EP1554368B1 - Anti-soiling detergent composition - Google Patents

Anti-soiling detergent composition Download PDF

Info

Publication number
EP1554368B1
EP1554368B1 EP03773307A EP03773307A EP1554368B1 EP 1554368 B1 EP1554368 B1 EP 1554368B1 EP 03773307 A EP03773307 A EP 03773307A EP 03773307 A EP03773307 A EP 03773307A EP 1554368 B1 EP1554368 B1 EP 1554368B1
Authority
EP
European Patent Office
Prior art keywords
carbon atoms
group
soiling
detergent composition
hydrocarbon group
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
EP03773307A
Other languages
German (de)
French (fr)
Other versions
EP1554368A1 (en
EP1554368B2 (en
Inventor
Mari Johnson Professional Kk Yagi
Mitsuo Johnson Professional Kk Sado
Aki Johnson Professional Kk Abe
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Diversey Inc
Original Assignee
JohnsonDiversey Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Family has litigation
First worldwide family litigation filed litigation Critical https://patents.darts-ip.com/?family=32232634&utm_source=google_patent&utm_medium=platform_link&utm_campaign=public_patent_search&patent=EP1554368(B1) "Global patent litigation dataset” by Darts-ip is licensed under a Creative Commons Attribution 4.0 International License.
Application filed by JohnsonDiversey Inc filed Critical JohnsonDiversey Inc
Publication of EP1554368A1 publication Critical patent/EP1554368A1/en
Publication of EP1554368B1 publication Critical patent/EP1554368B1/en
Application granted granted Critical
Publication of EP1554368B2 publication Critical patent/EP1554368B2/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C11ANIMAL OR VEGETABLE OILS, FATS, FATTY SUBSTANCES OR WAXES; FATTY ACIDS THEREFROM; DETERGENTS; CANDLES
    • C11DDETERGENT COMPOSITIONS; USE OF SINGLE SUBSTANCES AS DETERGENTS; SOAP OR SOAP-MAKING; RESIN SOAPS; RECOVERY OF GLYCEROL
    • C11D3/00Other compounding ingredients of detergent compositions covered in group C11D1/00
    • C11D3/16Organic compounds
    • C11D3/37Polymers
    • C11D3/3703Macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds
    • C11D3/373Macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds containing silicones
    • C11D3/3742Nitrogen containing silicones
    • CCHEMISTRY; METALLURGY
    • C11ANIMAL OR VEGETABLE OILS, FATS, FATTY SUBSTANCES OR WAXES; FATTY ACIDS THEREFROM; DETERGENTS; CANDLES
    • C11DDETERGENT COMPOSITIONS; USE OF SINGLE SUBSTANCES AS DETERGENTS; SOAP OR SOAP-MAKING; RESIN SOAPS; RECOVERY OF GLYCEROL
    • C11D3/00Other compounding ingredients of detergent compositions covered in group C11D1/00
    • C11D3/0005Other compounding ingredients characterised by their effect
    • C11D3/0036Soil deposition preventing compositions; Antiredeposition agents
    • CCHEMISTRY; METALLURGY
    • C11ANIMAL OR VEGETABLE OILS, FATS, FATTY SUBSTANCES OR WAXES; FATTY ACIDS THEREFROM; DETERGENTS; CANDLES
    • C11DDETERGENT COMPOSITIONS; USE OF SINGLE SUBSTANCES AS DETERGENTS; SOAP OR SOAP-MAKING; RESIN SOAPS; RECOVERY OF GLYCEROL
    • C11D3/00Other compounding ingredients of detergent compositions covered in group C11D1/00
    • C11D3/43Solvents
    • CCHEMISTRY; METALLURGY
    • C11ANIMAL OR VEGETABLE OILS, FATS, FATTY SUBSTANCES OR WAXES; FATTY ACIDS THEREFROM; DETERGENTS; CANDLES
    • C11DDETERGENT COMPOSITIONS; USE OF SINGLE SUBSTANCES AS DETERGENTS; SOAP OR SOAP-MAKING; RESIN SOAPS; RECOVERY OF GLYCEROL
    • C11D2111/00Cleaning compositions characterised by the objects to be cleaned; Cleaning compositions characterised by non-standard cleaning or washing processes
    • C11D2111/10Objects to be cleaned
    • C11D2111/14Hard surfaces

Definitions

  • the present invention relates to an anti-soiling detergent composition that possesses excellent storage stability and has a sustained anti-soiling effect on cleaned surfaces in addition to exhibiting superior detergency.
  • the soil in baths comprises proteins and other nitrogenous compounds, fatty acid metal salts, or the like
  • the soil in washstands comprises fatty acid metal salts and the like
  • the soil in restrooms comprises urolith deposits, soil that is based on fecal matter, urine, and other types of excrement, and the like.
  • Examples of disclosed detergents that combine an anti-soiling effect and contain such organopolysiloxanes include compositions for bathtub cleaning that contain amino-modified organopolysiloxanes and nonionic surfactants, inhibit redeposition of water-formed deposits, and have protective action on bathtub materials (refer, for example, to Japanese Patent Application Laid-open No. S51-83608), as well as detergent compositions that contain specific organopolysiloxane and provide delustering and surface protection to bath fixtures (refer, for example, to Japanese Patent Application Laid-open No. H3-197596).
  • a detergent composition for the desoiling and antibacterial cleaning of hard surfaces that contains specific cationic surfactants, cation-based bactericidal agents, and hydrophilic organopolysiloxanes and has an anti-soiling effect and antibacterial action (refer, for example, to Japanese Patent Application Laid-open No. 2000-198999).
  • Japanese Patent Application Laid-open Nos. S51-83608 and H3-197596 disclose detergent compositions that have excellent anti-soiling effects and detergency with respect to water-formed deposits and soil, but there is no mention of an anti-soiling effect on water stains, nor is there any disclosure made concerning sustained anti-soiling effects or storage stability, which are believed to be important in practical terms.
  • Japanese Patent Application Laid-open No. 2000-198999 discloses a detergent composition that has an excellent anti-soiling effect on water stains.
  • An object of the present invention is to provide a detergent composition that combines an excellent anti-soiling effect on cleaned surfaces, preserves this anti-soiling effect, and exhibits excellent storage stability in addition to having excellent detergency. More specifically, the object is to provide an anti-soiling detergent composition that can be used to advantage for cleaning and anti-soiling of hard surfaces such as those of plastic, stainless steel, porcelain, tile, glass, ceramic, granite/terrazzo, and other natural stone materials in restrooms, washstands, baths, and other damp locations; particularly, for cleaning and anti-soiling of water stains on hard surfaces such as those of tile, glass, and ceramic in restroom and washstands.
  • an anti-soiling detergent composition that has an excellent anti-soiling effect on cleaned surfaces, preserves this anti-soiling effect, and exhibits excellent storage stability in addition to having excellent detergency can be obtained by combining a polyetheramide-modified organopolysiloxane, a surfactant, a metal chelating agent, and water.
  • the present invention was perfected on the basis of this discovery.
  • an anti-soiling detergent composition which comprises an anti-soiling detergent composition which comprises:
  • the anti-soiling detergent composition of the invention may also contain (E) 0.01 to 5 mass% of a thickener in addition to components (A) to (D).
  • the anti-soiling detergent composition of the invention may further contain (F) 0.1 to 20 mass% of a water-soluble solvent in addition to the above components.
  • the anti-soiling detergent composition of the present invention contains components (A), (B), (C), and (D) as essential ingredients.
  • the component (A) used in the present invention is a polyetheramide-modified organopolysiloxane and it is added with the purpose of endowing the cleaned surface with an anti-soiling effect.
  • the polyetheramide-modified organopolysiloxane of component (A) used in the present invention may be a organopolysiloxane having polyoxyethylene groups and amido groups expressed by average compositional formula (1) R 1 a R 2 b Q 1 c Q 2 d SiO (4-a-b-c-d)/2 (1)
  • a and d are zero or positive numbers; b and c are positive numbers such that 1.9 ⁇ a + b + c + d ⁇ 2.2; and R 1 is a hydrogen atom, a hydroxyl group, or a substituted or unsubstituted monovalent hydrocarbon group with 1 to 6 carbon atoms.
  • Such monovalent hydrocarbon groups include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • R 2 is a monovalent hydrocarbon group with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, vinyl, and phenyl groups.
  • Q 1 is a divalent organic group having an amido group expressed by general formula (2) or (3)
  • R 3 and R 5 are divalent hydrocarbon groups with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups.
  • R 4 and R 6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • X is a monovalent organic group expressed by general formula (4) -R 7 e O f -(C 2 H 4 O) g -(R 8 O) h -Y (4), where e and f are each 0 or 1, and g and h are zeros or positive integers of 1 or greater.
  • R 7 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups.
  • R 8 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups.
  • Y is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl, acetyl, and propionyl groups.
  • Q 2 is a monovalent organic group having a polyoxyalkylene group expressed by general formula (5) -R 9 i O j -(C 2 H 4 O) k -(R 10 O) m -Z (5) where i and j are each 0 or 1; k is a positive integer of 1 or greater; m is zero or a positive number of 1 or greater; and R 9 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups.
  • R 10 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups.
  • Z is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl, acetyl, and propionyl groups.
  • the molecular structure of the polyetheramide-modified organopolysiloxane may be not only linear but also branched, cyclic, or reticulated.
  • the polyetheramide-modified organopolysiloxane having such amido groups and polyoxyethylene groups may, for example, be a compound expressed by the following general formula.
  • R 11 is -(CH 2 ) 3 NHCO(CH 2 ) q O(CH 2 CH 2 O) r (CH 2 ) s H, where n is 10 to 1000, p is 1 to 100, q is 1 to 100, r is 2 to 20, and s is 0 to 20.
  • R 12 is -(CH 2 ) 3 NH(CH 2 ) 2 NHCO(CH 2 ) w H
  • R 13 is -(CH 2 ) 3 O(CH 2 CH 2 O) x (CH 2 CHCH 3 O) y (CH 2 ) z H
  • t is 10 to 1000
  • u is 1 to 100
  • v is 1 to 100
  • w is 1 to 20
  • x is 2 to 20
  • y 0 to 20
  • z is 0 to 20.
  • R c1 is -(CH 2 ) 3 NHCO(CH 2 ) m4 O m5 (CH 2 CH 2 O) m6 (CH 2 CHCH 3 O) m7 (CH 2 ) m8 H
  • R c2 is -(CH 2 ) 3 O(CH 2 CH 2 O) m9 (CH 2 CHCH 3 O) m10 (CH 2 ) m11 D 1
  • E 1 and E 2 which may be the same or different, are R c1 , R c2 , -OH, or -(CH 2 ) p1 H, and preferably -CH 3
  • D 1 is -H or -COCH 3
  • m1 is 10 to 1000
  • m2 is 1 to 100
  • m3 is 0 to 100
  • m4 is 1 to 100
  • m5 is 0 or 1
  • m6 is 0 to 20
  • m7 is 0 to 20
  • m8 is 0 to 20
  • m9 2
  • R c3 is -(CH 2 ) 3 NH(CH 2 ) 2 NHCO(CH 2 ) m15 O m16 (CH 2 CH 2 O) m17 (CH 2 CHCH 3 O) m18 (CH 2 ) m19 H
  • R c4 is -(CH 2 ) 3 O(CH 2 CH 3 O) m20 (CH 2 CHCH 3 O) m21 (CH 2 ) m22 D 2
  • E 3 and E 4 which may be the same or different, are R c3 , R c4 , -OH, or -(CH 2 ) p2 H, and preferably -CH 3
  • D 2 is -H or -COCH 3
  • m12 is 10 to 1000
  • m13 is 1 to 100
  • m14 is 0 to 100
  • m16 is 0 or 1
  • m17 is 0 to 20
  • m18 is 0 to 20
  • m19 is 0 to
  • G 1 is (CH 2 ) 3 NHCOCH 2 O(CH 2 CH 2 O) 4 C 12 H 25 .)
  • G 2 is (CH 2 ) 3 NH(CH 2 ) 2 NHCO(CH 2 ) 3 O(CH 2 CH 2 O) 10 C 12 H 25 .)
  • G 3 is (CH 2 ) 3 O(CH 2 CH 2 O) 10 (CH 2 CHCH 3 O) 10 H
  • G 4 is (CH 2 ) 3 NHCO(CH 2 ) 3 O(CH 2 CH 2 O) 6 C 10 H 21 .
  • G 5 is (CH 2 ) 3 O(CH 2 CH 2 O) 10 COCH 3
  • G 6 is (CH 2 ) 3 NH(CH 2 ) 2 NHCOC 16 H 33 .
  • the polyetheramide-modified organopolysiloxane of component (A) used in the present invention may also be a organopolysiloxane having an amino group, polyoxyethylene group, and amido group expressed by average compositional formula (6) R 1 a R 2 b Q 1 c Q 2 d Q 3 e1 SiO (4-a-b-c-d-e1)/2 (6)
  • a and d are zeros or positive numbers; b, c, and e 1 are positive numbers such that 1.9 ⁇ a+b+c+d+e1 ⁇ 2.2; and R 1 is a hydrogen atom, a hydroxyl group, or a substituted or unsubstituted monovalent hydrocarbon group with 1 to 6 carbon atoms.
  • Such monovalent hydrocarbon groups include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • R 2 is a monovalent hydrocarbon group with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, vinyl, and phenyl groups.
  • Q 1 is a divalent organic group having an amido group expressed by general formula (2) or (3)
  • R 3 and R 5 are divalent hydrocarbon groups with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups.
  • R 4 and R 6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • X is a monovalent organic group expressed by general formula (4) -R 7 e O f -(C 2 H 4 O) g -(R 8 O) h -Y (4), where e and f are each 0 or 1, and g and h are zeros or positive integers of 1 or greater.
  • R 7 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups.
  • R 8 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups.
  • Y is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl acetyl, and propionyl groups.
  • Q 2 is a monovalent organic group having a polyoxyalkylene group expressed by general formula (5) -R 9 i O j -(C 2 H 4 O) k -(R 10 O) m -Z (5), where i and j are each 0 or 1; k is a positive integer of 1 or greater; m is zero or a positive integer of 1 or greater; R 9 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups; R 10 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups; and Z is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which
  • Q 3 is a divalent organic group having an amino group expressed by general formula (7) or (8).
  • R 3 to R 6 are the same as above.
  • the total amount of the primary and secondary amino groups of general formula (7) or (8) contained in the polyetheramide-modified organopolysiloxane molecules is preferably within a range of 0.15 to 0.45 mass%.
  • the anti-soiling effect has inferior sustainability because of the poor adsorption of the polyetheramide-modified organopolysiloxane on the cleaned surfaces, whereas the composition has inferior storage stability when the content exceeds 0.45 mass%.
  • the molecular structure of the polyetheramide-modified organopolysiloxane may be not only linear but also branched, cyclic, or reticulated.
  • the polyetheramide-modified organopolysiloxane having such amido groups, polyoxyethylene groups, and amino groups may, for example, be a compound expressed by the following general formula.
  • R 14 is -(CH 2 ) 3 O(CH 2 CH 2 O) n5 (CH 2 CHCH 3 O) n6 (CH 2 ) n7 D 3 ;
  • R 15 is -(CH 2 ) 3 NH 2 ;
  • R 16 is -(CH 2 ) 3 NHCO(CH 2 ) n8 O n9 (CH 2 CH 2 O) n10 (CH 2 CHCH 3 O) n11 (CH 2 ) n12 H;
  • E 5 and E 6 which may be the same or different, are R 14 , R 15 , R 16 , -OH, or -(CH 2 ) p3 H, and preferably -CH 3 ;
  • D 3 is -H or -COCH 3 ;
  • n1 is 10 to 1000;
  • n2 is 0 to 100;
  • n3 is 1 to 100;
  • n4 is 1 to 100;
  • n5 is 2 or 20;
  • n6 is 0 to 20;
  • R 17 is -(CH 2 ) 3 O(CH 2 CH 2 O) n17 (CH 2 CHCH 3 O) n18 (CH 2 ) n19 D 4 ;
  • R 18 is -(CH 2 ) 3 NH(CH 2 ) 2 NH 2 ;
  • R 19 is -(CH 2 ) 3 NH(CH 2 ) 2 NHCO(CH 2 ) n20 O n21 (CH 2 CH 2 O) n22 (CH 2 CHCH 3 O) n23 (CH 2 ) n24 H;
  • E 7 and E 8 which may be the same or different, are R 17 , R 18 , R 19 , -OH, or -(CH 2 ) p4 H, and preferably -CH 3 ;
  • D 4 is -H or -COCH 3 ;
  • n13 is 10 to 1000;
  • n14 is 0 to 100;
  • n15 is 1 to 100;
  • n 16 is 1 to 100;
  • n17
  • G 14 is -(CH 2 ) 3 O(CH 2 CH 2 O) 5 C 12 H 25
  • G 15 is -(CH 2 ) 3 NH 2
  • G 16 is -(CH 2 ) 3 NHCOCH 2 O(CH 2 CH 2 O) 5 C 12 H 25 .
  • G 17 is -(CH 2 ) 3 O(CH 2 CH 2 O) 10 C 10 H 21
  • G 18 is -(CH 2 ) 3 NH(CH 2 ) 2 NH 2
  • G 19 is -(CH 2 ) 3 NH(CH 2 ) 2 NHCOCH 2 O(CH 2 CH 2 O) 4 C 10 H 21 .
  • the admixed amount of component (A) is selected from the range of 0.05 to 10 mass%, based on the total mass of the composition. An inferior anti-soiling effect will be produced if this amount is less than 0.05 mass%, and the increase in the anti-soiling effect will reach saturation and the economic efficiency will actually be low if more than 10 mass% is admixed.
  • the admixed amount of component (A) is preferably within a range of 0.1 to 8 mass% because of considerations related to the anti-soiling effect and storage stability, and even more preferably within a range of 0.1 to 5 mass% because of considerations related to economic efficiency.
  • Component (A) may be used singly or as a combination of two or more ingredients.
  • the surfactant of component (B) used in the present invention is admixed with the purpose of removing the soil adhered to the cleaned surface and solubilizing the polyetheramide-modified organopolysiloxane and/or amino-modified organopolysiloxane, which is component (A).
  • At least one type of surfactant selected from among nonionic surfactants, amphoteric surfactants, and cationic surfactants is used as the surfactant of component (B) because of considerations related to the anti-soiling effect, which is the effect possessed by component (A).
  • nonionic surfactants examples include polyoxyalkylene alkyl ethers, polyoxyalkylene alkenyl ethers, polyoxyalkylene alkyl phenyl ethers, alkyl polyglucosides, fatty acid polyglycerine esters, fatty acid sugar esters, and fatty acid alkanolamides.
  • polyoxyalkylene alkyl ethers, alkyl polyglucosides, and fatty acid alkanolamides are preferred among these nonionic surfactants because of considerations related to detergency, and polyoxyalkylene alkyl ethers and alkyl polyglucosides are even more preferred because of considerations related to economic efficiency.
  • amphoteric surfactants include alkyl carboxybetaines, alkyl sulfobetaines, alkyl hydroxysulfobetaines, alkyl amidobetaines, imidazolinium betaines, alkyl diaminoethyl glycines, dialkyl diaminoethyl glycines, alkyl amine oxides, alkyl ether amine oxides, and amide/amine oxides.
  • alkyl carboxybetaines alkyl sulfobetaines, alkyl hydroxysulfobetaines, alkyl amidobetaines, alkyl amine oxides, alkyl ether amine oxides, and amide/amine oxides are preferred among these amphoteric surfactants because of considerations related to detergency, and alkyl amidobetaines and alkyl amine oxides are even more preferred because of considerations related to economic efficiency.
  • cationic surfactants examples include alkyl trimethylammonium salts, dialkyl dimethylammonium salts, alkyl trimethylammonium salts, alkyl dimethylammonium adipates, benzalkonium salts, benzethonium salts, pyridinium salts, imidazolinium salts, and biguanide compounds.
  • the counterions of these cationic surfactants are halogen ions and the like.
  • dialkyl dimethylammonium salts alkyl dimethylammonium adipates, benzalkonium salts, benzethonium salts, and biguanide compounds are preferred among these cationic surfactants because of considerations related to bactericidal properties and economic efficiency, and benzalkonium chloride and dialkyl dimethylammonium chlorides are even more preferred because of considerations related to the anti-soiling effect.
  • surfactants may be used singly or as combination of two or more components, and can be appropriately selected and used in accordance with detergency on the soil, foaming properties, rinsing properties, mildness on the skin, damage to the material, ease of wiping, and other required performance attributes.
  • the admixed amount of component (B) is selected from the range of 0.1 to 30 mass% of the composition.
  • the detergency and the anti-soiling effect of component (A) will be limited if this amount is less than 0.1 mass%, and the increase in detergency will reach saturation and the economic efficiency will actually decline if more than 30 mass% is admixed.
  • the amount in which the surfactant is admixed is preferably within a range of 1 to 30 mass%, based on the total mass of the composition, because of considerations related to detergency, and even more preferably within a range of 1 to 15 mass% because of considerations related to economic efficiency.
  • Examples of the metal chelating agent of component (C) used in the present invention include hydroxycarboxylic acids, aminocarboxylic acids, phosphoric acids, phosphonic acids, phosphonocarboxylic acids, water-soluble macromolecular polymers, salts thereof, and other compounds that are soluble in water and have a chelating capacity. These may be used singly or as combinations of two or more compounds.
  • the metal chelating agent is admixed with the purpose of obtaining enhanced detergency.
  • hydroxycarboxylic acids include acetic acid, adipic acid, monochloroacetic acid, oxalic acid, succinic acid, oxydisuccinic acid, carboxymethylsuccinic acid, carboxymethyloxysuccinic acid, glycolic acid, diglycolic acid, lactic acid, tartaric acid, carboxymethyltartaric acid, citric acid, malic acid, gluconic acid, and salts thereof.
  • aminocarboxylic acids include nitrilotriacetic acid, iminodiacetic acid, ethylenediamine tetraacetic acid, diethylenetriamine pentaacetic acid, N -hydroxyethyl ethylenediamine acetic acid, ethylenediamine tetrapropionic-acetic acid, methyl glycine diacetic acid, triethylenetetramine hexaacetic acid, ethylene glycol diether diamine tetraacetic acid, hydroxyethyliminodiacetic acid, cyclohexane-1,2-diaminotetraacetic acid, djenkolic acid, and salts thereof.
  • phosphoric acids examples include orthophosphoric acid, pyrophosphoric acid, tripolyphosphoric acid, metaphosphoric acid, hexametaphosphcric acid, phytic acid, and other condensed phosphoric acids, as well as salts thereof.
  • Examples of phosphonic acids include ethane-1,1-diphosphonic acid, ethane-1,1,2-triphosphonic acid, 1-hydroxyethane-1,1-diphosphonic acid, derivatives thereof, 1-hydroxyethane-1,1,2-triphosphonic acid, ethane-1,2-dicarboxy-1,2-diphosphonic acid, methane hydroxyphosphonic acid, aminotrimethylene phosphonic acid, and salts thereof.
  • phosphonocarboxylic acids examples include 2-phosphonobutane-1,2-dicarboxylic acid, 1-phosphonobutane-2,3,4-tricarboxylic acid, ⁇ -methylphosphonosuccinic acid, and salts thereof.
  • water-soluble macromolecular polymers examples include polyacrylic acid, polymaleic acid, copolymers of acrylic acid and maleic acid, polyaconitic acid, poly- ⁇ -hydroxyacrylic acid, polymethacrylic acid, and salts thereof.
  • metal chelating agents may be used in the form of acids or as partial or complete salts.
  • salts include salts of potassium, sodium, and other alkali metals; monoalkanolamines, diethanolamine, triethanolamine, and other alkanolamine salts; and ammonium salts.
  • Hydroxycarboxylic acids, aminocarboxylic acids, alkali metal salts thereof, and alkanolamine salts are preferred among these metal chelating agents because of considerations related to the impact on the environment, and hydroxycarboxylic acids, aminocarboxylic acids, and sodium salts thereof are even more preferred because of considerations related to economic efficiency.
  • the admixed amount of component (C) is selected from the range of 0.1 to 20 mass% of the composition.
  • a limited detergency improving effect will be produced if this amount is less than 0.1 mass%, and the detergency improving effect will reach saturation, the composition will have poor storage stability, and the economic efficiency will actually be low if more than 20 mass% is admixed.
  • the amount in which the metal chelating agent is admixed is preferably within a range of 1 to 20 mass%, based on the total mass of the composition, because of considerations related to detergency, and even more preferably within a range of 1 to 15 mass% because of considerations related to economic efficiency.
  • Purified water, deionized water, soft water, distilled water, and tap water can be cited as examples of the water, or component (D), used in the present invention. These types of water may be used singly or as a combination of two or more types. Among these, tap water and deionized water are preferably used because of considerations related to economic efficiency and storage stability.
  • water refers to the sum of water provided from the outside and water contained as the aqueous solution or crystal water derived from the components that constitute the anti-soiling detergent composition of the present invention. This water is admixed in such a way that the entire anti-soiling detergent composition constitutes 100%.
  • a thickener can also be admixed as component (E) according to need together with essential components (A) to (D).
  • Component (E) is admixed in order to make the anti-soiling detergent composition of the present invention more usable through a thickening effect; particularly, to improve usability when spraying is employed or when a non-horizontal surface is cleaned, and hence to enhance detergency on non-horizontal surfaces.
  • thickener examples include xanthan gum, carageenan, guar gum, gum arabic, locust bean gum, alginate, carboxymethylcellulose, and other thickening polysaccharides, as well as carboxyvinyl polymers, crosslinked polyacrylic acids, and salts thereof.
  • xanthan gum and carboxyvinyl polymers are preferred among these because of considerations related to the stability of the composition.
  • the admixed amount of component (E) is selected from the range of 0.01 to 5 mass% of the composition. An inferior anti-soiling effect will be produced if this amount is less than 0.01 mass%, and the composition will become excessively viscous and difficult to handle, and the economic efficiency will actually be low if more than 5 mass% is admixed.
  • the amount in which the thickener is admixed is preferably within a range of 0.05 to 2 mass%, based on the total mass of the composition, because of considerations related to the ease of operation, and even more preferably within a range of 0.05 to 1 mass% because of considerations related to economic efficiency.
  • a water-soluble solvent may be admixed as component (F) according to need together with essential components (A) to (D).
  • Component (F) contributes to further improvements in detergency, particularly, detergency in relation to organic soil.
  • water-soluble solvents may be used singly or as combinations of two or more components, and can be appropriately selected and used in accordance with detergency on the soil, damage to the material, ease of wiping, and other required performance attributes.
  • lower alcohols with a carbon number of 1 to 5 glycol ethers, and terpene-based hydrocarbon solvents are preferred because of considerations related to detergency, and the following solvents are even more preferred because of considerations related to detergency, stability, and water solubility: lower alcohols with a carbon number of 1 to 5, propylene glycol monomethyl ether, propylene glycol monobutyl ether, diethylene glycol monobutyl ether, dipropylene glycol monomethyl ether, dipropylene glycol monobutyl ether, and limonene.
  • the admixed amount of component (F) is selected from the range of 0.1 to 20 mass% of the composition. Detergency will be limited if this amount is less than 0.1 mass%, and the increase in detergency will reach saturation, the economic efficiency will actually decline, and the composition will have unsatisfactory storage stability if more than 20 mass% is admixed.
  • the amount in which the water-soluble solvent is admixed is preferably 1 to 15 mass% because of considerations related to detergency and storage stability, and is more preferably 1 to 10 mass% because of considerations related to economic efficiency, based on the total mass of the composition.
  • the stock solution for the anti-soiling detergent composition of the present invention is adjusted to a pH of 5 to 9, and preferably 6 to 8, taking into account the absence of any adverse effect on the material of the cleaning object, and biological and environmental safety.
  • the pH can be adjusted using a substance that displays alkalinity and a substance that displays acidity.
  • alkaline substances that can be used for pH adjustment include sodium hydroxide, potassium hydroxide, and other alkali hydroxides; sodium carbonate, potassium carbonate, and other carbonates; sodium silicate, potassium silicate, and other silicates; monoethanolamine, diethanolamine, and other amines; and ammonia.
  • acidic substances that can be used for pH adjustment include hydrochloric acid, sulfuric acid, and other inorganic acids, as well as citric acid, acetic acid, and other organic acids.
  • component (C) If an organic acid that corresponds to component (C) is used as the pH regulator, it must be taken into account that component (C) should be admixed in a ratio that does not fall outside the range of 0.1 to 20 mass%.
  • Fragrances, dyes, pigments, bactericides, preservatives, and the like may also be admixed as needed in addition to the aforementioned components into the anti-soiling detergent composition of the present invention as long as the objects of the present invention are not compromised.
  • the anti-soiling detergent composition of the present invention can be used to advantage for cleaning and desoiling hard surfaces that are in repeated contact with tap water and are prone to developing water stains; particularly, the hard surfaces of restrooms, washstands, baths, and the like.
  • the materials of such cleaned surfaces include plastics, stainless steel, porcelain, tile, glass, ceramics, granite/terrazzo, and other natural stone materials.
  • the anti-soiling detergent composition of the present invention may be used either as a stock solution or after being diluted with water or warm water in accordance with the degree of soiling of the cleaned surface.
  • the degree of dilution can be up to 50 times, based on considerations related to detergency and anti-soiling effect.
  • cleaning methods in which the anti-soiling detergent composition of the present invention can be used include the following.
  • the anti-soiling detergent compositions shown in Tables 1 to 8 were prepared and subjected to various tests.
  • the numerical values for the components in the tables refer to the content (mass%) of each component.
  • the pH was adjusted as needed with the aid of a pH regulator such as acetic acid, sulfuric acid, or sodium hydroxide, and the sum of components (A) to (F), the pH regulator, and arbitrary components was 100 mass% total.
  • a pH regulator such as acetic acid, sulfuric acid, or sodium hydroxide
  • the anti-soiling detergent compositions thus obtained were evaluated for test parameters such as pH, detergency, anti-soiling effect, sustainability of the anti-soiling effect, and storage stability by the test methods and in accordance with the grading system described below, and the results are presented as well in Tables 1 to 8 below.
  • pH METER F-12 manufactured by Horiba
  • pH METER F-12 was used to measure the pH value of a prepared stock solution of an anti-soiling detergent composition at 25°C in accordance with JIS Z-8808: 1984.
  • lanolin 0.5 g was dissolved in 5 mL of chloroform, 495 mL of ethanol was added for dilution, and an ethanol solution was prepared.
  • the coated tile was baked for 1 hour at 145°C and allowed to cool at room temperature, yielding a test piece.
  • a preparation obtained by dissolving 2.5 g of oleic acid, 2.5 g of triolein, 0.25 g of albumin, and 4.75 g of calcium stearate in 60 g of chloroform was uniformly applied in the exact quantity of 1 mL to slide glass (7.6 cm ⁇ 2.6 cm). The slide glass was dried overnight at room temperature and used as a test piece.
  • Ceramic tile (SPKC-100/L00; white; 10 cm ⁇ 10 cm; manufactured by INAX) was cleaned using a sponge (4 cm ⁇ 8 cm) with 2 mL of a stock solution of each composition, rinsed for 20 seconds with a certain amount of tap water, and dried at room temperature to obtain a test piece.
  • Five drops of a solution obtained by dissolving 1 g of ferric chloride in 100 g of water were dropped in spots onto the test piece by using a dropping pipette, and the test piece was then baked for 3 hours at 105°C and allowed to cool at room temperature.
  • the soil was scrubbed off from the test piece with moistened tissue paper (Kim Wipe, manufactured by Crecia), and soil removal was visually evaluated.
  • the urinals, toilet bowls, and washstands were scrubbed with a sponge by using a stock solution of each composition, and the scrubbed surfaces were then rinsed with running water.
  • the surfaces were scrubbed with a moistened sponge and merely rinsed with without using any detergent.
  • a stock solution of each composition was used in the same manner as on day 1, and the surfaces were scrubbed with a sponge and rinsed with water.
  • the urinals, toilet bowls, and washstands were scrubbed with a sponge by using a stock solution of each composition, and the scrubbed surfaces were then rinsed with running water.
  • the surfaces were scrubbed with a moistened sponge and merely rinsed with without using any detergent.
  • a stock solution of each composition was used in the same manner as on day 1, and the surfaces were scrubbed with a sponge and rinsed with water.
  • compositions were placed overnight in an incubator set to -15°C (model HRF-90P, manufactured by Hoshizaki), allowed to freeze, and then caused to thaw at room temperature. This cycle was repeated five times, and the condition of the composition after 8 hours had elapsed since the start of thawing was visually observed. An evaluation was made based on the following grading system.
  • compositions of examples 1 to 28 deliver satisfactory performance in terms of test items such as detergency, anti-soiling effect, sustainability of the anti-soiling effect, and storage stability.
  • an inferior and poorly sustainable anti-soiling effect is provided by the compositions of comparative examples 1 to 6, which are devoid of the polyetheramide-modified organopolysiloxane and/or amino-modified organopolysiloxane of component (A), or by the composition of comparative example 7, in which the content of component (A) is too low.
  • Inferior storage stability is exhibited by the compositions of comparative examples 8 and 9, in which more than 10 mass% of component (A) is admixed.
  • compositions of comparative examples 15 and 16 which are devoid of the metal chelating agent of component (C), or by the composition of comparative example 17, in which too little of component (C) is admixed. It can also be seen that inferior storage stability is exhibited by the composition of comparative example 18, in which more than 20 mass% of component (C) is admixed.
  • compositions of examples 7 to 11, 12, and 26 to 28 were used to clean restrooms, washstands, and mirrors in stores, offices, residences, and the like in the same manner as in the tests of sustainability of the anti-soiling effect, and it was found that adequate detergency was exhibited and that satisfactory results were obtained in terms of sustainability of the anti-soiling effect as well.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Oil, Petroleum & Natural Gas (AREA)
  • Wood Science & Technology (AREA)
  • Organic Chemistry (AREA)
  • Detergent Compositions (AREA)
  • Cosmetics (AREA)

Abstract

To provide an anti-soiling detergent composition that has excellent detergency, endows cleaned surfaces with a pronounced anti-soiling effect, effectively sustains the anti-staining effect, possesses superb storage stability, and can be used on restrooms, sinks, baths, and other damp, hard surfaces. The anti-soiling detergent composition contains (A) 0.05 to 10 mass% of a polyetheramide-modified organopolysiloxane and/or amino-modified organopolysiloxane, (B) 0.1 to 30 mass% of a specific surfactant, (C) 0.1 to 20 mass% of a metal chelating agent, and (D) water.

Description

    TECHNICAL FIELD
  • The present invention relates to an anti-soiling detergent composition that possesses excellent storage stability and has a sustained anti-soiling effect on cleaned surfaces in addition to exhibiting superior detergency.
  • BACKGROUND ART
  • Depending on the location of use, various types of soil deposit on the hard surfaces of baths, washstands, restrooms, and other damp locations. For example, the soil in baths comprises proteins and other nitrogenous compounds, fatty acid metal salts, or the like; the soil in washstands comprises fatty acid metal salts and the like; and the soil in restrooms comprises urolith deposits, soil that is based on fecal matter, urine, and other types of excrement, and the like. In addition, these hard surfaces undergo repeated drying after coming into constant contact with tap water, so silicate scale or carbonate scale derived from tap water are concentrated and deposited locally, producing soil commonly referred to as "water spots" or "water stains." In particular, the restroom bowls, washbowls, and other ceramic fixtures, as well as mirrors and other glass surfaces in restroom areas are hydrophilic, and therefore tend to be covered with water stains.
  • If such water stains continue to build up over a long time, the water stains bond firmly with the hard surfaces, and not only does removal become more difficult, but the components of the water stains tend to become a breeding ground for mold and germs together with other types of soil, and sanitary problems are encountered. Initial water stains can be removed relatively easily by careful cleaning, but currently the situation is such that the frequency of cleaning tends to decrease due to the streamlining of cleaning operations.
  • In view of this, a need exists for detergents that have the ability (anti-soiling effect) to reduce deposits of water stains and other types of soil, and detergents that clean and at the same time endow cleaned surfaces with the anti-soiling effect have come to be developed in order to prevent water stains from firmly adhering to hard surfaces. Detergents endowed with the ability to form films on the cleaned surfaces and to provide an anti-soiling effect by the incorporation of specific organopolysiloxanes into the detergent composition have been proposed as products that combine such an anti-soiling effect.
  • Examples of disclosed detergents that combine an anti-soiling effect and contain such organopolysiloxanes include compositions for bathtub cleaning that contain amino-modified organopolysiloxanes and nonionic surfactants, inhibit redeposition of water-formed deposits, and have protective action on bathtub materials (refer, for example, to Japanese Patent Application Laid-open No. S51-83608), as well as detergent compositions that contain specific organopolysiloxane and provide delustering and surface protection to bath fixtures (refer, for example, to Japanese Patent Application Laid-open No. H3-197596). Also disclosed is a detergent composition for the desoiling and antibacterial cleaning of hard surfaces that contains specific cationic surfactants, cation-based bactericidal agents, and hydrophilic organopolysiloxanes and has an anti-soiling effect and antibacterial action (refer, for example, to Japanese Patent Application Laid-open No. 2000-198999).
  • Japanese Patent Application Laid-open Nos. S51-83608 and H3-197596 disclose detergent compositions that have excellent anti-soiling effects and detergency with respect to water-formed deposits and soil, but there is no mention of an anti-soiling effect on water stains, nor is there any disclosure made concerning sustained anti-soiling effects or storage stability, which are believed to be important in practical terms. Japanese Patent Application Laid-open No. 2000-198999 discloses a detergent composition that has an excellent anti-soiling effect on water stains.
  • DISCLOSURE OF THE INVENTION
  • The prior art does not disclose or recognize the need for storage stability or details of detergency, and a detergent that simultaneously satisfies all the requirements related to enhanced detergency, excellent anti-soiling effects, and adequate storage stability has yet to be developed.
  • A need therefore exists for developing a detergent that would exhibit excellent anti-soiling effects and storage stability in addition to excellent detergency even in restrooms, washstands, baths, and other locations in repeated contact with tap water.
  • An object of the present invention is to provide a detergent composition that combines an excellent anti-soiling effect on cleaned surfaces, preserves this anti-soiling effect, and exhibits excellent storage stability in addition to having excellent detergency. More specifically, the object is to provide an anti-soiling detergent composition that can be used to advantage for cleaning and anti-soiling of hard surfaces such as those of plastic, stainless steel, porcelain, tile, glass, ceramic, granite/terrazzo, and other natural stone materials in restrooms, washstands, baths, and other damp locations; particularly, for cleaning and anti-soiling of water stains on hard surfaces such as those of tile, glass, and ceramic in restroom and washstands.
  • The inventors have discovered that an anti-soiling detergent composition that has an excellent anti-soiling effect on cleaned surfaces, preserves this anti-soiling effect, and exhibits excellent storage stability in addition to having excellent detergency can be obtained by combining a polyetheramide-modified organopolysiloxane, a surfactant, a metal chelating agent, and water. The present invention was perfected on the basis of this discovery.
  • Specifically, the present invention provides an anti-soiling detergent composition which comprises an anti-soiling detergent composition which comprises:
    1. (A) 0.05 to 10 mass% of a polyetheramide-modified organopolysiloxane;
    2. (B) 0.1 to 30 mass% of at least one type of surfactant selected from nonionic surfactants, amphoteric surfactants, and cationic surfactants;
    3. (C) 0.1 to 20 mass% of a metal chelating agent; and
    4. (D) water.
  • The anti-soiling detergent composition of the invention may also contain (E) 0.01 to 5 mass% of a thickener in addition to components (A) to (D).
  • The anti-soiling detergent composition of the invention may further contain (F) 0.1 to 20 mass% of a water-soluble solvent in addition to the above components.
  • The anti-soiling detergent composition of the present invention contains components (A), (B), (C), and (D) as essential ingredients.
  • The component (A) used in the present invention is a polyetheramide-modified organopolysiloxane and it is added with the purpose of endowing the cleaned surface with an anti-soiling effect.
  • The polyetheramide-modified organopolysiloxane of component (A) used in the present invention may be a organopolysiloxane having polyoxyethylene groups and amido groups expressed by average compositional formula (1)

            R1 aR2 bQ1 cQ2 dSiO(4-a-b-c-d)/2     (1)

  • In average compositional formula (1), a and d are zero or positive numbers; b and c are positive numbers such that 1.9 ≤ a + b + c + d ≤ 2.2; and R1 is a hydrogen atom, a hydroxyl group, or a substituted or unsubstituted monovalent hydrocarbon group with 1 to 6 carbon atoms. Specific examples of such monovalent hydrocarbon groups include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • In formula (1), R2 is a monovalent hydrocarbon group with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, vinyl, and phenyl groups.
  • In formula (1), Q1 is a divalent organic group having an amido group expressed by general formula (2) or (3)
    Figure imgb0001
    Figure imgb0002
    In general formulae (2) and (3), R3 and R5 are divalent hydrocarbon groups with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups. In the formulae, R4 and R6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • In general formulae (2) and (3), X is a monovalent organic group expressed by general formula (4)

            -R7 eOf-(C2H4O)g-(R8O)h-Y     (4),

    where e and f are each 0 or 1, and g and h are zeros or positive integers of 1 or greater. R7 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups. R8 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups. Y is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl, acetyl, and propionyl groups.
  • In formula (1), Q2 is a monovalent organic group having a polyoxyalkylene group expressed by general formula (5)

            -R9 iOj-(C2H4O)k-(R10O)m-Z     (5)

    where i and j are each 0 or 1; k is a positive integer of 1 or greater; m is zero or a positive number of 1 or greater; and R9 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups. R10 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups. Z is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl, acetyl, and propionyl groups.
  • The molecular structure of the polyetheramide-modified organopolysiloxane may be not only linear but also branched, cyclic, or reticulated.
  • The polyetheramide-modified organopolysiloxane having such amido groups and polyoxyethylene groups may, for example, be a compound expressed by the following general formula.
    Figure imgb0003
  • (In the formula, R11 is -(CH2)3NHCO(CH2)qO(CH2CH2O)r(CH2)sH, where n is 10 to 1000, p is 1 to 100, q is 1 to 100, r is 2 to 20, and s is 0 to 20.)
    Figure imgb0004
  • (In the formula, R12 is -(CH2)3NH(CH2)2NHCO(CH2)wH, R13 is -(CH2)3O(CH2CH2O)x(CH2CHCH3O)y(CH2)zH, t is 10 to 1000, u is 1 to 100, v is 1 to 100, w is 1 to 20, x is 2 to 20, y is 0 to 20, and z is 0 to 20.)
    Figure imgb0005
  • (In the formula, Rc1 is -(CH2)3NHCO(CH2)m4Om5(CH2CH2O)m6(CH2CHCH3O)m7(CH2)m8H; Rc2 is -(CH2)3O(CH2CH2O)m9(CH2CHCH3O)m10(CH2)m11D1; E1 and E2, which may be the same or different, are Rc1, Rc2, -OH, or -(CH2)p1H, and preferably -CH3; D1 is -H or -COCH3; m1 is 10 to 1000; m2 is 1 to 100; m3 is 0 to 100; m4 is 1 to 100; m5 is 0 or 1; m6 is 0 to 20; m7 is 0 to 20; m8 is 0 to 20; m9 is 2 to 20; m 10 is 0 to 20; m11 is 0 to 20; p1 is 0 to 20; and m3 and m6 cannot both be 0 at the same time.)
    Figure imgb0006
  • (In the formula, Rc3 is -(CH2)3NH(CH2)2NHCO(CH2)m15Om16(CH2CH2O)m17(CH2CHCH3O)m18(CH2)m19H; Rc4 is -(CH2)3O(CH2CH3O)m20(CH2CHCH3O)m21(CH2)m22D2; E3 and E4, which may be the same or different, are Rc3, Rc4, -OH, or -(CH2)p2H, and preferably -CH3; D2 is -H or -COCH3; m12 is 10 to 1000; m13 is 1 to 100; m14 is 0 to 100;ml5is 1 to 100; m16 is 0 or 1; m17 is 0 to 20; m18 is 0 to 20; m19 is 0 to 20; m20 is 2 to 20; m21 is 0 to 20; m22 is 0 to 20; p2 is 0 to 20; and m 14 and m 17 cannot both be 0 at the same time.)
  • Compounds having chemical structures such as those shown below can be cited as specific examples.
    Figure imgb0007
  • (In the formula, G1 is (CH2)3NHCOCH2O(CH2CH2O)4C12H25.)
    Figure imgb0008
  • (In the formula, G2 is (CH2)3NH(CH2)2NHCO(CH2)3O(CH2CH2O)10C12H25.)
    Figure imgb0009
  • (In the formula, G3 is (CH2)3O(CH2CH2O)10(CH2CHCH3O)10H, and G4 is (CH2)3NHCO(CH2)3O(CH2CH2O)6C10H21.)
    Figure imgb0010
  • (In the formula, G5 is (CH2)3O(CH2CH2O)10COCH3, and G6 is (CH2)3NH(CH2)2NHCOC16H33.)
  • The polyetheramide-modified organopolysiloxane of component (A) used in the present invention may also be a organopolysiloxane having an amino group, polyoxyethylene group, and amido group expressed by average compositional formula (6)

            R1 aR2 bQ1 cQ2 dQ3 e1SiO(4-a-b-c-d-e1)/2     (6)

  • In formula (6), a and d are zeros or positive numbers; b, c, and e1 are positive numbers such that 1.9≤a+b+c+d+e1≤ 2.2; and R1 is a hydrogen atom, a hydroxyl group, or a substituted or unsubstituted monovalent hydrocarbon group with 1 to 6 carbon atoms. Specific examples of such monovalent hydrocarbon groups include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • In formula (6), R2 is a monovalent hydrocarbon group with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, vinyl, and phenyl groups.
  • In formula (6), Q1 is a divalent organic group having an amido group expressed by general formula (2) or (3)
    Figure imgb0011
    Figure imgb0012
  • In general formulae (2) and (3), R3 and R5 are divalent hydrocarbon groups with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups. In the formulae, R4 and R6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms, specific examples of which include methyl, ethyl, propyl, butyl, pentyl, hexyl, and other alkyl groups; phenyl, tolyl, xylyl, and other aryl groups; benzyl, phenethyl, and other aralkyl groups; and 3-chloropropyl, 3,3,3-trifluoropropyl, and other halo-substituted alkyl groups.
  • In general formulae (2) and (3), X is a monovalent organic group expressed by general formula (4)

            -R7 eOf-(C2H4O)g-(R8O)h-Y     (4),

    where e and f are each 0 or 1, and g and h are zeros or positive integers of 1 or greater. R7 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups. R8 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups. Y is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl acetyl, and propionyl groups.
  • In formula (6), Q2 is a monovalent organic group having a polyoxyalkylene group expressed by general formula (5)

            -R9 iOj-(C2H4O)k-(R10O)m-Z     (5),

    where i and j are each 0 or 1; k is a positive integer of 1 or greater; m is zero or a positive integer of 1 or greater; R9 is a divalent hydrocarbon group with 2 to 18 carbon atoms, specific examples of which include ethylene, propylene, butylene, isobutylene, pentamethylene, octamethylene, decamethylene, dodecamethylene, and cyclohexyl groups; R10 is a divalent hydrocarbon group with 3 to 10 carbon atoms, specific examples of which include propylene, isopropylene, butylene, and isobutylene groups; and Z is a group selected from among hydrogen atoms, alkyl groups, acyl groups, and isocyanic groups, examples of which include methyl, ethyl, propyl, acetyl, and propionyl groups.
  • In formula (6), Q3 is a divalent organic group having an amino group expressed by general formula (7) or (8).
    Figure imgb0013
    Figure imgb0014
  • In general formulae (7) and (8), R3 to R6 are the same as above.
  • Because of considerations related to the sustainability of the anti-soiling effect, the total amount of the primary and secondary amino groups of general formula (7) or (8) contained in the polyetheramide-modified organopolysiloxane molecules is preferably within a range of 0.15 to 0.45 mass%. When the total content of the primary and secondary amino groups is less than 0.15 mass%, the anti-soiling effect has inferior sustainability because of the poor adsorption of the polyetheramide-modified organopolysiloxane on the cleaned surfaces, whereas the composition has inferior storage stability when the content exceeds 0.45 mass%.
  • The molecular structure of the polyetheramide-modified organopolysiloxane may be not only linear but also branched, cyclic, or reticulated.
  • The polyetheramide-modified organopolysiloxane having such amido groups, polyoxyethylene groups, and amino groups may, for example, be a compound expressed by the following general formula.
    Figure imgb0015
  • (In the formula, R14 is -(CH2)3O(CH2CH2O)n5(CH2CHCH3O)n6(CH2)n7D3; R15 is -(CH2)3NH2; R16 is -(CH2)3NHCO(CH2)n8On9(CH2CH2O)n10(CH2CHCH3O)n11(CH2)n12H; E5 and E6, which may be the same or different, are R14, R15, R16, -OH, or -(CH2)p3H, and preferably -CH3; D3 is -H or -COCH3; n1 is 10 to 1000; n2 is 0 to 100; n3 is 1 to 100; n4 is 1 to 100; n5 is 2 or 20; n6 is 0 to 20; n7 is 0 to 20; n8 is 1 to 100; n9 is 0 or 1; n10 is 0 to 20; n11 is 0 to 20; n12 is 0 to 20; p3 is 0 to 20; and n2 and n10 cannot both be 0 at the same time.)
    Figure imgb0016
  • (In the formula, R17 is -(CH2)3O(CH2CH2O)n17(CH2CHCH3O)n18(CH2)n19D4; R18 is -(CH2)3NH(CH2)2NH2; R19 is -(CH2)3NH(CH2)2NHCO(CH2)n20On21(CH2CH2O)n22(CH2CHCH3O)n23(CH2)n24H; E7 and E8, which may be the same or different, are R17, R18, R19, -OH, or -(CH2)p4H, and preferably -CH3; D4 is -H or -COCH3; n13 is 10 to 1000; n14 is 0 to 100; n15 is 1 to 100; n 16 is 1 to 100; n17 is 2 or 20; n18 is 0 to 20; n19 is 0 to 20; n20 is 1 or 100; n21 is 0 or 1; n22 is 0 to 20; n23 is 0 to 20; n24 is 0 to 20; p4 is 0 to 20; and n14 and n22 cannot both be 0 at the same time.)
  • Compounds having chemical structures such as those shown below can be cited as specific examples.
    Figure imgb0017
  • (In the formula G14 is -(CH2)3O(CH2CH2O)5C12H25, G15 is -(CH2)3NH2, and G16 is -(CH2)3NHCOCH2O(CH2CH2O)5C12H25.)
    Figure imgb0018
  • (In the formula G17 is -(CH2)3O(CH2CH2O)10C10H21, G18 is -(CH2)3NH(CH2)2NH2, and G19 is -(CH2)3NH(CH2)2NHCOCH2O(CH2CH2O)4C10H21.)
  • The admixed amount of component (A) is selected from the range of 0.05 to 10 mass%, based on the total mass of the composition. An inferior anti-soiling effect will be produced if this amount is less than 0.05 mass%, and the increase in the anti-soiling effect will reach saturation and the economic efficiency will actually be low if more than 10 mass% is admixed. The admixed amount of component (A) is preferably within a range of 0.1 to 8 mass% because of considerations related to the anti-soiling effect and storage stability, and even more preferably within a range of 0.1 to 5 mass% because of considerations related to economic efficiency. Component (A) may be used singly or as a combination of two or more ingredients.
  • The surfactant of component (B) used in the present invention is admixed with the purpose of removing the soil adhered to the cleaned surface and solubilizing the polyetheramide-modified organopolysiloxane and/or amino-modified organopolysiloxane, which is component (A).
  • At least one type of surfactant selected from among nonionic surfactants, amphoteric surfactants, and cationic surfactants is used as the surfactant of component (B) because of considerations related to the anti-soiling effect, which is the effect possessed by component (A).
  • Examples of such nonionic surfactants include polyoxyalkylene alkyl ethers, polyoxyalkylene alkenyl ethers, polyoxyalkylene alkyl phenyl ethers, alkyl polyglucosides, fatty acid polyglycerine esters, fatty acid sugar esters, and fatty acid alkanolamides. In the present invention, polyoxyalkylene alkyl ethers, alkyl polyglucosides, and fatty acid alkanolamides are preferred among these nonionic surfactants because of considerations related to detergency, and polyoxyalkylene alkyl ethers and alkyl polyglucosides are even more preferred because of considerations related to economic efficiency.
  • Examples of amphoteric surfactants include alkyl carboxybetaines, alkyl sulfobetaines, alkyl hydroxysulfobetaines, alkyl amidobetaines, imidazolinium betaines, alkyl diaminoethyl glycines, dialkyl diaminoethyl glycines, alkyl amine oxides, alkyl ether amine oxides, and amide/amine oxides. In the present invention, alkyl carboxybetaines, alkyl sulfobetaines, alkyl hydroxysulfobetaines, alkyl amidobetaines, alkyl amine oxides, alkyl ether amine oxides, and amide/amine oxides are preferred among these amphoteric surfactants because of considerations related to detergency, and alkyl amidobetaines and alkyl amine oxides are even more preferred because of considerations related to economic efficiency.
  • Examples of cationic surfactants include alkyl trimethylammonium salts, dialkyl dimethylammonium salts, alkyl trimethylammonium salts, alkyl dimethylammonium adipates, benzalkonium salts, benzethonium salts, pyridinium salts, imidazolinium salts, and biguanide compounds. The counterions of these cationic surfactants are halogen ions and the like. In the present invention, dialkyl dimethylammonium salts, alkyl dimethylammonium adipates, benzalkonium salts, benzethonium salts, and biguanide compounds are preferred among these cationic surfactants because of considerations related to bactericidal properties and economic efficiency, and benzalkonium chloride and dialkyl dimethylammonium chlorides are even more preferred because of considerations related to the anti-soiling effect.
  • These surfactants may be used singly or as combination of two or more components, and can be appropriately selected and used in accordance with detergency on the soil, foaming properties, rinsing properties, mildness on the skin, damage to the material, ease of wiping, and other required performance attributes.
  • The admixed amount of component (B) is selected from the range of 0.1 to 30 mass% of the composition. The detergency and the anti-soiling effect of component (A) will be limited if this amount is less than 0.1 mass%, and the increase in detergency will reach saturation and the economic efficiency will actually decline if more than 30 mass% is admixed. The amount in which the surfactant is admixed is preferably within a range of 1 to 30 mass%, based on the total mass of the composition, because of considerations related to detergency, and even more preferably within a range of 1 to 15 mass% because of considerations related to economic efficiency.
  • Examples of the metal chelating agent of component (C) used in the present invention include hydroxycarboxylic acids, aminocarboxylic acids, phosphoric acids, phosphonic acids, phosphonocarboxylic acids, water-soluble macromolecular polymers, salts thereof, and other compounds that are soluble in water and have a chelating capacity. These may be used singly or as combinations of two or more compounds. The metal chelating agent is admixed with the purpose of obtaining enhanced detergency.
  • Examples of hydroxycarboxylic acids include acetic acid, adipic acid, monochloroacetic acid, oxalic acid, succinic acid, oxydisuccinic acid, carboxymethylsuccinic acid, carboxymethyloxysuccinic acid, glycolic acid, diglycolic acid, lactic acid, tartaric acid, carboxymethyltartaric acid, citric acid, malic acid, gluconic acid, and salts thereof.
  • Examples of aminocarboxylic acids include nitrilotriacetic acid, iminodiacetic acid, ethylenediamine tetraacetic acid, diethylenetriamine pentaacetic acid, N-hydroxyethyl ethylenediamine acetic acid, ethylenediamine tetrapropionic-acetic acid, methyl glycine diacetic acid, triethylenetetramine hexaacetic acid, ethylene glycol diether diamine tetraacetic acid, hydroxyethyliminodiacetic acid, cyclohexane-1,2-diaminotetraacetic acid, djenkolic acid, and salts thereof.
  • Examples of phosphoric acids include orthophosphoric acid, pyrophosphoric acid, tripolyphosphoric acid, metaphosphoric acid, hexametaphosphcric acid, phytic acid, and other condensed phosphoric acids, as well as salts thereof.
  • Examples of phosphonic acids include ethane-1,1-diphosphonic acid, ethane-1,1,2-triphosphonic acid, 1-hydroxyethane-1,1-diphosphonic acid, derivatives thereof, 1-hydroxyethane-1,1,2-triphosphonic acid, ethane-1,2-dicarboxy-1,2-diphosphonic acid, methane hydroxyphosphonic acid, aminotrimethylene phosphonic acid, and salts thereof.
  • Examples of phosphonocarboxylic acids include 2-phosphonobutane-1,2-dicarboxylic acid, 1-phosphonobutane-2,3,4-tricarboxylic acid, α-methylphosphonosuccinic acid, and salts thereof.
  • Examples of water-soluble macromolecular polymers include polyacrylic acid, polymaleic acid, copolymers of acrylic acid and maleic acid, polyaconitic acid, poly-α-hydroxyacrylic acid, polymethacrylic acid, and salts thereof.
  • These metal chelating agents may be used in the form of acids or as partial or complete salts. Examples of such salts include salts of potassium, sodium, and other alkali metals; monoalkanolamines, diethanolamine, triethanolamine, and other alkanolamine salts; and ammonium salts.
  • Hydroxycarboxylic acids, aminocarboxylic acids, alkali metal salts thereof, and alkanolamine salts are preferred among these metal chelating agents because of considerations related to the impact on the environment, and hydroxycarboxylic acids, aminocarboxylic acids, and sodium salts thereof are even more preferred because of considerations related to economic efficiency.
  • The admixed amount of component (C) is selected from the range of 0.1 to 20 mass% of the composition. A limited detergency improving effect will be produced if this amount is less than 0.1 mass%, and the detergency improving effect will reach saturation, the composition will have poor storage stability, and the economic efficiency will actually be low if more than 20 mass% is admixed. The amount in which the metal chelating agent is admixed is preferably within a range of 1 to 20 mass%, based on the total mass of the composition, because of considerations related to detergency, and even more preferably within a range of 1 to 15 mass% because of considerations related to economic efficiency.
  • Purified water, deionized water, soft water, distilled water, and tap water can be cited as examples of the water, or component (D), used in the present invention. These types of water may be used singly or as a combination of two or more types. Among these, tap water and deionized water are preferably used because of considerations related to economic efficiency and storage stability.
  • As used herein, the term "water" refers to the sum of water provided from the outside and water contained as the aqueous solution or crystal water derived from the components that constitute the anti-soiling detergent composition of the present invention. This water is admixed in such a way that the entire anti-soiling detergent composition constitutes 100%.
  • In the present invention, a thickener can also be admixed as component (E) according to need together with essential components (A) to (D). Component (E) is admixed in order to make the anti-soiling detergent composition of the present invention more usable through a thickening effect; particularly, to improve usability when spraying is employed or when a non-horizontal surface is cleaned, and hence to enhance detergency on non-horizontal surfaces.
  • Examples of the thickener that can be used as component (E) in the present invention include xanthan gum, carageenan, guar gum, gum arabic, locust bean gum, alginate, carboxymethylcellulose, and other thickening polysaccharides, as well as carboxyvinyl polymers, crosslinked polyacrylic acids, and salts thereof. In the present invention, xanthan gum and carboxyvinyl polymers are preferred among these because of considerations related to the stability of the composition.
  • The admixed amount of component (E) is selected from the range of 0.01 to 5 mass% of the composition. An inferior anti-soiling effect will be produced if this amount is less than 0.01 mass%, and the composition will become excessively viscous and difficult to handle, and the economic efficiency will actually be low if more than 5 mass% is admixed. The amount in which the thickener is admixed is preferably within a range of 0.05 to 2 mass%, based on the total mass of the composition, because of considerations related to the ease of operation, and even more preferably within a range of 0.05 to 1 mass% because of considerations related to economic efficiency.
  • In the present invention, a water-soluble solvent may be admixed as component (F) according to need together with essential components (A) to (D). Component (F) contributes to further improvements in detergency, particularly, detergency in relation to organic soil.
  • The following are examples of the water-soluble solvent, or component (F):
    1. (1) Alcohols such as ethanol, propanol, isopropanol, butanol, and other monohydric alcohols; ethylene glycol, diethylene glycol, isoprene glycol, propylene glycol, and other alkylene glycols; and glycerin, polyglycerin, 1,3-butanediol, and other polyhydric alcohols
    2. (2) Glycol ethers such as ethylene glycol monomethyl ether, ethylene glycol dimethyl ether, ethylene glycol monoethyl ether, ethylene glycol monobutyl ether, propylene glycol monomethyl ether, propylene glycol monoethyl ether, propylene glycol monobutyl ether, propylene glycol monophenyl ether, diethylene glycol monomethyl ether, diethylene glycol monoethyl ether, diethylene glycol monobutyl ether, dipropylene glycol monomethyl ether, dipropylene glycol monoethyl ether, dipropylene glycol monobutyl ether, triethylene glycol monobutyl ether, tripropylene glycol dimethyl ether, and other alkylene glycol (mono-, di-) alkyl ethers
    3. (3) Limonene, pinene, terpinolene, myrcene, terpinene, phenanthrene, and other terpene-based hydrocarbon solvents
  • These water-soluble solvents may be used singly or as combinations of two or more components, and can be appropriately selected and used in accordance with detergency on the soil, damage to the material, ease of wiping, and other required performance attributes.
  • Among these water-soluble solvents, lower alcohols with a carbon number of 1 to 5, glycol ethers, and terpene-based hydrocarbon solvents are preferred because of considerations related to detergency, and the following solvents are even more preferred because of considerations related to detergency, stability, and water solubility: lower alcohols with a carbon number of 1 to 5, propylene glycol monomethyl ether, propylene glycol monobutyl ether, diethylene glycol monobutyl ether, dipropylene glycol monomethyl ether, dipropylene glycol monobutyl ether, and limonene.
  • The admixed amount of component (F) is selected from the range of 0.1 to 20 mass% of the composition. Detergency will be limited if this amount is less than 0.1 mass%, and the increase in detergency will reach saturation, the economic efficiency will actually decline, and the composition will have unsatisfactory storage stability if more than 20 mass% is admixed. The amount in which the water-soluble solvent is admixed is preferably 1 to 15 mass% because of considerations related to detergency and storage stability, and is more preferably 1 to 10 mass% because of considerations related to economic efficiency, based on the total mass of the composition.
  • The stock solution for the anti-soiling detergent composition of the present invention is adjusted to a pH of 5 to 9, and preferably 6 to 8, taking into account the absence of any adverse effect on the material of the cleaning object, and biological and environmental safety. The pH can be adjusted using a substance that displays alkalinity and a substance that displays acidity.
  • Examples of alkaline substances that can be used for pH adjustment include sodium hydroxide, potassium hydroxide, and other alkali hydroxides; sodium carbonate, potassium carbonate, and other carbonates; sodium silicate, potassium silicate, and other silicates; monoethanolamine, diethanolamine, and other amines; and ammonia. Examples of acidic substances that can be used for pH adjustment include hydrochloric acid, sulfuric acid, and other inorganic acids, as well as citric acid, acetic acid, and other organic acids.
  • If an organic acid that corresponds to component (C) is used as the pH regulator, it must be taken into account that component (C) should be admixed in a ratio that does not fall outside the range of 0.1 to 20 mass%.
  • Fragrances, dyes, pigments, bactericides, preservatives, and the like may also be admixed as needed in addition to the aforementioned components into the anti-soiling detergent composition of the present invention as long as the objects of the present invention are not compromised.
  • The anti-soiling detergent composition of the present invention can be used to advantage for cleaning and desoiling hard surfaces that are in repeated contact with tap water and are prone to developing water stains; particularly, the hard surfaces of restrooms, washstands, baths, and the like. The materials of such cleaned surfaces include plastics, stainless steel, porcelain, tile, glass, ceramics, granite/terrazzo, and other natural stone materials.
  • The anti-soiling detergent composition of the present invention may be used either as a stock solution or after being diluted with water or warm water in accordance with the degree of soiling of the cleaned surface. The degree of dilution can be up to 50 times, based on considerations related to detergency and anti-soiling effect.
  • Examples of the cleaning methods in which the anti-soiling detergent composition of the present invention can be used include the following.
    1. (1) A sponge or the like is impregnated with the anti-soiling detergent composition of the present invention, and a hard surface is scrubbed and rinsed.
    2. (2) A cleaned surface is sprinkled with the anti-soiling detergent composition of the present invention, scrubbed with a sponge or the like, and rinsed.
    3. (3) A cleaned surface is sprayed with the anti-soiling detergent composition of the present invention, allowed to stand for a while, and rinsed.
    4. (4) In the case of a vertical surface, nonwoven fabric or the like is impregnated with the anti-soiling detergent composition of the present invention, affixed, allowed to stand for a while, and rinsed.
    5. (5) A towel or duster is impregnated with the anti-soiling detergent composition of the present invention, the soil is wiped off, and the surface is wiped with a moist towel.
  • The present invention will now be described in further detail through examples and comparative examples with reference to the anti-soiling detergent composition of the present invention, but the present invention is not limited thereby.
  • EXAMPLES 1 TO 28, COMPARATNE EXAMPLES 1 TO 18
  • The anti-soiling detergent compositions shown in Tables 1 to 8 were prepared and subjected to various tests. The numerical values for the components in the tables refer to the content (mass%) of each component. The pH was adjusted as needed with the aid of a pH regulator such as acetic acid, sulfuric acid, or sodium hydroxide, and the sum of components (A) to (F), the pH regulator, and arbitrary components was 100 mass% total. In Tables 1 to 8, the circle signs indicate cases in which a pH regulator was used.
  • The anti-soiling detergent compositions thus obtained were evaluated for test parameters such as pH, detergency, anti-soiling effect, sustainability of the anti-soiling effect, and storage stability by the test methods and in accordance with the grading system described below, and the results are presented as well in Tables 1 to 8 below.
  • (1) pH
  • A pH meter (pH METER F-12, manufactured by Horiba) was used to measure the pH value of a prepared stock solution of an anti-soiling detergent composition at 25°C in accordance with JIS Z-8808: 1984.
  • (2) Detergency Test 1: Simulated Restroom Soil [Preparation of Simulated Restroom Soil]
  • 0.5 g of lanolin was dissolved in 5 mL of chloroform, 495 mL of ethanol was added for dilution, and an ethanol solution was prepared. A preparation obtained by dissolving 10 g of ferric chloride in 500 mL of water and adding the resulting solution to the ethanol solution was applied in the exact quantity of 1 mL to ceramic tile (SPKC-100/L00; white; 10 cm × 10 cm; manufactured by INAX) whose surface had been pre-roughened with sandpaper (No. 120, manufactured by Nippon Coated Abrasive) that was moved back and forth ten times in the longitudinal and transverse direction, and caused to make 20 laps so that a circle was drawn. The coated tile was baked for 1 hour at 145°C and allowed to cool at room temperature, yielding a test piece.
  • [Test Method]
  • 5 mL of a stock solution of each composition was fed dropwise onto the test piece, a sponge (4 cm × 8 cm) was moved back and forth 15 times with the aid of a washability tester (manufactured by Tester Sangyo), and a detergency test was performed. Following testing, the test piece was rinsed for 10 seconds with a certain amount of tap water and dried at room temperature. The whiteness of the test piece was measured before and after the test, and the cleaning ratio was determined using the formula shown below. The whiteness was measured using a color difference meter (Model CR-331, manufactured by Minolta). Cleaning ratio % = Whiteness after cleaning - Whiteness before cleaning / Whiteness before soil deposition - Whiteness before cleaning × 100
    Figure imgb0019
  • An evaluation was then performed based on the following grading system using these cleaning ratio values.
  • [Grading System]
  • ⊙:
    Cleaning ratio of 80% or greater
    ○:
    Cleaning ratio of 60% or greater
    Δ:
    Cleaning ratio of 40% or greater
    ×:
    Cleaning ratio of less than 40%
    (3) Detergency Test 2: Simulated Soap Scum Soil [Preparation of Simulated Soap Scum Soil]
  • A preparation obtained by dissolving 2.5 g of oleic acid, 2.5 g of triolein, 0.25 g of albumin, and 4.75 g of calcium stearate in 60 g of chloroform was uniformly applied in the exact quantity of 1 mL to slide glass (7.6 cm × 2.6 cm). The slide glass was dried overnight at room temperature and used as a test piece.
  • [Test Method]
  • A stock solution of each composition was fed dropwise onto the test piece, and the test piece was scrubbed with a Conradi stick wrapped in tissue paper (Kim Wipe, manufactured by Crecia), which was moved back and forth 15 times to conduct the detergency test. Following testing, the test piece was rinsed for 10 seconds with a certain amount of tap water and dried at room temperature. The mass of the test piece was measured before and after the test, and the cleaning ratio was determined using the formula shown below. Cleaning ratio % = Mass of soil removed by detergency test / Mass of soil deposited before detergency test × 100
    Figure imgb0020
  • An evaluation was then performed based on the following grading system using these cleaning ratio values.
  • [Grading System]
  • ⊙:
    Cleaning ratio of 80% or greater
    ○:
    Cleaning ratio of 60% or greater
    Δ:
    Cleaning ratio of 40% or greater
    ×:
    Cleaning ratio of less than 40%
    (4) Testing of Anti-soiling Effect [Test Method]
  • Ceramic tile (SPKC-100/L00; white; 10 cm × 10 cm; manufactured by INAX) was cleaned using a sponge (4 cm × 8 cm) with 2 mL of a stock solution of each composition, rinsed for 20 seconds with a certain amount of tap water, and dried at room temperature to obtain a test piece. Five drops of a solution obtained by dissolving 1 g of ferric chloride in 100 g of water were dropped in spots onto the test piece by using a dropping pipette, and the test piece was then baked for 3 hours at 105°C and allowed to cool at room temperature. The soil was scrubbed off from the test piece with moistened tissue paper (Kim Wipe, manufactured by Crecia), and soil removal was visually evaluated.
  • [Grading System]
  • ⊙:
    Soil was removed by light rubbing at all five locations
    ○:
    Soil was removed by forceful rubbing at all five locations
    Δ:
    Soil was removed by forceful rubbing at four locations
    ×:
    Soil remained at two or more locations despite forceful rubbing
    (5) Test 1 of Sustainability of Anti-soiling Effect [Test Method]
  • A test was performed to determine the extent to which the anti-soiling effect could be sustained in actual applications involving the urinals, toilet bowls (both Japanese- and Western-style), and washstands at unisex restrooms cleaned once a day.
  • On the first day of the test, the urinals, toilet bowls, and washstands were scrubbed with a sponge by using a stock solution of each composition, and the scrubbed surfaces were then rinsed with running water. Starting on the next day for 6 days, the surfaces were scrubbed with a moistened sponge and merely rinsed with without using any detergent. During the cleaning on day 7, a stock solution of each composition was used in the same manner as on day 1, and the surfaces were scrubbed with a sponge and rinsed with water.
  • The cleaning in which stock solutions of each composition were used was continued in this manner once a week for 1 month (4 cycles), the extent of soiling was visually observed 1 month (4 cycles) after the start of the test, and the results were evaluated based on the following grading system.
  • [Grading System]
    • ⊙: The same clean surfaces as a month prior, very little soil deposited, the cleaning time reduced
    • ○: The surfaces unchanged from a month prior, but soil occasionally deposited
    • Δ: More soil than a month prior
    • ×: Much more soil than a month prior
    (6) Test 2 of Sustainability of Anti-soiling Effect [Test Method]
  • A test was performed to determine the extent to which the anti-soiling effect could be sustained in actual applications involving the urinals, toilet bowls (both Japanese- and Western-style), and washstands at unisex restrooms cleaned once a day.
  • On the first day of the test, the urinals, toilet bowls, and washstands were scrubbed with a sponge by using a stock solution of each composition, and the scrubbed surfaces were then rinsed with running water. Starting on the next day for 13 days, the surfaces were scrubbed with a moistened sponge and merely rinsed with without using any detergent. During the cleaning on day 14, a stock solution of each composition was used in the same manner as on day 1, and the surfaces were scrubbed with a sponge and rinsed with water.
  • The cleaning in which stock solutions of each composition were used was continued in this manner once every 2 weeks for 1 month (2 cycles), the extent of soiling was visually observed 1 month (2 cycles) after the start of the test, and the results were evaluated based on the following grading system.
  • [Grading System]
    • ⊙: The same clean surfaces as a month prior, very little soil deposited, the cleaning time reduced
    • ○: The surfaces unchanged from a month prior, but soil occasionally deposited
    • Δ: More soil than a month prior
    • ×: Much more soil than a month prior
    (7) Storage Stability Test 1: High-temperature Stability [Test Method]
  • Each composition was allowed to stand for 3 months in an incubator set to 50°C (model IS82, manufactured by Yamato Scientific), and the presence or absence of precipitation, color changes, or separation was visually observed. An evaluation was made based on the following grading system.
  • [Grading System]
  • ⊙:
    No precipitation, color changes, or separation observed in the composition at all
    ○:
    Slight precipitation, color changes, or separation observed in the composition
    Δ:
    Precipitation, color changes, or separation could clearly be seen occurring in the composition
    ×:
    Pronounced precipitation, color changes, or separation observed in the
    composition (8) Storage Stability Test 2: High-temperature Stability [Test Method]
  • Each composition was placed overnight in an incubator set to -15°C (model HRF-90P, manufactured by Hoshizaki), allowed to freeze, and then caused to thaw at room temperature. This cycle was repeated five times, and the condition of the composition after 8 hours had elapsed since the start of thawing was visually observed. An evaluation was made based on the following grading system.
  • [Grading System]
  • ⊙:
    No precipitation, color changes, or separation observed in the composition after 5 cycles of freezing/thawing
    ○:
    No precipitation, color changes, or separation observed in the composition after 4 cycles of freezing/thawing, but some precipitation, color changes, or separation observed during cycle 5
    Δ:
    No precipitation, color changes, or separation observed in the composition after 3 cycles of freezing/thawing, but some precipitation, color changes, or separation observed during cycle 4
    ×:
    Precipitation, color changes, or separation observed in the composition before 3 cycles of freezing/thawing
    Details of the components shown in Tables 1 to 8 below are as follows.
    • * Organopolysiloxane 1: A polyetheramide-modified organopolysiloxane expressed by the chemical formula
      Figure imgb0021
      (In the formula G7 is (CH2)3NHCOCH2O(CH2CH2O)4C12H25.)
    • * Organopolysiloxane 2: A polyetheramide-modified organopolysiloxane expressed by the chemical formula
      Figure imgb0022
      (In the formula G8 is (CH2)3NHCOCH2O(CH2CH2O)5C12H25.)
    • * Organopolysiloxane 3: A polyetheramide-modified organopolysiloxane expressed by the chemical formula
      Figure imgb0023
      (In the formula G9 is (CH2)3O(CH2CH2O)10C12H25, G10 is (CH2)3NH2, and G11 is (CH2)3NHCOCH2O(CH2CH2O)5C12H25.)
    • * Organopolysiloxane 4: A polyetheramide-modified organopolysiloxane expressed by the chemical formula
      Figure imgb0024
      (In the formula G12 is (CH2)3O(CH2CH2O)8C12H25, and G13 is (CH2)3NHCOCH2O(CH2CH2O)4C12H25.)
    • * Organopolysiloxane 5: Amino-modified organopolysiloxane
      (Registered trade name: SF8417, manufactured by Toray Dow Coming Silicone)
    • * Organopolysiloxane 6: Polyether-modified organopolysiloxane
      (Registered trade name: KF-6011, manufactured by Shin-Etsu Silicones)
    • * Organopolysiloxane 7: Polydimethylsiloxane
      (Registered trade name: BY22-007, manufactured by Toray Dow Coming Silicone)
    • * Nonionic surfactant 1: Alkyl polyglucoside
      (Registered trade name: 215CSUP, manufactured by Cognis Japan)
    • * Nonionic surfactant 2: Polyoxyethylene alkyl ether
      (Registered trade name: Naroakty-ID70, manufactured by Sanyo Chemical Industries)
    • * Nonionic surfactant 3: Polyoxyethylene alkyl ether
      (Registered trade name: Lutensol TO8, manufactured by BASF)
    • * Amphoteric surfactant 1: Alkylamidopropyl betaine
      (Registered trade name: TegoBetain L10S, manufactured by Goldschmidt)
    • * Amphoteric surfactant 2: Alkylamine oxide
      (Registered trade name: Barlox 12, manufactured by Lonza)
    • * Cationic surfactant 1: Benzalkonium chloride
      (Registered trade name: Cation G-50, manufactured by Sanyo Chemical Industries)
    • * Cationic surfactant 2: Didecyldimethylammonium chloride
      (Registered trade name: Bardac 2280, manufactured by Lonza)
    • * Anionic surfactant 1: Sodium alkyl ether sulfonate
      (Registered trade name: Alscoap TH-330, manufactured by Toho Chemical Industry)
    • * Anionic surfactant 2: Sodium alkylbenzenesulfonate
      (Registered trade name: Taycapower LN2450, manufactured by Tayca)
    • * Thickener 1: Carboxyvinyl polymer
      (Registered trade name: Hiviswako 105, manufactured by Wako Pure Chemical Industries)
    • * Thickener 2: Xanthan gum (registered trade name: Kelzan, manufactured by Kelco)
    [Table 1]
    Admixed components Examples
    1 2 3 4 5 6
    A Organopolysiloxane 1 1.0 4.0 10.0 2.0 0.5
    Organopolysiloxane 2 4.0 0.5
    Organopolysiloxane 3
    Organopolysiloxane 4
    Organopolysiloxane 5
    B Nonionic surfactant 1 3.0 10.0 29.0 2.0 2.0
    Nonionic surfactant 2 1.0
    Nonionic surfactant 3
    Amphoteric surfactant 1 4.8 1.0
    Amphoteric surfactant 2 2.0
    Cationic surfactant 1 0.2 0.2 1.0 0.2 1.0
    Cationic surfactant 2
    C NTA · 3Na 20.0 15.0 4.0 4.0
    Sodium citrate 4.0
    Citric acid 4.0 1.0 1.0
    EDTA · 4H 4.0
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1
    Thickener 2
    F Diethylene glycol monobutyl ether 15.0 20.0
    Ethanol 10.0
    Limonene
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1
    Detergency 2
    Anti-soiling effect
    Sustainability of anti-soiling effect 1
    Sustainability of anti-soiling effect 2
    Storage stability 1
    Storage stability 2
    [Table 2]
    Admixed components Examples
    7 8 9 10 11 12
    A Organopolysiloxane 1 1.0 1.0 2.0 2.0
    Organopolysiloxane 2 1.0
    Organopolysiloxane 3
    Organopolysiloxane 4
    Organopolysiloxane 5 1.0 1.0
    B Nonionic surfactant 1 3.0 3.0 3.0 3.0
    Nonionic surfactant 2 2.5
    Nonionic surfactant 3 0.5
    Amphoteric surfactant 1 1.0 1.0 1.0 1.0 1.0 3.0
    Amphoteric surfactant 2
    Cationic surfactant 1 0.2 0.2 0.2 0.2
    Cationic surfactant 2 0.2
    C NTA · 3Na 4.0 4.0 4.0 4.0 2.0 4.0
    Sodium citrate 2.0
    Citric acid 0.7 0.7 0.7 1.0
    EDTA · 4H
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1 0.4 0.4 0.4 1.0 0.4
    Thickener 2 2.0
    F Diethylene glycol monobutyl ether
    Ethanol
    Limonene
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1
    Detergency 2
    Anti-soiling effect
    Sustainability of anti-soiling effect 1
    Sustainability of anti-soiling effect 2
    Storage stability 1
    Storage stability 2
    [Table 3]
    Admixed components Examples
    13 14 15 16 17 18
    A Organopolysiloxane 1 0.1 2.0
    Organopolysiloxane 2 0.05
    Organopolysiloxane 3 0.2
    Organopolysiloxane 4 5.0
    Organopolysiloxane 5 0.1
    B Nonionic surfactant 1 0.5 3.0 3.0 0.08 10.0 3.0
    Nonionic surfactant 2
    Nonionic surfactant 3
    Amphoteric surfactant 1 0.3 1.0 1.0 4.8 1.0
    Amphoteric surfactant 2
    Cationic surfactant 1 0.2 0.2 0.2 0.02 0.2
    Cationic surfactant 2 0.2
    C NTA · 3Na 4.0 4.0 4.0 1.0 4.0
    Sodium citrate
    Citric acid 0.6 0.6 0.6
    EDTA · 4H 0.1
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1 . 0.4 0.4 5.0
    Thickener 2 0.05 0.01
    F Diethylene glycol monobutyl ether 0.1 3.0
    Ethanol
    Limonene 1.0
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1
    Detergency 2
    Anti-soiling effect
    Sustainability of anti-soiling effect 1
    Sustainability of anti-soiling effect 2
    Storage stability 1
    Storage stability 2
    [Table 4]
    Admixed components Examples
    19 20 21 22 23 24
    A Organopolysiloxane 1 1.0
    Organopolysiloxane 2 5.0
    Organopolysiloxane 3 1.0 2.0 2.0 2.0
    Organopolysiloxane 4
    Organopolysiloxane 5
    B Nonionic surfactant 1 8.0 3.0 2.0 3.0 1.0
    Nonionic surfactant 2 2.0
    Nonionic surfactant 3 2.0 1.0 2.0
    Amphoteric surfactant 1 1.0 1.0 1.0
    Amphoteric surfactant 2 1.0 1.0 1.0
    Cationic surfactant 1 0.2 0.2 0.2 0.2 0.2
    Cationic surfactant 2 0.2
    C NTA 3Na 4.0 12.0 4.0 1.0
    Sodium citrate 2.0
    Citric acid 0.7 2.0 0.7 5.0
    EDTA · 4H 1.0
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1 0.4 0.4
    Thickener 2 0.4
    F Diethylene glycol monobutyl ether 2.0
    Ethanol 1.0
    Limonene
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1
    Detergency 2
    Anti-soiling effect O
    Sustainability of anti-soiling effect 1
    Sustainability of anti-soiling effect 2
    Storage stability 1
    Storage stability 2
    [Table 5]
    Admixed components Examples
    25 26 27 28
    A Organopolysiloxane 1
    Organopolysiloxane 2 0.5
    Organopolysiloxane 3 5.0 1.5 1.5
    Organopolysiloxane 4 2.0 0.5
    Organopolysiloxane 5
    B Nonionic surfactant 1 10.0 3.0 3.0 3.0
    Nonionic surfactant 2 2.0
    Nonionic surfactant 3
    Amphoteric surfactant 1 3.0 1.0 1.0 1.0
    Amphoteric surfactant 2
    Cationic surfactant 1 0.2 0.2 0.2
    Cationic surfactant 2
    C NTA 3Na 4.0 4.0 4.0
    Sodium citrate
    Citric acid 0.7 0.7 0.7
    EDTA 4H 1.0
    D Deionized water Balance Balance Balance Balance
    E Thickener 1 0.4 0.4 0.4
    Thickener 2
    F Diethylene glycol monobutyl ether
    Ethanol
    Limonene
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7
    Detergency 1
    Detergency 2
    Anti-soiling effect
    Sustainability of anti-soiling effect 1
    Sustainability of anti-soiling effect 2
    Storage stability 1
    Storage stability 2
    [Table 6]
    Admixed components Comparative examples
    1 2 3 4 5 6
    A Organopolysiloxane 1
    Organopolysiloxane 2
    Organopolysiloxane 3
    Organopolysiloxane 4
    Organopolysiloxane 5
    Organopolysiloxane 6 2.0 0.5
    Organopolysiloxane 7 1.5 3.0 0.5
    B Nonionic surfactant 1 3.0 3.0 3.0 3.0
    Nonionic surfactant 2 5.0
    Nonionic surfactant 3
    Amphoteric surfactant 1 1.0 1.0 1.0 1.0 8.0
    Amphoteric surfactant 2
    Cationic surfactant 1 0.2 0.2 0.2
    Cationic surfactant 2
    Anionic surfactant 1
    Anionic surfactant 2 7.0
    C NTA 3Na 4.0 4.0 4.0 4.0
    Sodium citrate
    Citric acid 0.5 0.5 0.5 0.5 5.0
    EDTA 4H 1.0
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1 0.4 0.4 0.4 0.4
    Thickener 2
    F Diethylene glycol monobutyl ether 3.0 6.0 1.0
    Ethanol 2.0
    Limonene
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1
    Detergency 2
    Anti-soiling effect × × × × × ×
    Sustainability of anti-soiling effect 1 × × × × × ×
    Sustainability of anti-soiling effect 2 × × × × × ×
    Storage stability 1
    Storage stability 2
    [Table 7]
    Admixed components Comparative examples
    7 8 9 10 11 12
    A Organopolysiloxane 1 0.01 10.0 1.0
    Organopolysiloxane 2 10.0
    Organopolysiloxane 3 1.0
    Organopolysiloxane 4
    Organopolysiloxane 5 20.0 1.0
    Organopolysiloxane 6
    Organopolysiloxane 7
    B Nonionic surfactant 1 3.0 3.0 3.0 0.05 30.0
    Nonionic surfactant 2
    Nonionic surfactant 3
    Amphoteric surfactant 1 1.0 1.0 1.0
    Amphoteric surfactant 2
    Cationic surfactant 1 0.2 0.2 5.0
    Cationic surfactant 2 0.2
    Anionic surfactant 1
    Anionic surfactant 2
    C NTA · 3Na 4.0 4.0 4.0
    Sodium citrate 4.0 4.0
    Citric acid 0.6 0.6 0.6
    EDTA · 4H 4.0
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1 0.4 0.4 0.4 0.4 0.4 0.4
    Thickener 2
    F Diethylene glycol monobutyl ether 3.0 3.0
    Ethanol 3.0 3.0
    Limonene 1.0
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1 Δ Δ
    Detergency 2 × ×
    Anti-soiling effect Δ Δ
    Sustainability of anti-soiling effect 1 × Δ Δ Δ
    Sustainability of anti-soiling effect 2 × × × ×
    Storage stability 1 × × × × ×
    Storage stability 2 × × × × ×
    [Table 8]
    Admixed components Comparative examples
    13 14 15 16 17 18
    A Organopolysiloxane 1 2.0 1.0 1.0
    Organopolysiloxane 2 1.0 1.0
    Organopolysiloxane 3
    Organopolysiloxane 4
    Organopolysiloxane 5 0.5
    Organopolysiloxane 6
    Organopolysiloxane 7
    B Nonionic surfactant 1 1.0 3.0 3.0 3.0
    Nonionic surfactant 2 0.05
    Nonionic surfactant 3
    Amphoteric surfactant 1 1.0 1.0 1.0 1.0
    Amphoteric surfactant 2
    Cationic surfactant 1 0.2 0.2 0.2 0.2
    Cationic surfactant 2
    Anionic surfactant 1 1.0
    Anionic surfactant 2 0.4
    C NTA 3Na 4.0 0.05 30.0
    Sodium citrate
    Citric acid 0.6 7.0
    EDTA 4H 4.0
    D Deionized water Balance Balance Balance Balance Balance Balance
    E Thickener 1 0.4
    Thickener 2
    F Diethylene glycol monobutyl ether 20.0 3.0 3.0 3.0
    Ethanol
    Limonene
    Acetic acid (pH adjustment)
    Sulfuric acid (pH adjustment)
    Sodium hydroxide (pH adjustment)
    Evaluation pH 7 7 7 7 7 7
    Detergency 1 × × ×
    Detergency 2 Δ × Δ
    Anti-soiling effect Δ Δ
    Sustainability of anti-soiling effect 1 Δ Δ
    Sustainability of anti-soiling effect 2 × ×
    Storage stability 1 × Δ
    Storage stability 2 × ×
  • Based on the above results, it can be seen that the compositions of examples 1 to 28 deliver satisfactory performance in terms of test items such as detergency, anti-soiling effect, sustainability of the anti-soiling effect, and storage stability. By contrast, an inferior and poorly sustainable anti-soiling effect is provided by the compositions of comparative examples 1 to 6, which are devoid of the polyetheramide-modified organopolysiloxane and/or amino-modified organopolysiloxane of component (A), or by the composition of comparative example 7, in which the content of component (A) is too low. Inferior storage stability is exhibited by the compositions of comparative examples 8 and 9, in which more than 10 mass% of component (A) is admixed.
  • Low detergency, a poorly sustainable anti-soiling effect, and inferior storage stability are exhibited by the composition of comparative example 10, which is devoid of the surfactant of component (B), or by the composition of comparative example 11, in which too little of component (B) is admixed. Inferior storage stability and a low and poorly sustainable anti-soiling effect are exhibited by the composition of comparative example 12, in which more than 30 mass% of component (B) is admixed. Inferior and poorly sustainable anti-soiling effect is exhibited by the compositions of comparative examples 13 and 14, which contain an anionic surfactant as component (B).
  • Inferior detergency is exhibited by the compositions of comparative examples 15 and 16, which are devoid of the metal chelating agent of component (C), or by the composition of comparative example 17, in which too little of component (C) is admixed. It can also be seen that inferior storage stability is exhibited by the composition of comparative example 18, in which more than 20 mass% of component (C) is admixed.
  • The compositions of examples 7 to 11, 12, and 26 to 28 were used to clean restrooms, washstands, and mirrors in stores, offices, residences, and the like in the same manner as in the tests of sustainability of the anti-soiling effect, and it was found that adequate detergency was exhibited and that satisfactory results were obtained in terms of sustainability of the anti-soiling effect as well.

Claims (9)

  1. An anti-soiling detergent composition, containing:
    (A) 0.05 to 10 mass% of a polyetheramide-modified organopolysiloxane;
    (B) 0.1 to 30 mass% of at least one type of surfactant selected from nonionic surfactants, amphoteric surfactants, and cationic surfactants;
    (C) 0.1 to 20 mass% of a metal chelating agent; and
    (D) water.
  2. The anti-soiling detergent composition according to claim 1, containing (E) 0.01 to 5 mass% of a thickener in addition to components (A) to (D).
  3. The anti-soiling detergent composition according to claim 1 or 2, containing (F) 0.1 to 20 mass% of a water-soluble solvent in addition to the above components.
  4. The anti-soiling detergent composition according to any of claims 1 to 3, wherein the polyetheramide-modified organopolysiloxane of component (A) is a polyetheramide-modified organopolysiloxane expressed by average compositional formula (1)

            R1 aR2 bQ1 cQ2 dSiO(4-a-b-c-d)/2     (1)

    (where a and d are zeros or positive numbers; b and c are positive numbers such that 1.9 ≤ a + b + c + d ≤ 2.2; R1 is a hydrogen atom, a hydroxyl group, or a substituted or unsubstituted monovalent hydrocarbon group with 1 to 6 carbon atoms; R2 is a monovalent hydrocarbon group with 1 to 6 carbon atoms; Q1 is a group expressed by general formula (2) or (3)
    Figure imgb0025
    Figure imgb0026
    R3 and R5 are divalent hydrocarbon groups with 2 to 18 carbon atoms; R4 and R6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms; X is a group expressed by general formula (4)

            -R7 eOf-(C2H4O)g-(R8O)h-Y     (4);

    e and f are each 0 or 1; g and h are zeros or positive integers of 1 or greater; R7 is a divalent hydrocarbon group with 2 to 18 carbon atoms; R8 is a divalent hydrocarbon group with 3 to 10 carbon atoms; Y is a hydrogen atom, a monovalent hydrocarbon group with 1 to 18 carbon atoms, an acyl group, or an isocyanic acid group; Q2 is a group expressed by general formula (5)

            -R9 iOj-(C2H4O)k-(R10O)m-Z     (5);

    i and j are each 0 or 1; k is a positive integer of 1 or greater; m is zero or a positive integer of 1 or greater; R9 is a divalent hydrocarbon group with 2 to 18 carbon atoms; R10 is a divalent hydrocarbon group with 3 to 10 carbon atoms; and Z is a hydrogen atom, a monovalent hydrocarbon group with 1 to 18 carbon atoms, an acyl group, or an isocyanic acid group; however d and g cannot both be zero at the same time).
  5. The anti-soiling detergent composition according to any of claims 1 to 3, wherein the polyethemn-Aide-modified organopolysiloxane of component (A) is a polyetheramide-modified organopolysiloxane expressed by average compositional formula (6)

            R1 aR2 bQ1 cQ2 dQ3 e1SiO(4-a-b-c-d-e1)/2     (6)

    (where a and d are zeros or positive numbers; b, c, and e1 are positive numbers such that 1.9 ≤a+b+c+d+e1≤ 2.2; R1 is a hydrogen atom, a hydroxyl group, or a substituted or unsubstituted monovalent hydrocarbon group with 1 to 6 carbon atoms; R2 is a monovalent hydrocarbon group with 1 to 6 carbon atoms; Q1 is a group expressed by general formula (2) or (3)
    Figure imgb0027
    Figure imgb0028
    R3 and R5 are divalent hydrocarbon groups with 2 to 18 carbon atoms; R4 and R6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms; X is a group expressed by general formula (4)

            -R7 eOf-(C2H4O)g-(R8O)h-Y     (4);

    e and f are each 0 or 1; g and h are zeros or positive integers of 1 or greater; R7 is a divalent hydrocarbon group with 2 to 18 carbon atoms; R8 is a divalent hydrocarbon group with 3 to 10 carbon atoms; Y is a hydrogen atom, a monovalent hydrocarbon group with 1 to 18 carbon atoms, an acyl-group, or an isocyanic acid group; Q2 is a group expressed by general formula (5)

            -R9 iOj-(C2H4O)k-(R10O)m-Z     (5);

    i and j are each 0 or 1; k is a positive integer of 1 or greater, m is zero or a positive integer of 1 or greater; R9 is a divalent hydrocarbon group with 2 to 18 carbon atoms; R10 is a divalent hydrocarbon group with 3 to 10 carbon atoms; and Z is a hydrogen atom, a monovalent hydrocarbon group with 1 to 18 carbon atoms, an acyl group, or an isocyanic acid group; d and g cannot both be zero at the same time; Q3 is a group expressed by general formula (7) or (8)
    Figure imgb0029
    Figure imgb0030
    R3 and R5 are divalent hydrocarbon groups with 2 to 18 carbon atoms; and R4 and R6 are hydrogen atoms or monovalent hydrocarbon groups with 1 to 6 carbon atoms).
  6. The anti-soiling detergent composition according to any of claims 2 to 5, wherein the thickener of component (E) is at least one compound selected from among thickening polysaccharides, carboxyvinyl polymers, crosslinked polyacrylic acids, and salts thereof.
  7. The anti-soiling detergent composition according to any of claims 3 to 6, wherein the water-soluble solvent of component (F) is at least one compound selected from among alcohols, glycol ethers, and terpene-based hydrocarbon solvents.
  8. The ariti-soiling detergent composition according to any of claims 1 to 7, wherein the anti-soiling detergent composition is used in hard-surface applications.
  9. The anti-soiling detergent composition according to any of claims 1 to 8, wherein the anti-soiling detergent composition is used in applications involving restrooms, washstands, baths, and other damp locations.
EP03773307A 2002-10-25 2003-10-21 Anti-soiling detergent composition Expired - Lifetime EP1554368B2 (en)

Applications Claiming Priority (5)

Application Number Priority Date Filing Date Title
JP2002310790 2002-10-25
JP2002310790 2002-10-25
JP2003356224A JP4463521B2 (en) 2002-10-25 2003-10-16 Antifouling detergent composition for hard surfaces around water
JP2003356224 2003-10-16
PCT/US2003/033396 WO2004039931A1 (en) 2002-10-25 2003-10-21 Anti-soiling detergent composition

Publications (3)

Publication Number Publication Date
EP1554368A1 EP1554368A1 (en) 2005-07-20
EP1554368B1 true EP1554368B1 (en) 2007-03-07
EP1554368B2 EP1554368B2 (en) 2010-02-24

Family

ID=32232634

Family Applications (1)

Application Number Title Priority Date Filing Date
EP03773307A Expired - Lifetime EP1554368B2 (en) 2002-10-25 2003-10-21 Anti-soiling detergent composition

Country Status (12)

Country Link
EP (1) EP1554368B2 (en)
JP (1) JP4463521B2 (en)
KR (1) KR20050073583A (en)
AT (1) ATE356188T1 (en)
AU (1) AU2003280001B2 (en)
BR (1) BR0315635A (en)
CA (1) CA2502606C (en)
DE (1) DE60312361T3 (en)
ES (1) ES2279184T3 (en)
MX (1) MXPA05004414A (en)
NZ (1) NZ539507A (en)
WO (1) WO2004039931A1 (en)

Families Citing this family (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP4647956B2 (en) * 2004-08-20 2011-03-09 小林製薬株式会社 Antifouling composition
JP5252826B2 (en) * 2007-04-17 2013-07-31 ディバーシー株式会社 Cleaning composition for hard surface
US7597766B2 (en) * 2007-08-03 2009-10-06 American Sterilizer Company Biodegradable detergent concentrate for medical instruments and equipment
EP2260094B1 (en) * 2008-04-04 2011-08-10 Unilever N.V. Use of citrate as cleaning aid for hard surfaces
JP2010275440A (en) * 2009-05-29 2010-12-09 Murakami Corp Hydrophilicity recovering agent and hydrophilicity recovering method
JP5663181B2 (en) * 2010-03-30 2015-02-04 小林製薬株式会社 Toilet cleaning composition
JP2013001771A (en) * 2011-06-14 2013-01-07 Neos Co Ltd Liquid mold control detergent composition
JP5579761B2 (en) * 2012-02-20 2014-08-27 エコラボ合同会社 Liquid detergent composition
JP6158065B2 (en) * 2013-12-16 2017-07-05 花王株式会社 Cleaning composition for hard surface
JP2016169308A (en) * 2015-03-12 2016-09-23 株式会社ソフト99コーポレーション Water repellent window washer liquid
SG11201710761WA (en) * 2015-07-14 2018-01-30 Kao Corp Detergent composition for hard surfaces
JP2017165829A (en) * 2016-03-15 2017-09-21 木村石鹸工業株式会社 Water-repellent detergent composition for toilets
US10433545B2 (en) * 2016-07-11 2019-10-08 Ecolab Usa Inc. Non-streaking durable composition for cleaning and disinfecting hard surfaces
JP6652484B2 (en) * 2016-12-13 2020-02-26 アース製薬株式会社 Cleaning composition for hard surfaces
JP6585145B2 (en) * 2016-12-13 2019-10-02 アース製薬株式会社 Cleaning composition for flush toilet
JP7308010B2 (en) 2016-12-28 2023-07-13 小林製薬株式会社 surface smoothing agent
JP2019081722A (en) * 2017-10-30 2019-05-30 花王株式会社 Mold sterilizing agent composition
JP7170528B2 (en) * 2018-12-25 2022-11-14 ライオン株式会社 Liquid cleaning composition for toilet
JP7321797B2 (en) * 2019-06-28 2023-08-07 小林製薬株式会社 Coating agent for toilet bowl
JP7405522B2 (en) * 2019-06-28 2023-12-26 小林製薬株式会社 Coating agent for toilet bowls
JP7346247B2 (en) * 2019-10-31 2023-09-19 アース製薬株式会社 Toilet stain prevention composition
JP2022089322A (en) * 2020-12-04 2022-06-16 山崎産業株式会社 Liquid stain-resistant cleaner composition and method for antifouling treatment

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4859359A (en) * 1988-03-25 1989-08-22 Dyna-5, Inc. Hard surface cleaning and polishing compositions
EP0353388A3 (en) * 1988-07-29 1990-09-19 Dyna-5, Inc. Floor treatment product
US5514302A (en) 1992-09-25 1996-05-07 S.C. Johnson & Son, Inc. Fabric cleaning shampoo compositions
CA2235358A1 (en) * 1997-04-21 1998-10-21 Masahiro Takahashi Surface modifier composition
CA2235198A1 (en) * 1997-04-21 1998-10-21 Masahiro Takahashi Polyoxethylene alkyl ether fatty acid amide modified organopolysiloxane composition
GB2329902B (en) * 1997-10-01 2002-01-09 Reckitt & Colman Inc Aqueous emulsion cleaning composition
US6425959B1 (en) * 1999-06-24 2002-07-30 Ecolab Inc. Detergent compositions for the removal of complex organic or greasy soils

Also Published As

Publication number Publication date
DE60312361T3 (en) 2010-06-10
EP1554368A1 (en) 2005-07-20
AU2003280001B2 (en) 2009-07-16
JP4463521B2 (en) 2010-05-19
DE60312361D1 (en) 2007-04-19
BR0315635A (en) 2005-08-23
ES2279184T3 (en) 2007-08-16
KR20050073583A (en) 2005-07-14
AU2003280001A1 (en) 2004-05-25
ATE356188T1 (en) 2007-03-15
JP2004162041A (en) 2004-06-10
DE60312361T2 (en) 2007-07-12
CA2502606A1 (en) 2004-05-13
MXPA05004414A (en) 2005-07-26
CA2502606C (en) 2009-01-06
WO2004039931A1 (en) 2004-05-13
NZ539507A (en) 2007-06-29
EP1554368B2 (en) 2010-02-24

Similar Documents

Publication Publication Date Title
EP1554368B1 (en) Anti-soiling detergent composition
US7375068B2 (en) Anti-soiling detergent composition comprising a polyetheramide-modified organopolysiloxane
EP2406364B1 (en) Cleaner composition
EP0698660B1 (en) Detergent composition for hard surface
AU2005294597A1 (en) Light duty liquid detergent composition
EP0926231B1 (en) Liquid detergent composition and use thereof
US5439609A (en) Aqueous cleaning composition for hard surfaces
JPH1112596A (en) Liquid cleaner composition for tableware
JP3558907B2 (en) Hard surface antifouling antibacterial detergent composition
JP2797571B2 (en) Detergent composition
CN100540644C (en) Anti-soiling detergent composition
JP2001329293A (en) Liquid detergent composition
JP7134086B2 (en) Bathroom cleaner composition
JP3751420B2 (en) Cleaning composition for hard surface
JP3711176B2 (en) Cleaning composition for hard surface
JPS6351500A (en) Detergent composition for bathroom
JPH11209792A (en) Cleanser composition
JPH11189790A (en) Liquid detergent composition
JP3236704B2 (en) Liquid detergent composition
JPH09235592A (en) Liquid detergent composition
JPH11256198A (en) Liquid detergent composition
JPH10219292A (en) Detergent composition for hard surface
JP2024001601A (en) Detergent composition for hard surfaces
JPS60108500A (en) Abrasive liquid detergent composition
WO2000029531A1 (en) Aqueous shower rinsing composition

Legal Events

Date Code Title Description
PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

17P Request for examination filed

Effective date: 20050415

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LI LU MC NL PT RO SE SI SK TR

AX Request for extension of the european patent

Extension state: AL LT LV MK

DAX Request for extension of the european patent (deleted)
GRAP Despatch of communication of intention to grant a patent

Free format text: ORIGINAL CODE: EPIDOSNIGR1

GRAS Grant fee paid

Free format text: ORIGINAL CODE: EPIDOSNIGR3

GRAL Information related to payment of fee for publishing/printing deleted

Free format text: ORIGINAL CODE: EPIDOSDIGR3

GRAS Grant fee paid

Free format text: ORIGINAL CODE: EPIDOSNIGR3

GRAA (expected) grant

Free format text: ORIGINAL CODE: 0009210

AK Designated contracting states

Kind code of ref document: B1

Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LI LU MC NL PT RO SE SI SK TR

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: SI

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

Ref country code: CH

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

Ref country code: BE

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

Ref country code: AT

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

Ref country code: LI

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

Ref country code: FI

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

REG Reference to a national code

Ref country code: GB

Ref legal event code: FG4D

REG Reference to a national code

Ref country code: CH

Ref legal event code: EP

REF Corresponds to:

Ref document number: 60312361

Country of ref document: DE

Date of ref document: 20070419

Kind code of ref document: P

REG Reference to a national code

Ref country code: IE

Ref legal event code: FG4D

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: SE

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070607

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: PT

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070807

REG Reference to a national code

Ref country code: ES

Ref legal event code: FG2A

Ref document number: 2279184

Country of ref document: ES

Kind code of ref document: T3

ET Fr: translation filed
REG Reference to a national code

Ref country code: CH

Ref legal event code: PL

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: SK

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

PLBI Opposition filed

Free format text: ORIGINAL CODE: 0009260

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: RO

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

Ref country code: CZ

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

PLAX Notice of opposition and request to file observation + time limit sent

Free format text: ORIGINAL CODE: EPIDOSNOBS2

26 Opposition filed

Opponent name: THE PROCTER & GAMBLE COMPANY

Effective date: 20071206

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: DK

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

NLR1 Nl: opposition has been filed with the epo

Opponent name: THE PROCTER & GAMBLE COMPANY

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: GR

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070608

PLBB Reply of patent proprietor to notice(s) of opposition received

Free format text: ORIGINAL CODE: EPIDOSNOBS3

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: MC

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20071031

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: IE

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20071022

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: EE

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: CY

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070307

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: BG

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070607

Ref country code: LU

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20071021

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: HU

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20070908

PUAH Patent maintained in amended form

Free format text: ORIGINAL CODE: 0009272

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: PATENT MAINTAINED AS AMENDED

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: ES

Payment date: 20091026

Year of fee payment: 7

Ref country code: TR

Payment date: 20091006

Year of fee payment: 7

27A Patent maintained in amended form

Effective date: 20100224

AK Designated contracting states

Kind code of ref document: B2

Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LI LU MC NL PT RO SE SI SK TR

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: NL

Payment date: 20091024

Year of fee payment: 7

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: FR

Payment date: 20091030

Year of fee payment: 7

Ref country code: IT

Payment date: 20091026

Year of fee payment: 7

REG Reference to a national code

Ref country code: NL

Ref legal event code: VDEP

Effective date: 20100304

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: ES

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20100604

Ref country code: NL

Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

Effective date: 20100304

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: FR

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20101102

REG Reference to a national code

Ref country code: FR

Ref legal event code: ST

Effective date: 20110630

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: IT

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20101021

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: TR

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20101021

PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

Ref country code: GB

Payment date: 20131028

Year of fee payment: 11

Ref country code: DE

Payment date: 20131029

Year of fee payment: 11

REG Reference to a national code

Ref country code: DE

Ref legal event code: R119

Ref document number: 60312361

Country of ref document: DE

GBPC Gb: european patent ceased through non-payment of renewal fee

Effective date: 20141021

PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

Ref country code: GB

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20141021

Ref country code: DE

Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

Effective date: 20150501