Technical Field
[0001] The present invention relates to low pH, granular laundry detergent compositions.
Certain preferred compositions herein contain a low level of a chlorine scavenger,
preferably an ammonium salt. The compositions minimize fading of fabric colors sensitive
to higher wash water pHs and to the low levels of chlorine present in the wash and
rinse water. Other preferred compositions herein are dense, low or no phosphate detergents
containing a specific aluminosilicate, citric acid and carbonate builder system. These
compositions provide good cleaning performance while maintaining good physical properties.
Background Art
[0002] Granular laundry detergents typically are formulated to provide a wash water pH of
about 9.8 to 10.5. This pH range can cause fading of some fabric dyes after multiple
laundry cycles. When the wash solution is diluted in the rinse, the pH is lowered
to a range of about 7 to 9 where some fabric dyes are generally less sensitive to
pH.
[0003] Chlorine is used in many parts of the world to purify water. To make sure that the
water is safe, a small residual amount, typically about 1 part per million (ppm),
of chlorine is left in the water. It has been found that even this small amount of
chlorine can cause fading of chlorine-sensitive fabric dyes. In a typical wash, there
is usually enough soil on the fabrics to scavenge residual chlorine and minimize damage
to chlorine-sensitive dyes. However, in the rinse the soil levels are greatly reduced,
as is the pH, and chlorine-sensitive dyes can fade after multiple laundering cycles.
Chlorine is also more aggressive to dyes at the lower pHs. Thus, fading of fabric
colors over time is a result of both the high pH of typical granular laundry detergents
and the presence of residual chlorine in the wash and rinse water.
[0004] Delivering good cleaning performance from a low or no phosphate condensed detergent
is difficult due to limitations in conventional spray dry processing. Additionally,
trying to compensate with higher levels of actives (surfactant and builder) is limited
without significantly diminishing product physical properties (solubility, lumping/caking,
scoopability).
Summary of the Invention
[0005] The present invention encompasses granular laundry detergent compositions comprising,
by weight:
(a) from 15% to 25% of a mixture of a C11-C13 alkylbenzene sulfonate surfactant and a C12-C16 alkyl sulfate surfactant in a weight ratio of sulfonate surfactant to sulfate surfactant
of from 4:1 to 1:1;
(b) from 1% to 3% of an alkali metal silicate having a molar ratio of SiO2 to alkali metal oxide of from 1.0 to 2.4;
(c) from 20% to 30% of a finely divided aluminosilicate ion exchange material selected
from the group consisting of:
(i) crystalline aluminosilicate material of the formula:
Naz[(AlO2)z.(SiO2)y].xH2O
wherein z and y are at least 6, the molar ratio of z to y is from 1.0 to 0.5 and x
is from 10 to 264, said material having a particle size diameter of from 0.1 micron
to 10 microns, a calcium ion exchange capacity of at least about 200 mg CaCO3 eq./g and a calcium ion exchange rate of at least 0.130 g/l/min/g/l (2 grains Ca++/gallon/minute/gram/gallon);
(ii) amorphous hydrated aluminosilicate material of the empirical formula:
Mz(zAlO2.ySiO2)
wherein M is sodium, potassium, ammonium, or substituted ammonium, z is from 0.5 to
2 and y is 1, said material having a magnesium ion exchange ion exchange capacity
of at least 50 milligram equivalents of CaCO3 hardness per gram of anhydrous aluminosilicate and a Mg++ exchange rate of at least 0.065 g/l/min/g/l (1 grain/gallon/minute/gram/gallon);
and
(iii) mixtures thereof;
(d) from 4% to 10% of citric acid;
(e) from 5% to 20% of an alkali metal carbonate; said composition having a pH of from
7 to 9.3 at a concentration of 1% by weight in water at 20°C, and said composition
having a density of from 500 to 600 grams per liter.
[0006] Preferably, the present compositions also contain a chlorine scavenger employed in
an effective amount to control residual chlorine in the wash and rinse water. The
amount of chlorine scavenging material needed will vary, but only a small amount is
used to avoid destroying hypochlorite bleach that may be added deliberately to treat
bleach-sensitive stains.
Detailed Description of the Invention
[0007] The granular laundry detergent compositions of the present invention are formulated
to provide a pH of from 7 to 9.3, preferably from 8 to 9.1, more preferably from 8.5
to 9.0, at a concentration of 1% by weight in water at 20°C. The individual components
of the compositions herein are described in detail below.
Chlorine Scavenger
[0008] When present in the compositions of the invention chlorine scavengers should not
be used in a large excess since they will interfere with normal hypochlorite bleaches
added to the wash water for stain removal and whitening. The level should be from
0.01% to 10%, preferably from 0.05% to 5%, most preferably from 0.08 to 2%, based
on the molar amount equivalent to react with 0.5 to 2.5, typically about 1, ppm of
available chlorine, per average rinse. If both the cation and the anion of the scavenger
react with chlorine, which is desirable, the level is adjusted to react with an equivalent
amount of available chlorine.
[0009] Suitable chlorine scavengers include the following polymers which can be divided
into four groups according to their structural construction: polyethyleneimines, polyamines,
polyamineamides and polyacrylamides, of which the polyethyleneimines, the polyamines
and polyamineamides are especially preferred.
[0010] Suitable polyethyleneimines are obtained by acid-catalyzed polymerization of ethyleneimine
and can be modified by urea and epichlorhydrin or dichlorethane. Polyethyleneimines
can contain primary, secondary or tertiary amino groups as well as quaternary ammonium
groups. Aqueous solutions of polyethyleneimines show basic reaction. The molecular
weight can amount up to about 1,000,000.
[0011] Polyamines are addition or condensation products from multivalent aliphatic amines
and compounds with several groups capable of reacting, for example, epichlorhydrin
or alkylene dihalides. Therefore, they always contain several secondary, tertiary
or even quaternary nitrogen atoms, as well as eventually also hydroxyl groups in the
molecule. They are accordingly hydrophilic, polar compounds, which behave as polyelectrolytes
and are water soluble, inasmuch as they do not contain large hydrophobic groups in
the molecule. The polyamines exhibit basic reaction in aqueous solution. Suitable
compounds, for example, are described in U.S. Patent 2,969,302.
[0012] Polyamineamides contain amino- and amido groups in the molecule at the same time.
They are made, for example, by condensation of multibasic acids, for example, dibasic,
saturated, aliphatic C
3 to C
8 acids and polyamines, as well as with compounds, which contain several groups capable
of reacting, such as, for example, epichlorhydrin. These compounds also demonstrate
basic reaction in aqueous solution. Suitable polyamineamides are described, for example,
in U.S. Patent 2,926,154.
[0013] Polyacrylamides having amino groups and molecular weights up to several million are
suitable for use herein. By building in carboxyl groups, which are formed, for example,
by partial hydrolysis, anionic polyacrylamides are obtained in addition to amido groups,
while polyacrylamides containing amino groups exhibit basic reaction in aqueous solution.
Amino groups can be introduced, for example, by reaction with alkali and hypobromite
or hypochlorite.
[0014] It is common to all polymers that they are water soluble. Such polymers are commercial
products. Compounds especially well suited as inserts to the detergents conforming
to the discovery are the polyethyleneimines and polyamines, which exhibit strong basic
reaction in water. Examples of commercially available polyethyleneimines, which are
particularly appropriate, are "Epomin SP-003" from Nippon Shokubai, "Lugalvan G20
and G35" from BASF, and "Ethyleneamine E-100" from Dow Chemical. These polymers can
be added either alone or together with water soluble polymers from melamine or urea
and formaldehyde. Other polymers suitable for the detergents conforming to the discovery
are, for example, the water soluble polymers based on alkyleneimines, acrylamides
as well as melamine or urea and formaldehyde, which are described in the "Encyclopedia
of Polymer Science and Technology, John Wiley & Sons, Inc., New York, 1968, Vol. 9,
p. 762. An addition of these polymers to the detergents conforming to the discovery
in combination with the amino- and/or amido group-containing polymers causes an intensification
of the dye-protective effect.
[0015] Preferred polymers for use in the preferred anionic surfactant containing compositions
herein are polyethyleneimines. Polyethyleneimines are believed to be particularly
efficient chlorine scavengers because they adsorb to cotton fibers. In an anionic
surfactant matrix, ion pairing of the amines with surfactant or polymeric carboxylates
tends to dramatically lower the solubility of the polymeric amine. The solubility
of the polymeric amine complexes can be maintained by utilizing materials of relatively
low molecular weight. The molecular weight of the chosen amine polymer should be controlled
to achieve a fabric substantivity of preferably at least 50%. A low substantivity
will not allow efficient carryover into the rinse. Preferred polyethyleneimines have
a molecular weight of less than 800, more preferably from 200 to 400.
[0016] The cationic charge and the solubility of the polymeric amine allow the deposition
of the polymer onto cotton fabric. The affinity the polymer has for fabric increases
with lower pH, or higher molecular weight. Thus, a balance of these properties (solubility,
solution pH, and polymer molecular weight) controls the efficiency of the chlorine
scavenger on fabric and in solution. The optimal composition will allow a balance
of polymer on fabric (for carryover from wash to rinse) and in solution (for an efficiency
rate of reaction with chlorine).
[0017] Other chlorine scavengers herein are anions selected from the group consisting of
reducing materials like sulfite, bisulfite, thiosulfite, thiosulfate, iodide, or nitrite
and antioxidants like carbamate, or ascorbate, and mixtures thereof. Conventional
non-chlorine scavenging anions like sulfate, bisulfate, carbonate, bicarbonate, nitrate,
chloride, borate, phosphate, condensed phosphate, acetate, benzoate, citrate, formate,
lactate, or salicylate and mixtures thereof can be used with ammonium cations.
[0018] Other chlorine scavengers useful herein include ammonium sulfate (preferred), and
primary and secondary amines of low volatility such as ethanolamines, amino acids
and their salts, polyamino acids and their salts, fatty amines, glucoseamine and other
aminated sugars. Specific examples include tris(hydroxymethyl) aminomethane, monoethanol
amine, diethanol amine, sarcosine, glycine, iminodiacetic acid, lysine, ethylenediamine
diacetic acid, 2,2,6,6-tetramethyl piperinol, and 2,2,6,6-tetramethyl piperinone.
[0019] Other chlorine scavengers include phenol, phenol sulfonate, 2,2-biphenol, tiron,
and t-butyl hydroquinone. Preferred are meta-polyphenols such as resorcinol, resorcinol
monoacetate, 2,4-dihydroxybenzoic acid, 3,5-dihydroxybenzoic acid, and 2,4-dihydroxyacetophenone.
[0020] Peroxide bleach sources, e.g. perborate, percarbonate and other persalts, can also
be used in minor amounts (less than 3% by weight, preferably less than 2%) as a chlorine
scavenger herein. However, peroxides are not efficient chlorine scavengers because
they cannot be used at high enough levels to carry over to the rinse water without
risk of bleach damage to colors.
[0021] Detergent compositions comprising the chlorine scavenger and the detergent component
can be provided having various ratios and proportions of these two materials. Of course,
the amount of the chlorine scavenger can be varied, depending upon the level of residual
chlorine expected by the formulator. Moreover, the amount of detergent component can
be varied to provide either heavy-duty or light-duty products, as desired. This invention
relates primarily to detergent compositions that contain essentially no additional
ingredients which are chlorine scavengers. For example, the other materials present
should not provide any substantial additional amounts of ammonium cations in the wash
solution.
Detergent Additives
[0022] The amount of the detergent surfactant component can, as noted hereinabove, vary
over a wide range which depends on the desires of the user. In general, the compositions
contain from 5% to 50%, preferably from 10% to 30% by weight, of detergent surfactant,
which preferably is an anionic surfactant.
[0023] The detergent compositions of the instant invention can contain all manner of organic,
water-soluble detergent surfactant compounds. A typical listing of the classes and
species of detergent compounds useful herein appear in U.S. Patent 3,664,961. The
following list of detergent compounds and mixtures which can be used in the instant
compositions is representative of such materials, but is not intended to be limiting.
[0024] Water-soluble salts of the higher fatty acids, i.e., "soaps", are useful as the detergent
component of the composition herein. This class of detergents includes ordinary alkali
metal soaps such as the sodium, potassium, salts of higher fatty acids containing
from 8 to 24 carbon atoms and preferably from 10 to 20 carbon atoms. Soaps can be
made by direct saponification of fats and oils or by the neutralization of free fatty
acids. Particularly useful are the sodium and potassium salts of the mixtures of fatty
acids derived from coconut oil and tallow, i.e., sodium or potassium tallow and coconut
soap.
[0025] Another class of detergents includes water-soluble salts, particularly the alkali
metal salts of organic sulfuric reaction products having in their molecular structure
an alkyl group containing from 8 to 22 carbon atoms and a sulfonic acid or sulfuric
acid ester group. (Included in the term "alkyl" is the alkyl portion of acyl groups.)
Examples of this group of synthetic detergents which form a part of the detergent
compositions of the present invention are the sodium and potassium alkyl sulfates,
especially those obtained by sulfating the higher alcohols (C
8-C
18 carbon atoms) produced by reducing the glycerides of tallow or coconut oil; and sodium
and potassium alkylbenzene sulfonates, in which the alkyl group contains from 9 to
15 carbon atoms, in straight chain or branched chain configuration, e.g. those of
the type described in United States Patents 2,220,099 and 2,477,383. Especially valuable
are linear straight chain alkylbenzene sulfonates in which the average of the alkyl
groups is about 12 carbon atoms, abbreviated as C
12 LAS.
[0026] Other anionic detergent surfactant compounds herein include the sodium alkyl glyceryl
ether sulfonates, especially those ethers of higher alcohols derived from tallow and
coconut oil; sodium coconut oil fatty acid monoglyceride sulfonates and sulfates;
and sodium or potassium salts of alkyl phenol ethylene oxide ether sulfate containing
from 1 to 10 units of ethylene oxide per molecule and wherein the alkyl groups contain
8 to 13 carbon atoms.
[0027] Water-soluble nonionic synthetic detergent surfactants are also useful as the detergent
component of the instant composition. Such nonionic detergent materials can be broadly
defined as compounds produced by the condensation of ethylene oxide groups (hydrophilic
in nature) with an organic hydrophobic compound, which may be aliphatic or alkyl aromatic
in nature. The length of the polyoxyethylene group which is condensed with any particular
hydrophobic group can be readily adjusted to yield a water-soluble compound having
the desired degree of balance between hydrophilic and hydrophobic elements.
[0028] For example, a well-known class of nonionic synthetic detergents is made available
on the market under the trade name of "Pluronic". These compounds are formed by condensing
ethylene oxide with a hydrophobic base formed by the condensation of propylene oxide
with propylene glycol. Other suitable nonionic synthetic detergents include the polyethylene
oxide condensates of alkyl phenols, e.g., the condensation products of alkyl phenols
having an alkyl group containing from 6 to 13 carbon atoms in either a straight chain
or branched chain configuration, with ethylene oxide, the said ethylene oxide being
present in amounts equal to from 4 to 15 moles of ethylene oxide per mole of alkyl
phenol.
[0029] The water-soluble condensation products of aliphatic alcohols having from 8 to 22
carbon atoms, in either straight chain or branched configuration, with ethylene oxide,
e.g., a coconut alcohol-ethylene oxide condensate having from 3 to 30 moles of ethylene
oxide per mole of coconut alcohol, the coconut alcohol fraction having from 10 to
14 carbon atoms, are also useful nonionic detergents herein.
[0030] Semi-polar nonionic detergent surfactants include water-soluble amine oxides containing
one alkyl moiety of from 10 to 20 carbon atoms and 2 moieties selected from the group
consisting of alkyl groups and hydroxyalkyl groups containing from 1 to 3 carbon atoms;
water-soluble phosphine oxide detergents containing one alkyl moiety of from 10 to
20 carbon atoms and 2 moieties selected from the group consisting of alkyl groups
and hydroxyalkyl groups containing from 1 to 3 carbon atoms; and water-soluble sulfoxide
detergents containing one alkyl or hydroxyalkyl moiety of from 10 to 20 carbon atoms
and a moiety selected from the group consisting of alkyl and hydroxyalkyl moieties
of from 1 to 3 carbon atoms.
[0031] Ampholytic detergent surfactants include derivatives of aliphatic or aliphatic derivatives
of heterocyclic secondary and tertiary amines in which the aliphatic moiety can be
straight chain or branched and wherein one of the aliphatic substituents contains
from 8 to 18 carbon atoms and at least one aliphatic substituent contains an anionic
water-solubilizing group.
[0032] Zwitterionic detergent surfactants include derivatives of aliphatic quaternary ammonium,
phosphonium and sulfonium compounds in which the aliphatic moieties can be straight
chain or branched, and wherein one of the aliphatic substituents contains from 8 to
18 carbon atoms and one contains an anionic water-solubilizing group. The quaternary
compounds, themselves, e.g. cetyltrimethyl ammonium bromide, can also be used herein.
[0033] Other useful detergent surfactant compounds herein include the water-soluble salts
of esters of alpha-sulfonated fatty acids containing from 6 to 20 carbon atoms in
the fatty acid group and from 1 to 10 carbon atoms in the ester group; water-soluble
salts of 2-acyloxy-alkane-1-sulfonic acids containing from 2 to 9 carbon atoms in
the acyl group and from 9 to 20 carbon atoms in the alkane moiety; alkyl ether sulfates
containing from 10 to 20 carbon atoms in the alkyl group and from 1 to 12 moles of
ethylene oxide; water-soluble salts of olefin sulfonates containing from 12 to 20
carbon atoms; and beta-alkyloxy alkane sulfonates containing from 1 to 3 carbon atoms
in the alkyl group and from 8 to 20 carbon atoms in the alkane moiety.
[0034] Preferred water-soluble organic detergent compounds herein include linear alkylbenzene
sulfonates containing from 11 to 13 carbon atoms in the alkyl group; C
10-18 alkyl sulfates; the C
10-16 alkyl glyceryl sulfonates; C
10-18 alkyl ether sulfates, especially wherein the alkyl moiety contains from 14 to 18
carbon atoms and wherein the average degree of ethoxylation between 1 and 6; C
10-18 alkyl dimethyl amine oxides, especially wherein the alkyl group contains from 11
to 16 carbon atoms; alkyldimethyl ammonio propane sulfonates and alkyldimethyl ammonio
hydroxy propane sulfonates wherein the alkyl group in both types contains from 14
to 18 carbon atoms; soaps, as hereinabove defined; and the condensation product of
C
10-18 fatty alcohols with from 3 to 15 moles of ethylene oxides.
[0035] Specific preferred detergents for use herein include: sodium linear C
10-13 alkylbenzene sulfonates; sodium C
12-18 alkyl sulfates; sodium salts of sulfated condensation product of C
12-18 alcohols with from 1 to 3 moles of ethylene oxide; the condensation product of a
C
10-18 fatty alcohols with from 4 to 10 moles of ethylene oxide; and the water-soluble sodium
and potassium salts of higher fatty acids containing from 10 to 18 carbon atoms.
[0036] It is to be recognized that any of the foregoing detergents can be used separately
herein, or as mixtures. Examples of preferred detergent mixtures herein are as follows.
[0037] An especially preferred alkyl ether sulfate detergent component of the instant compositions
is a mixture of alkyl ether sulfates, said mixture having an average (arithmetic mean)
carbon chain length within the range of from 12 to 16 carbon atoms, preferably from
14 to 15 carbon atoms, and an average (arithmetic mean) degree of ethoxylation of
from 1 to 4 moles of ethylene oxide, preferably from 1 to 3 moles of ethylene oxide.
[0038] The detergent compositions of the present invention can contain, in addition to the
detergent surfactant, water-soluble or water-insoluble builders such as those commonly
taught for use in detergent compositions. Such auxiliary builders can be employed
to sequester hardness ions and to help adjust the pH of the laundering liquor. Such
builders can be employed in concentrations of from 5% to 95% by weight, preferably
from 10% to 50% by weight, of the detergent compositions herein to provide their builder
and pH-controlling functions. The builders herein include any of the conventional
inorganic and organic water-soluble builder salts.
[0039] Such builders can be, for example, water-soluble salts of phosphates including tripolyphosphates,
pyrophosphates, orthophosphates, higher polyphosphates, carbonates, silicates, and
organic polycarboxylates. Specific preferred examples of inorganic phosphate builders
include sodium and potassium tripolyphosphates and pyrophosphates.
[0040] Nonphosphorus-containing materials can also be selected for use herein as builders.
[0041] Specific examples of nonphosphorus, inorganic detergent builder ingredients include
water-soluble inorganic carbonate, bicarbonate, and silicate salts. The alkali metal,
e.g., sodium and potassium, carbonates, bicarbonates, and silicates are particularly
useful herein.
[0042] Aluminosilicate ion exchange materials useful in the practice of this invention are
commercially available. The aluminosilicates useful in this invention can be crystalline
or amorphous in structure and can be naturally-occurring aluminosilicates or synthetically
derived. A method for producing aluminosilicate ion exchange materials is discussed
in U.S. Pat. No. 3,985,669, Krummel et al, issued Oct. 12, 1976, incorporated herein
by reference. Preferred synthetic crystalline aluminosilicate ion exchange materials
useful herein are available under the designations Zeolite A, Zeolite B, and Zeolite
X. In an especially preferred embodiment, the crystalline aluminosilicate ion exchange
material in Zeolite A and has the formula
Na
12[AlO
2)
12.(SiO
2)
12].xH
2O
wherein x is from 20 to 30, especially 27.
[0043] Water-soluble, organic builders are also useful herein. For example, the alkali metal,
polycarboxylates are useful in the present compositions. Specific examples of the
polycarboxylate builder salts include sodium and potassium, salts of ethylenediaminetetraacetic
acid, nitrilotriacetic acid, oxydisuccinic acid, mellitic acid, benzene polycarboxylic
acid, polyacrylic acid, polymaleic acid, and citric acid.
[0044] Other desirable polycarboxylate builders are the builders set forth in U.S. Patent
3,308,067, Diehl, incorporated herein by reference. Examples of such materials include
the water-soluble salts of homo- and co-polymers of aliphatic carboxylic acids such
as maleic acid, itaconic acid, mesaconic acid, fumaric acid, aconitic acid, citraconic
acid, and methylenemalonic acid.
[0045] Other suitable polymeric polycarboxylates are the polyacetal carboxylates described
in U.S. Pat. No. 4,144,226, issued Mar. 13, 1979 to Crutchfield et al, and U.S. Pat.
No. 4,246,495, issued Mar. 27, 1979 to Crutchfield et al . These polyacetal carboxylates
can be prepared by bringing together under polymerization conditions an ester of glyoxylic
acid and a polymerization initiator. The resulting polyacetal carboxylate ester is
then attached to chemically stable end groups to stabilize the polyacetal carboxylate
against rapid depolymerization in alkaline solution, converted to the corresponding
salt, and added to a surfactant.
[0046] Preferred builders herein are polycarboxylic acids, especially citric acid, which
preferably are used at a level of from 5% to 10% by weight, and sodium acid pyrophosphate,
which preferably is used at a level of from 5% to 15% by weight. Such materials function
as both builder and acid source to adjust pH to the desired range.
Detergent Adjuvants
[0047] The detergent compositions herein can contain all manner of additional materials,
detergent adjuvants, commonly found in laundering and cleaning compositions. For example,
the compositions can contain thickeners and soil-suspending agents such as carboxymethylcellulose
and the like. Various enzymes, enzyme stabilizers, suds suppressors, perfumes, optical
bleaches, fillers, anticaking agents, fabric softeners and the like can be present
in the compositions to provide the usual benefits occasioned by the use of such materials
in detergent compositions.
[0048] The compositions herein are essentially free of oxygen bleaching agents, since if
they are present, there is no need for the chlorine scavenger. Similarly, there should
be no chlorine bleaching agent present since the chlorine scavenger would not be effective
against a large amount of available chlorine.
[0049] A finished detergent composition of this invention can contain minor amounts of materials
which make the product more attractive. The following are mentioned by way of example:
a tarnish inhibitor such as benzotriazole or ethylene thiourea can be added in amounts
up to 2% by weight; fluorescers, perfumes and dyes, while not essential, can be added
in small amounts. An alkaline material such as sodium or potassium carbonate or hydroxide
can be added in minor amounts as supplementary pH adjusters. There may also be mentioned,
as suitable additives: bacteriostats, bactericides, corrosion inhibitors such as soluble
alkali silicates (preferably sodium silicates having an SiO
2/Na
2O ratio of from 1:1 to 2.8:1), and textile softening agents.
[0050] The compositions herein are granular laundry detergents comprising by weight:
(a) from 15% to 25% of a mixture of a C11-C13 (preferably C12-C13) alkylbenzene sulfonate surfactant and a C12-C16 (preferably C14-C15) alkyl sulfate surfactant in a weight ratio of sulfonate surfactant to sulfate surfactant
of from 4:1 to 1:1;
(b) from 1% to 3% of an alkali metal (preferably sodium) silicate having a molar ratio
of SiO2 to alkali metal oxide of from 1.0 to 2.4;
(c) from 20% to 30% of a finely divided aluminosilicate ion exchange material selected
from the group consisting of:
(i) crystalline aluminosilicate material of the formula:
Naz[(AlO2)z.(SiO2)y].xH2O
wherein z and y are at least 6, the molar ratio of z to y is from 1.0 to 0.5 and x
is from 10 to 264, said material having a particle size diameter of from 0.1 micron
to 10 microns, a calcium ion exchange capacity of at least 200 mg CaCO3 eq./g and a calcium ion exchange rate of at least 0.130 g/l/min/g/l (2 grains Ca++/gallon/minute/gram/gallon);
(ii) amorphous hydrated aluminosilicate material of the empirical formula:
Mz(zAlO2.ySiO2)
wherein M is sodium, potassium, ammonium, or substituted ammonium, z is from 0.5 to
2 and y is 1, said material having a magnesium ion exchange ion exchange capacity
of at least 50 milligram equivalents of CaCO3 hardness per gram of anhydrous aluminosilicate and a Mg++ exchange rate of at least 0.065 g/l/min/g/l (1 grain/gallon/minute/gram/gallon);
and
(iii) mixtures thereof;
(d) from 4% to 10% of citric acid;
(e) from 5% to 20% of an alkali metal (preferably sodium) carbonate;
said composition having a pH of from 7 to 9.3 at a concentration of 1% by weight in
water at 20°C, and said composition having a density of from 500 to about 600 grams
per liter.
[0051] Preferred alumionosilicate ion exchange material is of the formula Na
12[(AlO
2)
12(SiO
2)
12].xH
2O, wherein x is from 20 to 30.
[0052] The above granular detergent compositions provide good cleaning performance due to
the relatively high levels of anionic surfactants and aluminosilicate, citric acid,
and carbonate builders. Despite having a density of from 500 to 600 grams per liter,
the compositions have good physical properties, i.e., they are free-flowing and are
readily soluble in the laundering solution. The citric acid and carbonate levels are
selected to obtain the required pH range and provide additional builder function to
the aluminosilicate material.
[0053] All percentages, parts and ratios herein are by weight unless otherwise specified.
[0054] The following examples illustrate the compositions herein.
EXAMPLES
[0055] Granular detergent compositions of the present invention comprise the following ingredients:

[0056] Aqueous crutcher mixes of the detergent compositions are prepared and spray-dried,
except for the citric acid, enzyme, perfume, and ammonium sulfate which are admixed,
so that they contain the above ingredients at the levels shown.
[0057] Fabrics laundered using the above compositions retain their color over time better
than similar compositions not containing the chlorine scavenger or formulated to provide
a higher wash pH.
1. Composition détergente granulaire pour le linge à faible, voire aucune teneur en phosphate,
caractérisée en ce qu'elle comprend, en poids :
(a) de 15 à 25% d'un mélange d'un tensioactif à base d'alkyl (en C11-C13) benzène-sulfonate et d'un tensioactif à base de sulfate d'alkyle (en C12-C16), dans un rapport pondéral du tensioactif à base de sulfonate au tensioactif à base
de sulfate de 4:1 à 1:1 ;
(b) de 1 à 3% d'un silicate de métal alcalin ayant un rapport molaire de SiO2 à l'oxyde de métal alcalin de 1,0 à 2,4 ;
(c) de 20 à 30% d'un produit à échange d'ions aluminosilicate finement divisé choisi
dans le groupe formé par :
(i) les produits à base d'aluminosilicates cristallins de formule :
Naz[(AlO2)z.(SiO2)y].xH2O
dans laquelle z et y valent au moins 6, le rapport molaire de z à y est de 1,0 à 0,5
et x est de 10 à 264, lesdits produits ayant un diamètre granulométrique de 0,1 micron
à 10 microns, une capacité d'échange d'ions calcium d'au moins 200 mg en éq./g de
CaCO3 et un taux d'échange d'ions calcium d'au moins 0,130 g/l/mn/g/l (2 grains Ca++/gallon/minute/gramme/gallon);
(ii) les produits à base d'aluminosilicates amorphes hydratés de formule empirique
:
Mz(zAlO2.ySiO2)
dans laquelle M est un atome de sodium ou potassium, ou un reste ammonium ou ammonium
substitué, z est de 0,5 à 2 et y est 1, lesdits produits ayant une capacité d'échange
d'ions magnésium d'au moins 50 milligrammes en équivalents de dureté CaCO3 par gramme d'aluminosilicate anhydre et un taux d'échange d'ions magnésium Mg++ d'au moins 0,065 g/l/mn/g/l (1 grain/gallon/minute/gramme/gallon) ; et
(iii) des mélanges de ceux-ci ;
(d) de 4 à 10% d'acide citrique ;
(e) de 5 à 20% d'un carbonate de métal alcalin; ladite composition ayant un pH de
7 à 9,3 à une concentration de 1% en poids dans une eau à 20°C, et ladite composition
ayant une densité de 500 à 600 grammes par litre.
2. Composition selon la revendication 1, dans laquelle le tensioactif à base de sulfonate
est un alkylbenzène-sulfonate de sodium linéaire en C12-C13 et le tensioactif à base de sulfate est un alkyl-sulfate de sodium linéaire en C14-C15.
3. Composition selon l'une quelconque des revendications précédentes comprenant de 18
à 23% de tensioactifs à base de sulfonate et de sulfate, dans un rapport pondéral
du tensioactif à base de sulfonate au tensioactif à base de sulfate de 2:1.
4. Composition selon l'une quelconque des revendications précédentes, dans laquelle le
silicate de métal alcalin est un silicate de sodium ayant un rapport molaire de SiO2 à l'oxyde de métal alcalin de 1,4 à 2,0.
5. Composition selon l'une quelconque des revendications précédentes, dans laquelle le
produit à échange d'ions aluminosilicate est de formule :
Na12[(AlO2)12(SiO2)12].xH2O,
dans laquelle x est de 20 à 30.
6. Composition selon l'une quelconque des revendications précédentes comprenant de 22
à 28% de produit à échange d'ions aluminosilicate.
7. Composition selon l'une quelconque des revendications précédentes comprenant de 5
à 8% d'acide citrique.
8. Composition selon l'une quelconque des revendications précédentes comprenant de 8
à 12% de carbonate de sodium.
9. Composition selon l'une quelconque des revendications précédentes, dans laquelle ladite
composition a un pH de 8 à 9,1, de préférence de 8,5 à 9,0, à une concentration de
1% en poids dans une eau à 20°C.
10. Composition selon l'unc quelconque des revendications précédentes qui est essentiellement
exempte de produits d'activation à base de phosphate.
1. Granulatförmige Wäschewaschmittelzusammensetzung ohne Phosphat oder mit geringem Phosphatgehalt,
dadurch gekennzeichnet, daß sie, bezogen auf Gewicht:
(a) 15 bis 25 % einer Mischung aus einem C11-C13-Alkylbenzolsulfonat-Tensid und einem C12-C16-Alkylsulfat-Tensid in einem Gewichtsverhältnis von Sulfonat-Tensid zu Sulfat-Tensid
von 4:1 bis 1:1;
(b) 1 bis 3 % eines Alkalimetallsilikats mit einem Molverhältnis von SiO2 zu Alkalimetalloxid von 1,0 bis 2,4;
(c) 20 bis 30 % eines fein verteilten Aluminosilikat-Ionenaustauschermaterials, gewählt
aus der
(i) kristallines Aluminosilikatmaterial der Formel:
Naz[(AlO2)z·(SiO2)y]·xH2O
worin z und y mindestens 6 sind, das Molverhältnis von z zu y 1,0 bis 0.5 beträgt
und x 10 bis 264 ist, wobei dieses Material einen Teilchengrößendurchmesser von 0,1
µm bis 10 µm, eine Calciumionen-Austauschkapazität von mindestens 200 mg CaCO3 eq./g und eine Calciumionen-Austauschrate von mindestens 0,130 g/l/min/g/l (2 grains
Ca++/gallon/minute/gram/gallon) aufweist;
(ii) amorphes hydratisiertes Aluminosilikatmaterial der empirischen Formel:
Mz(zAlO2·ySiO2)
worin M Natrium, Kalium, Ammonium oder substituiertes Ammonium ist, z 0.5 bis 2 ist
und y 1 ist, wobei dieses Material eine Magnesiumionen-Austauschkapazität von mindestens
50 Milligrammäquivalenten CaCO3-Härte pro Gramm wasserfreies Aluminosilikat und eine Mg++-Austauschrate von mindestens 0,065 g/l/min/g/l (1 grain/gallon/minute/gram/gallon)
aufweist; und
(iii) Mischungen hiervon umfassenden Gruppe;
(d) 4 bis 10 % Zitronensäure;
(e) 5 bis 20 % eines Alkalimetalcarbonats umfaßt;
wobei die Zusammensetzung einen pH von 7 bis 9,3 bei einer Konzentration von 1
Gew.-% in Wasser bei 20°C aufweist und die Zusammensetzung eine Dichte von 500 bis
600 Gramm pro Liter besitzt.
2. Zusammensetzung nach Anspruch 1, wobei das Sulfonat-Tensid Natrium-lineares C12-C13-Alkylbenzolsulfonat ist und das Sulfat-Tensid Natriumlineares C14-C15-Alkylsulfat ist.
3. Zusammensetzung nach Anspruch 1 oder 2, umfassend 18 bis 23 % des Sulfonat- und Sulfat-Tensids
in einem Gewichtsverhältnis von Sulfonat-Tensid zu Sulfat-Tensid von 2:1.
4. Zusammensetzung nach einem der vorangehenden Ansprüche, wobei das Alkalimetallsilikat
Natriumsilikat mit einem Molverhältnis von SiO2 zu Alkalimetalloxid von 1,4 bis 2,0 ist.
5. Zusammensetzung nach einem der vorangehenden Ansprüche, wobei das Aluminosilikat-Ionenaustauschermaterial
der Formel
Na12[(AlO2)12(SiO2)12]·xH2O,
entspricht, worin x 20 bis 30 ist.
6. Zusammensetzung nach einem der vorangehenden Ansprüche, umfassend 22 bis 28 % des
Aluminosilikat-Ionenaustauschermaterials.
7. Zusammensetzung nach einem der vorangehenden Ansprüche, umfassend 5 bis 8 % Zitronensäure.
8. Zusammensetzung nach einem der vorangehenden Ansprüche, umfassend 8 bis 12 % Natriumcarbonat.
9. Zusammensetzung nach einem der vorangehenden Ansprüche, wobei die Zusammensetzung
einen pH von 8 bis 9,1, vorzugsweise von 8,5 bis 9,0, bei einer Konzentration von
1 Gew.-% in Wasser bei 20°C aufweist.
10. Zusammensetzung nach einem der vorangehenden Ansprüche, welche im wesentlichen frei
an Phosphat-Buildermaterialien ist.