Low-foaming cleaning composition
A quaternary ammonium compound-based cleaning composition with polycarboxylic acids addresses high foaming issues, ensuring effective disinfection and low-foaming suitability for dishwashing and stationary cleaning.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-04-29
- Publication Date
- 2026-03-16
AI Technical Summary
Quaternary ammonium compounds, known for their disinfectant properties, are not suitable for low-foaming applications due to high foaming under agitation, which interferes with dishwashing and stationary cleaning operations, and can leave residues on cleaned items.
A cleaning composition incorporating quaternary ammonium compounds with polycarboxylic acids or their salts, which have pKa values less than about 7, to reduce foaming and maintain effective disinfection under low-temperature conditions.
The composition achieves low-foaming properties while providing effective disinfection and bactericidal activity suitable for machine dishwashing and stationary cleaning, with reduced odor and residue formation.
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Abstract
Description
[Technical Field]
[0001] cross reference This application claims priority under § 119 of the United States Patent Act to U.S. Provisional Patent Application No. 62 / 704,256, filed on 30 April 2020, entitled “Low-Foaming Cleaning Composition,” which includes, without limitation, this Specification, Claims, Drawings, and Examples, the entirety of which is incorporated herein by reference.
[0002] The present invention relates to a cleaning composition having reduced foaming. Specifically, a cleaning composition comprising a quaternary ammonium compound, having reduced foaming. [Background technology]
[0003] Quaternary ammonium compounds are recognized for their disinfectant properties. However, they have not been incorporated into applications requiring low-foaming properties, primarily in machine dishwashing and stationary cleaning, but not limited to these. This is because quaternary ammonium compounds are known to have high foaming properties, especially under agitation or shear forces. High-foaming compositions are known to interfere with the operation of dishwashing machines and stationary cleaning. For example, foam accumulation can cause cavitation in pumps and hinder the proper mechanical function of spray arms. In addition, foam can dry on the items being cleaned (such as dishes), leaving residues. In applications where low-foaming compositions are preferred or required, the compositions have relied on other active compounds for bactericidal activity. For example, in such situations, chlorine and / or peroxide-based disinfectants are often relied upon. Accordingly, there is a need for quaternary ammonium disinfectant compositions suitable for low-foaming applications. [Overview of the project] [Problems that the invention aims to solve]
[0004] Therefore, an object of the present invention is to provide a low-foaming cleaning composition incorporating a quaternary ammonium compound.
[0005] A further object of the present invention is a composition suitable for use in machine dishwashing and stationary washing.
[0006] Furthermore, a further object of the present invention is to provide a composition suitable for low-temperature disinfection.
[0007] Other objects, advantages, and features of the present invention will become apparent from the following specification in conjunction with the accompanying drawings. [Means for solving the problem]
[0008] The advantages of the cleaning compositions described herein are that they have low-foaming properties while incorporating quaternary ammonium compounds. These compositions are also advantageous for use in machine dishwashing and stationary cleaning. Another advantage of these compositions is that they provide effective disinfection under low-temperature conditions. Furthermore, a further advantage of these compositions is that they have low-odor properties.
[0009] As disclosed herein, preferred embodiments are cleaning compositions comprising a quaternary ammonium compound and a polycarboxylic acid and / or a salt thereof, wherein the polycarboxylic acid has at least two pKa values, each of which is less than about 7.
[0010] Furthermore, this specification discloses a preferred method for cleaning an article, comprising contacting the article with a cleaning composition comprising a quaternary ammonium compound and a polycarboxylic acid and / or a salt thereof, wherein the polycarboxylic acid has at least two pKa values, each of which is less than about 7.
[0011] In preferred embodiments, the polycarboxylic acid includes one or more of citric acid, succinic acid, malic acid, N-hydroxyethyliminodiacetic acid, nitrilotriacetic acid (NTA), ethylenediaminetetraacetic acid (EDTA), N-hydroxyethyl-ethylenediaminetriacetic acid (HEDTA), diethylenetriaminepentaacetic acid (DTPA), N,N-dicarboxymethylglutamate tetrasodium salt (GLDA), methylglycinediacetic acid (MGDA), salts of any of the above, or sodium xylenesulfonate. In preferred embodiments, the quaternary ammonium compound is alkyl(C8-C16)dimethylbenzylammonium chloride (ADBAC), alkyl(C8-C16)dimethylethylbenzylammonium chloride (ADEBAC), dialkyl(C8-C16)dimethylammonium chloride (DAAC), or a mixture thereof. As disclosed herein, the composition may be solid or liquid and may further include one or more of dyes, odorants, pH adjusters, coatings, and surfactants. Furthermore, this specification discloses preferred methods for producing cleaning compositions.
[0012] While several embodiments of the present invention are disclosed, other embodiments will become apparent to those skilled in the art from the following detailed description, which illustrates exemplary embodiments of the present invention. Therefore, the examples, drawings, and detailed description should be considered illustrative and not limiting. [Brief explanation of the drawing]
[0013] [Figure 1A] The bar graphs show the foaming properties of various quaternary ammonium compounds immediately after mixing in solution, approximately 15 seconds after mixing, and approximately 1 minute after mixing, both individually and in the presence of conventional defoaming surfactants. Foam height measurements are shown in inches. [Figure 1B] The bar graphs show the foaming properties of various quaternary ammonium compounds immediately after mixing in solution, approximately 15 seconds after mixing, and approximately 1 minute after mixing, both individually and in the presence of conventional defoaming surfactants. Foam height measurements are shown in inches. [Figure 2A]The bar graphs show the foaming properties of various quaternary ammonium compounds immediately after mixing in solution, approximately 15 seconds after mixing, and approximately 1 minute after mixing, both individually and in the presence of polycarboxylic acids and / or salts. Foam height measurements are shown in inches. [Figure 2B] The bar graphs show the foaming properties of various quaternary ammonium compounds immediately after mixing in solution, approximately 15 seconds after mixing, and approximately 1 minute after mixing, both individually and in the presence of polycarboxylic acids and / or salts. Foam height measurements are shown in inches.
[0014] Various embodiments of the present invention will be described in detail with reference to the drawings. References to various embodiments do not limit the scope of the invention. The figures shown herein are not limited to various embodiments of the present invention, but are presented for illustrative purposes. [Modes for carrying out the invention]
[0015] This disclosure relates to low-foaming cleaning compositions containing quaternary ammonium compounds. These cleaning compositions offer several advantages over existing low-foaming cleaning compositions. For example, the low-foaming cleaning compositions incorporate quaternary ammonium compounds while maintaining low-foaming properties. Therefore, these compositions are suitable for applications requiring low foaming, such as machine dishwashing and stationary cleaning. In addition, these compositions provide effective bactericidal activity under low-temperature conditions. In preferred embodiments, the cleaning compositions can be used as disinfectant compositions.
[0016] Embodiments of the present invention are not limited to specific cleaning conditions, soiling, or cleaning equipment, which may vary and will be understood by those skilled in the art. Furthermore, it should be understood that all technical terms used herein are for the sole purpose of describing specific embodiments and are not intended to limit them in any way or to any extent.
[0017] Numerical ranges described herein include the digit defining the range and each integer within the defined range. Throughout this disclosure, various aspects of the invention are presented in range form. It should be understood that descriptions in range form are merely for convenience and brevity and should not be interpreted as a rigid limitation to the scope of the invention. Accordingly, a description of a range should be considered to specifically disclose all possible subranges, fractions, and individual numbers within that range. For example, a description of a range such as 1 to 6 should be considered to specifically disclose subranges such as 1 to 3, 1 to 4, 1 to 5, 2 to 4, 2 to 6, 3 to 6, as well as individual numbers within that range, such as 1, 2, 3, 4, 5, and 6, and decimals and fractions, such as 1.2, 3.8, 1 and 1 / 2, and 4 and 3 / 4. This applies regardless of the breadth of the range.
[0018] definition To facilitate understanding of the present invention, certain terms are defined first. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to whom embodiments of the present invention relate. Many methods and materials similar, modified, or equivalent to those described herein can be used in carrying out embodiments of the present invention without excessive experimentation, and preferred materials and methods are described herein. In describing embodiments of the present invention and in claiming them, the following technical terms are used according to the definitions set forth below.
[0019] As used herein, the term “about” refers to any variation of a quantity that can be achieved, for example, through typical measuring techniques and equipment, with respect to any quantifiable variable, including but not limited to mass, volume, time, temperature, pH, and a log count of bacteria or viruses. Furthermore, considering the handling procedures of solids and liquids used in the real world, there are likely to be certain inadequate errors and variations that occur through differences in the manufacture, source, or purity of components used to prepare compositions or perform methods, etc. The term “about” also encompasses these variations. Whether modified by the term “about,” the claims include equivalents to that quantity.
[0020] The terms “active substance,” “percentage of active substance,” “weight percentage of active substance,” or “concentration of active substance” are used interchangeably herein and refer to the concentration of a purifying component expressed as a percentage after subtracting inert components such as water or salt.
[0021] As used herein, the terms "alkyl" or "alkyl group" refer to saturated hydrocarbons having one or more carbon atoms, and include linear alkyl groups (e.g., methyl, ethyl, propyl, butyl, pentyl, hexyl, heptyl, octyl, nonyl, decyl, etc.), cyclic alkyl groups (or "cycloalkyl," "alicyclic," or "carbocyclic" groups) (e.g., cyclopropyl, cyclopentyl, cyclohexyl, cycloheptyl, cyclooctyl, etc.), branched alkyl groups (e.g., isopropyl, tert-butyl, sec-butyl, isobutyl, etc.), and alkyl-substituted alkyl groups (e.g., alkyl-substituted cycloalkyl groups and cycloalkyl-substituted alkyl groups).
[0022] Unless otherwise specified, the term “alkyl” includes both “unsubstituted alkyl” and “substituted alkyl.” As used herein, the term “substituted alkyl” refers to an alkyl group having substituents that substitute one or more hydrogens on one or more carbons of a hydrocarbon skeleton. Such substituents include, for example, alkenyl, alkynyl, halogeno, hydroxyl, alkylcarbonyloxy, arylcarbonyloxy, alkoxycarbonyloxy, aryloxy, aryloxycarbonyloxy, carboxylate, alkylcarbonyl, arylcarbonyl, alkoxycarbonyl, aminocarbonyl, alkylaminocarbonyl, dialkylaminocarbonyl, alkylthiocarbonyl, alkoxyl, phosphate, phosphonate, phosphinato, Examples include cyano, amino (including alkylamino, dialkylamino, arylamino, diarylamino, and alkylarylamino), acylamino (including alkylcarbonylamino, arylcarbonylamino, carbamoyl, and ureido), imino, sulfhydryl, alkylthio, arylthio, thiocarboxylate, sulfate, alkylsulfinyl, sulfonate, sulfamoyl, sulfonamide, nitro, trifluoromethyl, cyano, azide, heterocyclic, alkylaryl, or aromatic (including heteroaromatic) groups.
[0023] In some embodiments, the substituted alkyl group may include a heterocyclic group. As used herein, the term “heterocyclic group” includes a ring-closed structure similar to a carbocyclic group, in which one or more of the carbon atoms in the ring are elements other than carbon, such as nitrogen, sulfur, or oxygen. The heterocyclic group may be saturated or unsaturated. Examples of heterocyclic groups, but not limited to these, include aziridine, ethylene oxide (epoxide, oxirane), thiirane (episulfide), dioxirane, azetidine, oxetane, thiethane, dioxetane, dithiethane, dithiethone, azolidine, pyrrolidine, pyrroline, oxolane, dihydrofuran, and furan.
[0024] As used herein, the term “cleaning” refers to methods used to promote or assist in the removal of dirt, bleaching, reduction of microbial populations, and any combination thereof. As used herein, the term “microorganism” refers to any noncellular or single-celled (including colonies) organism. Microorganisms include all prokaryotes. Microorganisms include bacteria (including cyanobacteria), spores, lichens, fungi, protists, bilinos, viroids, viruses, phages, and some algae. As used herein, the term “microbe” is synonymous with “microorganism.”
[0025] As used in this specification, the term “bactericide” refers to an agent that kills all vegetative cells, including the most recognized pathogenic microorganisms, using the procedures described in AOAC Use Dilution Methods, Official Methods of Analysis of the Association of Official Analytical Chemists, paragraph 955.14 and applicable sections, 15th Edition, 1990 (EPA Guideline 91-2). As used herein, the term “high-level bactericide” refers to a compound or composition that is effective in killing substantially all organisms except high levels of bacterial spores and is authorized by the Food and Drug Administration to be marketed as a sterilizer. As used herein, the term “intermediate-level bactericide” refers to a compound or composition that is effective in killing mycobacteria, most viruses, and bacteria with a chemical disinfectant registered by the Environmental Protection Agency (EPA) as a tuberculosis killer. As used herein, the term “low-level bactericide” refers to a compound or composition that is effective in killing some viruses and bacteria with a chemical disinfectant registered by the EPA as a hospital disinfectant.
[0026] As used herein, the term “food processing surface” refers to the surface of tools, machinery, equipment, structures, buildings, etc., used as part of food processing, cooking, or storage activities. Examples of food processing surfaces include the surfaces of food processing or cooking equipment (e.g., slicing, canning, or handling equipment including flumes), the surfaces of food processing ware (e.g., cookware, dishes, washing ware, and bar glasses), and the surfaces of floors, walls, or fixtures of structures in which food processing takes place. Food processing surfaces are found and used in food spoilage prevention air circulation systems, aseptic packaging disinfection, cleaners and disinfectants for food refrigeration and coolers, equipment cleaning and disinfection, blancher cleaning and disinfection, food packaging materials, cutting board additives, third-sink disinfection, beverage coolers and warmers, water for meat cooling or hot water treatment, automatic dish disinfectants, disinfectant gels, cooling towers, antimicrobial clothing sprays for food processing, and non-aqueous to low-aqueous food processing lubricants, oils, and rinsing additives.
[0027] As used herein, the term “food” includes any food substance that may require treatment with an antimicrobial agent or composition, and which may be eaten after further cooking or without further cooking. Foods include meat (e.g., red meat and pork), seafood, poultry, agricultural products (e.g., fruits and vegetables), eggs, live eggs, egg products, instant foods, wheat, seeds, roots, tubers, leaves, stems, corn, flowers, buds, seasonings, or combinations thereof. The term “agricultural products” refers to foods such as fruits and vegetables and plants or plant-derived materials that are typically uncooked, often sold unpackaged, and sometimes eaten raw.
[0028] The term "hard surface" refers to substantially inflexible solid surfaces such as countertops, tiles, floors, walls, panels, windows, plumbing fixtures, kitchen and bathroom furniture, electrical appliances, engines, circuit boards, and dishes. Hard surfaces may also include, for example, healthcare surfaces and food processing surfaces.
[0029] As used herein, the term “healthcare surface” refers to the surface of instruments, devices, carts, cages, furniture, structures, buildings, etc., used as part of healthcare activities. Examples of healthcare surfaces include the surfaces of medical or dental instruments, medical or dental devices, electronic devices used to monitor a patient’s health, and the surfaces of floors, walls, or fixtures in structures where healthcare is performed. Healthcare surfaces are found in hospitals, surgical facilities, frailty centers, maternity homes, funeral homes, and clinical diagnostic rooms. These surfaces may be represented as “hard surfaces” (walls, floors, bedpans, etc.), or woven surfaces, such as knitted, woven, and nonwoven surfaces (surgical clothing, curtains, bed linens, bandages, etc.), or patient care equipment (respirators, diagnostic instruments, shunts, body scopes, wheelchairs, beds, etc.), or surgical and diagnostic equipment. Healthcare surfaces also include articles and surfaces used in veterinary medicine.
[0030] As used herein, the term “apparatus” refers to a variety of medical or dental instruments or devices that can benefit from purification with the compositions according to the present invention.
[0031] The term “laundry” refers to items or articles that are washed in a washing machine. Generally, laundry refers to any item or article made from, or containing, woven materials, fabrics, nonwovens, and knitted fabrics. Textile materials may include natural or synthetic fibers such as silk fibers, linen fibers, cotton fibers, polyester fibers, polyamide fibers such as nylon, acrylic fibers, acetate fibers, and blends thereof, including cotton and polyester blends. Fibers may be treated or untreated. Exemplary treated fibers include those treated for flame retardancy. It should be understood that the term “linen” is often used to describe certain types of laundry items, including bed sheets, pillowcases, towels, table linens, tablecloths, bar mops, and uniforms. The present invention additionally provides compositions and methods for treating non-laundry articles and surfaces, including hard surfaces such as dishes, glass, and other utensils.
[0032] As used herein, the terms “medical instrument,” “dental instrument,” “medical device,” “dental device,” “medical equipment,” or “dental equipment” refer to instruments, devices, tools, electrical appliances, apparatus, and equipment used in medical or dental settings. Such instruments, devices, and equipment may be refractory, immersed, or washed, and then heat-sterilized, or otherwise benefit from the purification of the compositions of the present invention. These various instruments, devices, and equipment include, but are not limited to, diagnostic instruments, trays, pans, holders, racks, forceps, scissors, shears, saws (e.g., bone saws and their blades), hemostatic forceps, knives, chisels, bone forceps, files, nippers, drills, drill bits, files, burrs, spreaders, breakers, elevators, clamps, needle holders, carriers, clips, hooks, gouges, curettes, retractors, straighteners, punches, extractors, scoops, corneal incision knives, spatulas, expressers, trocars, dilators, cages, glassware, tubing, catheters, cannulas, plugs, stents, scopes (e.g., endoscopes, stethoscopes, and arthroscopes), and related equipment, or combinations thereof.
[0033] As used herein, the terms “unpleasant odor,” “unpleasant smell,” or “malodorous smell” refer to a pungent, irritating, or pungent odor or air environment that, if possible, would typically cause a person to recoil. Hedonic tone provides a measure of whether an odor is pleasant or unpleasant. “Unpleasant odor,” “unpleasant smell,” or “malodorous smell” has a hedonic tone that would be rated as as unpleasant as, or more unpleasant than, a solution of 5% by weight of acetic acid, propionic acid, butyric acid, or a mixture thereof.
[0034] As used herein, the term “polymer” generally includes, but is not limited to, homopolymers, copolymers, such as block, graft, random, and alternating copolymers, terpolymers, and higher-order “x”mers, and further includes their derivatives, combinations, and blends. Furthermore, unless otherwise specifically limited, the term “polymer” shall include, but is not limited to, all possible isomeric configurations of a molecule, including isotactic, syndiotactic, and random symmetry, and combinations thereof. Furthermore, unless otherwise specifically limited, the term “polymer” shall include all possible geometric configurations of a molecule.
[0035] For the purposes of this patent application, successful microbial reduction is achieved when the microbial population is reduced by at least about 50%, or significantly more than that achieved by washing with water. A greater reduction in the microbial population results in a greater level of protection.
[0036] As used herein, the term “disinfectant” refers to an agent that reduces the number of bacterial contaminants to a safe level determined by public health requirements. In one embodiment, the disinfectant for use in the present invention will provide a reduction of at least 3-logarithmic order, and more preferably on the order of 5-logarithmic order. These reductions can be evaluated using the procedure described in Germicidal and Detergent Sanitizing Action of Disinfectants, Official Methods of Analysis of the Association of Official Analytical Chemists, paragraphs 960.09 and applicable parts, 15th Edition, 1990 (EPA Guideline 91-2). According to this reference, the disinfectant should provide a 99.999% reduction (a reduction on the order of 5-logarithmic order) to several test organisms within 30 seconds at room temperature, 25±2°C.
[0037] As used herein, the terms “dirt” or “stain” refer to non-polar oily substances which may or may not contain particulate matter such as mineral clay, sand, natural minerals, carbon black, graphite, kaolin, and environmental dust.
[0038] The distinction between "bactericidal" (-cidal) and "bacteriostatic" (-static) antimicrobial activity, the definitions describing the degree of effectiveness, and formal laboratory protocols for measuring this effectiveness are considerations for understanding the relationship between antimicrobial agents and compositions. Antimicrobial compositions can cause two types of microbial cell damage. The first is lethal and irreversible, resulting in the complete destruction or incapacitation of microbial cells. The second type of cell damage is reversible, and therefore, once the organism is released from the agent, it can grow again. The former is referred to as bactericidal, and the latter as bacteriostatic. Disinfectants and bactericides are, by definition, agents that provide antimicrobial or bactericidal activity. In contrast, preservatives are generally described as inhibitors or bacteriostatic compositions.
[0039] As used herein, the term “substantially absent” means a composition that either completely lacks the component or contains such a small amount of the component that it does not affect the performance of the composition. The component may be present as an impurity or contaminant and must not exceed 0.5% by weight. In another embodiment, the amount of the component is less than 0.1% by weight, and in yet another embodiment, the amount of the component is less than 0.01% by weight.
[0040] As used herein, the term “ware” refers to items such as food and cooking utensils, tableware, and other hard surfaces such as showers, sinks, toilets, bathtubs, countertops, windows, mirrors, transport vehicles, and floors. As used herein, the term “ware cleaning” refers to the washing, cleaning, or rinsing of ware. Ware also refers to plastic items. Types of plastics that can be cleaned with the compositions of the present invention include, but are not limited to, polycarbonate polymers (PC), acrylonitrile-butadiene-styrene polymers (ABS), and polysulfone polymers (PS). Another exemplary plastic that can be cleaned using the compounds and compositions of the present invention is polyethylene terephthalate (PET).
[0041] The terms "weight percent," "wt%," "percent by weight," and "% by weight," and their variations, as used herein, refer to the concentration of a substance obtained by dividing its weight by the total weight of the composition and multiplying by 100. As used herein, "percent," "%," etc., are intended to be synonymous with "weight percent," "wt%," etc.
[0042] The methods, systems, apparatus, and compositions of the present invention include, are essentially derived from, or may consist of the components and ingredients of the present invention, as well as other components described herein. As used herein, “essentially derived from” means that the methods, systems, apparatus, and compositions may include additional steps, components, or ingredients only if the additional steps, components, or ingredients do not materially alter the basic and novel features of the claimed methods, systems, apparatus, and compositions.
[0043] Low-foaming cleaning composition The low-foaming cleaning compositions described in this application may be liquid or solid. Solid compositions are concentrated and require dissolution in a sufficient amount of carrier to achieve the desired concentration of the active ingredient. Liquid compositions may be concentrated (requiring further dissolution before use) or ready-to-use solutions. The desired concentration for ready-to-use solutions may depend on their final use and application. Furthermore, it should be understood that the concentrations of concentrates may vary based on the final dilution ratio and whether the concentrate is formulated as an anhydrous or aqueous formulation.
[0044] The pH of the liquid composition or the solid composition when diluted may be in the range of about 4.5 to about 10, preferably about 4.5 to about 9, and more preferably about 5 to about 8.5. In the concentrated composition, the pH is preferably about 5 to about 10, more preferably about 5.5 to about 9.5. In the ready-to-use composition, the pH is preferably about 4.5 to about 9.5, more preferably about 5 to about 8.5, and most preferably about 5 to about 7.
[0045] Preferably, the low-foaming cleaning composition comprises a quaternary ammonium compound, a polycarboxylic acid and / or a salt thereof. The low-foaming cleaning composition may further comprise a carrier, a dye, an odorant, a pH adjuster, a coating agent, a solidifying agent, a surfactant, or a combination thereof. The low-foaming cleaning composition may be suitable for use as a dishwashing detergent, a rinsing aid, a disinfecting detergent, a disinfecting rinsing aid, a hard surface cleaner, a laundry detergent, and a laundry disinfectant.
[0046] Quaternary ammonium compounds The low-foaming cleaning compositions described herein contain quaternary ammonium compounds. The term "quaternary ammonium compound" generally refers to any composition having the following formula: [ka] In the formula, R1 to R4 each have a chain length of less than 16 carbon atoms, and X- is an anionic counterion. In embodiments, the alkyl groups may be the same or different, substituted or unsubstituted, saturated or unsaturated, branched or unbranched, cyclic or acyclic, and may have ether, ester, or amide bonds, and may be aromatic or substituted aromatic groups. The term “anionic counterion” includes any ion that can form a salt with a quaternary ammonium. Examples of suitable counterions include halides such as chlorides and bromides, methyl sulfate, carbonates, and bicarbonates. Preferably, the anionic counterion is a chloride. In some embodiments, the composition contains a quaternary ammonium having a chain of about 8 to 6, preferably 8 to 12, or more preferably 8 to 10 carbon atoms.
[0047] Preferred quaternary ammonium compounds are water-soluble compounds and may further include salts of the compounds described herein. Suitable salts include, but are not limited to, salts of both organic and inorganic acids, such as nitrates, sulfates, chlorides, bromides, iodides, methyl sulfates, methyl sulfonates, carbonates, bicarbonates, carboxylates, polycarboxylates, phosphates, and phosphonates.
[0048] Preferred quaternary ammonium compounds include, but are not limited to, alkyl(C8-C16)dimethylbenzylammonium chloride (ADBAC), alkyl(C8-C16)dimethylethylbenzylammonium chloride (ADEBAC), and dialkyl(C8-C16)dimethylammonium chloride (DAAC), which include octyldecyldimethylammonium chloride, dioctyldimethylammonium chloride, and didecyldimethylammonium chloride. In preferred embodiments, the dialkyldimethylammonium chloride (DAAC) is a dialkyl having C10 or less (C8-C10). In preferred embodiments, the quaternary ammonium compound is a blend of octyldecyldimethyl, dioctyldimethyl, and didecyldimethylammonium chloride. A single quaternary ammonium compound or a combination of more than one quaternary ammonium compounds may be included in the low-foaming cleaning composition.
[0049] In some embodiments, depending on the R group, the anionic properties, and the number of quaternary nitrogen atoms present, antimicrobial quaternary ammonium compounds can be classified into one of the following categories: monoalkyltrimethylammonium salts; monoalkyldimethylbenzylammonium salts; dialkyldimethylammonium salts; heteroaromatic ammonium salts; polysubstituted quaternary ammonium salts; bis-quaternary ammonium salts; and polymeric quaternary ammonium salts. Each category is described further below.
[0050] Monoalkyltrimethylammonium salts contain one R group which is a long-chain alkyl group, and the remaining R group is a short-chain alkyl group such as a methyl or ethyl group. Some non-limiting examples of monoalkyltrimethylammonium salts include cetyltrimethylammonium bromide, marketed under the trade names Rhodaquat M242C / 29 and Dehyquart A; alkyltrimethylammonium chloride, marketed as Arquad 16; alkylaryltrimethylammonium chloride; and cetyldimethylethylammonium bromide, marketed as Ammonyx DME.
[0051] Monoalkyldimethylbenzylammonium salts contain one R group which is a long-chain alkyl group, a second R group which is a benzyl radical, and two remaining R groups which are short-chain alkyl groups such as methyl or ethyl groups. Monoalkyldimethylbenzylammonium salts are generally compatible with nonionic surfactants, detergent builders, fragrances, and other ingredients. Some non-limiting examples of monoalkyldimethylbenzylammonium salts include alkyldimethylbenzylammonium chloride, marketed as Barquat by Lonza Inc., and benzethonium chloride, marketed as Lonzagard by Lonza Inc. In addition, monoalkyldimethylbenzylammonium salts may be substituted. A non-limiting example of such salts is dodecyldimethyl-3,4-dichlorobenzylammonium chloride. Finally, there are mixtures of alkyldimethylbenzyl and alkyldimethyl-substituted benzyl(ethylbenzyl)ammonium chloride, marketed as BTC 2125M by Stepan Company and as Barquat 4250 by Lonza Inc.
[0052] Dialkyldimethylammonium salts contain two R groups, which are long-chain alkyl groups, and the remaining R group is a short-chain alkyl group, such as a methyl group. Some non-limiting examples of dialkyldimethylammonium salts include didecyldimethylammonium halide, marketed by Lonza Inc. as Bardac 22; didecyldimethylammonium chloride, marketed by Lonza Inc. as Bardac 2250; dioctyldimethylammonium chloride, marketed by Lonza Inc. as Bardac LF and Bardac LF-80; and octyldecyldimethylammonium chloride, marketed by Lonza Inc. as Bardac 2050 and 2080, and sold as a mixture of didecyldimethylammonium chloride and dioctyldimethylammonium chloride.
[0053] In preferred embodiments, the low-foaming cleaning composition comprises about 10 ppm to about 40% by weight of a quaternary ammonium compound, more preferably about 15 ppm to about 30% by weight of a quaternary ammonium compound, or most preferably about 20 ppm to about 25% by weight of a quaternary ammonium compound.
[0054] In preferred embodiments, the concentrated low-foaming cleaning composition contains about 1% to about 40% by weight of a quaternary ammonium compound, more preferably about 5% to about 35% by weight of a quaternary ammonium compound, or most preferably about 10% to about 25% by weight of a quaternary ammonium compound.
[0055] In preferred embodiments, the low-foaming cleaning composition contains about 10 ppm to about 1000 ppm of a quaternary ammonium compound, more preferably about 15 ppm to about 500 ppm of a quaternary ammonium compound, or most preferably about 20 ppm to about 250 ppm of a quaternary ammonium compound.
[0056] Polycarboxylic acids and / or salts Low-foaming cleaning compositions preferably contain polycarboxylic acids and / or salts thereof. While not wishing to be bound by theory, it is believed that polycarboxylic acids and / or salts partially neutralize (i.e., mask) the charge of quaternary ammonium compounds by providing counterions, and that this charge masking reduces, more preferably inhibits, foam formation and / or stability. The electronegativity of the polycarboxylic acid and / or salt has been found to be important for charge masking to occur. In this regard, it is important to select polycarboxylic acids and / or salts having appropriate pKa values.
[0057] The polycarboxylic acid has at least two pKa values, and in the most preferred embodiment, the polycarboxylic acid has three pKa values. Preferably, each pKa value is less than about 7, more preferably less than about 6.5. In the preferred embodiment, the polycarboxylic acid has at least two pKa values less than about 7, more preferably less than about 6.5, and most preferably less than about 6. In the preferred embodiment, the polycarboxylic acid has at least one pKa value less than about 6, more preferably less than about 5.5, and most preferably less than about 5. In the preferred embodiment, each of the pKa values is about 2 to about 7, more preferably about 2.5 to about 6.5. In the preferred embodiment, at least two of the pKa values are about 2 to about 7, more preferably about 2.5 to about 6.5, and most preferably about 3 to about 6. In the preferred embodiment, the polycarboxylic acid has at least one pKa value about 2 to about 6, more preferably about 2.5 to about 5.5, and most preferably about 3 to about 5.
[0058] In preferred embodiments, the polycarboxylic acid is citric acid, succinic acid, malic acid, N-hydroxyethyliminodiacetic acid, nitrilotriacetic acid (NTA), ethylenediaminetetraacetic acid (EDTA), N-hydroxyethyl-ethylenediaminetriacetic acid (HEDTA), diethylenetriaminepentaacetic acid (DTPA), tetrasodium N,N-dicarboxymethylglutamate (GLDA), methylglycinediacetic acid (MGDA), any of the aforementioned salts, sodium xylenesulfonate, or a mixture thereof.
[0059] In preferred embodiments, the low-foaming cleaning composition comprises about 25 ppm to about 50% by weight of polycarboxylic acid or a salt thereof, more preferably about 50 ppm to about 40% by weight of polycarboxylic acid or a salt thereof, or most preferably about 100 ppm to about 35% by weight of polycarboxylic acid or a salt thereof.
[0060] In preferred embodiments, the concentrated low-foaming cleaning composition contains about 1% to about 50% by weight of polycarboxylic acid or a salt thereof, more preferably about 5% to about 40% by weight of polycarboxylic acid or a salt thereof, or most preferably about 10% to about 35% by weight of polycarboxylic acid or a salt thereof.
[0061] In preferred embodiments, the low-foaming cleaning composition comprises about 25 ppm to about 10,000 ppm of polycarboxylic acid or a salt thereof, more preferably about 50 ppm to about 5,000 ppm of polycarboxylic acid or a salt thereof, or most preferably 100 ppm to about 2,500 ppm of polycarboxylic acid or a salt thereof.
[0062] Carrier Low-foaming cleaning compositions may contain a carrier. Preferred carriers include water and / or water-miscible solvents. As used herein, the term “water-miscible” means that a component (e.g., carrier or solvent) is soluble or dispersible in water at a concentration of about 0.2 g / L or greater, preferably about 1 g / L or more, more preferably 10 g / L or more, and most preferably about 50 g / L or more at about 20°C.
[0063] In the concentrated liquid composition, the carrier is preferably at a concentration of about 5% to about 50% by weight, more preferably about 10% to about 40% by weight, and most preferably about 15% to about 35% by weight.
[0064] In a ready-to-use solution, the carrier may be present in an amount appropriate to reach the desired concentration of the active ingredient. In a preferred embodiment, the amount of carrier in the ready-to-use solution is about 20% to about 95% by weight, more preferably 30% to about 92% by weight, and most preferably about 40% to about 90% by weight.
[0065] Dyes / Deodorizers Low-foaming cleaning compositions may optionally contain dyes, odorants including fragrances, and other aesthetic enhancers. Dyes may be included to alter the appearance of the composition, such as FD&C Blue 1 (Sigma Chemical), FD&C Yellow 5 (Sigma Chemical), Direct Blue 86 (Miles), Fastusol Blue (Mobay Chemical Corp.), Acid Orange 7 (American Cyanamid), Basic Violet 10 (Sandoz), Acid Yellow 23 (GAF), Acid Yellow 17 (Sigma Chemical), Sap Green (Keystone Analine and Chemical), Metalil Yellow (Keystone Analine and Chemical), Acid Blue 9 (Hilton Davis), Sandolan Blue / Acid Blue 182 (Sandoz), Hisol Fast Red (Capitol Color and Chemical), Fluorescein (Capitol Color and Chemical), Acid Green 25 (Ciba-Geigy), etc.
[0066] Preferred fragrances or odorants containing fragrances include, but are not limited to, terpenoids such as citronellol, aldehydes such as amyl cinnamaldehyde, jasmine such as C1S-jasmine or jasmal, and vanillin.
[0067] If the low-foaming cleaning composition contains dyes and / or odorants, such can be added in any amount to achieve the desired aesthetic enhancement. Preferably, the amount of dye or odorant will be about 0.001% to about 5% by weight.
[0068] pH adjuster The low-foaming cleaning composition may optionally contain a pH adjuster. The pH adjuster is used to adjust the pH of the low-foaming cleaning composition. Suitable pH adjusters include, but are not limited to, strong acids, weak acids, strong bases, and weak bases, and may be any acids or bases. Suitable acids include organic acids and inorganic acids. Examples of preferred organic acids include, but are not limited to, carboxylic acids such as hydroxyacetic acid (glycolic acid), citric acid, formic acid, acetic acid, propionic acid, butyric acid, valeric acid, caproic acid, trichloroacetic acid, urea hydrochloride, and benzoic acid. Among these, organic dicarboxylic acids such as oxalic acid, malonic acid, gluconic acid, itaconic acid, succinic acid, glutaric acid, maleic acid, fumaric acid, adipic acid, and terephthalic acid are also useful according to the present invention.
[0069] Preferred inorganic acids include, but are not limited to, sulfuric acid, sulfamic acid, methylsulfamic acid, hydrochloric acid, hydrobromic acid, and nitric acid. These acids may also be used in combination with other inorganic acids or the organic acids mentioned above.
[0070] Preferred bases include, but are not limited to, ammonia, ammonium hydroxide, amines, alkanolamines, amino alcohols, borates, carbonates, hydroxides, silicates, or mixtures thereof.
[0071] If the low-foaming cleaning composition contains a pH adjuster, such an adjuster can be added in any amount to achieve the desired pH. Preferably, the pH adjuster will be in an amount of about 0.001% to about 10% by weight.
[0072] coating agent The low-foaming cleaning composition may optionally contain a coating agent. In embodiments where the low-foaming cleaning composition is a rinsing aid or a disinfecting rinsing aid, the presence of a coating agent is preferable. The coating agent may optionally be included in other low-foaming cleaning compositions as well.
[0073] Preferred coating agents include alcohol ethoxylate compounds containing alkyl groups having 12 or fewer carbon atoms, and formula I: RO-(CH2CH2O) n -It has a structure represented by H(I), where R is (C1~C 12 ) is an alkyl group, and n is an integer in the range of 1 to 100. In some embodiments, R is (C8 to C8). 12 ) may be an alkyl group, or (C8~C 10 ) may be an alkyl group. Similarly, in some embodiments, n is an integer in the range of 10 to 50, or 15 to 30, or 20 to 25. In some embodiments, the alcohol ethoxylate has a low EO content, such as n of 6 or less.
[0074] In a more preferred embodiment, the coating may comprise at least two different alcohol ethoxylate compounds, each having a structure represented by formula I. That is, the R and / or n variables of formula I, or both, may differ among the two or more different alcohol ethoxylate compounds present in the coating. For example, the coating may have R = (C8~C 10 ) A first alcohol ethoxylate compound which is an alkyl group, and R is (C 10 ~C 12 The coating may include a second alcohol ethoxylate compound which is an alkyl group. In preferred embodiments, the coating does not include an alcohol ethoxylate compound which contains an alkyl group having more than 12 carbon atoms. In preferred embodiments, the coating includes only an alcohol ethoxylate compound which contains an alkyl group having 12 or fewer carbon atoms.
[0075] When a low-foaming cleaning composition includes a coating agent, the alcohol ethoxylate used in the coating agent may be selected to have certain characteristics, such as being environmentally friendly and suitable for use in the food service industry. For example, a specific alcohol ethoxylate used in the coating agent may meet environmental or food industry regulatory requirements, such as biodegradability requirements.
[0076] In preferred embodiments, the low-foaming cleaning composition comprises about 10 ppm to about 40% by weight of a coating agent, more preferably about 25 ppm to about 35% by weight of a coating agent, or most preferably about 50 ppm to about 30% by weight of a coating agent.
[0077] In preferred embodiments, the concentrated low-foaming cleaning composition comprises about 1% to about 40% by weight of a coating agent, more preferably about 5% to about 35% by weight of a coating agent, or most preferably about 10% to about 30% by weight of a coating agent.
[0078] In preferred embodiments, the low-foaming cleaning composition comprises about 10 ppm to about 10,000 ppm of a coating agent, more preferably about 25 ppm to about 7,500 ppm of a coating agent, or most preferably about 50 ppm to about 5,000 ppm of a coating agent.
[0079] Solidifying agent In preferred embodiments, the low-foaming cleaning composition may optionally contain one or more solidifying agents. Examples of solidifying agents include, but are not limited to, urea, amides such as stearin monoethanolamide or lauric acid diethanolamide or alkylamide, sulfates or sulfated surfactants, and aromatic sulfonates, solid polyethylene glycol, solid EO / PO block copolymers, starches that have become water-soluble through an acid or alkali treatment process, and various inorganic substances that impart solidifying properties to the heated composition upon cooling. Such compounds can also alter the solubility of the low-foaming cleaning composition in an aqueous medium during use, so that the active ingredients can be dispensed from the solid composition over a long period of time. In preferred embodiments, the solidifying agent may also act as a builder.
[0080] Suitable aromatic sulfonates include, but are not limited to, sodium xylenesulfonate, sodium toluenesulfonate, sodium cumenesulfonate, potassium toluenesulfonate, ammonium xylenesulfonate, calcium xylenesulfonate, sodium alkylnaphthalenesulfonate, and / or sodium butylnaphthalenesulfonate. Preferred aromatic sulfonates include sodium xylenesulfonate and sodium cumenesulfonate.
[0081] In preferred embodiments of the solid low-foaming cleaning composition, the solidification aid includes sodium chloride, starch, sugars, C1-C10 alkylene glycols such as propylene glycol, solid PEG, solid PPG, solid EP / PO, amides, urea, acetate, borate, phosphate, silicate, sulfonate, or mixtures thereof.
[0082] The amount of solidifying agent contained in the low-foaming cleaning composition may be influenced by the desired effect. Generally, an effective amount of solidifying agent is considered to be the amount that acts to solidify the low-foaming cleaning composition, with or without other materials. Typically, for solid embodiments, the amount of solidifying agent in the low-foaming cleaning composition is about 10% to about 80% by weight, preferably about 20% to about 75% by weight, and more preferably about 20% to about 70% by weight.
[0083] In a preferred embodiment, the solidification aid is substantially sulfate-free. For example, the cleaning composition may contain less than 1% by weight, preferably less than 0.5% by weight, and more preferably less than 0.1% by weight of sulfate. In a preferred embodiment, the cleaning composition is sulfate-free.
[0084] surfactant In some embodiments, the low-foaming cleaning composition may optionally contain a surfactant. Depending on the desired role of the surfactant and the final use of the low-foaming cleaning composition, suitable surfactants may be nonionic surfactants, anionic surfactants, cationic surfactants, amphoteric surfactants, zwitterionic surfactants, or mixtures thereof. When a surfactant is included in the low-foaming cleaning composition, in some embodiments, the surfactant is preferably at a concentration of about 10 ppm to about 50% by weight, more preferably about 25 ppm to about 45% by weight, or most preferably about 50 ppm to about 35% by weight.
[0085] In preferred embodiments, the concentrated low-foaming cleaning composition comprises about 1% to about 50% by weight of a surfactant, more preferably about 5% to about 45% by weight of a surfactant, or most preferably about 10% to about 35% by weight of a surfactant.
[0086] In preferred embodiments, the low-foaming cleaning composition contains about 10 ppm to about 10,000 ppm of surfactant, more preferably about 25 ppm to about 7,500 ppm of surfactant, or most preferably about 50 ppm to about 5,000 ppm of surfactant.
[0087] Nonionic surfactants Useful nonionic surfactants are generally characterized by the presence of organic hydrophobic and organic hydrophilic groups, and are typically produced by the condensation of organic aliphatic, alkyl aromatic, or polyoxyalkylene hydrophobic compounds with a hydrophilic alkaline oxide moiety, such as ethylene oxide or its polyhydration product, polyethylene glycol, which is a common implementation. In practice, any hydrophobic compound having a hydroxyl, carboxyl, amino, or amide group with a reactive hydrogen atom can be condensed with ethylene oxide or its polyhydrate adduct, or a mixture thereof with an alkoxylene such as propylene oxide, to form nonionic surfactants. The length of the hydrophilic polyoxyalkylene moiety that condenses with any particular hydrophobic compound can be easily adjusted to produce a water-dispersible or water-soluble compound with a desired degree of balance between hydrophilic and hydrophobic properties. Useful nonionic surfactants include propylene glycol, ethylene glycol, glycerol, trimethylolpropane, and ethylenediamine-based block polyoxypropylene-polyoxyethylene polymer compounds as initiator-reactive hydrogen compounds. One class of compounds is a bifunctional (two reactive hydrogen) compound formed by condensing ethylene oxide with a hydrophobic base formed by adding propylene oxide to the two hydroxyl groups of propylene glycol. This hydrophobic portion of the molecule has a molecular weight of approximately 1,000 to 4,000. The ethylene oxide is then added so as to sandwich this hydrophobe between the hydrophilic groups, and its length is controlled so as to constitute approximately 10% to 80% by weight of the final molecule. Another class of compounds is a trifunctional block copolymer derived from the sequential addition of propylene oxide and ethylene oxide to ethylenediamine. The molecular weight of the propylene oxide hydrotype ranges from approximately 500 to 7,000, and the hydrophilic ethylene oxide is added so as to constitute approximately 10% to 80% by weight of the molecule.
[0088] Condensation products of 1 mole of alkylphenol containing about 8 to about 18 carbon atoms in a linear or branched, or single or double alkyl, alkyl chain, with about 3 to about 50 moles of ethylene oxide. The alkyl groups may be represented, for example, by diisobutylene, diamyl, polymerized propylene, iso-octyl, nonyl, and di-nonyl. These surfactants may also be polyethylene, polypropylene, and polybutylene oxide condensates of alkylphenols. Examples of commercial compounds of this chemistry are commercially available under the trade names Igepal® from Rhone-Poulenc and Triton® from Union Carbide.
[0089] A condensation product of 1 mole of saturated or unsaturated linear or branched alcohol having approximately 6 to 24 carbon atoms with approximately 3 to 50 moles of ethylene oxide. The alcohol portion may consist of a mixture of alcohols within the carbon range described above, or of alcohols having a specific number of carbon atoms within this range. Examples of equivalent commercially available surfactants are available under the trade names Neodol®, manufactured by Shell Chemical Co., and Alfonic®, manufactured by Vista Chemical Co.
[0090] A condensation product of 1 mole of a saturated or unsaturated linear or branched carboxylic acid having approximately 8 to 18 carbon atoms, with approximately 6 to 50 moles of ethylene oxide. The acid portion may consist of a mixture of acids within the carbon atom range defined above, or of acids having a specific number of carbon atoms within this range. A commercial example of this chemical compound is commercially available under the trade name Lipopeg® from Lipo Chemicals, Inc.
[0091] In addition to ethoxylated carboxylic acids, commonly known as polyethylene glycol esters, other alkanate esters formed by reactions with glycerides, glycerol, and polyhydric (saccharide or sorbitan / sorbitol) alcohols have applications in the present invention, particularly in specialized embodiments for indirect food additive applications. All of these ester moieties have one or more reactive hydrogen sites on their molecules that can be subjected to further acylation or ethylene oxide (alkoxide) addition to control the hydrophilicity of these substances.
[0092] Examples of nonionic low-foaming surfactants include the following: Compounds from (1) that are essentially inverted by modifying them by adding ethylene oxide to ethylene glycol to provide a hydrophilic substance of a specified molecular weight, and then adding propylene oxide to obtain a hydrophobic block on the outside (end) of the molecule. The hydrophobic portion of the molecule has a molecular weight of about 1,000 to about 3,100, and the central hydrophilic substance comprises 10% to about 80% by weight of the final molecule. The hydrophobic portion of the molecule has a central hydrophilic substance comprising 10% to 80% by weight of the final molecule and weighs about 2,100 to about 6,700.
[0093] Compounds from groups (1), (2), (3), and (4) modified by "capping" or "end blocking" the terminal hydroxyl groups (of the polyfunctional moiety) in order to reduce foaming when reacted with hydrophobic small molecules such as propylene oxide, butylene oxide, and benzyl chloride; and short-chain fatty acids, alcohols, or alkyl halides containing 1 to about 5 carbon atoms; and mixtures thereof. Also included are reactants such as thionyl chloride, which converts terminal hydroxyl groups to chloride groups. Such modifications to terminal hydroxyl groups may result in all-blocked, block-heteric, heteric-blocked, or all-heteric nonionic substances.
[0094] Further examples of effective low-foaming nonionic substances include: U.S. Patent No. 2,903,486, issued September 8, 1959 to Brown et al., of the formula: [Chemical Formula] An alkylphenoxypolyethoxyalkanol represented by the formula, where R is an alkyl group having 8 to 9 carbon atoms, A is an alkylene chain having 3 to 4 carbon atoms, n is an integer from 7 to 16, and m is an integer from 1 to 10.
[0095] A polyalkylene glycol condensate of U.S. Patent No. 3,048,548, issued August 7, 1962 to Martin et al., having alternating hydrophilic oxyethylene chains and hydrophobic oxypropylene chains, where the weight of the terminal hydrophobic chains, the weight of the intermediate hydrophobic units, and the weight of the linking hydrophilic units each represent approximately one-third of the condensate.
[0096] A defoaming nonionic surfactant disclosed in U.S. Patent No. 3,382,178, issued May 7, 1968 to Lissant et al., having the general formula Z[(OR) n OH] z where Z is an alkoxylatable material, R is a radical derived from an alkylene oxide that can be ethylene and propylene, n is an integer, for example, from 10 to 2,000 or more, and z is an integer determined by the number of reactive oxyalkylatable groups.
[0097] A conjugated polyoxyalkylene compound described in U.S. Patent No. 2,677,700, issued May 4, 1954 to Jackson et al., corresponding to the formula Y(C3H6O) n (C2H4O) m H, where Y is the residue of an organic compound having about 1 to 6 carbon atoms and 1 reactive hydrogen atom, n has an average value of at least about 6.4 determined by the hydroxyl value, and m has a value such that the oxyethylene portion constitutes about 10 wt% to about 90 wt% of the molecule.
[0098] Formula Y[(C3H6O n (C2H4O) m H] x A conjugated polyoxyalkylene compound as described in U.S. Patent No. 2,674,619, issued to Lundsted et al. on April 6, 1954, wherein Y is a residue of an organic compound having about 2 to 6 carbon atoms, and x is a residue of an organic compound containing x reactive hydrogen atoms having a value of at least about 2, n is a value such that the molecular weight of the polyoxypropylene hydrophobic base is at least about 900, and m is a value such that the oxyethylene content of the molecule is about 10% to about 90% by weight. Compounds that fall within the definition range for Y include, for example, propylene glycol, glycerin, pentaerythritol, trimethylolpropane, and ethylenediamine. The oxypropylene chain optionally, but advantageously, contains a small amount of ethylene oxide, and the oxyethylene chain also optionally, but advantageously, contains a small amount of propylene oxide.
[0099] Further conjugated polyoxyalkylene surfactants that can be advantageously used in the compositions of the present invention are of the formula: P[(C3H6O) n (C2H4O) m H] x Corresponding to the above, in the formula, P is a residue of an organic compound having about 8 to 18 carbon atoms and x reactive hydrogen atoms, x has a value of 1 or 2, n has a value such that the molecular weight of the polyoxyethylene portion is at least about 44, and m has a value such that the oxypropylene content of the molecule is about 10% to about 90% by weight. In either case, the oxypropylene chain may optionally but advantageously contain a small amount of ethylene oxide, and the oxyethylene chain may optionally but advantageously contain a small amount of propylene oxide.
[0100] A polyhydroxy fatty acid amide surfactant suitable for use in this composition is, structural formula R2CON R1Z(wherein R1 is H, C1-C4 hydrocarbyl, 2-hydroxyethyl, 2-hydroxypropyl, ethoxy, propoxy group, or a mixture thereof, and R2 may be a linear C5-C) 31 The hydrocarbyl includes a polyhydroxyhydrocarbyl having a hydrocarbyl linear chain with at least three hydroxyls directly linked to the chain, or an alkoxylated derivative thereof (preferably ethoxylated or propoxylated). Z may be derived from a reducing sugar in the reductive amination reaction, such as a glycityl moiety.
[0101] Alkyl ethoxylate condensation products of aliphatic alcohols with approximately 0 to approximately 25 moles of ethylene oxide are suitable for use in this composition. The alkyl chain of the aliphatic alcohol can be linear or branched, primary or secondary, and generally contains 6 to 22 carbon atoms.
[0102] Ethoxylation C6~C 18 Fatty alcohols and C6-C 18 Mixed ethoxylated and propoxylated fatty alcohols, especially those that are water-soluble, are suitable surfactants for use in this composition. Suitable ethoxylated fatty alcohols are C6-C6 alcohols with an ethoxylation degree of 3-50. 18 Contains ethoxylated fatty alcohols.
[0103] Nonionic alkyl polysaccharide surfactants particularly suitable for use in this composition include those disclosed in U.S. Patent No. 4,565,647, Llenado, issued on January 21, 1986. These surfactants comprise a hydrophobic group containing about 6 to about 30 carbon atoms and a polysaccharide, e.g., a polyglycoside, and a hydrophilic group containing about 1.3 to about 10 saccharide units. Any reduced saccharide containing 5 or 6 carbon atoms may be used, e.g., glucose, galactose, and the galactosyl moiety may be substituted for the glucosyl moiety. (Optionally, the hydrophobic group may be bonded at positions 2, 3, 4, etc., thus resulting in glucose or galactose as opposed to glucosyl or galactosyl.) Saccharidal bonds may be, for example, between one position of a further saccharide unit and positions 2, 3, 4, and / or 6 on the preceding saccharide unit.
[0104] Fatty acid amide surfactants suitable for use in this composition include those having the formula: R6CON(R7)2, where R6 is an alkyl group containing 7 to 21 carbon atoms, and each R7 is independently hydrogen, C1-C4 alkyl, C1-C4 hydroxyalkyl, or -(C2H4O) X H is such that x is in the range of 1 to 3.
[0105] A useful class of nonionic surfactants includes alkoxylated amines, or more specifically, alcohol alkoxylated / amination / alkoxylated surfactants. These nonionic surfactants are at least in part, of the general formula: R 20 -(PO) S N-(EO) t H, R 20 -(PO) S N-(EO) t H(EO) t H and R 20 -N(EO) t It can be expressed by H, where R 20is an alkyl, alkenyl, or other aliphatic group, or an alkyl-aryl group of 8 to 20 carbon atoms, preferably 12 to 14 carbon atoms, EO is oxyethylene, PO is oxypropylene, s is 1 to 20, preferably 2 to 5, t is 1 to 10, preferably 2 to 5, and u is 1 to 10, preferably 2 to 5. Other variations within the range of these compounds are shown in the alternative formula: R 20 -(PO) V -N[(EO) w H][(EO) z It can be expressed by H, where R 20 As defined above, v is 1 to 20 (e.g., 1, 2, 3, or 4 (preferably 2)), and w and z are independently 1 to 10, preferably 2 to 5. These compounds are represented by the product line sold commercially by Huntsman Chemicals as nonionic surfactants. Preferred chemicals in this class include Surfonic® PEA25 amine alkoxylates. Preferred nonionic surfactants for the compositions of the present invention include alcohol alkoxylates, EO / PO block copolymers, alkylphenol alkoxylates, and the like.
[0106] The paper *Nonionic Surfactants*, edited by Schick, MJ, Vol. 1 of the Surfactant Science Series, Marcel Dekker, Inc., New York, 1983, is an excellent reference for a wide range of nonionic compounds commonly used in the practice of the present invention. A typical list of the nonionic class and species of these surfactants is given in U.S. Patent No. 3,929,678, issued December 30, 1975, to Laughlin and Heuring. Further examples are described in *Surface Active Agents and Detergents* (Volumes I and II, Schwartz, Perry and Berch).
[0107] Semipolar nonionic surfactant Semipolar nonionic surfactants are another class of nonionic surfactants useful in the compositions of the present invention. Generally, semipolar nonionic substances are foaming agents and foam stabilizers, which may limit their application in CIP systems. However, within the compositional embodiments of the present invention designed for high-foaming cleaning methodologies, semipolar nonionic substances will have immediate utility. Semipolar nonionic surfactants include amine oxides, phosphine oxides, sulfoxides, and their alkoxylated derivatives.
[0108] Amine oxides are tertiary amine oxides corresponding to the following general formula: [ka] In the formula, the arrow is the conventional representation of a semipolar bond, R 1 , R 2 , and R 3 These can be aliphatic, aromatic, heterocyclic, alicyclic, or a combination thereof. Generally speaking, for amine oxides related to detergents, R 1 R is an alkyl radical with approximately 8 to 24 carbon atoms. 2 and R 3 R is an alkyl or hydroxyalkyl group with 1 to 3 carbon atoms, or a mixture thereof. 2 and R 3 For example, they can be bonded to each other through oxygen or nitrogen atoms to form a ring structure, R 4 n is an alkali or a hydroxyalkylene group containing 2-3 carbon atoms, and n is in the range of 0 to approximately 20.
[0109] Useful water-soluble amine oxide surfactants are selected from coconut or tallow alkyl di-(lower alkyl)amine oxides, and specific examples of these include dodecyldimethylamine oxide, tridecyldimethylamine oxide, tetradecyldimethylamine oxide, pentadecyldimethylamine oxide, hexadecyldimethylamine oxide, heptadecyldimethylamine oxide, and octadecyldimethylaine oxide. These include oxides, dodecyldipropylamine oxide, tetradecyldipropylamine oxide, hexadecyldipropylamine oxide, tetradecyldibutylamine oxide, octadecyldibutylamine oxide, bis(2-hydroxyethyl)dodecylamine oxide, bis(2-hydroxyethyl)-3-dodecoxy-1-hydroxypropylamine oxide, dimethyl-(2-hydroxydodecyl)amine oxide, 3,6,9-trioctadecyldimethylamine oxide, and 3-dodecoxy-2-hydroxypropyldi-(2-hydroxyethyl)amine oxide.
[0110] Useful semipolar nonionic surfactants also include water-soluble phosphine oxides having the following structure: [ka] In the formula, the arrow is the conventional representation of a semipolar bond, R 1 R is an alkyl, alkenyl, or hydroxyalkyl moiety with a chain length ranging from 10 to approximately 24 carbon atoms. 2 and R 3 Each of these is an alkyl moiety separately selected from alkyl or hydroxyalkyl groups containing 1 to 3 carbon atoms.
[0111] Examples of useful phosphine oxides include dimethyldecylphosphine oxide, dimethyltetradecylphosphine oxide, methylethyltetradecylphosphonoxide, dimethylhexadecylphosphine oxide, diethyl-2-hydroxyoctyldecylphosphine oxide, bis(2-hydroxyethyl)dodecylphosphine oxide, and bis(hydroxymethyl)tetradecylphosphine oxide.
[0112] The semipolar nonionic surfactants useful in this specification also include water-soluble sulfoxide compounds having the following structure: [ka] In the formula, the arrow is the conventional representation of a semipolar bond, R 1 R consists of approximately 8 to 28 carbon atoms, 0 to 5 ether bonds, and 0 to 2 alkyl or hydroxyalkyl moieties of hydroxyl substituents. 2 This is an alkyl moiety consisting of alkyl and hydroxyalkyl groups having 1 to 3 carbon atoms.
[0113] Useful examples of these sulfoxides include dodecyl methyl sulfoxide, 3-hydroxytridecyl methyl sulfoxide, 3-methoxytridecyl methyl sulfoxide, and 3-hydroxy-4-dodecoxybutyl methyl sulfoxide.
[0114] The semipolar nonionic surfactants for the compositions of the present invention include dimethylamine oxides, such as lauryldimethylamine oxide, myristyldimethylamine oxide, cetyldimethylamine oxide, and combinations thereof. Useful water-soluble amine oxide surfactants are selected from octyl, decyl, dodecyl, isododecyl, coconut, or tallow alkyldi-(lower alkyl)amine oxides, specific examples of which include octyldimethylamine oxide, nonyldimethylamine oxide, decyldimethylamine oxide, undecyldimethylamine oxide, dodecyldimethylamine oxide, isododecyldimethylamine oxide, tridecyldimethylamine oxide, tetradecyldimethylamine oxide, pentadecyldimethylamine oxide, hexadecyldimethylamine oxide, heptadecyldimethylamine oxide, These are octadecyldimethylamine oxide, dodecyldipropylamine oxide, tetradecyldipropylamine oxide, hexadecyldipropylamine oxide, tetradecyldibutylamine oxide, octadecyldibutylamine oxide, bis(2-hydroxyethyl)dodecylamine oxide, bis(2-hydroxyethyl)-3-dodecoxy-1-hydroxypropylamine oxide, dimethyl-(2-hydroxydodecyl)amine oxide, 3,6,9-trioctadecyldimethylamine oxide, and 3-dodecoxy-2-hydroxypropyldi-(2-hydroxyethyl)amine oxide.
[0115] Suitable nonionic surfactants for use with the compositions of the present invention include alkoxylated surfactants. Suitable alkoxylated surfactants include EO / PO copolymers, capped EO / PO copolymers, alcohol alkoxylates, capped alcohol alkoxylates, and mixtures thereof. Suitable alkoxylated surfactants for use as solvents include EO / PO block copolymers such as Pluronic and reverse Pluronic surfactants, alcohol alkoxylates such as Dehypon LS-54 (R-(EO)5(PO)4) and Dehypon LS-36 (R-(EO)3(PO)6), and terminally treated alcohol alkoxylates such as Plurafac LF221 and Tegoten EC11, mixtures thereof, or the like.
[0116] Anionic surfactants Surfactants classified as anionic substances because the hydrophobic portion of the substance has a negative charge, or surfactants whose hydrophobic portion of the molecule has no charge unless the pH rises above neutral (e.g., carboxylic acids), are also useful in the present invention. Carboxylates, sulfonates, sulfates, and phosphates are polar (hydrophilic) solubilizing groups found in anionic surfactants. Of the cations (counterions) associated with these polar groups, sodium, lithium, and potassium impart water solubility, ammonium and substituted ammonium ions provide both water and oil solubility, and calcium, barium, and magnesium promote oil solubility. As those skilled in the art will understand, anionic substances are excellent cleaning surfactants and are therefore preferred additives to heavy-duty detergent compositions.
[0117] Suitable anionic sulfate surfactants for use in this composition include alkyl ether sulfates, alkyl sulfates, linear and branched primary and secondary alkyl sulfates, alkyl ethoxy sulfates, fatty oleyl glycerol sulfates, alkylphenol ethylene oxide ether sulfates, and C5-C 17This includes acyl-N-(C1-C4 alkyl) and -N-(C1-C2 hydroxyalkyl) glucamine sulfates, as well as alkyl polysaccharide sulfates such as alkyl polyglucoside sulfates. It also includes alkyl sulfates, alkyl poly(ethylene oxy) ether sulfates, and aromatic poly(ethylene oxy) sulfates, such as ethylene oxide and nonylphenol sulfates or concentrated products (usually having 1-6 oxyethylene groups per molecule).
[0118] Suitable anionic sulfonate surfactants for use in this composition include alkyl sulfonates, linear and branched primary and secondary alkyl sulfonates, and aromatic sulfonates with or without substituents.
[0119] Suitable anionic carboxylate surfactants for use in this composition include carboxylic acids (and salts), such as alkanic acids (and alkanoates), ester carboxylic acids (e.g., alkyl succinates), ether carboxylic acids, sulfonated fatty acids, such as sulfonated oleic acid. Such carboxylates include alkylethoxycarboxylates, alkylarylethoxycarboxylates, alkylpolyethoxypolycarboxylate surfactants, and soaps (e.g., alkylcarboxyls). Secondary carboxylates useful in this composition include those containing carboxyl units attached to a secondary carbon. The secondary carbon may be in a cyclic structure, for example, as in p-octylbenzoic acid or alkyl-substituted cyclohexylcarboxylate. Secondary carboxylate surfactants typically do not contain ether bonds, ester bonds, or hydroxyl groups. Furthermore, they typically lack a nitrogen atom in the head group (amphiphilic moiety). Suitable secondary soap surfactants typically contain 11 to 13 total carbon atoms, but more carbon atoms (e.g., up to 16) may be present. Suitable carboxylates also include, for example, acyl glutamates, acyl peptides, sarcosinates (e.g., N-acyl sarcosinates), and acyl amino acids (and salts) such as taurates (e.g., fatty acid amides of N-acyl taurates and methyl taurides).
[0120] Suitable anionic surfactants include alkyl or alkylarylethoxycarboxylates of the following formulas: RO-(CH2CH2O) n (CH2) m -CO2X(3) In the formula, R is C8~C 22 It is an alkyl group, or [ka] R 1 C4~C 16It is an alkyl group, where n is an integer from 1 to 20, m is an integer from 1 to 3, and X is a counterion such as hydrogen, sodium, potassium, lithium, or ammonium, or an amine salt such as monoethanolamine, diethanolamine, or triethanolamine. In some embodiments, n is an integer from 4 to 10, and m is 1. In some embodiments, R is C8 to C 16 It is an alkyl group. In some embodiments, R is C 12 ~C 14 It is an alkyl group, where n is 4 and m is 1.
[0121] In other embodiments, R is [ka] And R 1 C6~C 12 It is an alkyl group. In yet another embodiment, R 1 It is a C9 alkyl group, n is 10, and m is 1.
[0122] Such alkyl and alkylaryl ethoxycarboxylates are commercially available. These ethoxycarboxylates are usually available in acid form, and they can be readily converted to anionic or salt form. Commercially available carboxylates include Neodox 23-4, C 12-13 This includes alkyl polyethoxy(4)carboxylic acid (Shell Chemical) and Emcol CNP-110, C9 alkylaryl polyethoxy(10)carboxylic acid (Witco Chemical). Carboxylates, such as product Sandopan® DTC, C 13 Alkyl polyethoxy(7)carboxylic acids are also available from Clariant.
[0123] Cationic surfactants Surface active substances are classified as cationic if the charge on the hydrotrope portion of the molecule is positive. Surfactants that are cationic (e.g., alkylamines) in this group are also included, even though the hydrotrope does not carry a charge unless the pH is lowered to near or below neutral. Theoretically, cationic surfactants can be synthesized from any combination of elements containing the "onium" structure RnX+Y- and can include compounds other than nitrogen (ammonium), such as phosphorus (phosphonium) and sulfur (sulfonium). In practice, the field of cationic surfactants is probably dominated by nitrogen-containing compounds because the synthetic routes to nitrogenous cationic substances are simple and easy, and yield high-yield products, which can make them cheaper.
[0124] Cationic surfactants preferably comprise, and more preferably, compounds containing at least one long-carbon hydrophobic group and at least one positively charged nitrogen atom. The long-carbon group may be directly bonded to the nitrogen atom by simple substitution, or more preferably indirectly bonded by a crosslinking functional group in so-called interrupted alkylamines and amidoamines. Such functional groups can make the molecule more hydrophilic and / or more water-dispersible, more readily soluble in water by co-surfactant mixtures, and / or water-soluble. For increased water solubility, additional primary, secondary, or tertiary amino groups may be introduced, or the amino nitrogen may be quaternized using a low molecular weight alkyl group. Furthermore, the nitrogen may be part of a branched or linear chain with varying degrees of unsaturation, or part of a saturated or unsaturated heterocyclic ring. In addition, cationic surfactants may contain complex bonds having two or more cationic nitrogen atoms.
[0125] Surfactant compounds classified as amine oxides, amphoteric substances, and zwitterionic compounds are generally cationic in solutions with near-neutral to acidic pH, and thus overlap with the classification of surfactants. Polyoxyethylated cationic surfactants generally act like nonionic surfactants in alkaline solutions and like cationic surfactants in acidic solutions.
[0126] The simplest cationic amines, namely amine salts and quaternary ammonium compounds, are schematically described as follows: [ka] In the formula, R represents an alkyl chain, R', R'', and R''' may be either an alkyl chain or an aryl group or hydrogen, and X represents an anion. Amine salts and quaternary ammonium compounds are preferred for practical use in the present invention due to their high degree of water solubility.
[0127] The majority of commercially available cationic surfactants can be subdivided into four main classes and additional subgroups known to those skilled in the art, as described in “Surfactant Encyclopedia”, Cosmetics & Toiletries, Vol. 104(2) 86-96 (1989). The first class includes alkylamines and their salts. The second class includes alkylimidazolines. The third class includes ethoxylated amines. The fourth class includes quaternary compounds such as alkylbenzyldimethylammonium salts, alkylbenzene salts, heterocyclic ammonium salts, and tetraalkylammonium salts. Cationic surfactants are known to possess a variety of properties that can be beneficial in this composition. These desirable properties may include cleaning power in compositions with a neutral pH or lower, antimicrobial efficacy, and thickening or gelling in conjunction with other agents.
[0128] A cationic surfactant useful in the composition of the present invention is formula R 1 m R 2 x Y L Examples include those having Z, where each R 1 It contains a linear or branched alkyl or alkenyl group, and is optionally substituted with up to three phenyl or hydroxyl groups, and has up to four of the following structures: [ka] Alternatively, an organic group containing a linear or branched alkyl or alkenyl group optionally interrupted by isomers or mixtures of these structures, which contains approximately 8 to 22 carbon atoms. 1 The group may further contain up to 12 ethoxy groups. m is a number from 1 to 3. Preferably, there is one or fewer R groups in the molecule. 1 The group has 16 or more carbon atoms when m is 2, or more than 12 carbon atoms when m is 3. Each R 2 It is an alkyl or hydroxyalkyl group containing 1 to 4 carbon atoms or a benzyl group, and has 1 or fewer R groups in the molecule. 2 is benzyl, and x is a number from 0 to 11, preferably from 0 to 6. The remaining carbon atoms at any position on the Y group are filled with hydrogen.
[0129] Y is [ka] The group may also include, but is not limited to, a mixture thereof. Preferably, L is 1 or 2, and the Y group, when L is 2, has 1 to about 22 carbon atoms and 2 free carbon single bonds. 1 and R 2 The components are separated by a portion selected from analogs (preferably alkylene or alkenylene). Z is a water-soluble anion such as a halide anion, sulfate anion, methyl sulfate anion, hydroxide anion, or nitrate anion, with chloride anions, bromide anions, iodide anions, sulfate anions, or methyl sulfate anions being particularly preferred in terms of the number of components that impart electrical neutrality to the cationic components.
[0130] Amphoteric surfactants Amphoteric or amphoteric electrolyte surfactants contain both basic and acidic hydrophilic groups as well as organic hydrophobic groups. These ionic entities may be either anionic or cationic groups as described herein for other types of surfactants. Basic nitrogen and acidic carboxylate groups are typical functional groups employed as basic and acidic hydrophilic groups. In some surfactants, sulfonates, sulfates, phosphonates, or phosphates provide a negative charge.
[0131] Amphoteric surfactants can be broadly described as derivatives of aliphatic secondary and tertiary amines, where the aliphatic radical may be linear or branched, and one of the aliphatic substituents contains about 8 to 18 carbon atoms, and another contains an anionic water-soluble group, e.g., carboxy, sulfo, sulfato, phosphat, or phosphono. Amphoteric surfactants are known to those skilled in the art and are subdivided into two main classes, as described in the “Surfactant Encyclopedia” Cosmetics & Toiletries, Vol. 104(2) 69-71 (1989), which is incorporated herein by reference in its entirety. The first class includes acyl / dialkylethylenediamine derivatives (e.g., 2-alkylhydroxyethylimidazoline derivatives) and their salts. The second class includes N-alkyl amino acids and their salts. Some amphoteric surfactants can be imagined to belong to both classes.
[0132] Amphoteric surfactants can be synthesized by methods known to those skilled in the art. For example, 2-alkylhydroxyethylimidazoline is synthesized by condensation and ring closure of a long-chain carboxylic acid (or derivative) with a dialkylethylenediamine. Commercial amphoteric surfactants are derivatized, for example, by sequential hydrolysis and ring opening of the imidazoline ring by alkylation with chloroacetic acid or ethyl acetate. During alkylation, one or two carboxyalkyl groups react to form a tertiary amine and an ether linkage, and different alkylating agents produce different tertiary amines.
[0133] The long-chain imidazole derivatives that have applications in the present invention generally have the following general formula: [ka] In the formula, R is an acyclic hydrophobic group containing about 8 to 18 carbon atoms, and M is a cation, generally sodium, for neutralizing the charge of the anion. Commercially well-known amphoteric compounds derived from imidazolines that can be used in this composition include, for example, cocoamphopropionate, cocoamphocarboxy-propionate, cocoamphoglycinate, cocoamphocarboxy-glycinate, cocoamphopropyl-sulfonate, and cocoamphocarboxy-propionic acid. Amphocarboxylic acids can be produced from aliphatic imidazolines, where the dicarboxylic acid functional group of the amphodicarboxylic acid is diacetic acid and / or dipropionic acid.
[0134] In this specification, the carboxymethylated compounds (glycinates) described above are often referred to as betaines. Betaines are a special class of amphoteric compounds described below in the following section entitled Zwitterionic surfactants.
[0135] Long-chain N-alkyl amino acids are readily prepared by the reaction RNH2, where R is C8~C 18 These are fatty amines having linear or branched alkyl or halogenated carboxylic acids. Alkylation of the primary amino group of an amino acid yields secondary and tertiary amines. The alkyl substituent may have additional amino groups that provide multiple reactive nitrogen centers. The most commercially available N-alkylamine acids are alkyl derivatives of beta-alanine or beta-N(2-carboxyethyl)alanine. Examples of commercially available N-alkylamino acid amphoteric electrolytes with applications in the present invention include alkyl beta-aminodipropionates, RN(C2H4COOM)2 and RNHC2H4COOM. In one embodiment, R may be an acyclic hydrophobic group containing about 8 to about 18 carbon atoms, and M may be a cation for neutralizing the charge of the anion.
[0136] Suitable amphoteric surfactants include those derived from coconut products such as coconut oil or coconut fatty acids. Additional suitable coconut-derived surfactants include, as part of their structure, ethylenediamine moieties, alkanolamide moieties, amino acid moieties, e.g., glycine, or combinations thereof, and aliphatic substituents of about 8 to 18 (e.g., 12) carbon atoms. Such surfactants may also be considered alkylamphodicarboxylic acids. These amphoteric surfactants are C 12 -alkyl-C(O)-NH-CH2-CH2-N + (CH2-CH2-CO2Na)2-CH2-CH2-OH or C 12 -alkyl-C(O)-N(H)-CH2-CH2-N + It may include a chemical structure represented as (CH2-CO2Na)2-CH2-CH2-OH. Disodium cocoamphodipropionate is one preferred amphoteric surfactant, marketed under the trade name Miranol® FBS by Rhodia Inc. in Cranberry, New Jersey. Another preferred coconut-derived amphoteric surfactant having the chemical name disodium cocoamphodiacetate is also marketed under the trade name Mirataine® JCHA by Rhodia Inc., also in Cranberry, New Jersey.
[0137] A typical list of amphoteric classes and species of these surfactants is given in U.S. Patent No. 3,929,678, published December 30, 1975, to Laughlin and Heuring. Further examples are given in “Surface Active Agents and Detergents” (Vol. I and II by Schwartz, Perry, and Berch). Each of these references is incorporated herein by reference in its entirety.
[0138] Zwitterionic surfactant Zwitterionic surfactants can be considered a subset of amphoteric surfactants and may contain anionic charges. Broadly speaking, zwitterionic surfactants can be described as derivatives of secondary and tertiary amines, derivatives of heterocyclic secondary and tertiary amines, or derivatives of quaternary ammonium, quaternary phosphonium, or tertiary sulfonium compounds. Typically, zwitterionic surfactants contain positively charged quaternary ammonium, or optionally sulfonium or phosphonium ions, charged carboxyl groups, and alkyl groups. Zwitterions generally contain cationic and anionic groups that are ionized to approximately the same degree in the isoelectric region of the molecule, potentially leading to a strong "internal salt" attraction between positive and negative charge centers. Examples of such zwitterionic synthetic surfactants include derivatives of aliphatic quaternary ammonium, phosphonium, and sulfonium compounds, in which the aliphatic radical may be linear or branched, one of the aliphatic substituents contains 8 to 18 carbon atoms, and the other contains an anionic water-soluble group, such as a carboxy, sulfonate, sulfate, phosphate, or phosphonate.
[0139] Betaine and sultaine surfactants are exemplary zwitterionic surfactants for use herein. The general formulas of these compounds are as follows: [ka] In the formula, R 1 This comprises an alkyl, alkenyl, or hydroxyalkyl radical with 8 to 18 carbon atoms having 0 to 10 ethylene oxide moieties and 0 to 1 glyceryl moiety, Y is selected from the group consisting of nitrogen atoms, phosphorus atoms, and sulfur atoms, and R 2 x is an alkyl group or monohydroxyalkyl group containing 1 to 3 carbon atoms, where x is 1 when Y is a sulfur atom, and 2 when Y is a nitrogen atom or a phosphorus atom, and R 3 Z is an alkylene or hydroxyalkylene or hydroxyalkylene with 1 to 4 carbon atoms, and Z is a radical selected from the group consisting of a carboxylic acid group, a sulfonic acid group, a sulfate group, a phosphonate group, and a phosphate group.
[0140] Examples of zwitterionic surfactants having the structures listed above include 4-[N,N-di(2-hydroxyethyl)-N-octadecylammonio]-butane-1-carboxylate, 5-[S-3-hydroxypropyl-S-hexadecylsulfonio]-3-hydroxypentane-1-sulfate, 3-[P,P-diethyl-P-3,6,9-trioxatetracosanphosphonio]-2-hydroxypropane-1-phosphate, 3-[N,N-dipropyl-N-3-dodecoxy-2-hydroxypropyl-ammonio]-propane-1-phosphonate, 3-(N,N-dimethyl-N-hexadecylammonio)-propane-1-sulfonate, and 3-(N,N-dimethyl-N This includes hexadecylammonio)-2-hydroxy-propane-1-sulfonate, 4-[N,N-di(2(2-hydroxyethyl)-N(2-hydroxydodecyl)ammonio]-butane-1-carboxylate, 3-[S-ethyl-S-(3-dodecoxy-2-hydroxypropyl)sulfonio]-propane-1-phosphate, 3-[P,P-dimethyl-P-dodecylphosphonio]-propane-1-phosphonate, and S[N,N-di(3-hydroxypropyl)-N-hexadecylammonio]-2-hydroxypentane-1-sulfate. The alkyl groups contained in the detergent surfactant may be linear or branched, and may be saturated or unsaturated.
[0141] Suitable zwitterionic surfactants for use in this composition include betaines having the following general structure. [ka]
[0142] These surfactant betaines typically do not exhibit strong cationic or anionic characteristics at extreme pH levels, nor do they show a decrease in water solubility within these isoelectric ranges. Unlike "external" quaternary ammonium salts, betaines can coexist with anions. Examples of suitable betaines include coconut acylamidopropyl dimethyl betaine, hexadecyldimethyl betaine, and C 12 -14 Acylamidopropyl betaine, C 8-14 Acylamidohexyl diethyl betaine, 4-C 14-16 Acylmethylamido diethylammonio-1-carboxybutane, C 16-18 Acylamidodimethyl betaine, C 12-16 Acylamidopentane diethyl betaine, and C 12-16 Acylmethylamido dimethyl betaine are included.
[0143] The sultaines useful in the present invention are compounds having the formula (R(R 1 )2N + R 2 SO 3- wherein R is a C6-C 18 hydrocarbyl group, each R 1 is typically independently a C1-C3 alkyl, for example, methyl, and R 2 is a C1-C6 hydrocarbyl group, for example, a C1-C3 alkylene or hydroxyalkylene group.
[0144] A typical list of zwitterionic classes and species of these surfactants is given in U.S. Patent No. 3,929,678 issued to Laughlin and Heuring on December 30, 1975. Further examples are given in “Surface Active Agents and Detergents” (Vol.I and II by Schwartz, Perry and Berch). Each of these references is incorporated herein in its entirety.
[0145] Preferred embodiments The preferred concentrations of the components (and optional components) of the low-foaming cleaning composition are shown in Tables 1A - 1C (all upper and lower concentration values are modified by the term about as defined herein). [Table 1] [Table 2] [Table 3]
[0146] As described above, low-foaming cleaning compositions may be formulated as concentrated (liquid or solid) compositions that are subsequently diluted to form a work-use composition, or they may be formulated as ready-to-use compositions. Generally, concentrates refer to compositions that are intended to be diluted with water to provide a work-use solution that comes into contact with an object to provide the desired cleaning, rinsing, etc. A low-foaming cleaning composition that comes into contact with an article being washed may be referred to as a concentrate or a work-use composition (or a work-use solution or a ready-to-use composition), depending on the formulation employed in the method according to the present invention. It should be understood that the concentrations of quaternary ammonium compounds and polycarboxylic acids and / or salts thereof, as well as other optional components in the low-foaming cleaning composition, will vary depending on whether the composition is provided as a concentrate or as a work-use solution.
[0147] The solution to be used can be prepared from the concentrate by diluting it with water at a dilution ratio that provides a solution to be used with the desired concentration. The water used to dilute the concentrate and form the composition to be used may be called diluent water or diluent and may vary depending on the location. Typical dilution ratios are approximately 1 to approximately 10,000, but will depend on factors such as water hardness and the amount of dirt to be removed. In one embodiment, the concentrate is diluted with water at a ratio of approximately 1:10 to approximately 1:10,000. More specifically, the concentrate is diluted with water at a ratio of approximately 1:100 to approximately 1:5,000. More specifically, the concentrate is diluted with water at a ratio of approximately 1:250 to approximately 1:2,000.
[0148] Preferably, a low-foaming cleaning composition is low-foaming or non-foaming. As used herein, non-foaming means that the composition does not form foam when diluted, or forms foam that collapses in less than 10 seconds, more preferably less than 5 seconds, at a temperature of about 20°C to about 100°C. As used herein, low-foaming means that the composition forms foam that collapses in less than 30 seconds, more preferably less than 20 seconds, most preferably less than 15 seconds, at a temperature of about 20°C to about 100°C.
[0149] Method for producing a low-foaming cleaning composition Low-foaming cleaning compositions can be prepared as solid or liquid compositions. Suitable solid cleaning compositions include, but are not limited to, granular and pelletized solid compositions, powders, solid block compositions, cast solid block compositions, extruded solid block compositions, and pressed solid compositions.
[0150] Solid particulate purifying compositions can be prepared by simply blending dry solid components formed according to the present invention in appropriate ratios, or by agglomerating the materials in an appropriate agglomeration system. Pelleted materials can be prepared by compressing solid granular or agglomerated materials in an appropriate pelletizing apparatus to obtain appropriately sized pelletized materials. Solid blocks and cast solid block materials can be prepared by introducing either a pre-cured block of material or a castable liquid that hardens into a solid block in the container into a container. Preferred containers include disposable plastic containers or water-soluble film containers. Other suitable packaging for the compositions include flexible bags, parcels, shrink wrap, and water-soluble films such as polyvinyl alcohol.
[0151] Solid, low-foaming cleaning compositions can be formed using batch or continuous mixing systems. In exemplary embodiments, one or more components are combined and mixed at high shear using a single-screw or twin-screw extruder to form a homogeneous mixture. In some embodiments, the processing temperature is below the melting temperature of the components. The processed mixture can be dispensed from a mixer by forming, casting, or other suitable means, where the cleaning composition hardens into a solid form. The structure of the matrix can be characterized according to its hardness, melting point, material distribution, crystalline structure, and other similar properties according to methods known in the art. Generally, solid cleaning compositions processed according to the methods of the present invention are substantially homogeneous throughout their mass with respect to the distribution of components and are dimensionally stable.
[0152] In the extrusion process, liquid and solid components are introduced into a final mixing system and continuously mixed until the components form a substantially homogeneous semi-solid mixture in which the components are distributed throughout their entire mass. The mixture is then discharged from the mixing system into or through a die or other molding means. The product is then packaged. In exemplary embodiments, the formed composition begins to harden into a solid state in approximately 1 minute to approximately 3 hours. More specifically, the formed composition begins to harden into a solid state in approximately 1 minute to approximately 2 hours. More specifically, the formed composition begins to harden into a solid state in approximately 1 minute to approximately 20 minutes.
[0153] In the casting process, the liquid and solid components are introduced into a final mixing system and continuously mixed until the components form a substantially homogeneous liquid mixture in which the components are distributed throughout their entire mass. In an exemplary embodiment, the components are mixed in the mixing system for at least approximately 60 seconds. Once mixing is complete, the product is transferred to a packaging container where solidification occurs. In an exemplary embodiment, the cast composition begins to harden into a solid state in approximately 1 minute to approximately 3 hours. More specifically, the cast composition begins to harden into a solid state in approximately 1 minute to approximately 2 hours. More specifically, the cast composition begins to harden into a solid state in approximately 1 minute to approximately 20 minutes.
[0154] In a press solid process, fluid solids such as granular solids and other particulate solids can be combined under pressure. In a press solid process, the fluid solid of the composition is placed in a mold (e.g., a mold or container). The method may include gently press-forming the fluid solid within the mold to produce a solid cleaning composition. Pressure may be applied by a block machine or a rotary plate press, etc. Pressure may be applied at about 1 to about 3000 psi, about 5 to about 2500 psi, or about 10 to about 2000 psi. As used herein, the term “psi” or “pounds per square inch” refers to the actual pressure applied to the pressurized fluid solid and not to a gauge or water pressure measured at a point in the pressurizing apparatus. The method may include a curing step for producing a solid cleaning composition. As referred herein, an uncured composition containing a fluid solid is compressed to provide sufficient surface contact between the particles constituting the fluid solid, which will solidify into a stable solid cleaning composition. A sufficient amount of particles in contact with one another (e.g., granules) provides effective particle-to-particle bonding to produce a stable solid composition. The inclusion of an optional curing step may include allowing the pressed solid to solidify for a period of time such as several hours or about a day (or longer). In additional embodiments, the method may include vibrating a fluid solid within a mold or formwork, such as the method disclosed in U.S. Patent No. 8,889,048 (which is incorporated herein by reference in its entirety).
[0155] The use of pressed solids offers numerous advantages over conventional solid block or tablet compositions produced by extrusion, which requires casting that necessitates high pressure or significant energy consumption of the composition within a tablet press, and / or requires expensive equipment and advanced technical expertise. Pressed solids overcome the various limitations of other solid formulations required for the production of solid cleaning compositions. Furthermore, press-formed solid compositions retain their shape under conditions under which the composition may be stored or handled.
[0156] The term “solid” means that the cured composition will not flow under moderate stress or pressure or mere gravity and will substantially retain its shape. The solid can be in various forms such as powder, flakes, granules, pellets, tablets, drops, packs, briquettes, bricks, solid blocks, unit doses, or other solid forms known to those skilled in the art. The hardness of solid cast compositions and / or pressed solid compositions can range from the hardness of relatively dense and hard fused solid products, such as concrete, to the hardness characterized as a cured paste. In addition, the term “solid” refers to the state of the cleaning composition under the expected storage and use conditions of the solid cleaning composition. Generally, cleaning compositions are expected to remain in a solid state when exposed to temperatures up to approximately 100°F, specifically up to approximately 120°F.
[0157] The resulting solid foaming cleaning composition may take the form of a cast solid product, an extruded, molded, or formed solid pellet, block, tablet, powder, granule, flake, or compressed solid, but may not be limited to these forms. The formed solid may then be ground or formed into a powder, granule, or flake. In exemplary embodiments, the extruded pellet material formed by the solidification matrix has a weight of approximately 50 to approximately 250 grams, the extruded solid formed by the composition has a weight of approximately 100 grams or more, and the solid block detergent formed by the composition has a mass of approximately 1 to approximately 10 kilograms. The solid composition provides a stabilized source of functional material. In some embodiments, the solid composition may be dissolved in, for example, an aqueous medium or other medium to produce a concentrated solution and / or a solution for use. This solution may be directed to a reservoir for subsequent use and / or dilution, or it may be applied directly to the point of use.
[0158] The following patents disclose various combinations of solidifying agents, binders, and / or curing agents that may be used in the solid cleaning compositions of the present invention. The following U.S. Patents: U.S. Patents No. 7,153,820, No. 7,094,746, No. 7,087,569, No. 7,037,886, No. 6,831,054, No. 6,730,653, No. 6,660,707, No. 6,653,266, No. 6,583,094, No. 6,410,495, No. 6,258,765, and No. 6 Nos. 177,392, 6,156,715, 5,858,299, 5,316,688, 5,234,615, 5,198,198, 5,078,301, 4,595,520, 4,680,134, RE32,763, and RE32818 are incorporated herein by reference.
[0159] Liquid compositions can typically be prepared by forming components in aqueous liquids or aqueous solvent systems. Such systems are typically prepared by dissolving or suspending the active ingredient in water or a compatible solvent, and then diluting the product to an appropriate concentration to form either a concentrate or a working solution thereof. Gelated compositions can similarly be prepared by dissolving or suspending the active ingredient in a compatible aqueous, aqueous liquid, or mixed aqueous organic system containing a gelling agent at an appropriate concentration. All publications and patent applications herein represent the ordinary level of art in the art to which the present invention relates.
[0160] Method using a low-foaming cleaning composition Low-foaming cleaning compositions can be used in a variety of forms. The low-foaming cleaning composition is expected to be applied to the article to be cleaned by contact with the article. This contact can be carried out by pouring, spraying, mopping, wiping, or any other method of applying the composition. In a preferred embodiment, the article can be rinsed with water after application of the low-foaming cleaning composition. In a preferred embodiment, the article can be rinsed before application of the low-foaming cleaning composition.
[0161] Low-foaming cleaning compositions can be applied to cleaning processes at temperatures ranging from about 20°C to about 100°C. In preferred embodiments, low-foaming cleaning compositions are applied to low-temperature cleaning processes at temperatures ranging from about 20°C to about 70°C, more preferably from about 20°C to about 60°C, and most preferably from about 20°C to about 50°C.
[0162] Possible and insufficient uses include, but are not limited to, dishwashing, laundry, stationary cleaning, hard surface cleaning, and disinfection. The low-foaming cleaning composition can be applied to any of these methods as a pretreatment, washing step, rinsing step, and / or finishing step.
[0163] All publications and patent applications herein represent the ordinary level of art in the art relating to the present invention. All publications and patent applications are incorporated herein by reference to the same extent as each individual publication or patent application is incorporated by reference specifically and individually. [Examples]
[0164] Embodiments of the present invention are further defined in the following non-limiting examples. These examples illustrate specific embodiments of the present invention, but should be understood as being given only as examples. From the above description and these examples, those skilled in the art will be able to identify the essential features of the present invention and make various changes and modifications to the embodiments of the present invention without departing from the spirit and scope of the invention to suit various uses and conditions. Therefore, various modifications to the embodiments of the present invention, in addition to those shown and described herein, will be apparent to those skilled in the art from the foregoing description. Such modifications are also intended to be included within the scope of the appended claims. The materials used in the following examples are listed below.
[0165] The following commercially available polycarboxylic acids and their salts were used in the examples: citrate, succinate, malate, ethylenediaminetetraacetic acid (EDTA), N,N-dicarboxymethylglutamate tetrasodium salt (GLDA), and methylglycine diacetic acid (MGDA).
[0166] The following commercially available quaternary ammonium compounds were used in the examples: alkylalkoxylated quaternary ammonium, alkyldiethanol quaternary ammonium, alkyl C10-C16 benzylammonium chloride (ADBAC), alkyl C10-C16 ethylbenzylammonium chloride (ADEBAC), and dialkyl C8-C16 dialkyl C1-C4 ammonium salts. Quaternary ammonium compounds supplied under the following trade names were also used in the examples: Bardac 205M, Bardac 2250, Carboquat, Stepan Quat, and BarQuat MB-50.
[0167] The following exemplary commercially available defoamers were used in the examples: Airase® (siloxane defoamer available from Evonik), Plurafac SLF-180 (alcohol alkoxylate available from multiple commercial suppliers), N3 (exemplary commercially available reverse-block copolymer defoaming surfactant), and Surfynol® MD 20 (gemini-based defoaming surfactant commercially available from Evonik).
[0168] Example 1 Foam rating The foaming properties of quaternary ammonium compounds were evaluated, and then the reduced foaming when conventional defoaming compounds were included was tested. The foam height was determined using the following steps. 1. A 1200 ppm solution of the test composition was mixed in water. 2. The height of the foam was measured immediately after mixing. 3. The solution was stirred, and the foam height was measured after 15 seconds. 4. The solution was stirred, and after another 45 seconds of stirring (a total of 60 seconds from the time the solution was mixed), the solution was measured.
[0169] The solution temperature was 120°F throughout the test duration. The results of these preliminary tests are shown in Figures 1A and 1B. As seen in Figures 1A and 1B, the various quaternary ammonium compounds tested provided a significant foam height after mixing, 15 seconds after stirring. Conventional defoamers had various effects on the foaming properties of the quaternary ammonium compounds.
[0170] The ability of polycarboxylic acids and / or salts to control foaming of different quaternary ammonium compounds was also tested. The same procedural steps outlined above were followed. The results of this test are shown in Figures 2A and 2B. As seen in Figures 2A and 2B, most polycarboxylic acids and / or salts provided a significant reduction in foaming. Those that did not were acetate, sodium sulfate, and sodium benzoate. While we do not wish to be bound by theory, this is thought to be partly due to the monobasic nature of acetate and sodium benzoate, as well as the strong acid pKa (pKa of -3) of sodium sulfate. The other polycarboxylic acids provided similar, and often superior, foam reduction, in contrast to the conventional defoamers shown in Figures 1A and 1B.
[0171] Example 2 Antimicrobial evaluation Quaternary ammonium compounds were tested for their antimicrobial efficacy against exemplary bacteria (Escherichia coli and Staphylococcus aureus) under different pH conditions. For this evaluation, various test solutions were prepared in 500 ppm hard water at a temperature of 120°F. Microbial populations were exposed to the test compositions for approximately 30 seconds. Microbial populations were measured before and after the exposure procedure, and the difference was taken to identify the logarithmic decrease. The quaternary ammonium compounds tested, their concentrations, and corresponding logarithmic decreases are shown in Table 2 below. [Table 4]
[0172] This test was conducted to determine appropriate pH conditions for maintaining the antimicrobial efficacy of quaternary ammonium compounds so that polycarboxylic acids and / or their salts can be effectively incorporated into compositions. As shown in Table 2, the compositions provided a significant logarithmic decrease at pH values of approximately 5–9. For example, at pH values of approximately 5, 8, and 9, solutions of the tested quaternary ammonium compositions provided a logarithmic decrease of more than approximately 6 after 30 seconds of contact with a microbial population of Staphylococcus aureus.
[0173] Although the present invention has been described in this manner, it will be apparent that this can vary in many ways. Such modifications should not be considered departures from the spirit and scope of the invention, and all such modifications are intended to be included within the following claims. The above specification provides a description of the manufacture and use of the disclosed compositions and methods. Since many embodiments can be made without departing from the spirit and scope of the invention, the present invention falls within the claims. Examples of embodiments of this disclosure are listed in the following sections [1] to
[20] . [1] Quaternary ammonium compounds and Polycarboxylic acids and / or salts thereof, A cleaning composition comprising, A cleaning composition wherein the polycarboxylic acid has at least two pKa values, each of which is less than about 7. [2] The cleaning composition according to item 1, wherein the polycarboxylic acid comprises one or more of the following: citric acid, succinic acid, malic acid, N-hydroxyethyliminodiacetic acid, nitrilotriacetic acid (NTA), ethylenediaminetetraacetic acid (EDTA), N-hydroxyethyl-ethylenediaminetriacetic acid (HEDTA), diethylenetriaminepentaacetic acid (DTPA), N,N-dicarboxymethylglutamate tetrasodium salt (GLDA), methylglycinediacetic acid (MGDA), any salt of the above, or sodium xylenesulfonate. [3] The cleaning composition according to item 1 or 2, wherein each of the above pKa values is less than approximately 6.5. [4] The cleaning composition according to any one of items 1 to 3, wherein the polycarboxylic acid has at least two pKa values less than about 6. [5] The cleaning composition according to any one of items 1 to 4, wherein the polycarboxylic acid has at least one pKa value of about 2 to about 6. [6] The cleaning composition according to any one of items 1 to 5, wherein the above-mentioned quaternary ammonium compound is alkyl(C8-C16)dimethylbenzylammonium chloride (ADBAC), alkyl(C8-16)dimethylethylbenzylammonium chloride (ADEBAC), dialkyl(C8-C16)dimethylammonium chloride (DAAC), or a mixture thereof. [7] The cleaning composition according to any one of items 1 to 6, wherein the composition is a liquid and has a pH of about 4.5 to about 10. [8] A cleaning composition according to any one of items 1 to 7, wherein the above-mentioned quaternary ammonium compound is concentrated at a concentration of about 10 ppm to about 40% by weight, and the above-mentioned polycarboxylic acid or salt thereof is concentrated at a concentration of about 25 ppm to about 50% by weight. [9] The composition according to any one of items 1 to 8, wherein the composition is a concentrated liquid composition, the quaternary ammonium compound is concentrated in a concentration of about 1% to about 40% by weight, and the polycarboxylic acid or its salt is concentrated in a concentration of about 1% to about 50% by weight.
[10] The composition according to any one of items 1 to 8, wherein the composition is a ready-to-use liquid composition, the quaternary ammonium compound is concentrated at a concentration of about 10 ppm to about 1000 ppm, and the polycarboxylic acid or salt thereof is concentrated at a concentration of about 25 ppm to about 10,000 ppm.
[11] The composition according to any one of items 1 to 10, wherein the composition further comprises a carrier in a concentration of about 5% to about 95% by weight.
[12] The composition described above is a solid and contains a solidifying agent in a concentration of about 10% to about 80% by weight, as described in any one of items 1 to 8.
[13] The composition according to any one of items 1 to 12, further comprising a dye, an odorant, a pH adjuster, a coating agent, a surfactant, or a mixture thereof.
[14] A method for cleaning articles, wherein the above method is A method comprising bringing the article into contact with a low-foaming cleaning composition described in any one of items 1 to 13.
[15] The method according to item 14, further comprising the step of dissolving and / or diluting the low-foaming cleaning composition before or during the above contact step.
[16] The method according to item 14 or 15, wherein the article is tableware, fabric, or a hard surface.
[17] The method according to any one of items 14 to 16, wherein the method further includes the step of rinsing the article.
[18] The method described above is carried out at a temperature of approximately 20°C to approximately 100°C, as described in any one of items 14 to 17.
[19] The method described in any one of items 14 to 18, wherein the above method is carried out at a temperature of approximately 20°C to approximately 70°C, and the above cleaning method is a disinfection method.
[20] The method described in any one of items 14-20, wherein any bubbles produced during the above method burst within 30 seconds.
Claims
1. Quaternary ammonium compounds and Polycarboxylic acids and / or salts thereof, A low-foaming cleaning composition comprising, The polycarboxylic acid has at least two pKa values less than 7, The polycarboxylic acid comprises citric acid, ethylenediaminetetraacetic acid (EDTA), or a salt of any of the above. The quaternary ammonium compound is alkyl(C8-C16)dimethylbenzylammonium chloride (ADBAC), dialkyl(C8-C16)dimethylammonium chloride (DAAC), or a mixture thereof. The cleaning composition is a low-foaming cleaning composition that, in a 1200 ppm solution, forms bubbles that collapse in less than 30 seconds at a temperature of 20°C to 100°C, the composition is a liquid, and the composition has a pH of 5 to 9.
2. The low-foaming cleaning composition according to claim 1, wherein the polycarboxylic acid has at least two pKa values less than 6.
5.
3. The low-foaming cleaning composition according to claim 1 or 2, wherein the polycarboxylic acid has at least two pKa values less than 6.
4. The low-foaming cleaning composition according to any one of claims 1 to 3, wherein the polycarboxylic acid has at least one pKa value between 2 and 6.
5. The low-foaming cleaning composition according to any one of claims 1 to 4, wherein the quaternary ammonium compound is concentrated at a concentration of 10 ppm to 40% by weight, and the polycarboxylic acid or its salt is concentrated at a concentration of 25 ppm to 50% by weight.
6. The low-foaming cleaning composition according to any one of claims 1 to 5, wherein the composition is a concentrated liquid composition, the quaternary ammonium compound is concentrated in a concentration of 1% to 40% by weight, and the polycarboxylic acid or its salt is concentrated in a concentration of 1% to 50% by weight.
7. The low-foaming cleaning composition according to any one of claims 1 to 5, wherein the composition is a ready-to-use liquid composition, the quaternary ammonium compound is concentrated at a concentration of 10 ppm to 1,000 ppm, and the polycarboxylic acid or its salt is concentrated at a concentration of 25 ppm to 10,000 ppm.
8. The low-foaming cleaning composition according to any one of claims 1 to 7, wherein the composition further comprises a carrier in a concentration of 5% to 95% by weight.
9. The low-foaming cleaning composition according to any one of claims 1 to 8, wherein the composition further comprises a dye, a deodorant, a pH adjuster, a coating agent, a surfactant, or a mixture thereof.
10. A method for cleaning an article, wherein the method is A method comprising bringing the low-foaming cleaning composition according to any one of claims 1 to 9 into contact with the article.
11. The method according to claim 10, further comprising the step of dissolving and / or diluting the low-foaming cleaning composition before or during the contact step.
12. The method according to claim 10 or 11, wherein the article is tableware, fabric, or a hard surface.
13. The method according to any one of claims 10 to 12, wherein the method further comprises the step of rinsing the article.
14. The method according to any one of claims 10 to 13, wherein the method is carried out at a temperature of 20°C to 100°C.
15. The method according to any one of claims 10 to 13, wherein the method is carried out at a temperature of 20°C to 70°C, and the washing method is a disinfection method.
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