and nonylphenoxypoly(ethyleneoxy) ethanols); polyoxyalkylene derivatives of hexitol including sorbitans, sorbides, mannitans, and mannides; partial long-chain fatty acids esters (e.g., polyoxyalkylene derivatives of sorbitan monolaurate, sorbitan monopalmitate, sorbitan monostearate, sorbitan tristearate, sorbitan monooleate, and sorbitan trioleate); condensates of ethylene oxide with a hydrophobic base, the base being formed by condensing propylene oxide with propylene glycol; sulfur containing condensates (e.g., those condensates prepared by condensing ethylene oxide with higher alkyl mercaptans, such as nonyl, dodecyl, or tetradecyl mercaptan, or with alkylthiophenols where the alkyl group contains from about 6 to about 15 carbon atoms); ethylene oxide derivatives of long-chain carboxylic acids (e.g., lauric, myristic, palmitic, and oleic acids, such as tall oil fatty acids); ethylene oxide derivatives of long-chain alcohols (e.g., octyl, decyl, lauryl, or cetyl alcohols); and ethylene oxide/propylene oxide copolymers.
In at least one exemplary embodiment, the surfactants include one or more of Dynol 607, which is a 2,5,8,11-tetramethyl-6-dodecyne-5,8-diol, SURFONYL® 420, SURFONYL® 440, and SURFONYL® 465, which are ethoxylated 2,4,7,9-tetramethyl-5-decyn-4,7-diol surfactants (commercially available from Evonik Corporation (Allentown, Pa.)), Stanfax (a sodium lauryl sulfate), Surfynol 465 (an ethoxylated 2,4,7,9-tetramethyl 5 decyn-4,7-diol), Triton™ GR-PG70 (1,4-bis(2-ethylhexyl) sodium sulfosuccinate), and Triton™ CF-10 (poly(oxy-1,2-ethanediyl), alpha-(phenylmethyl)-omega-(1,1,3,3-tetramethylbutyl)phenoxy). The binder composition may also include organic and/or inorganic acids and bases as pH adjusters in an amount sufficient to adjust the pH to a desired level. The pH may be adjusted depending on the intended application, to facilitate the compatibility of the ingredients of the binder composition, or to function with various types of fibers. In some exemplary embodiments, the pH adjuster is utilized to adjust the pH of the binder composition to an acidic pH. Examples of suitable acidic pH adjusters include inorganic acids such as, but not limited to sulfuric acid, phosphoric acid and boric acid and also organic acids like p-toluenesulfonic acid, mono- or polycarboxylic acids, such as, but not limited to, citric acid, acetic acid and anhydrides thereof, adipic acid, oxalic acid, and their corresponding salts. Also, inorganic salts that can be acid precursors. The acid adjusts the pH, and in some instances, as discussed above, acts as a crosslinking agent. In other exemplary embodiment, organic and/or inorganic bases, can be included to increase the pH of the binder composition. In some exemplary embodiments, the bases may be a volatile or non-volatile base. Exemplary volatile bases include, for example, ammonia and alkyl-substituted amines, such as methyl amine, ethyl amine or 1-aminopropane, dimethyl amine, and ethyl methyl amine. Exemplary non-volatile bases include, for example, sodium hydroxide, potassium hydroxide, sodium carbonate, and t-butylammonium hydroxide.
When in an un-cured state, the pH of the binder composition may range from about 2 to about 5, including all amounts and ranges in between. In some exemplary embodiments, the pH of the binder composition, when in an un-cured state, is about 2.2-4.0, including about 2.5-3.8, and about 2.6-3.5. After cure, the pH of the binder composition may rise to at least a pH of 6.0, including levels between about 6.5 and 7.2, or between about 6.8 and 7.2.
Optionally, the binder may contain a dust suppressing agent to reduce or eliminate the presence of inorganic and/or organic particles which may have adverse impact in the subsequent fabrication and installation of the insulation materials. The dust suppressing agent can be any conventional mineral oil, mineral oil emulsion, natural or synthetic oil, bio-based oil, or lubricant, such as, but not limited to, silicone and silicone emulsions, polyethylene glycol, as well as any petroleum or non-petroleum oil with a high flash point to minimize the evaporation of the oil inside the oven.
In some exemplary embodiments, the aqueous binder composition includes up to about 10 wt. % of a dust suppressing agent, including up to about 8 wt. %, or up to about 6 wt. %. In various exemplary embodiments, the aqueous binder composition includes between 0 wt. % and 10 wt. % of a dust suppressing agent, including about 1.0 wt. % to about 7.0 wt. %, or about 1.5 wt. % to about 6.5 wt. %, or about 2.0 wt. % to about 6.0 wt. %, or about 2.5 wt. % to 5.8 wt. %.
The binder further includes water to dissolve or disperse the active solids for application onto the reinforcement fibers. Water may be added in an amount sufficient to dilute the aqueous binder composition to a viscosity that is suitable for its application to the reinforcement fibers and to achieve a desired solids content on the fibers. It has been discovered that the present binder composition may contain a lower solids content than traditional phenol-urea formaldehyde or carbohydrate-based binder compositions. In particular, the binder composition may comprise 5% to 35% by weight of binder solids, including without limitation, 10% to 30%, 12% to 20%, and 15% to 19% by weight of binder solids. This level of solids indicates that the subject binder composition may include more water than traditional binder compositions. However, due to the high cure rate of the binder composition, the binder can be processed at a high ramp moisture level (about 8%-10%) and the binder composition requires less moisture removal than traditional binder compositions. The binder content may be measured as loss on ignition (LOI). In certain embodiments, LOI is 5% to 20%, including without limitation, 10% to 17%, 12% to 15%, and 13% to 14.5%.
In some exemplary embodiments, the binder composition is capable of achieving similar or higher performance than traditional phenolic or starch-hybrid binder compositions with lower LOI.
In some exemplary embodiments, the aqueous binder composition may also include one or more additives, such as a coupling agent, an extender, a crosslinking density enhancer, a deodorant, an antioxidant, a dust suppressing agent, a biocide, a moisture resistant agent, or combinations thereof. Optionally, the binder may comprise, without limitation, dyes, pigments, additional fillers, colorants, UV stabilizers, thermal stabilizers, anti-foaming agents, emulsifiers, preservatives (e.g., sodium benzoate), corrosion inhibitors, and mixtures thereof. Other additives may be added to the binder composition for the improvement of process and product performance. Such additives include lubricants, wetting agents, antistatic agents, and/or water repellent agents. Additives may be present in the binder composition from trace amounts (such as <about 0.1% by weight the binder composition) up to about 10% by weight of the total solids in the binder composition.
In some exemplary embodiments, the aqueous binder composition is substantially free of a monomeric carboxylic acid component. Exemplary monomeric polycarboxylic acid components include aconitic acid, adipic acid, azelaic acid, butane tetra carboxylic acid dihydrate, butane tricarboxylic acid, chlorendic anhydride, citraconic acid, citric acid, dicyclopentadiene-maleic acid adducts, diethylenetriamine pentacetic acid pentasodium salt, adducts of dipentene and maleic anhydride, endomethylenehexachlorophthalic anhydride, ethylenediamine tetraacetic acid (EDTA), fully maleated rosin, maleated tall oil fatty acids, fumaric acid, glutaric acid, isophthalic acid, itaconic acid, maleated rosin-oxidize unsaturation with potassium peroxide to alcohol then carboxylic acid, malic acid, maleic anhydride, mesaconic acid, oxalic acid, phthalic anhydride, polylactic acid, sebacic acid, succinic acid, tartaric acid, terephthalic acid, tetrabromophthalic anhydride, tetrachlorophthalic anhydride, tetrahydrophthalic anhydride, trimellitic anhydride, and trimesic acid.
In various exemplary embodiments, the aqueous binder composition includes a long-chain polyol (e.g., fully or partially hydrolyzed polyvinyl alcohol), a primary crosslinking agent (e.g., polymeric polycarboxylic acid), and a secondary crosslinking agent (e.g. a sugar alcohol). The range of components used in the inventive binder composition according to certain exemplary embodiments is set forth in Table 1.
Aqueous binder compositions according to various exemplary embodiments of the present disclosure may further include a catalyst/accelerator (e.g., sodium hypophosphite), a surfactant, and/or a coupling agent (e.g., silane) are set forth in Table 2.
In some exemplary embodiments, the binder composition is formulated to have a reduced level of water soluble material post-cure as determined by extracting water-soluble materials with deionized water for 2 hours at room temperature using about 1000 g of deionized water per about 1 gram of binder. The higher the level of water soluble material after cure, the more likely it is that a cured material suffers from leaching if/when exposed to water and/or a hot/humid environment. In some exemplary embodiments, the binder composition has no greater than 6 wt. % of water soluble material after cure. In some exemplary embodiments, the binder composition has less than 5.0 wt. % water soluble material after cure, including less than 5.0 wt. %, 4.0 wt. %, 3.0 wt. %, less than 2.5 wt. %, less than 2.0 wt. %, less than 1.5 wt. %, or less than 1.0 wt. %. It has been discovered that reducing the level of water soluble material after cure to no greater than 6.0 wt. %, will improve the tensile strength of the binder composition, as compared to an otherwise similar binder composition having greater than 6.0 wt. %, water soluble material after cure.
The amount of water soluble material remaining in the binder composition after cure may be determined at least in part by the amount of carboxylic acid groups in the binder. Particularly, excess acid groups increase the water-soluble content leads to an increase in water soluble material post-cure. As shown in Table 3, below, Comparative Examples 1 and 2 have COOH/OH ratios that are highly acidic, resulting in an unacceptably high percentage of water soluble material after cure. In contrast, the percentage of water soluble material remaining after cure decreases substantially at COOH/OH ratios of 1/0.1 or less.
It has further been discovered that the total polyol content should contain at least 10 wt. % of one or more short-chain polyols to produce a binder composition with an acceptably low level (e.g., no greater than 6 wt. %) of water soluble material after cure. This is particularly surprising since generally, short-chain polyols, such as sorbitol, have high water solubility. Thus, it would be expected that increasing the level of sorbitol would increase the amount of water soluble material in the binder composition.
In some exemplary embodiments, the binder composition has a viscosity of less than about 400 cP at 30% solids or less, including less than about 300 cP at 30% solids or less, and less than about 200 cP at 30% solids or less. In various exemplary embodiments, the viscosity of the binder composition is no greater than 250 cP at 30% solids or less.
The fibrous products of the present disclosure comprise a plurality of randomly oriented fibers. In certain exemplary embodiments, the plurality of randomly oriented fibers are mineral fibers, including, but not limited to glass fibers, glass wool fibers, mineral wool fibers, slag wool fibers, stone wool fibers, ceramic fibers, metal fibers, and combinations thereof.
Optionally, other reinforcing fibers such as natural fibers and/or synthetic fibers such as carbon, polyester, polyethylene, polyethylene terephthalate, polypropylene, polyamide, aramid, and/or polyaramid fibers may be used in the non-woven fiber mats. The term “natural fiber” as used herein refers to plant fibers extracted from any part of a plant, including, but not limited to, the stem, seeds, leaves, roots, or phloem. Examples of natural fibers suitable for use as the reinforcing fiber material include wood fibers, cellulosic fibers, straw, wood chips, wood strands, cotton, jute, bamboo, ramie, bagasse, hemp, coir, linen, kenaf, sisal, flax, henequen, and combinations thereof. Nonwoven products may be formed entirely of one type of fiber, or they may be formed of a combination of types of fibers. For example, the insulation products may be formed of combinations of various types of glass fibers or various combinations of different inorganic fibers and/or natural fibers depending on the desired application. In certain exemplary embodiments the insulation products are formed entirely of glass fibers.
Having generally described this invention, a further understanding can be obtained by reference to certain specific examples illustrated below which are provided for purposes of illustration only and are not intended to be all inclusive or limiting unless otherwise specified.
Binder formulations with varying carboxylic acid/hydroxyl ratios and varying polyvinyl alcohol/sorbitol ratios were utilized to form thin boards (425° F. cure temp and 0.125-inch thickness) that were cut into strips. These ratios are depicted below in Table 5. Each board strip was subjected to a 3-point bend test, wherein a load was placed in the middle of each strip and the amount of load the board strip was able to withstand prior to break was measured. The results are depicted in
As illustrated in
Binder compositions with varying COOH/OH and long-chain polyol/short-chain polyol ratios were utilized to form non-woven fiberglass binder impregnated filter (BIF) sheets having a width of 9.5 mm, thickness of 0.5 mm, and a length of 97 mm. The non-woven fiberglass BIF sheets were cured for 3 minutes and 30 seconds at 425° F. The tensile strength, the Loss on Ignition (LOI) and tensile strength divided by the LOI (tensile strength/LOI) for each sample was determined under ambient conditions and steam (“hot/humid”) conditions. The tensile strength was measured using Instron (Pulling speed of 2 inches/min). The LOI of the reinforcing fibers is the reduction in weight experienced by the fibers after heating them to a temperature sufficient to burn or pyrolyze the binder composition from the fibers. The LOI was measured according to the procedure set forth in TAPPI T-1013 OM06, Loss on Ignition of Fiberglass Mats (2006). To create the hot/humid environment, the filter sheets were placed in an autoclave at 240° F. at a pressure between 400 and 500 psi for 60 minutes.
As illustrated in
These relationships continue when the COOH/OH ratio is adjusted to 1/1.5, as illustrated in
As the COOH/OH ratio is adjusted to 1/0.5, 1/0.1, and 1/1, however, although the percent water soluble material similarly declines with increasing ratio of short-chain polyol, both the ambient and hot/humid tensile strengths remained relatively constant regardless of the long-chain/short-chain polyol ratio. See
Binder compositions with varying ratios were utilized to form fiberglass insulation board (e.g., ceiling tiles). The insulation boards formed with binder compositions according to the preset application (labeled as PAA/S/PVOH in various ratios of polyacrylic acid/sorbitol/polyvinyl alcohol) were compared to boards formed using both a conventional carbohydrate-based binder composition (“Starch-Hybrid Binder Board”) and a phenol urea formaldehyde binder composition (“PUF Board”). The elastic modulus, compressive strength (delta b), and sag (inches) for each sample was determined under ambient conditions.
As illustrated in
As shown in
It will be appreciated that many more detailed aspects of the illustrated products and processes are in large measure, known in the art, and these aspects have been omitted for purposes of concisely presenting the general inventive concepts. Although the present invention has been described with reference to particular means, materials and embodiments, from the foregoing description, one skilled in the art can easily ascertain the essential characteristics of the present disclosure and various changes and modifications can be made to adapt the various uses and characteristics without departing from the spirit and scope of the present invention as described above and set forth in the attached claims.
This application is a continuation of U.S. Non-Provisional patent application Ser. No. 16/154,794, filed Oct. 9, 2018, which claims priority to and any benefit of U.S. Provisional Patent Application No. 62/569,778, filed Oct. 9, 2017, the entire contents of which are incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
3920868 | Hammer | Nov 1975 | A |
4613627 | Sherman et al. | Sep 1986 | A |
4777763 | Shannon et al. | Oct 1988 | A |
4794728 | Tsukada et al. | Jan 1989 | A |
5244695 | Davidowich et al. | Sep 1993 | A |
5300192 | Hansen et al. | Apr 1994 | A |
5318990 | Strauss | Jun 1994 | A |
5342680 | Randall | Aug 1994 | A |
5349041 | Blum et al. | Sep 1994 | A |
5600919 | Kummermehr et al. | Feb 1997 | A |
5644880 | Lehnert et al. | Jul 1997 | A |
5660900 | Andersen et al. | Aug 1997 | A |
5661213 | Arkens et al. | Aug 1997 | A |
5679145 | Andersen et al. | Oct 1997 | A |
5810961 | Andersen et al. | Sep 1998 | A |
5948833 | Jilek et al. | Sep 1999 | A |
6030673 | Andersen et al. | Feb 2000 | A |
6068907 | Beauregard | May 2000 | A |
6071994 | Hummerich et al. | Jun 2000 | A |
6079153 | Templeton | Jun 2000 | A |
6099773 | Reck et al. | Aug 2000 | A |
6123172 | Byrd et al. | Sep 2000 | A |
6146746 | Reck et al. | Nov 2000 | A |
6150002 | Varona | Nov 2000 | A |
6221973 | Arkens et al. | Apr 2001 | B1 |
6299936 | Reck et al. | Oct 2001 | B1 |
6305495 | Keegan | Oct 2001 | B1 |
6331350 | Taylor et al. | Dec 2001 | B1 |
6443256 | Baig | Sep 2002 | B1 |
6511561 | Kohlhammer et al. | Jan 2003 | B1 |
6699945 | Chen et al. | Mar 2004 | B1 |
6734237 | Taylor et al. | May 2004 | B1 |
6759116 | Edlund | Jul 2004 | B2 |
6774071 | Horner et al. | Aug 2004 | B2 |
6780356 | Putt et al. | Aug 2004 | B1 |
6803439 | Taylor | Oct 2004 | B2 |
6818694 | Hindi et al. | Nov 2004 | B2 |
6838163 | Smith et al. | Jan 2005 | B2 |
6849683 | Husemoen et al. | Feb 2005 | B2 |
6884838 | Taylor et al. | Apr 2005 | B2 |
6933349 | Chen et al. | Aug 2005 | B2 |
6939818 | Drax et al. | Sep 2005 | B2 |
6951602 | Reuter et al. | Oct 2005 | B1 |
7026390 | O'Brien-Bernini et al. | Apr 2006 | B2 |
7067579 | Taylor | Jun 2006 | B2 |
7141284 | Newton et al. | Nov 2006 | B2 |
7157524 | Chen et al. | Jan 2007 | B2 |
7199179 | Clamen et al. | Apr 2007 | B2 |
7300892 | Porter | Nov 2007 | B2 |
7338702 | Swales et al. | Mar 2008 | B2 |
7351673 | Groh et al. | Apr 2008 | B1 |
7377084 | Swiszcz et al. | May 2008 | B2 |
7459490 | Husemoen et al. | Dec 2008 | B2 |
7547375 | Jaffee et al. | Jun 2009 | B2 |
7641764 | Yoshida et al. | Jan 2010 | B2 |
7803727 | Aseere et al. | Sep 2010 | B2 |
7807592 | Bland et al. | Oct 2010 | B2 |
7824762 | Ziegler | Nov 2010 | B2 |
7829488 | Bennett | Nov 2010 | B2 |
7833638 | Zheng et al. | Nov 2010 | B2 |
7842382 | Helbing | Nov 2010 | B2 |
7893154 | Van Herwijnen et al. | Feb 2011 | B2 |
7989370 | Currier et al. | Aug 2011 | B2 |
8007886 | Tierney et al. | Aug 2011 | B2 |
8017531 | Ahluwalia et al. | Sep 2011 | B2 |
8044168 | Gudik-Sorensen | Oct 2011 | B2 |
8069629 | Rockwell et al. | Dec 2011 | B2 |
8084379 | Hogan et al. | Dec 2011 | B2 |
8127509 | Propst | Mar 2012 | B2 |
8133952 | Pisanova et al. | Mar 2012 | B2 |
8209904 | Bouwens et al. | Jul 2012 | B2 |
8211974 | Shooshtari et al. | Jul 2012 | B2 |
8283266 | Jaffee et al. | Oct 2012 | B2 |
8299153 | Kelly | Oct 2012 | B2 |
8329798 | Clamen et al. | Dec 2012 | B2 |
8329817 | Espiard et al. | Dec 2012 | B2 |
8357746 | Shooshtari | Jan 2013 | B2 |
8486516 | Hauber et al. | Jul 2013 | B2 |
8552140 | Swift | Oct 2013 | B2 |
8603631 | Helbing | Dec 2013 | B2 |
8604122 | Kelly | Dec 2013 | B2 |
8607929 | Bliton et al. | Dec 2013 | B2 |
8623234 | Jaffrennou et al. | Jan 2014 | B2 |
8650913 | Chacko et al. | Feb 2014 | B2 |
8652579 | Shooshtari et al. | Feb 2014 | B2 |
8791198 | Miller et al. | Jul 2014 | B2 |
8808443 | Jaffrennou | Aug 2014 | B2 |
8815382 | Robinson, Jr. | Aug 2014 | B2 |
8864893 | Hawkins et al. | Oct 2014 | B2 |
8865816 | Zhang | Oct 2014 | B2 |
8974686 | Jaffrennou et al. | Mar 2015 | B2 |
8980774 | Zhang et al. | Mar 2015 | B2 |
9039827 | Hampson | May 2015 | B2 |
9172074 | Weber et al. | Oct 2015 | B2 |
9174868 | Jaffrennou et al. | Nov 2015 | B2 |
9217065 | Shoemake et al. | Dec 2015 | B2 |
9238749 | Michl et al. | Jan 2016 | B2 |
9290640 | Hawkins et al. | Mar 2016 | B2 |
9309436 | Swift | Apr 2016 | B2 |
9359720 | Chuda et al. | Jun 2016 | B2 |
9376810 | Kemp et al. | Jun 2016 | B2 |
9382404 | Zhang | Jul 2016 | B2 |
9404012 | Connaughton, I et al. | Aug 2016 | B2 |
9453140 | Varagnat et al. | Sep 2016 | B2 |
9486980 | Hauber et al. | Nov 2016 | B2 |
PP27475 | Kubby | Dec 2016 | P2 |
9550894 | Zhang et al. | Jan 2017 | B2 |
9609813 | Naerum et al. | Apr 2017 | B2 |
9683143 | Negri et al. | Jun 2017 | B2 |
9715872 | Guzman et al. | Jul 2017 | B2 |
9777472 | Wiker et al. | Oct 2017 | B2 |
9815928 | Williamson et al. | Nov 2017 | B2 |
9822042 | Rosenthal et al. | Nov 2017 | B2 |
9840061 | Jaffee | Dec 2017 | B2 |
9869089 | Thomas et al. | Jan 2018 | B2 |
9896807 | Englert et al. | Feb 2018 | B2 |
9909310 | Frank et al. | Mar 2018 | B2 |
9922634 | Thompson, Jr. et al. | Mar 2018 | B2 |
10119211 | Obert et al. | Nov 2018 | B2 |
10368502 | Letton et al. | Aug 2019 | B2 |
11111372 | Zhang et al. | Sep 2021 | B2 |
11136451 | Zhang | Oct 2021 | B2 |
20020188055 | Chen | Dec 2002 | A1 |
20030060113 | Christie et al. | Mar 2003 | A1 |
20040038017 | Tutin et al. | Feb 2004 | A1 |
20040209074 | Randall et al. | Oct 2004 | A1 |
20040219847 | Miller | Nov 2004 | A1 |
20050059770 | Srinivasan et al. | Mar 2005 | A1 |
20050215153 | Cossement et al. | Sep 2005 | A1 |
20050284065 | Shaffer | Dec 2005 | A1 |
20050288424 | Fisler et al. | Dec 2005 | A1 |
20060036014 | Hogan et al. | Feb 2006 | A1 |
20060078719 | Miele | Apr 2006 | A1 |
20060079629 | Taylor et al. | Apr 2006 | A1 |
20060101796 | Kern et al. | May 2006 | A1 |
20060137799 | Haque et al. | Jun 2006 | A1 |
20060168881 | Straumietis | Aug 2006 | A1 |
20060216489 | Shooshtari et al. | Sep 2006 | A1 |
20060217471 | Shooshtari et al. | Sep 2006 | A1 |
20060252855 | Pisanova | Nov 2006 | A1 |
20070010651 | Finch et al. | Jan 2007 | A1 |
20070125011 | Weir et al. | Jun 2007 | A1 |
20070270066 | Van Herwijnen et al. | Nov 2007 | A1 |
20080047548 | Konietzny et al. | Feb 2008 | A1 |
20080138526 | Tutin et al. | Jun 2008 | A1 |
20080152816 | Clamen et al. | Jun 2008 | A1 |
20080176050 | Lintz et al. | Jul 2008 | A1 |
20090036011 | Hunig et al. | Feb 2009 | A1 |
20090156724 | Espiard et al. | Jun 2009 | A1 |
20090208714 | Currier et al. | Aug 2009 | A1 |
20100016143 | Shooshtari et al. | Jan 2010 | A1 |
20100040832 | Herbert | Feb 2010 | A1 |
20100064618 | Boyd | Mar 2010 | A1 |
20100105272 | Nandi et al. | Apr 2010 | A1 |
20100154300 | Wiersma | Jun 2010 | A1 |
20100273006 | Rodrigues et al. | Oct 2010 | A1 |
20100320113 | Swift | Dec 2010 | A1 |
20110003522 | Chen et al. | Jan 2011 | A1 |
20110159768 | Crescimanno et al. | Jun 2011 | A1 |
20110189478 | Zhang et al. | Aug 2011 | A1 |
20120064323 | Shoemake et al. | Mar 2012 | A1 |
20120076983 | Yu et al. | Mar 2012 | A1 |
20120168054 | Chen et al. | Jul 2012 | A1 |
20120245277 | Michl et al. | Sep 2012 | A1 |
20120311744 | Sirkowski | Dec 2012 | A1 |
20130023174 | Quinn | Jan 2013 | A1 |
20130026408 | Jaffrennou et al. | Jan 2013 | A1 |
20130032749 | Jaffrennou et al. | Feb 2013 | A1 |
20130084445 | Haley et al. | Apr 2013 | A1 |
20130157030 | Frick et al. | Jun 2013 | A1 |
20130244525 | Chacko et al. | Sep 2013 | A1 |
20130334726 | Hernandez-Torres et al. | Dec 2013 | A1 |
20140038485 | Anderson et al. | Feb 2014 | A1 |
20140083328 | Lochel, Jr. et al. | Mar 2014 | A1 |
20140120348 | Didier et al. | May 2014 | A1 |
20140155353 | Tezuka et al. | Jun 2014 | A1 |
20140186635 | Mueller | Jul 2014 | A1 |
20140245797 | Haley et al. | Sep 2014 | A1 |
20140350142 | Hansen et al. | Nov 2014 | A1 |
20150010730 | Faynot et al. | Jan 2015 | A1 |
20150027052 | Janssen et al. | Jan 2015 | A1 |
20150152244 | Hernandez-Torres | Jun 2015 | A1 |
20150373936 | Bouwens et al. | Dec 2015 | A1 |
20160088809 | Lowe et al. | Mar 2016 | A1 |
20160131299 | Mueller et al. | May 2016 | A1 |
20160143228 | De Groot et al. | May 2016 | A1 |
20160145779 | Teng et al. | May 2016 | A1 |
20160208439 | Lelogeay | Jul 2016 | A1 |
20160208483 | Takeuchi et al. | Jul 2016 | A1 |
20160219810 | Erkkila et al. | Aug 2016 | A1 |
20160264461 | Peng et al. | Sep 2016 | A1 |
20160280971 | Hampson et al. | Sep 2016 | A1 |
20170022398 | Lochel, Jr. et al. | Jan 2017 | A1 |
20170037187 | Appley et al. | Feb 2017 | A1 |
20170150684 | Vuorinen et al. | Jun 2017 | A1 |
20170150687 | Loiske et al. | Jun 2017 | A1 |
20170190902 | Swift | Jul 2017 | A1 |
20170197379 | Teng et al. | Jul 2017 | A1 |
20170198142 | Hampson et al. | Jul 2017 | A1 |
20170210952 | Hampson et al. | Jul 2017 | A1 |
20170305783 | Faynot et al. | Oct 2017 | A1 |
20170332568 | Storey | Nov 2017 | A1 |
20170349718 | Albani et al. | Dec 2017 | A1 |
20170368792 | Faotto | Dec 2017 | A1 |
20180023291 | Wiker et al. | Jan 2018 | A1 |
20180031268 | Lopez Belbeze et al. | Feb 2018 | A1 |
20180037273 | Aarts et al. | Feb 2018 | A1 |
20180116131 | Leo | May 2018 | A1 |
20180139911 | Janssen | May 2018 | A1 |
20180312661 | Hernandez-Torres et al. | Nov 2018 | A1 |
20190106563 | Zhang et al. | Apr 2019 | A1 |
20190106564 | Zhang et al. | Apr 2019 | A1 |
20190124864 | Bassin et al. | May 2019 | A1 |
20190151771 | Thomas | May 2019 | A1 |
20190191641 | Jackson et al. | Jun 2019 | A1 |
20190259108 | Bongartz et al. | Aug 2019 | A1 |
20190330492 | Swift et al. | Oct 2019 | A1 |
20190359521 | Salomon et al. | Nov 2019 | A1 |
20190382628 | Alavi et al. | Dec 2019 | A1 |
20200095712 | Mueller et al. | Mar 2020 | A1 |
20200207972 | Ong et al. | Jul 2020 | A1 |
20200270404 | Funakoshi et al. | Aug 2020 | A1 |
20210095156 | Swift et al. | Apr 2021 | A1 |
20210172166 | Grant et al. | Jun 2021 | A1 |
20220064408 | Zhang et al. | Mar 2022 | A1 |
20220106419 | Mueller et al. | Apr 2022 | A1 |
20220106492 | Click et al. | Apr 2022 | A1 |
20220162410 | Mueller | May 2022 | A1 |
20220213628 | Smith | Jul 2022 | A1 |
Number | Date | Country |
---|---|---|
1228557 | Oct 1987 | CA |
2301248 | Sep 2000 | CA |
2834816 | Nov 2012 | CA |
2604809 | Apr 2013 | CA |
194242 | Oct 1989 | EP |
442811 | Dec 1993 | EP |
583086 | Nov 1997 | EP |
1022400 | Jul 2000 | EP |
715805 | Jul 2002 | EP |
1038433 | Jun 2008 | EP |
2071066 | Jun 2009 | EP |
2093266 | Aug 2009 | EP |
2324089 | May 2011 | EP |
2268126 | Apr 2012 | EP |
1303672 | Feb 2015 | EP |
2690217 | Mar 2015 | EP |
2855601 | Sep 2016 | EP |
3034555 | Apr 2017 | EP |
2197928 | May 2017 | EP |
2694717 | Jun 2017 | EP |
2844621 | Jun 2017 | EP |
1656981 | Jan 2018 | EP |
1800853 | Feb 2018 | EP |
2755498 | Feb 2018 | EP |
2324089 | Mar 2018 | EP |
2231543 | Sep 2018 | EP |
2017106133 | Jun 2017 | JP |
9204824 | Apr 1992 | WO |
9318642 | Sep 1993 | WO |
9961384 | Dec 1999 | WO |
2004076734 | Sep 2004 | WO |
2004098270 | Nov 2004 | WO |
2006136389 | Dec 2006 | WO |
2008009460 | Jan 2008 | WO |
2008009462 | Jan 2008 | WO |
2008009465 | Jan 2008 | WO |
2009080822 | Jul 2009 | WO |
2011044490 | Apr 2011 | WO |
2012118939 | Sep 2012 | WO |
2013021234 | Feb 2013 | WO |
2015144843 | Oct 2015 | WO |
2016025987 | Feb 2016 | WO |
2017074853 | May 2017 | WO |
2017084853 | May 2017 | WO |
2017157525 | Sep 2017 | WO |
2018010558 | Jan 2018 | WO |
2018158677 | Sep 2018 | WO |
2020144436 | Jul 2020 | WO |
2021118951 | Jun 2021 | WO |
2022051213 | Mar 2022 | WO |
Entry |
---|
Office Action from CN Application No. 201880065673.1 dated Dec. 29, 2021. |
Wikipedia, “Triose,” retrieved from <https://en.wikipedia.org/wiki/Triose> on Oct. 29, 2021. |
International Search Report and Written Opinion from PCT/US2018/054910 dated Dec. 20, 2018. |
Office Action in U.S. Appl. No. 16/154,794 dated Jul. 20, 2020. |
Office Action in U.S. Appl. No. 16/154,794 dated Dec. 21, 2020. |
Notice of Allowance in U.S. Appl. No. 16/154,794 dated Jun. 3, 2021. |
Extended European Search Report from EP Application No. 18867266.1 dated Jun. 1, 2021. |
Office Action from CN Application No. 201880065673.1 dated Jun. 17, 2021. |
Office Action from KR Application No. 10-2020-7012846 dated Feb. 10, 2023. |
Office Action from JP Application No. 2020-519347 dated Sep. 20, 2022. |
Communication from EP Application No. 18867266.1 dated Jun. 30, 2022. |
Office Action from AU Application No. 2018348020 dated Aug. 23, 2023. |
Examiner's Report from CA Application No. 3,075,644 dated Sep. 26, 2023. |
Lee et al., “A Review on Citric Acid as Green Modifying Agent and Binder for Wood,” Polymers, 2020; 12(8):1692, 21 pages. |
Number | Date | Country | |
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20210395508 A1 | Dec 2021 | US |
Number | Date | Country | |
---|---|---|---|
62569778 | Oct 2017 | US |
Number | Date | Country | |
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Parent | 16154794 | Oct 2018 | US |
Child | 17465938 | US |