Technical Field
[0001] The present invention relates to detergent compositions which comprise low levels
of inorganic sulphate salts, but instead high levels of alkali carbonate salts and
a system to counter balance the effects of the carbonate salt.
Background to the Invention
[0002] Many detergent compositions comprise filler salts such as sodium sulphate. Certain
formulations even comprise very high levels of such sulphate salts, in particular
low density products sometimes comprise more than 30% by weight of sulphates.
[0003] However, it is desirable to reduce the level of inorganic sulphates in the products,
in particular from an environmental point of view. To replace the inorganic sulphate
salts, other inorganic materials can be used. Some of these materials may for example
be detergent builders including zeolites, phosphates or silicates. However, these
ingredients may increase the formulation cost significantly. Also, high levels of
phosphates as fillers are not acceptable in all countries for environmental reasons.
Other, cheaper inorganic materials include for example inorganic carbonate salts,
which can be readily formulated in detergents. They have as additional benefit that
they provide a high alkalinity which is advantageous for the detergency.
[0004] However, the inventors have found that formulations comprising high levels of inorganic
carbonate salts can cause hardness or stiffness to the fabrics washed with these products.
Therefore, the inventors found that the products need to contain a system to counteract
the fabric hardness or stiffness.
[0005] Numerous compounds are known in the art which can provide a softer feel of fabrics.
However, they are not always compatible with high amounts of carbonate salts.
[0006] The inventors now found that in particular certain mineral clays can help to overcome
the problems caused by the high levels of carbonate salts. However, they found that
a clay alone would not be sufficient to provide the required softness when these high
amount of carbonate salts are present, but that a flocculating agent is required as
well.
[0007] Clays and flocculants are known in the art to provide softness to fabrics. They are
for example described in EP 313146-A. However, it was previously not known that the
clays and flocculating agents can counteract the disadvantages of high levels of carbonate.
Summary of the invention
[0008] The invention relates to a solid detergent composition in the form of granules, the
composition comprising
a) a sodium or calcium montmorillonite clay;
b) a flocculating agent that is a polyethylene oxide of an average molecular weight
from 150 000 to 3 000 000;
c) at least 18%, preferably at least 20% by weight of an alkali salt of carbonate.
[0009] The compositions preferably comprise low levels of sulphate.
[0010] The compositions are useful for both automatic washing and hand washing, including
also pre-treatment, soaking and conditioning.
Carbonate salts
[0011] The carbonate salts for use herein include any alkali carbonate salts, in particular
carbonate, bicarbonate and sesquicarbonate salts. Preferred salts include carbonate,
sesqiocarbonate and hydrogen carbonate of potassium, lithium, sodium, and the like
amongst which sodium and potassium carbonate are preferred. Suitable bicarbonates
to be used herein include any alkali metal salt of bicarbonate like lithium, sodium,
potassium and the like, amongst which sodium and potassium bicarbonate are preferred.
However, the choice of carbonate or bicarbonate or mixtures thereof in the dry effervescent
granules may be made depending on the pH desired in the aqueous medium wherein the
granules are dissolved. For example where a relative high pH is desired in the aqueous
medium (e.g., above pH 9.5) it may be preferred to use carbonate alone or to use a
combination of carbonate and bicarbonate wherein the level of carbonate is higher
than the level of bicarbonate. The inorganic alkali carbonate salt of the compositions
of the invention comprises preferably a potassium or more preferably a sodium salt
of carbonate and/ or bicarbonate. Preferably, the carbonate salt comprises sodium
carbonate, optionally also a sodium bicarbonate.
[0012] The inorganic alkali carbonate salts herein are preferably present at a level of
at least 20% by weight of the composition. Preferably they are present at a level
of at least 23% or even 25% or even 30% by weight, preferably up to about 60% by weight
or more preferably up to 55% or even 50% by weight.
[0013] They may be added completely or partially as separate powdered or granular component,
as co-granules with other detergent ingredients, for example other salts or surfactants.
In solid detergent compositions of the invention, they may also completely or partially
be present in detergent granules such as agglomerates or spray dried granules.
[0014] In one embodiment of the invention, an effervescence source is present, preferably
comprising an organic acid, such as carboxylic acids or aminoacids, and a carbonate.
Then it may be preferred that part or all of the carbonate salt herein is premixed
with the organic acid, and thus present in an separate granular component.
[0015] The carbonate may have any particle size. In one embodiment, in particular when the
carbonate salt is present in a granule and not as separately added compound, the carbonate
salt has preferably a volume median particle size from 5 to 375 microns, whereby preferably
at least 60%, preferably at least 70% or even at least 80% or even at least 90% by
volume, has a particle size of from 1 to 425 microns. More preferably, the carbonate
salt particles has a volume median particle size of 10 to 250, whereby preferably
at least 60 %, or even at least 70% or even at least 80% or even at least 90% by volume,
has a particle size of from 1 to 375 microns; or even preferably a volume median particle
size from 10 to 200 microns, whereby preferably at least 60 %, preferably at least
70% or even at least 80% or even at least 90% by volume, has a particle size of from
1 to 250 microns.
[0016] In particular when the carbonate salt is added as separate component, so to say 'dry-added'
or admixed to the other detergent ingredients, the carbonate may have any particle
size, including the above specified particle sizes, but preferably at least an volume
average particle size of 200 microns or even 250 microns or even 300 microns.
[0017] It may be preferred that the carbonate salt of the required particle size is obtained
by grinding a larger particle size material, optionally followed by selecting the
material with the required particle size by any suitable method.
[0018] Whilst percarbonate salts may be present in the compositions of the invention as
a bleaching agent, they are not included in the carbonate salts as defined herein
Clay
[0019] The compositions of the invention contain a sodium or calcium montmorillonite clay,
preferably present at a level of from 0.05% to 40%, more preferably from 0.5% to 30%,
most preferably from 2% to 20% by weight of the composition.
[0020] The weight ratio of clay to the flocculating polymer is preferably from 1000:1 to
1:1, more preferably from 500:1 to 1:1, most preferably from 300:1 to 1:1, or even
more preferably from 80:1 to 10:1, or in certain applications even from 60:1 to 20:1.
[0021] Suitable montmorillonites are sold by various suppliers including English China Clays,
Laviosa, Georgia Kaolin and Colin Stewart Minerals.
[0022] Clays for use herein preferably have a largest particle dimension of from 0.01µm
to 800µm, more preferably from 1mm to 400 mm, most preferably from 5mm to 200 mm.
[0023] Particles of the clay mineral compound may be included as components of agglomerate
particles containing other detergent compounds. Where present as such components,
the term "largest particle dimension" of the clay mineral compound refers to the largest
dimension of the clay mineral component as such, and not to the agglomerated particle
as a whole.
[0024] In a highly preferred embodiment of the invention, the montmorillonite clay is present
in an intimate mixture or in a particle with a humectant and a hydrophobic compound,
preferably a wax or oil, such as paraffin oil. Preferred humectants are organic compounds,
including propylene glycol, ethylene glycol, dimers or truners of glycol, most preferably
glycerol. The particle is preferably an agglomerate. Alternatively, the particle may
be such that the wax or oil and optionally the humectant form an encapsulate on the
clay or alternatively, the clay be a encapsulate for the wax or oil and the humectant.
It may be preferred that the particle comprises an organic salt or silica or silicate.
[0025] However, in another embodiment of the invention, the montmorillonite clay is preferably
mixed with one or more surfactants and optionally builders and optionally water, in
which case the mixture is preferably subsequently dried. Preferably, such a mixture
is further processed in a spray-drying method to obtain a spray dried particle comprising
the clay.
[0026] It may be preferred that the flocculating agent is also comprised in the particle
or-granule comprising the clay.
[0027] It may be highly preferred that the clay, and optionally also the flocculating polymer,
is present in a mixture with a wax and a structering agent. Examples of suitable structuring
agents which can be used in particles comprising the clay herein include relatively
small hydrophobic solid particles such as hydrophobic silica and relatively high molecular
weight hydrocarbons such as hydrocarbon rubber.
[0028] Hydrophobic silicas are silica particles with a hydrophobic group chemically attached
to the surface of the particles. Silica particles can be hydrophobically modified
with organic group such as silicone by treating the silica particles with a reactive
organosilicon compound. Examples are Cab-O-Sil TS720 and TS530 available from Cabot
Corporation and Aerosil 200 supplied by Degussa Corp.
[0029] The submicron hydrophobic fumed silicas such as those supplied by Cabot Co. under
the trademarks Cab-O-Sil TS720 and TS530 are especially preferred.
[0030] High molecular weight hydrocarbons include homo- or copolymers of ethylene, propylene
and butadiene having a molecular weight of about 50,000 to about 5,000,000. Suitable
examples include Ortheleium® polyethylenepropylne elastomers supplied by DuPont Corporation.
[0031] Examples of suitable waxes which can be present in the particles containing the clay,
or be mixed with the clay, are commercially available include (1) paraffin wax such
as Merck 7150, Merck 7151 supplied by E. Merck or Darmsteadt Germany; Boler 1397,
Boler 1538 supplied by Boler of Wayne, Pa, and Ross 115/120 or 1365 supplied by Frank
D Ross Co of Jersey City N.J.; (2) Beeswax and (3) Japan Wax also supplied by Frank
P Ross Co. Inc. of New Jersey; and (4) Petrolatum waxes such as Petrolatum Pereco
Snow or Petrolatum Penreco Ultima supplied by Penreco of Pennsylvania.
[0032] A blend of paraffin wax and petrolatum wax is preferred as the coating material especially
for liquid actives, such as liquid nonionic surfactants. Paraffin waxes are highly
crystallised materials.
[0033] It may also be preferred that the intimate mixture comprises a chelating agent as
described herein after.
Flocculating agent
[0034] The compositions of the invention contain polyethylene oxide of an average molecular
weight from 150 000 to 3 000 000 as a clay flocculating agent, preferably present
at a level of from 0.005% to 10%, more preferably from 0.05% to 5%, most preferably
from 0.1% to 2% by weight of the composition.
[0035] The clay flocculating agent functions such as to bring together the particles of
clay compound in the wash solution and hence to aid their deposition onto the surface
of the fabrics in the wash. This functional requirement is hence different from that
of clay dispersant compounds which are commonly added to laundry detergent compositions
to aid the removal of clay soils from fabrics and enable their dispersion within the
wash solution.
[0036] The flocculating agent is preferably present in a detergent base granule such as
a detergent agglomerate, extrudate or spray-dried particle, comprising generally one
or more surfactants and builders.
Detergent Compositions
[0037] The cleaning compositions of the invention are solid in the form of granules.
[0038] The compositions can be used in automatic washing or hand washing. Also, the compositions
can be such that they are suitable for pre-treatment or soaking, or for conditioning
of the fabric after the main wash.
[0039] The compositions in accord with the invention may also contain additional detergent
components. The precise nature of these additional components, and levels of incorporation
thereof will depend on the physical form of the composition or component, and the
precise nature of the washing operation for which it is to be used.
[0040] The compositions of the invention preferably contain one or more additional detergent
components selected from surfactants, bleaches, bleach catalysts, alkalinity systems,
additional builders, including phosphate-containing builders, organic polymeric compounds,
enzymes, suds suppressers, soaps, lime soap, dispersants, soil suspension and anti-redeposition
agents soil releasing agents, perfumes, brighteners, photo-bleaching agents and additional
corrosion inhibitors.
[0041] Preferably, the composition comprises low levels of inorganic sulphate salts, in
particular sodium sulphate, preferably less than 15% or even less than 10% by weight,
or more preferably less than 8% or even less than 5% by weight. It may even be preferred
that substantially no inorganic sulphate salts are purposely added to the detergent
composition and that the compositions comprise thus less than 1% or even less than
0.5% or even substantially no inorganic sulphate salt.
[0042] Highly preferred is that the compositions comprise an anionic surfactant, preferably
at least 5% of an anionic surfactant or even at least 10% or even at least 15% of
an anionic surfactant. Preferably the anionic surfactant comprises at least an linear
or branched C
9-C
24, preferably C
11-C
14 alkyl benzene sulphonate salt. It has been found that the anionic surfactants have
a better performance than other surfactants when high levels of carbonate are present.
However, nonionic surfactants may be included to provide additional softness to the
fabrics and, in particular in hand wash formulations where they can also provide softness
to the skin. Highly preferred may be that at least 3% by weight of the composition,
or even at least 5% or even 6% by weight, of an alkoxylated nonionic surfactant is
present, or preferably mixtures thereof. Preferred mixtures include mixtures of alkoxylated
nonionic alcohol surfactants having different degrees of alkoxylation, preferably
at least one surfactant having an alkoxylation degree of from 3 to 5 and at least
one having an alkoxylation degree of from 5.5. to 11.
[0043] It may be preferred that the compositions comprises one or more of the group comprising
amorphous silicate, crystalline layered silicate, aluminosilicate or phosphate salt,
preferably at least 6% or even at least 10% by weight. It may be preferred that at
least 6% or even at least 8% or even at least 10 % by weight of a phosphate salt is
present.
[0044] The solid or granular formulations herein may comprise water. In a preferred embodiment,
in particular when a spray-dried granule is present in the detergents, at least 5%
by weight or even at least 7% by weight of water is present.
[0045] Highly preferred additional ingredients are soil release polymers, in particular
polyesters or polysaccherides or derivatives thereof, cellulose based polymers, including
carboxy methyl cellulose, cellulose ethers or ester or amine or amide modified celluloses,
encapsulated perfumes, effervescence sources, preferably based on carbonate and acid
compounds, in particular citric acid, malic acid or maleic acid, phosphonate- builders,
dye transfer inhibitors, and process aids such as hydrotropes. These ingredients are
described in more detail herein.
[0046] Highly preferred may be to include a carboxy methyl cellulose compound at a level
of at least 0.5% or even 0.75% or even 1% by weight of the composition, or alternatively,
or in addition a polysaccheride at a level of at least 0.5% or even 0.75% or even
1% by weight of the composition.
[0047] It may be preferred that the compositions comprise a cationic softener. Highly preferred
water-insoluble quaternary ammonium compounds are those having two C
12-C
24 alkyl or alkenyl chains, optionally substituted by functional groups such as -OH,-O-,-CONH,-COO-
etc.
[0048] Well known species of substantially water-insoluble quaternary ammonium compounds
have the formula
R
1R
2R
3R
4N X
wherein R
1 and R
2 represent hydrocarbyl groups from about 12 to about 24 carbon atoms; R
3 and R
4 represent hydrocarbyl groups containing from 1 to about 4 carbon atoms; and X is
an anion, preferably selected from halide, methyl sulfate and ethyl sulfate radicals.
Representative examples of these quaternary softeners include ditallow dimethylammonium
chloride; ditallow dimethyl ammonium methyl sulfate; dihexadecyl dimethyl ammonium
chloride; di(hydrogenated tallow alkyl)dimethyl ammonium chloride; dioctadecyl dimethyl
ammonium chloride; dieicosyl dimethyl ammonium chloride; didocosyl dimethyl ammonium
chloride; di(hydrogenated tallow) dimethyl ammonium methyl sulfate; dihexadecyl diethyl
ammonium chloride; di(coconut alkyl) dimethyl ammonium chloride. Ditallow dimethyl
ammonium chloride, di(hydrogenated tallow alkyl) dimethyl ammonium chloride, di(coconut
alkyl) dimehtyl ammonium methosulfate are preferred.
[0049] Also suitable herein are the imidaxolinium fabric softening components of US patent
no. 4127489. As used herein the term "fabric softening agent" excludes, cationic detergent
active materials which have a solubility above 10 g/l in water at 20°C at a pH of
about 6.
[0050] Especially preferred is ditallowyl methylamine. This is commercially available as
Armeen M2HT from AKZO NV, as Genamin SH301 from FARBWERKE HOECHST, and as Noram M2SH
from the CECA COMPANY.
Surfactant
[0051] The compositions in accord with the invention preferably contain one or more surfactants
selected from anionic, nonionic, cationic, ampholytic, amphoteric and zwitterionic
surfactants and mixtures thereof.
[0052] A typical listing of anionic, nonionic, ampholytic, and zwitterionic classes, and
species of these surfactants, is given in U.S.P. 3,929,678 issued to Laughlin and
Heuring on December 30, 1975. Further examples are given in "Surface Active Agents
and Detergents" (Vol. I and II by Schwartz, Perry and Berch). A list of suitable cationic
surfactants is given in U.S.P. 4,259,217 issued to Murphy on March 31, 1981.
[0053] Where present, ampholytic, amphoteric and zwitteronic surfactants are generally used
in combination with one or more anionic and/or nonionic surfactants.
Anionic Surfactant
[0054] The compositions in accord with the present invention preferably comprise an additional
anionic surfactant. Essentially any anionic surfactants useful for detersive purposes
can be comprised in the detergent composition. These can include salts (including,
for example, sodium, potassium, ammonium, and substituted ammonium salts such as mono-,
di- and triethanolamine salts) of the anionic sulfate, sulfonate, carboxylate and
sarcosinate surfactants. Anionic sulfate and sulfonate surfactants are preferred.
[0055] Highly preferred are surfactants systems comprising a sulfonate and a sulfate surfactant,
preferably a linear or branched alkyl benzene sulfonate and alkyl ethoxylsulfates,
as described herein, preferably combined with a cationic surfactants as described
herein.
[0056] Other anionic surfactants include the isethionates such as the acyl isethionates,
N-acyl taurates, fatty acid amides of methyl tauride, alkyl succinates and sulfosuccinates,
monoesters of sulfosuccinate (especially saturated and unsaturated C
12-C
18 monoesters) diesters of sulfosuccinate (especially saturated and unsaturated C
6-C
14 diesters), N-acyl sarcosinates. Resin acids and hydrogenated resin acids are also
suitable, such as rosin, hydrogenated rosin, and resin acids and hydrogenated resin
acids present in or derived from tallow oil.
Anionic Sulfate Surfactant
[0057] Anionic sulfate surfactants suitable for use herein include the linear and branched
primary and secondary alkyl sulfates, alkyl ethoxysulfates, fatty oleoyl glycerol
sulfates, alkyl phenol ethylene oxide ether sulfates, the C
5-C
17 acyl-N-(C
1-C
4 alkyl) and -N-(C
1-C
2 hydroxyalkyl) glucamine sulfates, and sulfates of alkylpolysaccharides such as the
sulfates of alkylpolyglucoside (the nonionic nonsulfated compounds being described
herein).
[0058] Alkyl sulfate surfactants are preferably selected from the linear and branched primary
C
10-C
18 alkyl sulfates, more preferably the C
11-C
15 branched chain alkyl sulfates and the C
12-C
14 linear chain alkyl sulfates.
[0059] Alkyl ethoxysulfate surfactants are preferably selected from the group consisting
of the C
10-C
18 alkyl sulfates which have been ethoxylated with from 0.5 to 20 moles of ethylene
oxide per molecule. More preferably, the alkyl ethoxysulfate surfactant is a C
11-C
18, most preferably C
11-C
15 alkyl sulfate which has been ethoxylated with from 0.5 to 7, preferably from 1 to
5, moles of ethylene oxide per molecule.
[0060] A particularly preferred aspect of the invention employs mixtures of the preferred
alkyl sulfate and/ or sulfonate and alkyl ethoxysulfate surfactants. Such mixtures
have been disclosed in PCT Patent Application No. WO 93/18124.
Anionic Sulfonate Surfactant
[0061] Anionic sulfonate surfactants suitable for use herein include the salts of C
5-C
20 linear alkylbenzene sulfonates, alkyl ester sulfonates, C
6-C
22 primary or secondary alkane sulfonates, C
6-C
24 olefin sulfonates, sulfonated polycarboxylic acids, alkyl glycerol sulfonates, fatty
acyl glycerol sulfonates, fatty oleyl glycerol sulfonates, and any mixtures thereof.
Anionic Carboxylate Surfactant
[0062] Suitable anionic carboxylate surfactants include the alkyl ethoxy carboxylates, the
alkyl polyethoxy polycarboxylate surfactants and the soaps ('alkyl carboxyls'), especially
certain secondary soaps as described herein.
[0063] Suitable alkyl ethoxy carboxylates include those with the formula RO(CH
2CH
2O)
x CH
2COO
-M
+ wherein R is a C
6 to C
18 alkyl group, x ranges from O to 10, and the ethoxylate distribution is such that,
on a weight basis, the amount of material where x is 0 is less than 20 % and M is
a cation. Suitable alkyl polyethoxy polycarboxylate surfactants include those having
the formula RO-(CHR
1-CHR
2-O)-R
3 wherein R is a C
6 to C
18 alkyl group, x is from 1 to 25, R
1 and R
2 are selected from the group consisting of hydrogen, methyl acid radical, succinic
acid radical, hydroxysuccinic acid radical, and mixtures thereof, and R
3 is selected from the group consisting of hydrogen, substituted or unsubstituted hydrocarbon
having between 1 and 8 carbon atoms, and mixtures thereof.
[0064] Suitable soap surfactants include the secondary soap surfactants which contain a
carboxyl unit connected to a secondary carbon. Preferred secondary soap surfactants
for use herein are water-soluble members selected from the group consisting of the
water-soluble salts of 2-methyl-1-undecanoic acid, 2-ethyl-1-decanoic acid, 2-propyl-1-nonanoic
acid, 2-butyl-1-octanoic acid and 2-pentyl-1-heptanoic acid.
Certain soaps may also be included as suds suppressors.
Alkali Metal Sarcosinate Surfactant
[0065] Other suitable anionic surfactants are the alkali metal sarcosinates of formula R-CON
(R
1)CH
2COOM, wherein R is a C
5-C
17 linear or branched alkyl or alkenyl group, R
1 is a C
1-C
4 alkyl group and M is an alkali metal ion. Preferred examples are the myristyl and
oleoyl methyl sarcosinates in the form of their sodium salts.
Alkoxylated Nonionic Surfactant
[0066] Essentially any alkoxylated nonionic surfactants are suitable herein. The ethoxylated
and propoxylated nonionic surfactants are preferred. -
[0067] Preferred alkoxylated surfactants can be selected from the classes of the nonionic
condensates of alkyl phenols, nonionic ethoxylated alcohols, nonionic ethoxylated/propoxylated
fatty alcohols, nonionic ethoxylate/propoxylate condensates with propylene glycol,
and the nonionic ethoxylate condensation products with propylene oxide/ethylene diamine
adducts.
Nonionic Alkoxylated Alcohol Surfactant
[0068] The condensation products of aliphatic alcohols with from 1 to 25 moles of alkylene
oxide, particularly ethylene oxide and/or propylene oxide, are suitable for use herein.
The alkyl chain of the aliphatic alcohol can either be straight or branched, primary
or secondary, and generally contains from 6 to 22 carbon atoms. Particularly preferred
are the condensation products of alcohols having an alkyl group containing from 8
to 20 carbon atoms with from 2 to 10 moles of ethylene oxide per mole of alcohol.
Nonionic Polyhydroxy Fatty Acid Amide Surfactant
[0069] Polyhydroxy fatty acid amides suitable for use herein are those having the structural
formula R
2CONR
1Z wherein : R1 is H, C
1-C
4 hydrocarbyl, 2-hydroxy ethyl, 2-hydroxy propyl, ethoxy, propoxy, or a mixture thereof,
preferable C1-C4 alkyl, more preferably C
1 or C
2 alkyl, most preferably C
1 alkyl (i.e., methyl); and R
2 is a C
5-C
31 hydrocarbyl, preferably straight-chain C
5-C
19 alkyl or alkenyl, more preferably straight-chain C
9-C
17 alkyl or alkenyl, most preferably straight-chain C
11-C
17 alkyl or alkenyl, or mixture thereof, and Z is a polyhydroxyhydrocarbyl having a
linear hydrocarbyl chain with at least 3 hydroxyls directly connected to the chain,
or an alkoxylated derivative (preferably ethoxylated or propoxylated) thereof. Z preferably
will be derived from a reducing sugar in a reductive amination reaction; more preferably
Z is a glycityl.
Nonionic Fatty Acid Amide Surfactant
[0070] Suitable fatty acid amide surfactants include those having the formula: R
6CON(R
7)
2 wherein R
6 is an alkyl group containing from 7 to 21, preferably from 9 to 17 carbon atoms and
each R
7 is selected from the group consisting of hydrogen, C
1-C
4 alkyl, C
1-C
4 hydroxyalkyl, and -(C
2H
4O)
xH, where x is in the range of from 1 to 3.
Nonionic Alkylpolysaccharide Surfactant
[0071] Suitable alkylpolysaccharides for use herein are disclosed in U.S. Patent 4,565,647,
Llenado, issued January 21, 1986, having a hydrophobic group containing from 6 to
30 carbon atoms and a polysaccharide, e.g., a polyglycoside, hydrophilic group containing
from 1.3 to 10 saccharide units.
[0072] Preferred alkylpolyglycosides have the formula:
R
2O(C
nH
2nO)t(glycosyl)
x
wherein R
2 is selected from the group consisting of alkyl, alkylphenyl, hydroxyalkyl, hydroxyalkylphenyl,
and mixtures thereof in which the alkyl groups contain from 10 to 18 carbon atoms;
n is 2 or 3; t is from 0 to 10, and x is from 1.3 to 8. The glycosyl is preferably
derived from glucose.
Amphoteric Surfactant
[0073] Suitable amphoteric surfactants for use herein include the amine oxide surfactants
and the alkyl amphocarboxylic acids.
[0074] Suitable amine oxides include those compounds having the formula R
3(OR
4)
xN
0(R
5)
2 wherein R
3 is selected from an alkyl, hydroxyalkyl, acylamidopropoyl and alkyl phenyl group,
or mixtures thereof, containing from 8 to 26 carbon atoms; R
4 is an alkylene or hydroxyalkylene group containing from 2 to 3 carbon atoms, or mixtures
thereof; x is from 0 to 5, preferably from 0 to 3; and each R
5 is an alkyl or hydroxyalkyl group containing from 1 to 3, or a polyethylene oxide
group containing from 1 to 3 ethylene oxide groups. Preferred are C
10-C
18 alkyl dimethylamine oxide, and C
10-18 acylamido alkyl dimethylamine oxide.
[0075] A suitable example of an alkyl aphodicarboxylic acid is Miranol(TM) C2M Conc. manufactured
by Miranol, Inc., Dayton, NJ.
Zwitterionic Surfactant
[0076] Zwitterionic surfactants can also be incorporated into the detergent compositions
in accord with the invention. These surfactants can be broadly described as derivatives
of secondary and tertiary amines, derivatives of heterocyclic secondary and tertiary
amines, or derivatives of quaternary ammonium, quaternary phosphonium or tertiary
sulfonium compounds. Betaine and sultaine surfactants are exemplary zwitterionic surfactants
for use herein.
[0077] Suitable betaines are those compounds having the formula R(R')
2N
+R
2COO- wherein R is a C
6-C
18 hydrocarbyl group, each R
1 is typically C
1-C
3 alkyl, and R
2 is a C
1-C
5 hydrocarbyl group. Preferred betaines are C
12-18 dimethyl-ammonio hexanoate and the C
10-18 acylamidopropane (or ethane) dimethyl (or diethyl) betaines. Complex betaine surfactants
are also suitable for use herein.
Cationic Surfactants
[0078] Suitable cationic surfactants to be used in the detergent herein include the quaternary
ammonium surfactants. Preferably the quaternary ammonium surfactant is a mono C
6-C
16, preferably C
6-C
10 N-alkyl or alkenyl ammonium surfactants wherein the remaining N positions are substituted
by methyl, hydroxyethyl or hydroxypropyl groups. Preferred are also the mono-alkoxylated
and bis-alkoxylated amine surfactants.
[0079] Another suitable group of cationic surfactants which can be used in the detergent
compositions or components thereof herein are cationic ester surfactants. The cationic
ester surfactant is a, preferably water dispersible, compound having surfactant properties
comprising at least one ester (i.e. -COO-) linkage and at least one cationically charged
group.
[0080] Suitable cationic ester surfactants, including choline ester surfactants, have for
example been disclosed in US Patents No.s 4228042, 4239660 and 4260529.
[0081] In one preferred aspect the ester linkage and cationically charged group are separated
from each other in the surfactant molecule by a spacer group consisting of a chain
comprising at least three atoms (i.e. of three atoms chain length), preferably from
three to eight atoms, more preferably from three to five atoms, most preferably three
atoms. The atoms forming the spacer group chain are selected from the group consisting
of carbon, nitrogen and oxygen atoms and any mixtures thereof, with the proviso that
any nitrogen or oxygen atom in said chain connects only with carbon atoms in the chain.
Thus spacer groups having, for example, -O-O- (i.e. peroxide), -N-N-, and -N-O- linkages
are excluded, whilst spacer groups having, for example -CH
2-O- CH
2- and -CH
2-NH-CH
2- linkages are included. In a preferred aspect the spacer group chain comprises only
carbon atoms, most preferably the chain is a hydrocarbyl chain.
Cationic mono-alkoxylated amine surfactants
[0082] Highly preferred herein are cationic mono-alkoxylated amine surfactant preferably
of the general formula I:

wherein R
1 is an alkyl or alkenyl moiety containing from about 6 to about 18 carbon atoms, preferably
6 to about 16 carbon atoms, most preferably from about 6 to about 14 carbon atoms;
R
2 and R
3 are each independently alkyl groups containing from one to about three carbon atoms,
preferably methyl, most preferably both R
2 and R
3 are methyl groups; R
4 is selected from hydrogen (preferred), methyl and ethyl; X
- is an anion such as chloride, bromide, methylsulfate, sulfate, or the like, to provide
electrical neutrality; A is a alkoxy group, especially a ethoxy, propoxy or butoxy
group; and p is from 0 to about 30, preferably 2 to about 15, most preferably 2 to
about 8.
[0083] Preferably the ApR
4 group in formula I has p=1 and is a hydroxyalkyl group, having no greater than 6
carbon atoms whereby the ―OH group is separated from the quaternary ammonium nitrogen
atom by no more than 3 carbon atoms. Particularly preferred ApR
4 groups are ―CH
2CH
2OH, ―CH
2CH
2CH
2OH, ―CH
2CH(CH
3)OH and ―CH(CH
3)CH
2OH, with ―CH
2CH
2OH being particularly preferred. Preferred R
1 groups are linear alkyl groups. Linear R
1 groups having from 8 to 14 carbon atoms are preferred.
[0084] Another highly preferred cationic mono-alkoxylated amine surfactants for use herein
are of the formula

wherein R
1 is C
10-C
18 hydrocarbyl and mixtures thereof, especially C
10-C
14 alkyl, preferably C
10 and C
12 alkyl, and X is any convenient anion to provide charge balance, preferably chloride
or bromide.
[0085] As noted, compounds of the foregoing type include those wherein the ethoxy (CH
2CH
2O) units (EO) are replaced by butoxy, isopropoxy [CH(CH
3)CH
2O] and [CH
2CH(CH
3O] units (i-Pr) or n-propoxy units (Pr), or mixtures of EO and/or Pr and/or i-Pr units.
[0086] The levels of the cationic mono-alkoxylated amine surfactants used in detergent compositions
of the invention is preferably from 0.1% to 20%, more preferably from 0.2% to 7%,
most preferably from 0.3% to 3.0% by weight of the composition.
Cationic bis-alkoxylated amine surfactant
[0087] The cationic bis-alkoxylated amine surfactant preferably has the general formula
II:

wherein R
1 is an alkyl or alkenyl moiety containing from about 8 to about 18 carbon atoms, preferably
10 to about 16 carbon atoms, most preferably from about 10 to about 14 carbon atoms;
R
2 is an alkyl group containing from one to three carbon atoms, preferably methyl; R
3 and R
4 can vary independently and are selected from hydrogen (preferred), methyl and ethyl,
X
- is an anion such as chloride, bromide, methylsulfate, sulfate, or the like, sufficient
to provide electrical neutrality. A and A' can vary independently and are each selected
from C
1-C
4 alkoxy, especially ethoxy, (i.e., -CH
2CH
2O-), propoxy, butoxy and mixtures thereof; p is from 1 to about 30, preferably 1 to
about 4 and q is from 1 to about 30, preferably 1 to about 4, and most preferably
both p and q are 1.
[0088] Highly preferred cationic bis-alkoxylated amine surfactants for use herein are of
the formula

wherein R
1 is C
10-C
18 hydrocarbyl and mixtures thereof, preferably C
10, C
12, C 14 alkyl and mixtures thereof. X is any convenient anion to_provide charge balance,
preferably chloride. With reference to the general cationic bis-alkoxylated amine
structure noted above, since in a preferred compound R
1 is derived from (coconut) C
12-C
14 alkyl fraction fatty acids, R
2 is methyl and ApR
3 and A'qR
4 are each monoethoxy.
[0089] Other cationic bis-alkoxylated amine surfactants useful herein include compounds
of the formula:

wherein R
1 is C
10-C
18 hydrocarbyl, preferably C
10-C
14 alkyl, independently p is 1 to about 3 and q is 1 to about 3, R
2 is C
1-C
3 alkyl, preferably methyl, and X is an anion, especially chloride or bromide.
[0090] Other compounds of the foregoing type include those wherein the ethoxy (CH
2CH
2O) units (EO) are replaced by butoxy (Bu) isopropoxy [CH(CH
3)CH
2O] and [CH
2CH(CH
3O] units (i-Pr) or n-propoxy units (Pr), or mixtures of EO and/or Pr and/or i-Pr units.
Perhydrate Bleaches
[0091] An preferred additional components of the compositions is a perhydrate bleach, such
as metal perborates, metal percarbonates, particularly the sodium salts. Perborate
can be mono or tetra hydrated. Sodium percarbonate has the formula corresponding to
2Na
2CO
3.3H
2O
2, and is available commercially as a crystalline solid.
[0092] Potassium peroxymonopersulfate, sodium per is another optional inorganic perhydrate
salt of use in the detergent compositions herein.
Organic Peroxyacid Bleaching System
[0093] A preferred feature of the composition is an organic peroxyacid bleaching system.
In one preferred execution the bleaching system contains a hydrogen peroxide source
and an organic peroxyacid bleach precursor compound. The production of the organic
peroxyacid occurs by an in situ reaction of the precursor with a source of hydrogen
peroxide. Preferred sources of hydrogen peroxide include inorganic perhydrate bleaches,
such as the perborate bleach of the claimed invention. In an alternative preferred
execution a preformed organic peroxyacid is incorporated directly into the composition.
Compositions containing mixtures of a hydrogen peroxide source and organic peroxyacid
precursor in combination with a preformed organic peroxyacid are also envisaged.
Peroxyacid Bleach Precursor
[0094] Peroxyacid bleach precursors are compounds which react with hydrogen peroxide in
a perhydrolysis reaction to produce a peroxyacid. Generally peroxyacid bleach precursors
may be represented as

where L is a leaving group and X is essentially any functionality, such that on perhydroloysis
the structure of the peroxyacid produced is

[0095] Peroxyacid bleach precursor compounds are preferably incorporated at a level of from
0.5% to 20% by weight, more preferably from 1% to 15% by weight, most preferably from
1.5% to 10% by weight of the detergent compositions.
[0096] Suitable peroxyacid bleach precursor compounds typically contain one or more N- or
O-acyl groups, which precursors can be selected from a wide range of classes. Suitable
classes include anhydrides, esters, imides, lactams and acylated derivatives of imidazoles
and oximes. Examples of useful materials within these classes are disclosed in GB-A-1586789.
Suitable esters are disclosed in GB-A-836988, 864798, 1147871, 2143231 and EP-A-0170386.
Leaving Groups
[0097] The leaving group, hereinafter L group, must be sufficiently reactive for the perhydrolysis
reaction to occur within the optimum time frame (e.g., a wash cycle). However, if
L is too reactive, this activator will be difficult to stabilize for use in a bleaching
composition.
[0098] Preferred L groups are selected from the group consisting of:

and mixtures thereof, wherein R
1 is an alkyl, aryl, or alkaryl group containing from 1 to 14 carbon atoms, R
3 is an alkyl chain containing from 1 to 8 carbon atoms, R
4 is H or R
3, and Y is H or a solubilizing group. Any of R
1, R
3 and R
4 may be substituted by essentially any functional group including, for example alkyl,
hydroxy, alkoxy, halogen, amine, nitrosyl, amide and ammonium or alkyl ammmonium groups.
[0099] The preferred solubilizing groups are -SO
3-M
+, -CO
2-M
+, -SO
4-M
+, -N
+(R
3)
4X
- and O<--N(R
3)
3 and most preferably -SO
3-M
+ and -CO
2-M
+ wherein R
3 is an alkyl chain containing from 1 to 4 carbon atoms, M is a cation which provides
solubility to the bleach activator and X is an anion which provides solubility to
the bleach activator. Preferably, M is an alkali metal, ammonium or substituted ammonium
cation, with sodium and potassium being most preferred, and X is a halide, hydroxide,
methylsulfate or acetate anion.
Alkyl Percarboxylic Acid Bleach Precursors
[0100] Alkyl percarboxylic acid bleach precursors form percarboxylic acids on perhydrolysis.
Preferred precursors of this type provide peracetic acid on perhydrolysis.
[0101] Preferred alkyl percarboxylic precursor compounds of the imide type include the N-,
N,N
1N
1 tetra acetylated alkylene diamines wherein the alkylene group contains from 1 to
6 carbon atoms, particularly those compounds in which the alkylene group contains
1, 2 and 6 carbon atoms. Tetraacetyl ethylene diamine (TAED) is particularly preferred.
The TAED is preferably not present in the agglomerated particle of the present invention,
but preferably present in the detergent composition, comprising the particle.
[0102] Other preferred alkyl percarboxylic acid precursors include sodium 3,5,5-tri-methyl
hexanoyloxybenzene sulfonate (iso-NOBS), sodium nonanoyloxybenzene sulfonate (NOBS),
sodium acetoxybenzene sulfonate (ABS) and pentaacetyl glucose.
Amide Substituted Plkyl Peroxyacid Precursors
[0103] Amide substituted alkyl peroxyacid precursor compounds are suitable herein, including
those of the following general formulae:

wherein R
1 is an alkyl group with from 1 to 14 carbon atoms, R
2 is an alkylene group containing from 1 to 14 carbon atoms, and R
5 is H or an alkyl group containing 1 to 10 carbon atoms and L can be essentially any
leaving group. Amide substituted bleach activator compounds of this type are described
in EP-A-0170386.
Perbenzoic Acid Precursor
[0104] Perbenzoic acid precursor compounds provide perbenzoic acid on perhydrolysis. Suitable
O-acylated perbenzoic acid precursor compounds include the substituted and unsubstituted
benzoyl oxybenzene sulfonates, and the benzoylation products of sorbitol, glucose,
and all saccharides with benzoylating agents, and those of the imide type including
N-benzoyl succinimide, tetrabenzoyl ethylene diamine and the N-benzoyl substituted
ureas. Suitable imidazole type perbenzoic acid precursors include N-benzoyl imidazole
and N-benzoyl benzimidazole. Other useful N-acyl group-containing perbenzoic acid
precursors include N-benzoyl pyrrolidone, dibenzoyl taurine and benzoyl pyroglutamic
acid.
Preformed organic peroxyacid
[0105] The organic peroxyacid bleaching system may contain, in addition to, or as an alternative
to, an organic peroxyacid bleach precursor compound, a preformed hydrophobic organic
peroxyacid , typically at a level of from 0.05% to 20% by weight, more preferably
from 1 % to 10% by weight of the composition.
[0106] A preferred class of hydrophobic organic peroxyacid compounds are the amide substituted
compounds of the following general formulae:

wherein R
1 is an aryl or alkaryl group with from about 1 to about 14 carbon atoms, R
2 is an alkylene, arylene, and alkarylene group containing from about 1 to 14 carbon
atoms, and R
5 is H or an alkyl, aryl, or alkaryl group containing 1 to 10 carbon atoms. R
1 preferably contains from about 6 to 12 carbon atoms. R
2 preferably contains from about 4 to 8 carbon atoms. R
1 may be straight chain or branched alkyl, substituted aryl or alkylaryl containing
branching, substitution, or both and may be sourced from either synthetic sources
or natural sources including for example, tallow fat. Analogous structural variations
are permissible for R
2. R
2 can include alkyl, aryl, wherein said R
2 may also contain halogen, nitrogen, sulphur and other typical substituent groups
or organic compounds. R
5 is preferably H or methyl. R
1 and R
5 should not contain more than 18 carbon atoms total. Amide substituted bleach activator
compounds of this type are described in EP-A-0170386. Suitable examples of this class
of agents include (6-octylamino)-6-oxo-caproic acid, (6-nonylamino)-6-oxo-caproic
acid, (6-decylamino)-6-oxo-caproic acid, magnesium monoperoxyphthalate hexahydrate,
the magnesium salt of metachloro perbenzoic acid, 4-nonylamino-4-oxoperoxybutyric
acid and diperoxydodecanedioic acid. Such bleaching agents are disclosed in U.S. 4,483,781,
U.S. 4,634,551, EP 0,133,354, U.S. 4,412,934 and EP 0,170,386. A preferred hydrophobic
preformed peroxyacid bleach compound for the purpose of the invention is monononylamido
peroxycarboxylic acid.
[0107] Other suitable organic peroxyacids include diperoxyalkanedioc acids having more than
7 carbon atoms, such as diperoxydodecanedioc acid, diperoxytetradecanedioc acid and
diperoxyhexadecanedioc acid.
[0108] Other suitable organic peroxyacids include diamino peroxyacids, which are disclosed
in WO 95/ 03275, with the following general formula:

wherein:
R is selected from the group consisting of C1-C12 alkylene, C5-C12 cycloalkylene, C6-C12 arylene and radical combinations thereof;
R1 and R2 are independently selected from the group consisting of H, C1-C16 alkyl and C6-C12 aryl radicals and a radical that can form a C3-C12 ring together with R3 and both nitrogens; R3 is selected from the group consisting of C1-C12 alkylene, C5-C12 cycloalkylene and C6-C12 arylene radicals; n and n' each are an integer chosen such that the sum thereof is
1; m and m' each are an integer chosen such that the sum thereof is 1; and
M is selected from the group consisting of H, alkali metal, alkaline earth metal,
ammonium, alkanolammonium cations and radicals and combinations thereof.
[0109] Other suitable organic peroxyacids are include the amido peroxyacids which are disclosed
in WO 95/ 16673, with the following general structure:
X―Ar―CO―NY―R(Z)―CO―OOH
in which X represents hydrogen or a compatible substituent, Ar is an aryl group, R
represents (CH
2)
n in which n = 2 or 3, and Y and Z each represent independently a substituent selected
from hydrogen or an alkyl or aryl or alkaryl group or an aryl group substituted by
a compatible substituent provided that at least one of Y and Z is not hydrogen if
n = 3. The substituent X on the benzene nucleus is preferably a hydrogen or a meta
or para substituent, selected from the group comprising halogen, typically chlorine
atom, or some other non-released non-interfering species such as an alkyl group, conveniently
up to C6 for example a methyl, ethyl or propyl group. Alternatively, X can represent
a second amido-percarboxylic acid substituent of formula:-
―CO―NY―R(Z)―CO―OOH
in which R, Y, Z and n are as defined above.
MOOC-R
1CO-NR
2-R
3-NR
4-CO-R
5COOOM
wherein R
1 is selected from the group consisting of C
1-C
12 alkylene, C
5-C
12 cycloalkylene, C
6-C
12 arylene and radical combinations thereof; R
[0110] Highly preferred herein is phthaloylamido peroxyacid (PAP).
Bleach Catalyst
[0111] The composition can contain a transition metal containing bleach catalyst.
[0112] One suitable type of bleach catalyst is a catalyst system comprising a transition
metal cation of defined bleach catalytic activity, such as copper, iron or manganese
cations, an auxiliary metal cation having little or no bleach catalytic activity,
such as zinc or aluminum cations, and a sequestrant having defined stability constants
for the catalytic and auxiliary metal cations, particularly ethylenediaminetetraacetic
acid, ethylenediaminetetra(methylenephosphonic acid) and water-soluble salts thereof.
Such catalysts are disclosed in U.S. Pat. 4,430,243.
[0113] Other types of bleach catalysts include the manganese-based complexes disclosed in
U.S. Pat. 5,246,621 and U.S. Pat. 5,244,594. Preferred examples of these catalysts
include Mn
IV2(u-O)
3(1,4,7-trimethyl-1,4,7-triazacyclononane)
2-(PF
6)
2, Mn
III2(u-O)
1(u-OAc)
2(1,4,7-trimethyl-1,4,7-triazacyclononane)
2-(ClO
4)
2, Mn
IV4(u-O)
6(1,4,7-triazacyclononane)
4-(ClO
4)
2, Mn
IIIMn
IV4(u-O)
1(u-OAc)
2-(1,4,7-trimethyl-1,4,7-triazacyclononane)
2-(ClO
4)
3, and mixtures thereof. Others are described in European patent application publication
no. 549,272. Other ligands suitable for use herein include 1,5,9-trimethyl-1,5,9-triazacyclododecane,
2-methyl-1,4,7-triazacyclononane, 2-methyl-1,4,7-triazacyclononane, 1,2,4,7-tetramethyl-1,4,7-triazacyclononane,
and mixtures thereof.
[0114] The bleach catalysts useful herein may also be selected as appropriate for the present
invention. For examples of suitable bleach catalysts see U.S. Pat. 4,246,612 and U.S.
Pat. 5,227,084. See also U.S. Pat. 5,194,416 which teaches mononuclear manganese (TV)
complexes such as Mn(1,4,7-trimethyl-1,4,7-triazacyclononane)(OCH
3)
3-(PF
6).
[0115] Still another type of bleach catalyst, as disclosed in U.S. Pat. 5,114,606, is a
water-soluble complex of manganese (III), and/or (IV) with a ligand which is a non-carboxylate
polyhydroxy compound having at least three consecutive C-OH groups. Preferred ligands
include sorbitol, iditol, dulsitol, mannitol, xylithol, arabitol, adonitol, meso-erythritol,
meso-inositol, lactose, and mixtures thereof.
[0116] U.S. Pat. 5,114,611 teaches a bleach catalyst comprising a complex of transition
metals, including Mn, Co, Fe, or Cu, with an non-(macro)-cyclic ligand. Said ligands
are of the formula:

wherein R
1, R
2, R
3, and R
4 can each be selected from H, substituted alkyl and aryl groups such that each R
1-N=C-R
2 and R
3-C=N-R
4 form a five or six-membered ring. Said ring can further be substituted. B is a bridging
group selected from O, S. CR
5R
6, NR
7 and C=O, wherein R
5, R
6, and R
7 can each be H, alkyl, or aryl groups, including substituted or unsubstituted groups.
Preferred ligands include pyridine, pyridazine, pyrimidine, pyrazine, imidazole, pyrazole,
and triazole rings. Optionally, said rings may be substituted with substituents such
as alkyl, aryl, alkoxy, halide, and nitro. Particularly preferred is the ligand 2,2'-bispyridylamine.
Preferred bleach catalysts include Co, Cu, Mn, Fe,-bispyridylmethane and -bispyridylamine
complexes. Highly preferred catalysts include Co(2,2'-bispyridylamine)Cl
2, Di(isothiocyanato)bispyridylamine-cobalt (II), trisdipyridylamine-cobalt(II) perchlorate,
Co(2,2-bispyridylamine)
2O
2ClO
4, Bis-(2,2'-bispyridylamine) copper(II) perchlorate, tris(di-2-pyridylamine) iron(II)
perchlorate, and mixtures thereof.
[0117] Other examples include binuclear Mn complexed with tetra-N-dentate and bi-N-dentate
ligands, including N
4Mn
III(u-O)
2Mn
IVN
4)
+and [Bipy
2Mn
III(u-O)
2Mn
IVbipy
2]-(ClO
4)
3. Other bleach catalysts are described, for example, in European patent application,
publication no. 408,131 (cobalt complex catalysts), European patent applications,
publication nos. 384,503, and 306,089 (metallo-porphyrin catalysts), U.S. 4,728,455
(manganese/multidentate ligand catalyst), U.S. 4,711,748 and European patent application,
publication no. 224,952, (absorbed manganese on aluminosilicate catalyst), U.S. 4,601,845
(aluminosilicate support with manganese and zinc or magnesium salt), U.S. 4,626,373
(manganese/ligand catalyst), U.S. 4,119,557 (ferric complex catalyst), German Pat.
specification 2,054,019 (cobalt chelant catalyst) Canadian 866,191 (transition metal-containing
salts), U.S. 4,430,243 (chelants with manganese cations and non-catalytic metal cations),
and U.S. 4,728,455 (manganese gluconate catalysts).
[0118] The bleach catalyst is typically used in a catalytically effective amount in the
compositions and processes herein. By "catalytically effective amount" is meant an
amount which is sufficient, under whatever comparative test conditions are employed,
to enhance bleaching and removal of the stain or stains of interest from the target
substrate. The test conditions will vary, depending on the type of washing appliance
used and the habits of the user. Some users elect to use very hot water; others use
warm or even cold water in laundering operations. Of course, the catalytic performance
of the bleach catalyst will be affected by such considerations, and the levels of
bleach catalyst used in fully-formulated detergent and bleach compositions can be
appropriately adjusted. As a practical matter, and not by way of limitation, the compositions
and processes herein can be adjusted to provide on the order of at least one part
per ten million of the active bleach catalyst species in the aqueous washing liquor,
and will preferably provide from about 1 ppm to about 200 ppm of the catalyst species
in the wash liquor. To illustrate this point further, on the order of 3 micromolar
manganese catalyst is effective at 40°C, pH 10 under European conditions using perborate
and a bleach precursor. An increase in concentration of 3-5 fold may be required under
U.S. conditions to achieve the same results.
Water-Soluble Builder Compound
[0119] The compositions in accord with the present invention preferably contain a water-soluble
builder compound, typically present in detergent compositions at a level of from 1%
to 80% by weight, preferably from 10% to 60% by weight, most preferably from 15% to
40% by weight of the composition.
[0120] The detergent compositions of the invention preferably comprise phosphate-containing
builder material. Preferably present at a level of from 0.5% to 60%, more preferably
from 5% to 50%, more preferably from 8% to 40.
[0121] The phosphate-containing builder material preferably comprises tetrasodium pyrophosphate
or even more preferably anhydrous sodium tripolyphosphate.
[0122] Suitable water-soluble builder compounds include the water soluble monomeric polycarboxylates,
or their acid forms, homo or copolymeric polycarboxylic acids or their salts in which
the polycarboxylic acid comprises at least two carboxylic radicals separated from
each other by not more that two carbon atoms, borates, and mixtures of any of the
foregoing.
[0123] The carboxylate or polycarboxylate builder can be momomeric or oligomeric in type
although monomeric polycarboxylates are generally preferred for reasons of cost and
performance.
[0124] Suitable carboxylates containing one carboxy group include the water soluble salts
of lactic acid, glycolic acid and ether derivatives thereof. Polycarboxylates containing
two carboxy groups include the water-soluble salts of succinic acid, malonic acid,
(ethylenedioxy) diacetic acid, maleic acid, diglycolic acid, tartaric acid, tartronic
acid and fumaric acid, as well as the ether carboxylates and the sulfinyl carboxylates.
Polycarboxylates or their acids containing three carboxy groups include, in particular,
water-soluble citrates, aconitrates and citraconates as well as succinate derivatives
such as the carboxymethyloxysuccinates described in British Patent No. 1,379,241,
lactoxysuccinates described in British Patent No. 1,389,732, and aminosuccinates described
in Netherlands Application 7205873, and the oxypolycarboxylate materials such as 2-oxa-1,1,3-propane
tricarboxylates described in British Patent No. 1,387,447. The most preferred polycarboxylic
acid containing three carboxy groups is citric acid, preferably present at a level
of from 0.1 % to 15%, more preferably from 0.5% to 8% by weight of the composition.
[0125] Polycarboxylates containing four carboxy groups include oxydisuccinates disclosed
in British Patent No. 1,261,829, 1,1,2,2-ethane tetracarboxylates, 1,1,3,3-propane
tetracarboxylates and 1,1,2,3-propane tetracarboxylates. Polycarboxylates containing
sulfo substituents include the sulfosuccinate denvatives disclosed in British Patent
Nos. 1,398,421 and 1,398,422 and in U.S. Patent No. 3,936,448, and the sulfonated
pyrolysed citrates described in British Patent No. 1,439,000. Preferred polycarboxylates
are hydroxycarboxylates containing up to three carboxy groups per molecule, more particularly
citrates.
[0126] The parent acids of the monomeric or oligomeric polycarboxylate chelating agents
or mixtures thereof with their salts, e.g. citric acid or citrate/citric acid mixtures
are also contemplated as useful builder components.
[0127] Borate builders, as well as builders containing borate-forming materials that can
produce borate under detergent storage or wash conditions are useful water-soluble
builders herein.
[0128] Suitable examples of water-soluble phosphate builders are the alkali metal tripolyphosphates,
sodium, potassium and ammonium pyrophosphate, sodium and potassium and ammonium pyrophosphate,
sodium and potassium orthophosphate, sodium polymeta/phosphate in which the degree
of polymerization ranges from about 6 to 21, and salts of phytic acid.
Partially Soluble or Insoluble Builder Compound
[0129] The compositions in accord with the present invention may contain a partially soluble
or insoluble builder compound, typically present in detergent compositions at a level
of from 0.5% to 60% by weight, preferably from 5% to 50% by weight, most preferably
from 8% to 40% weight of the composition.
[0130] Examples of largely water insoluble builders include the sodium aluminosilicates.
[0131] Suitable aluminosilicate zeolites have the unit cell formula Na
z[(AlO
2)
z(SiO
2)y]. xH
2O 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 at least 5, preferably from 7.5 to 276, more preferably from 10 to 264. The aluminosilicate
material are in hydrated form and are preferably crystalline, containing from 10%
to 28%, more preferably from 18% to 22% water in bound form. -
[0132] The aluminosilicate zeolites can be naturally occurring materials, but are preferably
synthetically derived. Synthetic crystalline aluminosilicate ion exchange materials
are available under the designations Zeolite A, Zeolite B, Zeolite P, Zeolite X, Zeolite
HS and mixtures thereof. Zeolite A has the formula:
Na
12 [AlO
2)
12 (SiO
2)
12].xH
2O
wherein x is from 20 to 30, especially 27. Zeolite X has the formula Na
86 [(AlO
2)
86(SiO
2)
106]. 276 H
2O.
[0133] Another preferred aluminosilicate zeolite is zeolite MAP builder.
The zeolite MAP can be present at a level of from 1% to 80%, more preferably from
15% to 40% by weight of the compositions.
[0134] Zeolite MAP is described in EP 384070A (Unilever). It is defined as an alkali metal
alumino-silicate of the zeolite P type having a silicon to aluminium ratio not greater
than 1.33, preferably within the range from 0.9 to 1.33 and more preferably within
the range of from 0.9 to 1.2. -
[0135] Of particular interest is zeolite MAP having a silicon to aluminium ratio not greater
than 1.15 and, more particularly, not greater than 1.07.
[0136] In a preferred aspect the zeolite MAP detergent builder has a particle size, expressed
as a d
50 value of from 1.0 to 10.0 micrometres, more preferably from 2.0 to 7.0 micrometres,
most preferably from 2.5 to 5.0 micrometres.
[0137] The d
50 value indicates that 50% by weight of the particles have a diameter smaller than
that figure. The particle size may, in particular be determined by conventional analytical
techniques such as microscopic determination using a scanning electron microscope
or by means of a laser granulometer. Other methods of establishing d
50 values are disclosed in EP 384070A.
Heavy metal ion sequestrant
[0138] The compositions of the invention preferably contain as an optional component a heavy
metal ion sequestrant. By heavy metal ion sequestrant it is meant herein components
which act to sequester (chelate) heavy metal ions. These components may also have
calcium and magnesium chelation capacity, but preferentially they show selectivity
to binding heavy metal ions such as iron, manganese and copper.
[0139] Heavy metal ion sequestrants are generally present at a level of from 0.005% to 10%,
preferably from 0.1% to 5%, more preferably from 0.25% to 7.5% and most preferably
from 0.3% to 2% by weight of the compositions or component
[0140] Suitable heavy metal ion sequestrants for use herein include organic phosphonates,
such as the amino alkylene poly (alkylene phosphonates), alkali metal ethane 1-hydroxy
disphosphonates and nitrilo trimethylene phosphonates.
[0141] Preferred among the above species are diethylene triamine penta (methylene phosphonate),
ethylene diamine tri (methylene phosphonate) hexamethylene diamine tetra (methylene
phosphonate) and hydroxy-ethylene 1,1 diphosphonate, and 1,1 hydroxyethane dimethylene
phosphonic acid. Highly preferred is 1,1 hydroxyethane diphosphonic acid.
[0142] Other suitable heavy metal ion sequestrant for use herein include nitrilotriacetic
acid and polyaminocarboxylic acids such as ethylenediaminotetracetic acid, ethylenediamine
disuccinic acid, ethylenediamine diglutaric acid, 2-hydroxypropylenediamine disuccinic
acid or any salts thereof.
[0143] Other suitable heavy metal ion sequestrants for use herein are iminodiacetic acid
derivatives such as 2-hydroxyethyl diacetic acid or glyceryl imino diacetic acid,
described in EP-A-317,542 and EP-A-399,133. The iminodiacetic acid-N-2-hydroxypropyl
sulfonic acid and aspartic acid N-carboxymethyl N-2-hydroxypropyl-3-sulfonic acid
sequestrants described in EP-A-516,102 are also suitable herein. The β-alanine-N,N'-diacetic
acid, aspartic acid-N,N'-diacetic acid, aspartic acid-N-monoacetic acid and iminodisuccinic
acid sequestrants described in EP-A-509,382 are also suitable.
[0144] EP-A-476,257 describes suitable amino based sequestrants. EP-A-510,331 describes
suitable sequestrants derived from collagen, keratin or casein. EP-A-528,859 describes
a suitable alkyl iminodiacetic acid sequestrant. Dipicolinic acid and 2-phosphonobutane-1,2,4-tricarboxylic
acid are alos suitable. Glycinamide-N,N'-disuccinic acid (GADS), ethylenediamine-N-N'-diglutaric
acid (EDDG) and 2-hydroxypropylenediamine-N-N'-disuccinic acid (HPDDS) are also suitable.
[0145] Especially preferred are diethylenetriamine pentacetic acid, ethylenediamine-N,N'-disuccinic
acid (EDDS) and 1,1 hydroxyethane diphosphonic acid or the alkali metal, alkaline
earth metal, ammonium, or substituted ammonium salts thereof, or mixtures thereof.
Enzyme
[0146] Another preferred ingredient useful in the compositions herein is one or more additional
enzymes.
[0147] Preferred additional enzymatic materials include the commercially available lipases,
cutinases, amylases, neutral and alkaline proteases, cellulases, endolases, esterases,
pectinases, lactases and peroxidases conventionally incorporated into detergent compositions.
Suitable enzymes are discussed in US Patents 3,519,570 and 3,533,139.
[0148] Preferred commercially available protease enzymes include those sold under the tradenames
Alcalase, Savinase, Primase, Durazym, and Esperase by Novo Industries A/S (Denmark),
those sold under the tradename Maxatase, Maxacal and Maxapem by Gist-Brocades, those
sold by Genencor International, and those sold under the tradename Opticlean and Optimase
by Solvay Enzymes. Protease enzyme may be incorporated into the compositions in accordance
with the invention at a level of from 0.0001% to 4% active enzyme by weight of the
composition.
[0149] Preferred amylases include, for example, α-amylases obtained from a special strain
ofB licheniformis, described in more detail in GB-1,269,839 (Novo). Preferred commercially
available amylases include for example, those sold under the tradename Rapidase by
Gist-Brocades, and those sold under the tradename Termamyl, Duramyl and BAN by Novo
Industries A/S. Highly preferred amylase enzymes maybe those described in PCT/ US
9703635, and in WO95/26397 and WO96/23873.
[0150] Amylase enzyme may be incorporated into the composition in accordance with the invention
at a level of from 0.0001% to 2% active enzyme by weight of the composition.
[0151] Lipolytic enzyme may be present at levels of active lipolytic enzyme of from 0.0001
% to 2% by weight, preferably 0.001% to 1% by weight, most preferably from 0.001 %
to 0.5% by weight of the compositions.
[0152] The lipase may be fungal or bacterial in origin being obtained, for example, from
a lipase producing strain of
Humicola sp.,
Thermomyces sp. or
Pseudomonas sp. including
Pseudomonas pseudoalcaligenes or
Pseudomas fluorescens. Lipase from chemically or genetically modified mutants of these strains are also
useful herein. A preferred lipase is derived from
Pseudomonas pseudoalcaligenes, which is described in Granted European Patent, EP-B-0218272.
[0153] Another preferred lipase herein is obtained by cloning the gene from
Humicola lanuginosa and expressing the gene in
Aspersillus oryza, as host, as described in European Patent Application, EP-A-0258 068, which is commercially
available from Novo Industri A/S, Bagsvaerd, Denmark, under the trade name Lipolase.
This lipase is also described in U.S. Patent 4,810,414, Huge-Jensen et al, issued
March 7, 1989.
Additional organic Polymeric Compound
[0154] Organic polymeric compounds are preferred additional components of the compositions
herein and are preferably present as components of any particulate components where
they may act such as to bind the particulate component together. By organic polymeric
compound it is meant herein essentially any polymeric organic compound commonly used
as dispersants, and anti-redeposition and soil suspension agents in detergent composition.
[0155] Organic polymeric compound is typically incorporated in the detergent compositions
of the invention at a level of from 0.01% to 30%, preferably from 0.1% to 15%, most
preferably from 0.5% to 10% by weight of the compositions.
[0156] Examples of organic polymeric compounds include the water soluble organic homo- or
co-polymeric polycarboxylic acids or their salts in which the polycarboxylic acid
comprises at least two carboxyl radicals separated from each other by not more than
two carbon atoms. Polymers of the latter type are disclosed in GB-A-1,596,756. Examples
of such salts are polyacrylates of MWt 1000-5000 and their copolymers with maleic
anhydride, such copolymers having a molecular weight of from 2000 to 100,000, especially
40,000 to 80,000.
[0157] The polyamino compounds are useful herein including those derived from aspartic acid
such as those disclosed in EP-A-305282, EP-A-305283 and EP-A-351629.
[0158] Terpolymers containing monomer units selected from maleic acid, acrylic acid, polyaspartic
acid and vinyl alcohol, particularly those having an average molecular weight of from
5,000 to 10,000, are also suitable herein.
[0159] Other organic polymeric compounds suitable for incorporation in the detergent compositions
herein include cellulose derivatives such as methylcellulose, carboxymethylcellulose,
hydroxypropylmethylcellulose and hydroxyethylcellulose.
[0160] Further useful organic polymeric compounds are the polyethylene glycols, particularly
those of molecular weight 1000-10000, more particularly 2000 to 8000 and most preferably
about 4000.
[0161] Polyethylene oxides are preferred additional ingredients, in particular present in
a particle with the clay herein, as a humectant, preferably also combined with a wax
or oil.
[0162] Highly preferred polymeric components herein are cotton and non-cotton soil release
polymer according to U.S. Patent 4,968,451, Scheibel et al., and U.S. Patent 5,415,807,
Gosselink et al., and in particular according to US application no.60/051517.
[0163] Another organic compound, which is a preferred clay dispersant/ anti-redeposition
agent, for use herein, can be the ethoxylated cationic monoamines and diamines of
the formula:

wherein X is a nonionic group selected from the group consisting of H, C
1-C
4 alkyl or hydroxyalkyl ester or ether groups, and mixtures thereof, a is from 0 to
20, preferably from 0 to 4 (e.g. ethylene, propylene, hexamethylene) b is 1 or 0;
for cationic monoamines (b=0), n is at least 16, with a typical range of from 20 to
35; for cationic diamines (b=1), n is at least about 12 with a typical range of from
about 12 to about 42.
[0164] Other dispersants/ anti-redeposition agents for use herein are described in EP-B-011965
and US 4,659,802 and US 4,664,848.
Suds Suppressing System
[0165] The detergent compositions of the invention, when formulated for use in machine washing
compositions, may comprise a suds suppressing system present at a level of from 0.01%
to 15%, preferably from 0.02% to 10%, most preferably from 0.05% to 3% by weight of
the composition.
[0166] Suitable suds suppressing systems for use herein may comprise essentially any known
antifoam compound, including, for example silicone antifoam compounds and 2-alkyl
alcanol antifoam compounds.
[0167] By antifoam compound it is meant herein any compound or mixtures of compounds which
act such as to depress the foaming or sudsing produced by a solution of a detergent
composition, particularly in the presence of agitation of that solution.
[0168] Particularly preferred antifoam compounds for use herein are silicone antifoam compounds
defined herein as any antifoam compound including a silicone component. Such silicone
antifoam compounds also typically contain a silica component. The term "silicone"
as used herein, and in general throughout the industry, encompasses a variety of relatively
high molecular weight polymers containing siloxane units and hydrocarbyl group of
various types. Preferred silicone antifoam compounds are the siloxanes, particularly
the polydimethylsiloxanes having trimethylsilyl end blocking units.
[0169] Other suitable antifoam compounds include the monocarboxylic fatty acids and soluble
salts thereof. These materials are described in US Patent 2,954,347, issued September
27, 1960 to Wayne St. John. The monocarboxylic fatty acids, and salts thereof, for
use as suds suppressor typically have hydrocarbyl chains of 10 to 24 carbon atoms,
preferably 12 to 18 carbon atoms. Suitable salts include the alkali metal salts such
as sodium, potassium, and lithium salts, and ammonium and alkanolammonium salts.
[0170] Other suitable antifoam compounds include, for example, high molecular weight fatty
esters (e.g. fatty acid triglycerides), fatty acid esters of monovalent alcohols,
aliphatic C
18-C
40 ketones (e.g. stearone) N-alkylated amino triazines such as tri- to hexa-alkylmelamines
or di- to tetra alkyldiamine chlortriazines formed as products of cyanuric chloride
with two or three moles of a primary or secondary amine containing 1 to 24 carbon
atoms, propylene oxide, bis stearic acid amide and monostearyl di-alkali metal (e.g.
sodium, potassium, lithium) phosphates and phosphate esters.
[0171] A preferred suds suppressing system comprises:
(a) antifoam compound, preferably silicone antifoam compound, most preferably a silicone
antifoam compound comprising in combination
(i) polydimethyl siloxane, at a level of from 50% to 99%, preferably 75% to 95% by
weight of the silicone antifoam compound; and
(ii) silica, at a level of from 1% to 50%, preferably 5% to 25% by weight of the silicone/silica
antifoam compound;
wherein said silica/silicone antifoam compound is incorporated at a level of from
5% to 50%, preferably 10% to 40% by weight;
(b) a dispersant compound, most preferably comprising a silicone glycol rake copolymer
with a polyoxyalkylene content of 72-78% and an ethylene oxide to propylene oxide
ratio of from 1:0.9 to 1:1.1, at a level of from 0.5% to 10%, preferably 1% to 10%
by weight; a particularly preferred silicone glycol rake copolymer of this type is
DCO544, commercially available from DOW Coming under the tradename DCO544;
(c) an inert carrier fluid compound, most preferably comprising a C16-C18 ethoxylated alcohol with a degree of ethoxylation of from 5 to 50, preferably 8 to
15, at a level of from 5% to 80%, preferably 10% to 70%, by weight;
[0172] A highly preferred particulate suds suppressing system is described in EP-A-0210731
and comprises a silicone antifoam compound and an organic carrier material having
a melting point in the range 50°C to 85°C, wherein the organic carrier material comprises
a monoester of glycerol and a fatty acid having a carbon chain containing from 12
to 20 carbon atoms. EP-A-0210721 discloses other preferred particulate suds suppressing
systems wherein the organic carrier material is a fatty acid or alcohol having a carbon
chain containing from 12 to 20 carbon atoms, or a mixture thereof, with a melting
point of from 45°C to 80°C.
[0173] Other highly preferred suds suppressing systems comprise polydimethylsiloxane or
mixtures of silicone, such as polydimethylsiloxane, aluminosilicate and polycarboxylic
polymers, such as copolymers of laic and acrylic acid.
[0174] Also highly preferred is the presence of soap.
Polymeric Dye Transfer Inhibiting Agents
[0175] The compositions herein may also comprise from 0.01% to 10 %, preferably from 0.05%
to 0.5% by weight of polymeric dye transfer inhibiting agents.
[0176] The polymeric dye transfer inhibiting agents are preferably selected from polyamine
N-oxide polymers, copolymers of N-vinylpyrrolidone and N-vinylimidazole, polyvinylpyrrolidonepolymers
or combinations thereof, whereby these polymers can be cross-linked polymers.
Optical Brightener
[0177] The compositions herein also optionally contain from about 0.005% to 5% by weight
of certain types of hydrophilic optical brighteners.
[0178] Hydrophilic optical brighteners useful herein include those having the structural
formula:

wherein R
1 is selected from anilino, N-2-bis-hydroxyethyl and NH-2-hydroxyethyl; R
2 is selected from N-2-bis-hydroxyethyl, N-2-hydroxyethyl-N-methylamino, morphilino,
chloro and amino; and M is a salt-forming cation such as sodium or potassium.
[0179] When in the above formula, R
1 is anilino, R
2 is N-2-bis-hydroxyethyl and M is a cation such as sodium, the brightener is 4,4',-bis[(4-anilino-6-(N-2-bis-hydroxyethyl)-s-triazine-2-yl)amino]-2,2'-stilbenedisulfonic
acid and disodium salt. This particular brightener species is commercially marketed
under the tradename Tinopal-UNPA-GX by Ciba-Geigy Corporation. Tinopal-CBS-X and Tinopal-UNPA-GX
is the preferred hydrophilic optical brightener useful in the detergent compositions
herein.
[0180] When in the above formula, R
1 is anilino, R
2 is N-2-hydroxyethyl-N-2-methylamino and M is a cation such as sodium, the brightener
is 4,4'-bis[(4-anilino-6-(N-2-hydroxyethyl-N-methylamino)-s-triazine-2-yl)amino]2,2'-stilbenedisulfonic
acid disodium salt. This particular brightener species is commercially marketed under
the tradename Tinopal 5BM-GX by Ciba-Geigy Corporation.
[0181] When in the above formula, R
1 is anilino, R
2 is morphilino and M is a cation such as sodium, the brightener is 4,4'-bis[(4-anilino-6-morphilino-s-triazine-2-yl)amino]2,2'-stilbenedisulfonic
acid, sodium salt. This particular brightener species are commercially marketed under
the tradename Tinopal-DMS-X and Tinopal AMS-GX by Ciba Geigy Corporation.
Deflocculating polymers
[0182] Preferred deflocculating agents which may be present herein contain hydrophilica
monomers, which may be polymerized to form the hydrophilic polymer segment include
one or a mixture of water soluble monomers or a combination of water soluble and relatively
water insoluble monomers such that the resulting polymers are water soluble at ambient
temperatures to the extent of greater than about 10 grams per litre. Examples of suitable
such monomers include ethylenically unsaturated amides such as acrylamide, methacrylamide
and fumaramide and their N-substituted derivatives such as 2-acrylamido-2-methylpropane
sulfonic acid, N-(dimethylaminomethyl) acrylamide as well as N-(trimethylammoniummethyl)
acrylamide chloride and N-(trimethylammoniumpropyl) methacrylamide chloride; ethylenically
unsaturated carboxylic acids or dicarboxylic acids such as acrylic acid, maleic acid,
methacrylic acid, itaconic acid, fumaric acid, crotonic acid, aconitic acid and citraconic
acid; and other ethylenically unsaturated quaternary ammonium compounds such as vinyl-benzyl
trimethyl ammonium chloride; sulfoalkyl esters of unsaturated carboxylic acids such
as 2-sulfoethyl methacrylate; aminoalkyl esters of unsaturated carboxylic acisds such
as 2-aminoethyl methacrylate, dimethyl aminoethyl (meth)acrylate, diethyl aminoethyl
(meth)acrylate, dimethyl aminomethyl (meth)acrylate, diethyl aminomethyl (meth)acrylate,
and their quaternary ammonium salts; vinyl or allyl amines such as vinyl pyridine
and vinyl morpholine or allylamine; dially amines and diallyl ammonium compounds such
as diallyl dimethyl ammonium chloride; vinyl heterocyclic amides such as vinyl pyrrolidone;
vinyl aryl sulfonates such as vinylbenzyl sulfonate; vinyl alcohol obtained by the
hydrolysis of vinyl acetate; acrolein; allyl alcohol; vinyl acetic acid; sodium vinyl
sulphonate; sodium allyl sulphonate, as well as the salts of the foregoing monomers.
These monomers may be used singly or as mixtures thereof.
[0183] Optionally, the hydrophilic polymer segment may contain small amounts of relatively
hydrophobic units, e.g., those derived from polymers having a solubility of less than
1 g/l in water, provided that the overall solubility of the hydrophilic polymer still
satisfies the solubility requirements as specified above. Examples of relatively water
insoluble polymers are polyvinyl acetate, polymethyl methacrylate, polyethyl acrylate,
polyethylene, polypropylene, polystyrene, polybutylene oxide, polypropylene oxide
and polyhydroxypropyl acrylate.
[0184] Theses polymers may preferably be alkyl sulfide terminated polymers, or a polymers
with as a terminating group a a sulfoxide or a sulfone group or a hydrophobic merapto
end-cap group derived from a mercaptan having the structure RSH, where R is an alkyl
or aralkyl radical having 4 to 28 carbon atoms. R should be of sufficient chain length
such that it exhibits olephilic properties, i.e., it is miscible with the oily lamellar
droplet or micelle phase of the detergent composition. Preferably, the mercaptans
are alkyl or aralkyl mercaptans containing about 6 to 18 carbon atoms such as hexyl
mercaptan, decyl mercaptan, dodecylbenzyl mercaptan, dodecyl mercaptan and octadecyl
mercaptan.
[0185] Preferred deflocculating polymers of these types have a weight average molecular
weight, as measured by gel permeation chromatography using polyacrylate standards,
in the range of from about 200 to 50,000, more preferably from about 200 to 25,000
and most preferably for polymers based on polyacrylic and polymethacrylic acid, from
about 3,000 to 10,000. The most preferred polymers are hydrophilic homopolymers such
as polyacrylic or polymethacrylic acid and copolymers of acrylic or methacrylic acid
with less than 50 wt % or maleic acid (anhydride), wherein the bulk of the polymer
chains are end-capped with a single hydrophobic segment derived from dodecyl mercaptan.
Polymeric Soil Release Agent
[0186] Polymeric soil release agents, hereinafter "SRA", can optionally be employed in the
present compositions. If utilized, SRA's will generally comprise from 0.01% to 10.0%,
typically from 0.1% to 5%, preferably from 0.2% to 3.0% by weight, of the compositions.
[0187] Preferred SRA's typically have hydrophilic segments to hydrophilize the surface of
hydrophobic fibers such as polyester and nylon, and hydrophobic segments to deposit
upon hydrophobic fibers and remain adhered thereto through completion of washing and
rinsing cycles, thereby serving as an anchor for the hydrophilic segments. This can
enable stains occurring subsequent to treatment with the SRA to be more easily cleaned
in later washing procedures.
[0188] Preferred SRA's include oligomeric terephthalate esters, typically prepared by processes
involving at least one transesterification/oligomerization, often with a metal catalyst
such as a titanium(IV) alkoxide. Such esters may be made using additional monomers
capable of being incorporated into the ester structure through one, two, three, four
or more positions, without, of course, forming a densely crosslinked overall structure.
[0189] Suitable SRA's include a sulfonated product of a substantially linear ester oligomer
comprised of an oligomeric ester backbone of terephthaloyl and oxyalkyleneoxy repeat
units and allyl-derived sulfonated terminal moieties covalently attached to the backbone,
for example as described in U.S. 4,968,451, November 6, 1990 to J.J. Scheibel and
E.P. Gosselink. Such ester oligomers can be prepared by: (a) ethoxylating allyl alcohol;
(b) reacting the product of (a) with dimethyl terephthalate ("DMT") and 1,2-propylene
glycol ("PG") in a two-stage transesterification/oligomerization procedure; and (c)
reacting the product of (b) with sodium metabisulfite in water. Other SRA's include
the nonionic end-capped 1,2-propylene/polyoxyethylene terephthalate polyesters of
U.S. 4,711,730, December 8, 1987 to Gosselink et al., for example those produced by
transesterification/oligomerization of poly(ethyleneglycol) methyl ether, DMT, PG
and poly(ethyleneglycol) ("PEG"). Other examples of SRA's include: the partly- and
fully-anionic-end-capped oligomeric esters of U.S. 4,721,580, January 26, 1988 to
Gosselink, such as oligomers from ethylene glycol ("EG"), PG, DMT and Na-3,6-dioxa-8-hydroxyoctanesulfonate;
the nonionic-capped block polyester oligomeric compounds of U.S. 4,702,857, October
27, 1987 to Gosselink, for example produced from DMT, methyl (Me)-capped PEG and EG
and/or PG, or a combination of DMT, EG and/or PG, Me-capped PEG and Na-dimethyl-5-sulfoisophthalate;
and the anionic, especially sulfoaroyl, end-capped terephthalate esters of U.S. 4,877,896,
October 31, 1989 to Maldonado, Gosselink et al., the latter being typical of SRA's
useful in both laundry and fabric conditioning products, an example being an ester
composition made from m-sulfobenzoic acid monosodium salt, PG and DMT, optionally
but preferably further comprising added PEG, e.g., PEG 3400.
[0190] SRA's also include: simple copolymeric blocks of ethylene terephthalate or propylene
terephthalate with polyethylene oxide or polypropylene oxide terephthalate, see U.S.
3,959,230 to Hays, May 25, 1976 and U.S. 3,893,929 to Basadur, July 8, 1975; cellulosic
derivatives such as the hydroxyether cellulosic polymers available as METHOCEL from
Dow; the C
1-C
4 alkyl celluloses and C
4 hydroxyalkyl celluloses, see U.S. 4,000,093, December 28, 1976 to Nicol, et al.;
and the methyl cellulose ethers having an average degree of substitution (methyl)
per anhydroglucose unit from about 1.6 to about 2.3 and a solution viscosity of from
about 80 to about 120 centipoise measured at 20°C as a 2% aqueous solution. Such materials
are available as METOLOSE SM100 and METOLOSE SM200, which are the trade names of methyl
cellulose ethers manufactured by Shin-etsu Kagaku Kogyo KK. Also highly preferred
are polysaccheride polymers.
[0191] Additional classes of SRA's include: (I) nonionic terephthalates using diisocyanate
coupling agents to link polymeric ester structures, see U.S. 4,201,824, Violland et
al. and U.S. 4,240,918 Lagasse et al.; and (II) SRA's with carboxylate terminal groups
made by adding trimellitic anhydride to known SRA's to convert terminal hydroxyl groups
to trimellitate esters. With the proper selection of catalyst, the trimellitic anhydride
forms linkages to the terminals of the polymer through an ester of the isolated carboxylic
acid of trimellitic anhydride rather than by opening of the anhydride linkage. Either
nonionic or anionic SRA's may be used as starting materials as long as they have hydroxyl
terminal groups which may be esterified. See U.S. 4,525,524 Tung et al.. Other classes
include: (III) anionic terephthalate-based SRA's of the urethane-linked variety, see
U.S. 4,201,824, Violland et al.;
Other Optional Ingredients
[0192] Other optional ingredients suitable for inclusion in the compositions of the invention
include perfumes, colours and other filler salts as replacement for sulphate filler
salt.
[0193] Highly preferred compositions contain from about 2% to about 10% by weight of an
organic acid, preferably citnc acid, malic acid, maleic acid, acetic acid, tartaric
acid, glutaric acid or an aminoacid.
[0194] Also, preferably combined with a carbonate salt, minor amounts (e.g., less than about
20% by weight) of neutralizing agents, buffering agents, phase regulants, hydrotropes,
enzyme stabilizing agents, polyacids, suds regulants, opacifiers, anti-oxidants, bactericides,
photo-bleaches, speckles, dyes, such as those described in US Patent 4,285,841 to
Barrat et al., issued August 25, 1981, can be present.
Form of the Compositions
[0195] The composition of the invention can be made via a variety of methods, including
dry-mixing, agglomerating, compaction, or spray-drying of the various compounds compnsed
in the detergent component, or mixtures of these techniques.
[0196] The compositions herein can take a variety of physical forms including liquid, but
preferably solid forms such as tablet, flake, pastille and bar, and preferably granular
forms.
[0197] The compositions in accord with the present invention can also be used in or in combination
with bleach additive compositions, for example comprising chlorine bleach.
[0198] Detergent compositions herein, in particular laundry detergents, preferably have
a bulk density of from 280 g/litre to 200 g/litre, or preferably from 300 g/litre
or even 350g/litre or 420g/litre to 2000g/litre or more preferably to 1500g/litre
or 100 g/litre or even to 700g/litre.
Chlorine-Based Bleach
[0199] The detergent compositions can include as an additional component a chlorine-based
bleach. However, since preferred detergent compositions of the invention are solid,
most liquid chlorine-based bleaching will not be suitable for these detergent compositions
and only granular or powder chlorine-based bleaches will be suitable.
[0200] Alternatively, the detergent compositions can be formulated such that they are chlorine-based
bleach-compatible, thus ensuring that a chlorine based bleach can be added to the
detergent composition by the user at the beginning or during the washing process.
[0201] The chlorine-based bleachis such that a hypochlorite species is formed in aqueous
solution. The hypochlorite ion is chemically represented by the formula OCI
-.
[0202] Those bleaching agents which yield a hypochlorite species in aqueous solution include
alkali metal and alkaline earth metal hypochlorites, hypochlorite addition products,
chloramines, chlorimines, chloramides, and chlorimides. Specific examples of compounds
of this type include sodium hypochlorite, potassium hypochlorite, monobasic calcium
hypochlorite, dibasic magnesium hypochlorite, chlorinated trisodium phosphate dodecahydrate,
potassium dichloroisocyanurate, sodium dichloroisocyanurate sodium dichloroisocyanurate
dihydrate, trichlorocyanuric acid, 1,3-dichloro-5,5-dimethylhydantoin, N-chlorosulfamide,
Chloramine T, Dichloramine T, chloramine B and Dichloramine B. A preferred bleaching
agent for use in the compositions of the instant invention is sodium hypochlorite,
potassium hypochlorite, or a mixture thereof.. A preferred chlorine-based bleach can
be Triclosan (trade name).
[0203] Most of the above-described hypochlorite-yielding bleaching agents are available
in solid or concentrated form and are dissolved in water during preparation of the
compositions of the instant invention. Some of the above materials are available as
aqueous solutions.
Laundry Washing Method
[0204] Machine laundry methods herein typically comprise treating soiled laundry with an
aqueous wash solution in a washing machine having dissolved or dispensed therein an
effective amount of a machine laundry detergent composition in accord with the invention.
By an effective amount of the detergent composition it is meant from 10g to 300g of
product dissolved or dispersed in a wash solution of volume from 5 to 65 litres, as
are typical product dosages and wash solution volumes commonly employed in conventional
machine laundry methods.
[0205] The compsoitions herein can be useful in both conventional washing machines and low-water
fill washing machines.
[0206] In a preferred use aspect the composition hand washing. In another preferred aspect
the detergent composition is a pre-treatment or soaking composition, to be used to
pre-treat or soak soiled and stained fabrics.
Abbreviations used in Examples
[0207] In the detergent compositions, the abbreviated component identifications have the
following meanings:
- LAS :
- Sodium linear C11-13 alkyl benzene sulfonate
- TAS :
- Sodium tallow alkyl sulfate
- CxyAS :
- Sodium C1x - C1y alkyl sulfate
- C46SAS :
- Sodium C14 - C16 secondary (2,3) alkyl sulfate
- CxyEzS :
- Sodium C1x-C1y alkyl sulfate condensed with z moles of ethylene oxide
- CxyEz :
- C1x-C1y predominantly linear primary alcohol condensed with an average of z moles of ethylene
oxide
- QAS :
- R2.N+(CH3)2(C2H4OH) with R2 = C12 - C14
- QAS 1 :
- R2.N+(CH3)2(C2H4OH) with R2 = C8 - C11
- SADS :
- Sodium C14-C22 alkyl disulfate of formula 2-(R).C4 H7.-1,4-(SO4-)2 where R = C10-C18
- SADE2S :
- Sodium C14-C22 alkyl disulfate of formula 2-(R).C4 H7.-1,4-(SO4-)2 where R = C10-C18, condensed with z moles of ethylene oxide
- MES :
- x-sulpho methylester of C18 fatty acid
- APA :
- C8 - C10 amido propyl dimethyl amine
- Soap :
- Sodium linear alkyl carboxylate derived from an 80/20 mixture of tallow and coconut
fatty acids
- STS :
- Sodium toluene sulphonate
- CFAA :
- C12-C14 (coco) alkyl N-methyl glucamide
- TFAA :
- C16-C18 alkyl N-methyl glucamide
- TPKFA :
- C16-C18 topped whole cut fatty acids
- STPP :
- Anhydrous sodium tripolyphosphate
- TSPP :
- Tetrasodium pyrophosphate
- Zeolite A :
- Hydrated sodium aluminosilicate of formula Na12(AlO2SiO2)12.27H2O having a primary particle size in the range from 0.1 to 10 micrometers (weight expressed
on an anhydrous basis)
- NaSKS-6 :
- Crystalline layered silicate of formula δ- Na2Si2O5
- Citric acid :
- Anhydrous citric acid
- Borate :
- Sodium borate
- Carbonate :
- Anydrous sodium carbonate with a particle size between 200µm and 900µm
- Bicarbonate :
- Anhydrous sodium bicarbonate with a particle size distribution between 400µm and 1200µm
- Silicate :
- Amorphous sodium silicate (SiO2:Na2O = 2.0:1)
- Sulfate :
- Anhydrous sodium sulfate
- Mg sulfate :
- Anhydrous magnesium sulfate
- Citrate :
- Tri-sodium citrate dihydrate of activity 86.4% with a particle size distribution between
425µm and 850µm
- MA/AA :
- Copolymer of 1:4 maleic/acrylic acid, average molecular weight about 70,000
- MA/AA (1) :
- Copolymer of 4:6 maleic/acrylic acid, average molecular weight about 10,000
- AA :
- Sodium polyacrylate polymer of average molecular weight 4,500
- CMC :
- Sodium carboxymethyl cellulose
- Cellulose ether :
- Methyl cellulose ether with a degree of polymerization of 650 available from Shin
Etsu Chemicals
- Protease :
- Proteolytic enzyme, having 3.3% by weight of active enzyme, sold by NOVO Industries
A/S under the tradename Savinase
- Protease I :
- Proteolytic enzyme, having 4% by weight of active enzyme, as described in WO 95/10591,
sold by Genencor Int. Inc.
- Alcalase :
- Proteolytic enzyme, having 5.3% by weight of active enzyme, sold by NOVO Industries
A/S
- Cellulase :
- Cellulytic enzyme, having 0.23% by weight of active enzyme, sold by NOVO Industries
A/S under the tradename Carezyme
- Amylase :
- Amylolytic enzyme, having 1.6% by weight of active enzyme, sold by NOVO Industries
A/S under the tradename Termamyl 120T
- Amylase II :
- Amylolytic enzyme, as disclosed in PCT/ US9703635
- Lipase :
- Lipolytic enzyme, having 2.0% by weight of active enzyme, sold by NOVO Industries
A/S under the tradename Lipolase
- Lipase II :
- Lipolytic enzyme, having 2.0% by weight of active enzyme, sold by NOVO Industries
A/S under the tradename Lipolase Ultra
- Endolase :
- Endoglucanase enzyme, having 1.5% by weight of active enzyme, sold by NOVO Industries
A/S
- PB4 :
- Sodium perborate tetrahydrate of nominal formula NaBO2.3H2O.H2O2
- PB1 :
- Anhydrous sodium perborate bleach of nominal formula NaBO2.H2O2
- Percarbonate :
- Sodium percarbonate of nominal formula 2Na2CO3.3H2O2
- DOBS :
- Decanoyl oxybenzene sulfonate in the form of the sodium salt
- DPDA :
- Diperoxydodecanedioc acid
- NOBS :
- Nonanoyloxybenzene sulfonate in the form of the sodium salt
- NACA-OBS :
- (6-nonamidocaproyl) oxybenzene sulfonate
- PAP :
- Phthaloylamido peroxyacid
- LOBS :
- Dodecanoyloxybenzene sulfonate in the form of the sodium salt
- DOBS :
- Decanoyloxybenzene sulfonate in the form of the sodium salt
- DOBA :
- Decanoyl oxybenzoic acid
- TAED :
- Tetraacetylethylenediamine
- DTPA :
- Diethylene triamine pentaacetic acid
- DTPMP :
- Diethylene triamine penta (methylene phosphonate), marketed by Monsanto under the
Tradename Dequest 2060
- EDDS :
- Ethylenediamine-N,N'-disuccinic acid, (S,S) isomer in the form of its sodium salt.
- Photoactivated :
- Sulfonated zinc phthlocyanine encapsulated in bleach (1) dextrin soluble polymer
- Photoactivated :
- Sulfonated alumino phthlocyanine encapsulated in bleach (2) dextrin soluble polymer
- Brightener I :
- Disodium 4,4'-bis(2-sulphostyryl)biphenyl
- Brightener 2 :
- Disodium 4,4'-bis(4-anilino-6-morpholino-1.3.5-triazin-2-yl)amino) stilbene-2:2'-disulfonate
- HEDP :
- 1,1-hydroxyethane diphosphonic acid
- PEGx :
- Polyethylene glycol, with a molecular weight of x (typically 4,000)
- PEO :
- Polyethylene oxide, with an average molecular weight of 50,000
- TEPAE :
- Tetraethylenepentaamine ethoxylate
- PVI :
- Polyvinyl imidasole, with an average molecular weight of 20,000
- PVP :
- Polyvinylpyrolidone polymer, with an average molecular weight of 60,000
- PVNO :
- Polyvinylpyridine N-oxide polymer, with an average molecular weight of 50,000
- PVPVI :
- Copolymer of polyvinylpyrolidone and vinylimidazole, with an average molecular weight
of 20,000
- QEA :
- bis((C2H5O)(C2H4O)n)(CH3) -N+-C6H12-N+-(CH3) bis((C2H5O)-(C2H4O))n, wherein n = from 20 to 30
- PEI :
- Polyethyleneimine with an average molecular weight of 1800 and an average ethoxylation
degree of 7 ethyleneoxy residues per nitrogen
- Clay I :
- Bentonite clay
- Clay II :
- Smectite clay
- Flocculating agent I :
- polyethylene oxide of average molecular weight of between 200,000 and 400,000
- Flocculating agent II :
- polyethylene oxide of average molecular weight of between 400,000 and 1,000,000
- Flocculating agent III :
- polymer of acrylamide and/ or acrylic acid of average molecular weight of 200,000
and 400,000
- SRP I :
- Anionically end-capped polyester soil release polymer
- SRP II :
- Polysaccheride soil release polymer
- SRP 1 :
- Nonionically end capped poly esters
- SRP 2 :
- Diethoxylated poly (1, 2 propylene terephtalate) short block polymer
- Silicone antifoam :
- Polydimethylsiloxane foam controller with siloxaneoxyalkylene copolymer as dispersing
agent with a ratio of said foam controller to said dispersing agent of 10:1 1 to 100:1
- Opacifier :
- Water based monostyrene latex mixture, sold by BASF Aktiengesellschaft under the tradename
Lytron 621
- Wax :
- Paraffin wax
- Speckle :
- Coloured carbonate salt or organic carboxylic acid / salt
[0208] In the following examples all levels are quoted as % by weight of the composition:
The following examples are only within the scope of the appended claims, if they are
in granular form and comprise the montmorillonite clay and the flocculating agent
as defined by appended claim 1.
Example 1
[0209]
| |
A |
B |
C |
D |
| Blown powder |
|
|
|
|
| Clay I or II |
7.0 |
10.0 |
6.0 |
2.0 |
| Flocculating agent I or II |
0.3 |
1.0 |
1.0 |
0.5 |
| LAS |
16.0 |
5.0 |
11.0 |
6.0 |
| TAS |
- |
5.0 |
- |
2.0 |
| Zeolite A |
- |
20.0 |
- |
10.0 |
| STPP |
24.0 |
- |
14.0 |
- |
| Sulfate |
- |
2.0 |
- |
- |
| MA/AA |
- |
2.0 |
1.0 |
1.0 |
| Silicate |
4.0 |
7.0 |
3.0 |
- |
| CMC |
1.0 |
- |
0.5 |
0.6 |
| Brightener |
0.2 |
0.2 |
0.2 |
0.2 |
| Sodium carbonate |
10.0 |
10.0 |
20.0 |
- |
| DTPMP |
0.4 |
0.4 |
0.2 |
- |
| Spray on |
|
|
|
|
| Brightener |
0.02 |
- |
- |
0.02 |
| C45E7 or E9 |
- |
- |
2.0 |
1.0 |
| C45E3 or E4 |
- |
- |
2.0 |
4.0 |
| Perfume |
0.5 |
- |
0.5 |
0.2 |
| Silicone antifoam |
0.3 |
- |
- |
- |
| Dry additives |
|
|
|
|
| QEA |
- |
- |
- |
1.0 |
| HEDP/ EDDS |
0.3 |
- |
- |
- |
| Sulfate |
2.0 |
- |
- |
- |
| Carbonate |
20.0 |
13.0 |
15.0 |
24.0 |
| Citric acid |
2.5 |
- |
- |
2.0 |
| QAS |
- |
- |
0.5 |
0.5 |
| SKS-6 |
3.5 |
- |
- |
5.0 |
| Percarbonate |
- |
- |
- |
9.0 |
| PB4 |
- |
- |
5.0 |
|
| PAP/NOBS |
- |
- |
- |
1.3 |
| TAED |
- |
- |
2.0 |
1.5 |
| Protease |
1.0 |
1.0 |
1.0 |
1.0 |
| Lipase |
- |
0.4 |
- |
0.2 |
| Amylase |
0.2 |
0.2 |
0.2 |
0.4 |
| Brightener |
0.05 |
- |
- |
0.05 |
| Perfume |
1.0 |
0.2 |
0.5 |
0.3 |
| Speckle |
1.2 |
0.5 |
2.0 |
- |
| Misc/minor to 100% |
|
|
|
|
Example 2
[0210]
| |
E |
F |
G |
H |
I |
J |
| Blown powder |
|
|
|
|
|
|
| LAS |
23.0 |
8.0 |
7.0 |
9.0 |
7.0 |
7.0 |
| QAS |
- |
- |
- |
- |
1.0 |
- |
| C45AS |
6.0 |
6.0 |
5.0 |
8.0 |
- |
- |
| C45AE3S |
- |
1.0 |
1.0 |
1.0 |
- |
- |
| MES |
- |
- |
- |
- |
2.0 |
4.0 |
| STPP/ Zeolite A |
10.0 |
18.0 |
18.0 |
20.0 |
10.0 |
10.0 |
| MA/AA |
- |
0.5 |
- |
- |
- |
2.0 |
| MA/AA(1) |
7.0 |
- |
- |
- |
- |
- |
| AA |
- |
3.0 |
3.0 |
2.0 |
3.0 |
3.0 |
| Sulfate |
2.0 |
6.0 |
1.0 |
- |
- |
- |
| Silicate |
10.0 |
- |
2.0 |
7.0 |
1.0 |
1.0 |
| Carbonate |
25.0 |
20.0 |
10.0 |
20.0 |
14.0 |
- |
| PEG 4000 |
0.4 |
1.5 |
1.5 |
1.0 |
1.0 |
1.0 |
| DTPA |
- |
0.9 |
0.5 |
- |
- |
0.5 |
| Brightener |
0.3 |
0.2 |
0.3 |
- |
0.1 |
0.3 |
| Flocculating agent I or III |
0.5 |
0.1 |
0.2 |
0.8 |
1.5 |
0.2 |
| Spray on |
|
|
|
|
|
|
| C45E7 |
- |
2.0 |
- |
- |
2.0 |
2.0 |
| C25E9 |
3.0 |
- |
- |
- |
- |
- |
| C23E9 |
- |
- |
1.5 |
2.0 |
- |
2.0 |
| Perfume |
0.3 |
0.3 |
0.3 |
2.0 |
0.3 |
0.3 |
| Agglomerates |
|
|
|
|
|
|
| C45AS |
- |
5.0 |
5.0 |
2.0 |
- |
5.0 |
| LAS |
- |
2.0 |
2.0 |
- |
- |
2.0 |
| STPP? Zeolite A |
- |
7.5 |
7.5 |
8.0 |
- |
7.5 |
| Carbonate |
- |
4.0 |
4.0 |
5.0 |
- |
4.0 |
| PEG 4000 |
- |
0.5 |
0.5 |
- |
- |
0.5 |
| Misc (water etc) |
- |
2.0 |
2.0 |
2.0 |
- |
2.0 |
| Agglomerate |
|
|
|
|
|
|
| Clay I or II |
10.0 |
4.0 |
3.0 |
15.0 |
7.0 |
6.0 |
| Wax |
0.7 |
- |
- |
1.0 |
0.5 |
1.0 |
| Dry additives |
|
|
|
|
|
|
| QAS (I) |
- |
- |
- |
- |
1.0 |
- |
| Citric acid |
- |
- |
- |
- |
2.0 |
- |
| PB4 |
- |
3.0 |
- |
- |
- |
- |
| PB1 |
- |
- |
4 |
1.0 |
- |
- |
| Percarbonate |
12.0 |
- |
- |
1.0 |
- |
2.0 |
| Carbonate |
- |
5.3 |
20.0 |
5.0 |
14.0 |
24.0 |
| NOBS |
0.5 |
- |
0.4 |
0.3 |
- |
0.6 |
| DOBS/PAP |
- |
0.9 |
- |
- |
0.3 |
- |
| TAED |
0.6 |
0.4 |
0.6 |
0.3 |
0.9 |
0.5 |
| Methyl cellulose |
0.2 |
- |
- |
- |
- |
0.5 |
| DTPA |
0.7 |
0.5 |
1.0 |
0.5 |
0.5 |
1.2 |
| Speckle |
0.3 |
0.2 |
2.0 |
- |
0.7 |
0.5 |
| SKS-6 |
8.0 |
- |
- |
- |
- |
- |
| STS |
- |
- |
2.0 |
- |
1.0 |
- |
| Cumene sulfonic acid |
- |
1.0 |
- |
- |
- |
2.0 |
| Lipase |
0.2 |
- |
0.2 |
- |
0.2 |
0.4 |
| Cellulase |
0.2 |
0.2 |
0.2 |
0.3 |
0.2 |
0.2 |
| Amylase II |
0.2 |
- |
0.1 |
- |
0.2 |
- |
| Protease |
0.5 |
0.5 |
0.5 |
0.3 |
0.5 |
0.5 |
| PVPVI |
- |
- |
- |
- |
0.5 |
0.1 |
| PVP |
- |
- |
- |
- |
0.5 |
- |
| PVNO |
- |
- |
0.5 |
0.3 |
- |
- |
| QEA |
- |
- |
- |
- |
1.0 |
- |
| SRP I, II, or III |
0.2 |
0.5 |
0.3 |
- |
0.2 |
- |
| Silicone antifoam |
0.2 |
0.4 |
0.2 |
- |
0.1 |
- |
| Mg sulfate |
- |
- |
0.2 |
- |
0.2 |
- |
| Misc/minors to 100% |
|
|
|
|
|
|
Example 3
[0211]
| |
K |
L |
M |
N |
| Base granule |
|
|
|
|
| STPP |
- |
22.0 |
- |
15.0 |
| Zeolite A |
30.0 |
- |
24.0 |
5.0 |
| Sulfate |
- |
- |
2.0 |
5.0-- |
| MA/AA |
3.0 |
- |
- |
- |
| AA |
- |
1.6 |
2.0 |
- |
| Flocculating agent I or II |
0.2 |
0.1 |
0.5 |
- |
| LAS |
14.0 |
10.0 |
19.0 |
26.0 |
| C45AS |
8.0 |
7.0 |
2.0 |
- |
| C45AE3S |
2.0 |
1.0 |
- |
- |
| MES |
- |
4.0 |
- |
- |
| Clay I or II |
12.5 |
8.0 |
10.0 |
5.0 |
| Silicate |
4.0 |
1.0 |
- |
10.0 |
| Soap |
- |
2.0 |
2.0 |
3.0 |
| Brightener 1 |
0.2 |
0.2 |
0.2 |
0.2 |
| Carbonate |
16.0 |
19.0 |
10.0 |
20.0 |
| PEG 4000 |
- |
1.0 |
1.5 |
- |
| C25E3 or E4 |
2.0 |
- |
3.0 |
- |
| C45E5 or E7 |
2.0 |
- |
- |
- |
| DTPA |
- |
0.4 |
- |
- |
| Spray on |
|
- |
|
|
| C25E3 or E4 |
- |
- |
- |
2.0 |
| C45E5 or E7 |
- |
- |
- |
2.0 |
| Brightener/ photobbleach |
- |
- |
0.5 |
0.5 |
| Perfume |
0.2 |
0.3 |
0.3 |
- |
| Dry additives |
|
|
|
|
| Carbonate |
15.0 |
10.0 |
13.0 |
5.0 |
| PVPVI/PVNO |
0.5 |
- |
0.3 |
- |
| Protease |
1.0 |
1.0 |
1.0 |
0.5 |
| Lipase |
0.4 |
- |
- |
0.4 |
| Amylase |
0.1 |
- |
- |
0.1 |
| Cellulase |
0.1 |
0.2 |
0.2 |
0.1 |
| DTPA |
0.5 |
0.3 |
0.5 |
1.0 |
| Clay I or II (wax) |
- |
- |
- |
5.0 |
| PB1 |
5 |
3.0 |
- 10 |
4.0 |
| PAP/ DOBA |
1.0 |
- |
0.4 |
- |
| TAED |
0.5 |
0.3 |
0.5 |
0.6 |
| Sulfate |
4.0 |
5.0 |
- |
5.0 |
| SRP I, II or III |
0.2 |
0.4 |
1.0 |
0.5 |
| Sud supressor |
- |
0.5 |
- |
- |
| Speckle |
1.8 |
0.8 |
0.7 |
1.2 |
| Flocculating agent |
- |
- |
0.1 |
0.2 |
| Perfume (starch) |
- |
0.2 |
0.3 |
0.5 |
| Misc/minor to 100% |
|
|
|
|
Example 4
[0212]
| |
O |
P |
R |
S |
T |
U |
V |
W |
X |
Y |
Z |
| Sodium C11-C13 alkylbenzene sulfonate |
12.0 |
16.0 |
23.0 |
19.0 |
18.0 |
20.0 |
16.0 |
8.5 |
5 |
20.0 |
6.0 |
| Sodium C14-C15 alcohol sulfate |
|
4.5 |
- |
|
- |
- |
4.0 |
|
- |
- |
- |
| C14-C15 alcohol ethoxylate (0.5) sulfate |
|
|
- |
- |
- |
- |
- |
- |
- |
- |
- |
| C14-C15 alcohol ethoxylate (3) sulfate |
- |
- |
2.0 |
- |
1.0 |
1.0 |
1.0 |
- |
- |
- |
- |
| Sodium C14-C15 alcohol ethoxylate (or mixtures of different ethoxylation degree) |
2.0 |
2.0 |
- |
1.3 |
- |
- |
5.0 |
5.5 |
4.0 |
- |
- |
| C9-C14 alkyl dimethyl hydroxy ethyl quaternary ammonium salt |
|
|
- |
- |
1.0 |
0.5 |
2.0 |
- |
- |
- |
- |
| Tallow fatty acid |
- |
|
- |
- |
- |
- |
1.0 |
- |
- |
- |
- |
| Tallow alcohol ethoxylate (50) |
- |
- |
- |
- |
- |
- |
- |
- |
- |
- |
- |
| Sodium tripolyphosp hate / Zeolite |
23.0 |
25.0 |
14.0 |
22,0 |
20.0 |
10.0 |
20.0 |
30.0 |
20.0 |
25.0 |
25.0 |
| Sodium carbonate |
25.0 |
22.0 |
35.0 |
20.0 |
28.0 |
41.0 |
30.0 |
30.0 |
25.0 |
45.0 |
24.0 |
| Sodium Polyacrylate (45%) |
0.5 |
0.5 |
0.5 |
0.5 |
- |
- |
- |
- |
- |
- |
- |
| Sodium polyacrylate/ maleate polymer |
- |
- |
1.0 |
1.0 |
1.0 |
2.0 |
0.5 |
0.5 |
1.0 |
- |
- |
| Sodium silicate (1:6 ratio NaO/SiO2)(4 6%) |
3.0 |
6.0 |
9.0 |
8.0 |
9.0 |
6.0 |
8.0 |
5.0 |
6.0 |
8.0 |
5.0 |
| Sodium sulfate |
- |
- |
- |
- |
- |
2.0 |
3.0 |
- |
- |
- |
8.0 |
| Sodium perborate/ percarbonate |
5.0 |
5.0 |
10.0 |
- |
3.0 |
1.0 |
- |
20.0 |
14.0 |
- |
- |
| Poly(ethylen eglycol), MW ~4000 (50%) |
1.5 |
1.5 |
1.0 |
1.0 |
- |
- |
0.5 |
- |
- |
- |
0.5 |
| Sodium carboxy methyl cellulose |
1.0 |
1.0 |
1.0 |
- |
0.5 |
0.5 |
0.5 |
0.5 |
0.5 |
- |
0.5 |
| Citric acid |
- |
- |
- |
- |
- |
- |
- |
- |
- |
- |
- |
| NOBS/ DOBS |
- |
1.0 |
- |
- |
1.0 |
0.7 |
- |
- |
- |
- |
- |
| TAED / PAP |
1.5 |
1.0 |
2.5 |
- |
3.0 |
0.7 |
- |
4.5 |
5.0 |
- |
- |
| Chelant |
0.5 |
0.5 |
0.5 |
- |
1.0 |
- |
- |
0.5 |
0.5 |
- |
|
| SRP |
1.5 |
1.5 |
1.0 |
1.0 |
- |
1.0 |
- |
1.0 |
1.0 |
- |
- |
| Clay I or II |
5.0 |
6.0 |
12.0 |
7.0 |
10.0 |
4.0 |
3.0 |
7.0 |
10.0 |
6.0 |
8.0 |
| Flocculating agent I or III |
0.2 |
0.2 |
3.0 |
2.0 |
0.1 |
1.0 |
0.5 |
2.0 |
0.5 |
1.0 |
0.5 |
| Humectant |
0.5 |
1.0 |
0.5 |
1.0 |
0.5 |
0.5 |
- |
1.0 |
0.5 |
- |
- |
| Wax |
0.5 |
0.5 |
1.0 |
- |
- |
0.5 |
0.5 |
0.3 |
0.5 |
0.5 |
- |
| Moisture |
7.5 |
7.5 |
6.0 |
7.0 |
5.0 |
3.0 |
5.0 |
5.0 |
5.0 |
8.0 |
10.0 |
| Magnesium sulphate |
- |
- |
- |
- |
- |
0.5 |
1.5 |
- |
- |
- |
- |
| Soap/ suds suppressor |
- |
- |
0.5 |
0.5 |
0.8 |
0.6 |
1.0 |
1.0 |
0.8 |
0.5/ 0.0 |
1.0/ 0.0 |
| Enzymes, including amylase, cellulase, protease and lipase |
- |
- |
- |
- |
2.0 |
1.5 |
2.0 |
0.5 |
1.0 |
1.0 |
1.0 |
| Speckle |
2.5 |
1.1 |
0.5 |
1.4 |
- |
- |
2.2 |
1.0 |
1.6 |
1.0 |
|
| minors, e.g. perfume, PVP, PVPVI/PVN O, brightener, photo-bleach, |
2.0 |
1.0 |
1.0 |
1.0 |
2.5 |
1.5 |
1.0 |
1.0 |
0.5 |
0.5 |
0.5 |
Example 5
[0213]
| |
AA |
BB |
CC |
DD |
| Sodium C11-C13 alkylbenzenesulfonate |
23.0 |
13.0 |
20.0 |
18.0 |
| Sodium C14-C15 alcohol sulfate |
- |
4.0 |
- |
- |
| Clay I or II |
5.0 |
10.0 |
14.0 |
6.0 |
| Flocculating agent I or II |
0.2 |
0.3 |
0.1 |
0.9 |
| Wax |
0.5 |
0.5 |
1.0 |
- |
| Humectant (glycerol/ silica) |
0.5 |
2.0 |
1.5 |
- |
| C14-C15 alcohol ethoxylate sulfate |
- |
|
- |
2.0 |
| Sodium C14-C15 alcohol ethoxylate ( |
2.5 |
3.5 |
- |
- |
| C9-C14 alkyl dimethyl hydroxy ethyl quaternary ammonium salt |
|
- |
- |
0.5 |
| Tallow fatty acid |
0.5 |
- |
- |
- |
| Tallow alcohol ethoxylate (50) |
- |
- |
|
1.3 |
| Sodium tripolyphosphate |
- |
41.0 |
- |
20.0 |
| Zeolite A, hydrate (0.1-10 micron size) |
26.3 |
- |
21.3 |
- |
| Sodium carbonate |
24.0 |
22.0 |
35.0 |
27.0 |
| Sodium Polyacrylate (45%) |
2.4 |
- |
2.7 |
- |
| Sodium polyacrylate/maleate polymer |
- |
- |
1.0 |
2.5 |
| Sodium silicate (1.6 or 2 or 2.2 ratio NaO/SiO2)(46%) |
4.0 |
7.0 |
2.0 |
6.0 |
| Sodium sulfate |
- |
6.0 |
2.0 |
- |
| Sodium perborate/ percarbonate |
8.0 |
4.0 |
- |
12.0 |
| Poly(ethyleneglycol), MW ~4000 (50%) |
1.7 |
0.4 |
1.0 |
- |
| Sodium carboxy methyl cellulose |
1.0 |
- |
- |
0.3 |
| Citric acid |
- |
- |
3.0 |
- |
| NOBS/DOBS |
1.2 |
- |
- |
1.0 |
| TAED |
0.6 |
1.5 |
- |
3.0 |
| Perfume |
0.5 |
1.0 |
0.3 |
0.4 |
| Soil release polymer |
- |
1.5 |
1.0 |
1.0 |
| Moisture |
7.5 |
3.1 |
6.1 |
7.3 |
| Magnesium sulphate |
- |
- |
- |
1.0 |
| Chelant |
- |
- |
- |
0.5 |
| speckle |
1.0 |
0.5 |
0.2 |
2.7 |
| Enzymes, including amylase, cellulase, protease and lipase |
- |
1.0 |
- |
1.5 |
| minors, e.g. brightener, photo-bleach |
1.0 |
1.0 |
1.0 |
1.0 |
Example 6
[0214]
| |
EE |
EE |
FF |
GG |
HH |
| Blown Powder |
|
|
|
|
|
| STPP/ Zeolite A |
9.0 |
15.0 |
15.0 |
9.0 |
9.0 |
| Flocculating agent II or III |
0.5 |
0.2 |
0.9 |
1.5 |
- |
| LAS |
7.5 |
23.0 |
3.0 |
7.5 |
7.5 |
| QAS |
2.5 |
1.5 |
- |
- |
- |
| DTPMP |
0.4 |
0.2 |
0.4 |
0.4 |
0.4 |
| HEDP or EDDS |
- |
0.4 |
0.2 |
- |
- |
| CMC |
0.1 |
0.4 |
0.4 |
0.1 |
0.1 |
| Sodium carbonate |
5.0 |
20.0 |
20.0 |
10.0 |
- |
| Brightener |
0.05 |
- |
- |
0.05 |
0.05 |
| Clay I or II |
- |
10.0 |
- |
- |
- |
| STS |
0.5 |
- |
- |
0.5 |
0.5 |
| MA/AA |
1.5 |
2.0 |
2.0 |
1.5 |
1.5 |
| Agglomerates |
|
|
|
|
|
| Suds suppresser (silicon) |
1.0 |
1.0 |
- |
2.0 |
0.5 |
| Agglomerate |
|
|
|
|
|
| Clay |
9.0 |
- |
- |
4.0 |
10.0 |
| Wax |
0.5 |
- |
- |
0.5 |
1.5 |
| Glycerol |
0.5 |
- |
- |
0.5 |
0.5 |
| Agglomerate |
|
|
|
|
|
| LAS |
- |
5.0 |
5.0 |
- |
- |
| TAS |
- |
2.0 |
1.0 |
- |
- |
| Silicate |
- |
3.0 |
4.0 |
- |
- |
| Zeolite A |
- |
8.0 |
8.0 |
- |
- |
| Carbonate |
- |
8.0 |
4.0 |
- |
- |
| Spray On |
|
|
|
|
|
| Perfume |
0.3 |
- |
- |
0.3 |
0.3 |
| C45E7 or E9 |
2.0 |
- |
- |
2.0 |
2.0 |
| C25E3 or E4 |
2.0 |
- |
- |
2.0 |
2.0 |
| Dry additives |
|
|
|
|
|
| Citrate or citric acid |
2.5 |
- |
2.0 |
2.5 |
2.5 |
| Clay I or II |
- |
5.0 |
5.0 |
- |
- |
| Flocculating agent I or II |
- |
- |
- |
- |
0.2 |
| Bicarbonate |
- |
3.0 |
- |
- |
- |
| Carbonate |
15.0 |
- |
- |
25.0 |
31.0 |
| TAED |
1.0 |
2.0 |
5.0 |
1.0 |
- |
| Sodium perborate or percarbonate |
6.0 |
7.0 |
10.0 |
6.0 |
- |
| SRP I, II or III |
0.2 |
0.1 |
0.2 |
0.5 |
0.3 |
| CMC or nonionic cellulose ether |
1.0 |
1.5 |
0.5 |
- |
- |
| Protease |
0.3 |
1.0 |
1.0 |
0.3 |
0.3 |
| Lipase |
- |
0.4 |
0.4 |
- |
- |
| Amylase |
0.2 |
0.6 |
0.6 |
0.2 |
0.2 |
| Cellulase |
0.2 |
0.6 |
0.6 |
0.2 |
0.2 |
| Silicone antifoam |
- |
5.0 |
5.0 |
- |
- |
| Perfume (starch) |
0.2 |
0.3 |
1.0 |
0.2 |
0.2 |
| Speckle |
0.5 |
0.5 |
0.1 |
- |
1.0 |
| SKS-6 (silicate 2R) |
3.5 |
- |
- |
- |
3.5 |
| Photobleach |
0.1 |
- |
- |
0.1 |
0.1 |
| Soap |
0.5 |
2.5 |
- |
0.5 |
0.5 |
| Sodium sulfate |
- |
3.0 |
- |
- |
- |
| Misc/minors to 100% |
100.0 |
100.0 |
100.0 |
100.0 |
100.0 |
| Density (g/litre) |
850 |
850 |
850 |
850 |
850 |