[0001] This invention relates to stable, built, aqueous liquid detergent-softening compositions
suitable for laundry formulations. More particularly, the invention relates to aqueous
clay softener containing liquid detergent compositions which contain one or more detergent
builders and which are characterized by being physically stable, homogeneous liquid
compositions.
[0002] The formulation of stabilized liquid detergent compositions has been the focus of
much attention in the prior art. The desirability of incorporating high solids levels
into aqueous detergent compositions is primarily due to the effectiveness of various
water insoluble or water dispersible additives, such as clay softeners.
[0003] In the case of liquid detergent compositions containing a builder, the problem of
enzyme instability is also a problem. Primarily, detergent builders have a destabilizing
effect on enzymes, even in compositions containing enzyme stabilizers which are otherwise
effective in unbuilt formulations. Moreover, the incorporation of a builder into a
liquid detergent composition poses an additional problem, namely, the ability to form
a stable single-phase composition; the solubility of sodium tripolyphosphate, for
example, being relatively limited in aqueous compositions, and especially in the presence
of anionic and nonionic detergents.
[0004] In our commonly assigned copending application Serial No. 07/255,817 filed October
7, 1988, titled HEAVY DUTY FABRIC SOFTENING LAUNDRY DETERGENT COMPOSITION, the disclosure
of which is incorporated herein in its entirety by reference, a highly advantageous
"softergent" liquid composition based on a combination of anionic and nonionic surfactants
and a certain type of amphoteric surfactant, inorganic builder, bentonite and water
is disclosed. These compositions may, and preferably do, also include enzyme(s) and
enzyme stabilization system. The enzyme stabilizer system includes 0.5 to 5% of a
mixture of dibasic acid of 4 to 6 carbon atoms each, 1 to 3% of boric acid and 0.1
to 0.5% of a source of calcium ion.
[0005] In our prior copending application Serial No. 07/684,149, filed April 12, 1991, the
entire disclosure of which is incorporated herein by reference thereto, an improved
enzyme stabilization system based on (i) a boron compound, e.g. boric acid, boric
oxide, borax; (ii) hydroxycarboxylic acid having from 4 to 8 carbon atoms, 2 or 3
carboxyl groups, and 1 to 4 hydroxyl groups, e.g. citric acid; and (ii) a water-soluble
calcium salt, was described. This enzyme stabilization system provides improved enzyme
stability of both protease and amylase enzymes, even in the presence of large amounts
of builder, and even when exposed to large temperature fluctuations.
[0006] While the aqueous built detergent compositions disclosed in our prior application
Serial No. 684,149, exhibited adequate stability over many conditions, still further
improvements in stability, with or without enzymes and enzyme stabilizers, would be
considered highly beneficial, especially at high solids loading levels, and particularly
in the case of "softergent" compositions. As referred to herein "softergent" compositions
are intended to include those compositions which in addition to surface active detergent
components, also include fabric softening additives, and particularly, the water insoluble
clay softening agents which are well known in the art.
[0007] There have been numerous efforts to stabilize suspended solids in various types of
aqueous or non-aqueous liquid systems, including, of course, built liquid laundry
detergent compositions.
[0008] Recently an attempt to provide an explanation and general theory of stabilization
of such aqueous liquid built detergent compositions was proposed in U.S. Patent 4,618,446,
dated October 21, 1986, to Haslop, et al. According to this patent, patentees discovered
that when Active Ingredients (i.e., surface active agents), dissolved Electrolyte
and water are present in certain proportions, which depend upon the particular active
ingredients and electrolytes, a Stable Spherulitic Composition is obtained which is
capable of suspending solid particles such as builder. Stabilization by surfactant
in a spherulitic phase is contrasted to stabilization by a lamellar phase. More specifically,
this patent discloses pourable, fluid detergent composition including water, surfactant,
having a weight ratio of surfactant to water such that, when an anhydrous surfactant
desolubilizing electrolyte salt is progressively dissolved in an aqueous micellar
solution of the surfactant having said weight ratio, the electrical conductivity of
the solution passes through a "first conductivity minimum" at which the mixture is
stable and turbid; builder in a total weight ratio of builder to surfactant of at
least 1.5 to 1; and a dissolved surfactant disolubilizing electrolyte, in a total
amount, including any dissolved portion of the builder, corresponding to the trough
in the graph of conductivity of the composition against the concentration of electrolyte
therein, which contains the "first conductivity minimum," the amount being between
the minimum and maximum amounts at which the composition is stable (i.e., no layer
containing more than 2% of the total volume separates from the bulk of the composition
within 3 months under normal gravity and at room temperature, unless another temperature
is stated) at room temperature and at a temperature below 5°C.
[0009] On the other hand, this patent also makes reference to prior proposals of compositions
in which the surfactant forms a network structure of a lamellar phase, separable from
the aqueous phase by centrifuging at 25°C for 17 hours at 800G, which forms a gel
structure capable of supporting suspended particles of solid builder. While described
as capable of providing more cost effective soil removing agents then the best laundry
powders, such lamellar compositions are noted to have a mobility lower than desirable
for some purposes.
[0010] In contrast to the above described spherulitic and lamellar phase stabilization systems,
the present invention is based on the discovery that a pourable fluid built detergent
composition can be made stable against phase separation, substantially, as defined
in the aforementioned Haslop, et al. patent, without utilizing an amount of surfactant-desolubilizing
electrolyte corresponding to the trough in the graph of conductivity of the composition
plotted against the concentration of electrolyte therein, and which is neither a spherulitic
system nor a lamellar system.
[0011] The compositions of this invention can, therefore, be contrasted to the stable compositions
of Haslop, et al. and to the lamellar phase systems as described therein. The invention
compositions are able to maintain their stability notwithstanding the presence of
high solids loading levels, not only of suspended detergent builders, but also of
suspended clay particles which are effective fabric softening agents.
[0012] In fact, it has been discovered that contrary to any expectation and suggestions
of the prior art, the high clay content payload of the present compositions is important
for stabilization. On the other hand, however, the preferred high clay content formulations
often develop viscosities which for some purposes or in view of end use customer expectations
are unduly high. The present inventors have discovered that these high viscosities
are the result of flocculation of the suspended clay particles, although such flocculation
does not result in phase separation. The flocculation phenomenon is avoided in accordance
with this invention by incorporation in the formulation of a small amount of a polymeric
dispersing agent. While such polymeric dispersing agents may normally be considered
to provide a thickening function, it has, surprisingly, been found that the added
polymeric dispersing agent results in substantially lower viscosity, presumably by
preventing flocculation of the suspended clay particles (and other suspended particles,
e.g., builder, etc.).
Summary of the Invention
[0013] The invention provides a stable, free-flowing aqueous liquid built fabric cleaning
and softening composition which contains an anionic surface active detergent, clay
fabric softener, non-phosphate detergent builder, and anti-flocculating structurant
polymeric dispersing agent. The anionic surfactant is present in an amount to provide
effective cleaning performance without interacting with any enzyme which may be, and
preferably is, present in the composition. At least 50% by weight of the total surfactant
present in the composition is a C8 - C20 alkyl ethoxysulfate with from 1 to 11 moles
ethoxy groups par mole of alkyl sulfate. The clay fabric softener and non-phosphate
builder are present in effective amounts such as from about 0.5 to about 20 percent
and from about 5 to about 28 or 30 percent, respectively.
[0014] The non-phosphate builder is preferably a zeolite builder, such as zeolite A. The
polymeric dispersing agent is preferably homopolymer or copolymer of acrylic acid
or derivative thereof.
[0015] In a preferred embodiment the inventive composition includes the following ingredients
in the recited broad, intermediate and preferred ranges, in percent by weight:
Ingredient |
Broad |
amount (weight%) Intermediate |
Preferred |
AEOS |
3 to 30 |
5 to 25 |
5 to 15 |
Zeolite |
5 to 30 |
8 to 25 |
12 to 20 |
Clay |
0.5 to 20 |
3 to 18 |
5 to 12 |
Polymeric dispersant |
0.1 to 5 |
0.8 to 2 |
0.8 to 1.5 |
Enzyme |
0 or 0.01 to 5 |
0 or 0.05 to 4 |
0 or 0.1 to 1 |
Aqueous liquid carrier |
balance to 100% |
[0016] In an especially preferred embodiment the invention composition includes a mixture
of the alkylethoxysulfate anionic surfactant with a nonionic surface active agent
at a ratio of anionic to nonionic in the range of from about 1:4 to about 10:1. Furthermore,
the total amount of surfactant is preferably in the range of from about 5 to 30% by
weight of the composition.
[0017] In a preferred embodiment of the invention, a built enzyme-containing aqueous liquid
softergent composition includes (A) from about 5 to about 30%, by weight, of a mixture
of (a) C₁₀ - C₁₂ alkyl polyethoxy (2 to 7 moles) sulfate anionic surface active detergent
compound and (b) nonionic surface active detergent compound at an (a) : (b) ratio,
by weight, of from about 1:4 to about 10:1; (B) from about 5 to about 30%, by weight,
of at least one zeolite detergency builder; (C) from about 0.1 to about 3%, by weight,
of a protease, amylase, or mixed protease-amylase enzyme system; (D) an enzyme stabilizing
effective amount of an enzyme stabilization system; (E) from about 0.5 to about 20%,
by weight, of a clay softening agent; and (F) water, and optionally perfume and other
adjuvants.
[0018] In accordance with the process of the invention, laundering of stained and/or soiled
materials is affected by contacting such materials with an aqueous solution of the
above-defined liquid detergent compositions.
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figures 1-5 are conductivity curves for compositions with 0%, 1%, 2%, 2.5% and 3%,
respectively of linear alkyl benzene sulfonate co-anionic surfactant as a function
of electrolytes level, for the whole composition (□) or surfactants (·).
[0020] Figure 6 is a conductivity curve or another formulation as a function of electrolytes
level for the whole composition (□) or surfactants only (·).
Detailed Description of the Invention
[0021] The described liquid detergent is a commercially acceptable heavy duty laundry detergent,
capable of satisfactorily cleaning and softening laundry items containing both oily
and particulate soils. Additionally, the described compositions may be employed for
the pre-treatment of badly soiled areas, such as collars and cuffs, of items to be
laundered.
[0022] The present invention is a stable and pourable aqueous laundry detergent composition
containing therein suspended zeolite builder and clay softener in an aqueous suspension
having a visco-elastic network structure provided by a low molecular weight polymeric
dispersing agent which is a non-cross-linked polymer of a carboxylic acid or derivative
thereof.
[0023] Accordingly, the present invention provides a stable, free-flowing, easily pourable,
liquid fabric treating composition in the form of an aqueous viscoelastic suspension
comprising, in an aqueous media, anionic surface active and a viscosity stabilizing
effective amount of a polymeric dispersing agent, said dispersing agent comprising
a low molecular weight, non-cross-linked polymer of a carboxylic acid or derivative
thereof, and said viscosity stabilizing effective amount forming a viscoelastic structure
in which suspended solid clay and non-phosphate builder particles are maintained in
the suspended phase due to repulsive forces between the suspended particles and the
polymeric dispersing agent, and wherein the composition includes at least 15 percent
by weight of suspended solid particles.
[0024] In a preferred embodiment the composition also includes one or more enzymes to assist
in soil removal and, preferably, an enzyme stabilization system, to maintain the long-term
effectiveness of the enzymes, in the otherwise highly stable (against phase separation
or solid settling or change in viscosity) composition.
I. Surface Active Detergent Compounds
[0025] The preferred detergents for use in the present liquid compositions are the synthetic
anionic detergent compounds, and particularly alkyl polyethoxy sulfate. Other water
soluble anionic detergent compound, such as higher alkylbenzene sulfonates may also
be present in the instant formulas, such as potassium salts and in some instances
the ammonium or alkanolamine salts. The alkylbenzene sulfonate when present is one
wherein the higher alkyl is of 12 to 15 carbon atoms, preferable 12 to 13 carbon atoms.
The alkyl polyethoxy sulfate, which also may be referred to as a sulfated polyethoxylated
higher linear alcohol or the sulfated condensation product of a higher fatty alcohol
and ethylene oxide or polyethoxylene glycol, is one wherein the alkyl is of 10 to
18 carbon atoms, preferably 12 to 15 carbon atoms, e.g. about 12 to 13 carbon atoms,
and which includes 1 or 2 or 3 to 11 ethylene oxide groups, preferably 2 to 7, more
preferably 2 to 5 and most preferably 3, or about 3 ethylene oxide groups on average.
Mixtures of the alkyl polyethoxy sulfate and alkylbenzene sulfonate are often advantageous
and can be used at a ratio or alkylbenzene sulfonate to polyethoxy sulfate in the
detergent fixture of from about 1:6 to 6:1 and most preferably from about 1:4 to 4:1,
by weight.
[0026] In suitable circumstances other anionic detergents, such as fatty alcohol sulfates,
paraffin sulfonates, olefin sulfonates, monoglyceride sulfates, sarcosinates and similarly
functioning soaps or detergents, preferably as the alkali metal, e.g. sodium salts,
can be present, sometimes in partial replacement or the previously mentioned synthetic
organic detergents but usually, if present, in addition to such detergents. Normally,
the supplementing detergents will be sulfated or sulfonated products (usually as the
sodium salts) and will contain long chain (e.g. 8 to 20 carbon atoms) linear or fatty
alkyl groups.
[0027] In addition to any supplementing anionic synthetic organic detergents, there also
may be present nonionic and amphoteric materials, like the Neodols® sold by Shell
Chemical Company, which are condensation products of ethylene oxide (usually from
2 to 7 moles, e.g., about 6 moles) and higher fatty alcohols
, e.g. Neodol® 23-6.5, which is a condensation product of a higher fatty alcohol of
about 12 to 13 carbon atoms with about 6.5 moles, on average, of ethylene oxide. Illustrations
of the various detergents and classes of detergents mentioned nay be found in the
text
Surface Active Agents, Vol. II, by Schwartz, Perry and Berch (Interscience Publishers, 1958), the descriptions
of which are incorporated herein by reference.
[0028] The nonionic detergents also include the polyethylene oxide condensate of 1 mole
of alkyl phenol containing in the alkyl group from about 6 to 12 carbon atoms in a
straight or branched chain configuration with about 5 to 30 moles of ethylene oxide,
for example, nonyl phenol condensed with 9 moles of ethylene oxide; dodecyl phenol
condensed with 15 moles of ethylene oxide; and dinonyl phenol condensed with 15 moles
of ethylene oxide. Condensation products of the corresponding alkyl thiophenols with
5 to 30 moles of ethylene oxide are also suitable.
[0029] Of the nonionic surfactants, those of the ethoxylated and mixed ethoxylated-propyloxylated
fatty alcohol type are preferred. Examples of preferred nonionic surfactants include
the condensation product of coconut fatty alcohol with about 6 moles of ethylene oxide
per mole of coconut fatty alcohol; the condensation product of tallow fatty alcohol
with about 11 moles of ethylene oxide per mole of tallow fatty alcohol; the condensation
product of a secondary fatty alcohol containing about 11-15 carbon atoms with about
9 moles of ethylene oxide per mole of fatty alcohol and condensation products of more
or less branched primary alcohols, whose branching is predominantly 2-methyl, with
from about 4 to 12 moles of ethylene oxide.
[0030] Other useful nonionics are represented by the commercially well-known class of nonionics
which are the reaction product of a higher linear alcohol and a mixture of ethylene
and propylene oxides, containing a mixed chain of ethylene oxide and propylene oxide,
terminated by a hydroxyl group. Examples include the nonionics such as a C₁₃₋C₁₅ fatty
alcohol condensed with 6 moles ethylene oxide and 3 moles propylene oxide, etc.
[0031] Generally, the mixed ethylene oxide-propylene oxide fatty alcohol condensation products
represented by the general formula
RO(C₃H₆O)p(C₂H₄O)qH
,
wherein R is a hydrocarbyl group, such as straight or branched, primary or secondary
aliphatic hydrocarbon, preferably alkyl or alkenyl, especially preferably alkyl, of
from 8 to 20, preferably 10 to 18, especially preferably 12 to 18 carbon atoms, p
is a number of from 2 to 8 on average, preferably 3 to 6, and q is a number of from
2 to 12 on average, preferably 4 to 10, can be advantageously used where low foaming
characteristics are desired. In addition, these surfactants have the advantage of
low gelling temperatures. Mixtures of two or more of the mixed ethylene oxide-propylene
oxide fatty alcohol condensation product can be used as can mixtures of the mixed
ethylene oxide-propylene oxide condensation products with any of the above alkoxylated
nonionics, or mixtures of the ethoxylated nonionics can also be used.
[0032] Ampholytic detergents are also suitable for the invention. Ampholytic detergents
are well known in the art and many operable detergents of this class are disclosed
by A. M. Schwartz, J. W. Perry and J. Berch in "Surface Active Agents and Detergents,"
Interscience Publishers, New York, 1958, Vol. 2. Examples of suitable amphoteric detergents
include: alkyl betaiminadipropionates, RN(C₂H₄COOM)₂; alkyl beta-amino-propionates,
RN(H)C₂H₄COOM; and long chain imidazole derivatives having the general formula:

wherein in each of the above formulae, R is a hydrophobic hydrocarbyl group, preferably
an aliphatic group, containing from about 8 to 20 carbon atoms, especially 10 to 18
carbon atoms, and M is a cation, e.g. alkali metal, ammonium salt, amine, alkanol
amine, etc., to neutralize the charge of the onion. Specific operable amphoteric detergents
include, for example, the disodium salt of undecylcycloimidiniumethoxyethionic acid-2-ethionic
acid, dodecyl beta alanine, and the inner salt of 2-trimethylamino lauric acid.
[0033] An especially preferred class of amphoteric surfactants are the glycinate derivatives
of the formula:

wherein R is a hydrocarbyl group, preferably aliphatic, of 8 to 20 carbon atoms, R¹
is hydrogen or alkyl of 1 to 6 carbon atoms, preferably hydrogen, R² is alkylene of
1 to 6 carbon atoms, preferably methylene, T is hydrogen or W, preferably W, W is
R²COOM, M is hydrogen, alkali metal, alkaline earth metal, ammonium or substituted
ammonium, such as lower alkanolamine, e.g., triethanolamine, x is 2 to 3 and y is
2 to 4. A preferred amphoteric surfactant is of the formula

wherein R is an aliphatic hydrocarbyl, preferably fatty alkyl or fatty alkylene, of
16 6o 18 carbon atoms, M is alkali metal, and y is 3 to 4. More preferably R is tallowalkyl
(which is a mixture of stearyl, palmityl and oleyl in the proportions in which they
occur in tallow), M is sodium and y is about 3.5, representing a mixture of about
equal parts of the amphoteric surfactant wherein y is 3 and such amphoteric surfactant
wherein y is 4. Among the more preferred amphoteric surfactants of this type is that
available commercially under the trade name Ampholak™ 7TX, which is obtainable from
Kenobel AB, a unit of Nobel Industries, Sweden.
[0034] The amount of the detergent active compound(s) will generally range from about 5%
to about 75%, more usually from about 5% to about 30%, especially from about 8% to
about 15%, by weight of the composition. The preferred anionic surfactant is usually
present in amounts of from about 1 to 25%, preferably from about 2 to 20%, especially
preferably from about 3 to 15% by weight of the composition.
[0035] The nonionic surfactant, when present, is usually contained in amounts of from about
0.5 to 10%, preferably from about 1 to 8%, by weight and the amphoteric, when present,
may comprise from about 0.3 to 15%, preferably 1 to 10%, especially preferably from
about 2 to 8% by weight, based on the total composition.
II. Detergent Builder
[0036] While any of the conventional inorganic or organic water-soluble or water dispersible
detergency builders can be used in the compositions of this invention, the primary
and essential builders are the water-insoluble aluminosilicate zeolites such as zeolite
A, usually in the form of its crystalline hydrate although amorphous zeolites may
also be useful.
[0037] The zeolites which may be employed in practicing the present invention include the
crystalline, amorphous and mixed crystalline-amorphous zeolites of both natural and
synthetic origins which are of satisfactorily quick and sufficiently effective activities
in counteracting hardness ions, such as calcium ions, in wash waters. Preferably,
such materials are capable of reacting sufficiently rapidly with hardness cations,
such as calcium, magnesium, iron and the like or any one of them, to soften wash water
before adverse reactions of such hardness ions with other components of the synthetic
organic detergent composition occur. The zeolites employed may be characterized as
having a high exchange capacity for calcium ion, which is normally from about 200
to 400 or more milligram equivalents of calcium carbonate hardness per gram of the
aluminosilicate, preferably 250 to 350 mg. eq./g. and a hardness depletion rate residual
hardness of 0.02 to 0.05 mg. CaCO₃/liter in one minute, preferably 0.02 to 0.03 mg./l.,
and less than 0.01 mg./l. in 10 minutes, all on an anhydrous zeolite basis.
[0038] Although other ion exchanging zeolites may also be utilized normally the finely divided
synthetic zeolite builder particles employed in the practice of this invention will
be of the formula
(Na₂O)
x(Al₂O₃)
y(SiO₂)
z·wH₂O
wherein x is 1, y is from 0.8 to 1.2, preferably about 1, z is from 1.5 to 3.5, preferably
2 to 3 or about 2 and w is from 0 to 9, preferably 2.5 to 6.
[0039] The water soluble crystalline aluminosilicates used are often characterized by having
a network of substantially uniformly sized pores in the range of about 3 to 10 Angstroms,
often being about 4 A (normal), such size being uniquely determined by the unit structure
of the zeolite crystal. Of course, zeolites containing two or more such networks of
different pore sizes can also be satisfactorily employed, as can mixtures of such
crystalline materials with each other and with amorphous materials, etc.
[0040] The zeolite should be a univalent cation-exchanging zeolite, i.e., it should be an
aluminosilicate of an univalent cation such as sodium, potassium, lithium (when practicable)
or other alkali metal, ammonium or hydrogen. Preferably the univalent cation of the
zeolite molecular sieve is an alkali metal cation, especially sodium or potassium
and most preferably, is sodium, but various other types are also useful.
[0041] Crystalline types of zeolites utilizable as good ion exchangers in the invention,
at least in part, include zeolites of the following crystal structure groups: A, X,
Y, L, mordenite and erionite, of which types A, X and Y are preferred. Mixtures of
such molecular sieve zeolites can also be useful, especially when type A zeolite is
present. These crystalline types of zeolites are well known in the art and are more
particularly described in the text Zeolite Molecular Sieves by Donald W. Beck, published
in 1974 by John Wiley & Sons. Typical commercially available zeolites of the aforementioned
structural types are listed in Table 9.6 at pages 747-749 of the Breck text, which
table is incorporated herein by reference.
[0042] Preferably, the zeolite used in the invention is synthetic and it is also preferable
that it be type A or similar structure, particularly described at page 133 of the
aforementioned text. Good results have been obtained when a Type 4A molecular sieve
zeolite is employed, wherein the univalent cation of the zeolite is sodium and the
pore size of the zeolite is about 4 Angstroms. Such zeolite molecular sieves are described
in U.S Pat. No. 2,882,243, which refers to them as Zeolite A.
[0043] Molecular sieve zeolites can be prepared in either a dehydrated or calcined form
which contains from about 0 or about 1.5% to about 3% of moisture or in a hydrated
or water loaded form which contains additional bound water in an amount from about
4% up to about 36% of the zeolite total weight, depending on the type of zeolite used.
The water-containing hydrated form of the molecular sieve zeolite (preferably about
15 to 70% hydrated) is preferred in the practice of this invention when such crystalline
product is used. The manufacture of such crystals is well known in the art. For example,
in the preparation of Zeolite A, referred to above, the hydrated zeolite crystals
that are formed in the crystallization medium (such as a hydrous amorphous sodium
aluminosilicate gel) are used without the high temperature dehydration (calcining
to 3% or less water content) that is normally practiced in preparing such crystals
for use as catalysts, e.g., cracking catalysts. The crystalline zeolite, in either
completely hydrated or partially hydrated form, can be recovered by filtering off
the crystals from the crystallization medium and drying them in air at ambient temperature
so that their water contents are in the range of about 5 to 30% moisture, preferably
about 10 to 25%, such as 17 to 22%. However, the moisture content of the molecular
sieve zeolite being employed may be much lower, as was previously described.
[0044] The zeolites used in this invention should usually also be substantially free of
absorbed gases, such as carbon dioxide, since such gas-containing zeolites can produce
undesirable foaming when the zeolite-containing detergent is contacted with water;
however, sometimes the foaming is tolerated and it may sometimes be desirable.
[0045] Preferably, the zeolite should be in a finely divided state with the ultimate particle
diameters being up to 20 microns, e.g., 0.005 or 0.01 to 20 microns, preferably being
from 0.01 to 15 microns and especially preferably of 0.01 to 8 microns mean particle
size, e.g., 3 to 7 or 12 microns, if crystalline, and 0.01 to 0.1 microns, e.g., 0.01
to 0.05 micron, if amorphous. Although the ultimate particle sizes are much lower,
usually the zeolite particles will be of sizes within the range of 100 to 400 mesh,
preferably 140 to 325 mesh. Zeolites of smaller sizes will often become objectionably
dusty and those of larger sizes may not sufficiently and satisfactorily suspended.
Also, in some cases particular grades of zeolite may form higher viscosity products
and/or impact on product stability. Although the reason for this behavior has not
been fully ascertained it is believed to be due, in part, to such factors as the zeolite
zeta potential, particle size, silica/alumina ratio (particularly at the particle
surface), process production conditions (e.g., type of mixing, shear, etc.) and formula
pH. In such case, viscosity modifiers, and/or stabilizers may be used or another type
of zeolite can be selected within the parameters described above to provide the desired
product viscosity and stability (e.g., phase change; viscosity change).
[0046] Although the crystalline synthetic zeolites are more common and better known, amorphous
zeolites may also be used, as may mixed crystalline-amorphous materials and mixtures
of the various types of zeolites described. The particle sizes and pore sizes of such
materials may be like those previously described but variations from the indicated
ranges may be made, as described, providing that the materials function satisfactorily
as builders and do not objectionably overwhiten dyed materials with which they are
treated in aqueous media.
[0047] Although it is preferred that the composition of this invention are free of phosphates,
in view of the concern for the environmental impact attributed to phosphates and other
phosphorus containing compounds, nevertheless, where use of phosphorous containing
builders is not prohibited or not an environmental problem, small amounts (e.g., up
to about 5%) of phosphate builders, as well as other of the inorganic or organic builders
may also be used in place of part are all of the zeolite builder. In fact, in a preferred
embodiment of the invention a polyphosphonate or amino polyphosphonate builder or
sequestering agent, as described in further detail below is included in relatively
small amount in the invention compositions. Accordingly, unless the context indicates
otherwise, reference to the invention compositions as phosphate-free should be construed
as referring to absence of convention phosphate and polyphosphate type builders such
as sodium tripolyphosphate, etc. while allowing the presence of phosphonate type compounds.
[0048] Among the inorganic builders, the alkali metal polyphosphates and alkali metal carbonates
or bicarbonates are preferred. Sodium tripolyphosphate is especially preferred but
other phosphate builders, such as tetrasodium pyrophosphate, tetrapotassium pyrophosphate,
sodium metaphosphate, and the like, can also be used. Mixtures of sodium tripolyphosphate
and sodium carbonate, as disclosed in U.S. Patent 4,842,769, incorporated herein by
reference, may also be useful.
[0049] Suitable builders of the organic type include, for example, polycarboxylate builders,
such as aminopolycarboxylates
, for example, sodium and potassium ethylene-diamine tetraacetate; sodium and potassium
nitrotriacetate; and the polyacetal polycarboxylates, such as those described, for
example, in U.S. Patents 4,144,226 and 4,315,092. Other organic builders of the polycarboxylate
type include the water-soluble salts, especially sodium and potassium salts, of mellitic
acid, citric acid, pyromellitic acid, benzene polycarboxylic acids, carboxymethyloxy
succinic acid, cis-cyclohexane hexacarboxylic acid, and the like. Citric acid salt,
e.g. sodium citrate, is often a preferred builder in non-phosphate or low phosphate
formulations, and may also be used in this capacity in the detergent-enzyme compositions
of this invention, in addition to any citrate which may be used in the enzyme stabilizing
system of this invention.
[0050] Polyphosphonate salts represent another useful class of detergency builders, for
example, sodium and potassium salts of ethylene diphosphonic acid, ethane-1-hydrosy-1,
1-diphosphonic acid, and ethane-1,1,2-triphosphonic acid.
[0051] Aminopolyphosphonate compounds are also useful builders and may also be advantageously
used as sequestrants. Suitable examples include soluble salts, e.g. sodium or potassium
salts, of diethylene triamine pentamethylene phosphonic acid, ethylene diamine tetramethylene
phosphonic acid, and hexamethylenediamine tetramethylene phosphonic acid. While the
completely neutralized salt forms are preferred, partially neutralized salts, or even
the free acid form of the aminopolyphosphonate may be used. These phosphonate compounds,
when used, will generally be present in relatively minor amount based on the zeolite
detergent builder, for example, less than 1% by weight of the composition such as
up to about 0.8%, e.g., from 0.05 to 0.5%, preferably 0.1 to 0.4 by weight of the
composition.
[0052] The total amount of detergent builder may range from about 5% to about 50%, especially
from about 5% to about 30%, more preferably from about 10 or 15 to 25%, by weight,
based on the total composition.
III. Polymeric Structurant
[0053] The present compositions incorporate a water soluble polymeric polycarboxylate or
derivative thereof, especially homopolymers and copolymers of acrylic acid and its
salts which function as structuring agents and viscosity stabilizers, and in some
cases can act to enhance cleaning performance under actual use conditions and may
also be useful as deflocculents. Such polymers include polyacrylic acid, polymethacrylic
acid, acrylic acid-methacrylic acid copolymers, (meth)acrylic acid/maleic anhydride
copolymers, hydrolyzed polyacrylamide, hydrolyzed polymethacrylamide, hydrolyzed acrylamide-methacrylamide
copolymers, hydrolyzed polyacrylonitrile, hydrolyzed polymethacrylonitrile, hydrolyzed
acrylonitrile-methacrylonitrile copolymers, or mixtures thereof. Water soluble salts
or partial salts of these polymers such as the respective alkali metal (e.g. sodium,
potassium) or ammonium salts can also be used. The weight average molecular weight
of the polymers is from about 500 to about 50,000 or more and is preferably within
the range of from 500 to 10,000 especially 800 to 5,000. Preferred polymers include
polyacrylic acid, the partial sodium salt of polyacrylic acid or sodium polyacrylate
having weight average molecular weights within the range of 500 to 25,000 or 30,000,
e.g., 500 to 8,000. These polymers are commercially available, and methods for their
preparation are well-known in the art.
[0054] For example, commercially-available polyacrylate solutions useful in the present
cleaning compositions include the sodium polyacrylate solution, Colloid® 207 (Colloids,
Inc., Newark, N.J.); the polyacrylic acid solution, Aquatreat® AR-602-A (Alco Chemical
Corp., Chattanooga, Tenn); the polyacrylic acid solutions (50-65% solids) and the
sodium polyacrylate powders (M.W. 2,100 and 6,000) and solutions (45% solids) available
as the Goodrite® K-700 series from B.F. Goodrich Co.; and the sodium- or partial sodium
salts of polyacrylic acid solutions (M.W. 1,000 to 45,000 available as the Acrysol®
series from Rohm and Haas, such as Acrysol LMW20N; Veriscol® E5, E7 and E9 ex Allied
Colloids, average molecular weights 3,500, 27,000 and 70,000 respectively; Narlex®
LD 30 and 34 ex National Adhesives and Resins Ltd., average molecular weights 14,000
and 72,000 respectively; and Sokalan® PA 50 and PA 110S ex BASF, average molecular
weights 30,000 and 250,000 respectively; acrylic acid/maleic anhydride copolymers,
for example, Sokalan (Trade Mark) CP5, CP7, and CP12 ex BASF, average molecular weights
70,000, 50,000 and 3000, respectively; acrylic phosphinates, for example, the DKW
range ex National Adhesives and Resins Ltd. or the Belsperse® range ex Ciba-Geigy
AG, as disclosed in EP 182 411A (Unilever).
[0055] The polymeric structurant/dispersant is present in the composition in a minor but
effective amount to contribute, together with the remaining components of the composition
a sufficient cohesiveness and body such that the solid particles, including zeolite
builder and clay softener are stably suspended in the aqueous media without flocculating
and without an increase in viscosity. Although the amount of the polymeric structurant
effective to prevent flocculation and maintain product pourability will vary depending
on the type and molecular weight of the polymer and the types and amounts of suspended
particles, surfactant(s) and other soluble components, generally good results will
be obtained with amounts of polymeric structurant in the range of from about 0.5 to
3% by weight, based on the total composition. More preferably, from about 0.5 to 3%,
more preferred, from about 0.8 to 2%, especially from about 0.8 to 1.5% of the polymeric
structurant/dispersing agent is present in the composition.
IV. Clay Softening Agent
[0056] A preferred fabric-softening agent is a smectite clay, such as sodium and calcium
montmorillonites, sodium saponites, and sodium hectorites. The sodium and calcium
bentonites which are colloidal clay containing montmorillonites, such as the swelling
bentonites wherein the predominant cation is sodium or calcium, are preferred. Furthermore,
the calcium clays often provide superior softening performance than the sodium clays.
[0057] The swelling capacity of bentonite is generally associated with its fabric softening
properties. In water the swelling capacity of sodium bentonite is in the range of
3 to 20 milliliters/gram, preferably 7 to 15 ml/gram, and its viscosity, at 6% concentration
in water, is usually in the range of 3 to 30 centipoises, preferably 8 to 30 centipoises.
[0058] Preferred swelling bentonites are solid under the trademark HI-JEL by Georgia Kaolin
Co. These materials are the same as bentonites which were formerly sold under the
trademarks MINERAL COLLOID and THIXO-JEL. They are selectively mined and beneficiated
bentonites, and those considered to be most useful are available as HI-JEL Nos. 1,
2, 3, etc., corresponding to THIXO-JEL's Nos. 1, 2, 3, and 4. Such materials have
a maximum free moisture content (before addition to the liquid medium) of 4% to 8%
and specific gravities of about 26. The bentonite is preferably one which will pass
through a 200 mesh U.S. Sieve Series sieve, and most preferably at least 90% of the
particles will pass through a No. 325 sieve, so that the equivalent diameter of the
bentonite may be considered to be less than 74 microns, and more preferably less then
about 44 microns.
[0059] Typical chemical analyses of some bentonites that are useful for making the present
liquid detergents show that they contain from 64.8 to 73.0% of SiO₂, 14 to 18% of
Al₂P₃, 1.6 to 2.7% of MgO, 1.3 to 3.1% of CaO, 2.3 to 3.4% of Fe₂O₃, 0.8 to 2.8% of
Na₂O and 0.4 to 7.0% of K₂0.
[0060] Although the Western bentonites are preferred, it is also possible to utilize other
bentonites, such as those which may be made by treating Italian or similar bentonites
containing relatively small proportions of exchangeable monovalent metals (sodium
and potassium) with alkaline materials, such as sodium carbonate or calcium chloride,
to increase the cation exchange capacities of such products. It is considered that
the Na₂O content of the bentonite should be at least about 0.5%, preferably at least
1% and more preferably at least 2% so that the clay will be satisfactorily swelling,
with good softening and dispersing properties in aqueous suspension. Preferred swelling
bentonites of the types described about are sold under the trade names Laviosa and
Winkelmann, e.g. Laviosa AGB and Winkelmann G-13.
[0061] Other bentonites which are particularly useful in the present liquid detergent compositions
because of their white or very light color include American Colloid Company's Polarite
KB 325, a California bentonite, and Georgia Kaolin's GK 129, a Mexican bentonite.
[0062] When present, the amount of the clay softening agent will usually be within the range
of from about 0.5 to about 20% by weight, preferably from about 3 to 18% by weight,
more preferably from about 4 to 12% by weight, based on the total composition.
V. Other Optional Components
[0063] Other natural or synthetic thickening agents or viscosity modifiers may also be added
to the compositions. Such conventional thickening agents include, for example, methyl
cellulose, carboxymethylcellulose (CMC), starch, polyvinyl pyrrolidone (PVP), gelatin,
colloidal silica, natural or synthetic clays and the like. When present, such thickening
agents may be added in amount usually up to about 10,000 cps, preferably up to about
7,000 cps.
[0064] Other conventional materials may also be present in the liquid detergent compositions
of the invention, for example, soil-suspending agents, hydrotropes, corrosion inhibitors,
dyes, perfumes, silicates, optical brighteners, suds boosters, suds depressants, e.g.
silicone antifoaming agents, germicides, e.g. quaternary ammonium salts, preservatives,
e.g. quaternium 15, anti-tarnishing agents, opacifiers, fabric-softening agents, oxygen-liberating
bleaches such as sodium perborate or percarbonate with or without bleach precursors,
buffers and the like. Such other conventional materials may be used in the amounts
they are normally used generally up to about 5% by weight, more preferably up to about
3% by weight, although higher amounts which do not interfere with the stability of
the composition may be used, if desired.
[0065] An optional, but often preferred additive, in minor amounts, is a higher fatty acid,
which may be saturated or unsaturated, and may contain from about 10 to about 22 carbon
atoms, preferably from about 16 to 20 carbon atoms. Oleic acid is especially preferred
in amounts of from 0.1 to about 5%, preferably from about 0.5 to 2.5%, by weight of
the composition. However, when it is desired to incorporate an anionic soap surfactant,
the oleic acid or other higher fatty acid can be present in amounts up to about 20%,
preferably up to about 10% by weight of the composition.
[0066] These higher fatty acids function in the invention compositions as anti-foaming agents
and also function as soap surfactants in combination with the neutralizing cations,
e.g., sodium or potassium, in the composition. They may be used alone for this anti-foaming
function but are often used in combination with the polysiloxane (silicone) anti-foaming
agents. The silicone anti-foaming agents will generally be present in minor amounts
compared to the fatty acid. Suitable ratios (by weight) of the fatty acid anti-foaming
agent to silicone anti-foaming agent may range from about 100:1 to 1:10, Preferably
50:1 to 1:1, especially 30:1 to 2:1.
[0067] A highly preferred additive to the invention compositions is an enzyme which may
be, and generally is, used with an enzyme stabilization system.
[0068] The alkaline proteolytic enzymes suitable for the present compositions include the
various commercial liquid enzyme preparations which have been adapted for use in detergent
compositions. Enzyme preparations in powdered form are also useful although, as a
general rule, less convenient for incorporation into the built liquid detergent compositions.
Thus, suitable liquid enzyme preparations include "Alcalase," "Savinase,", and "Esperase"
, all trademarked products sold by Novo Industries, Copenhagen, Denmark, and "Maxatase,"
Maxacal," and "AZ-Protease" sold by Gist-Brocades, Delft, The Netherlands.
[0069] Among the suitable alpha-amylase liquid enzyme preparations are those sold by Novo
Industries and Gist-Brocades under the tradenames "Termamyl" and "Maxamyl," respectively.
[0070] "Esperase" is particularly preferred for the present compositions because of its
optimized activity at the higher pH values corresponding to the built detergent compositions.
[0071] Mixtures of proteolytic and amylase enzymes can and often are used to assist in removal
of different types of stains.
[0072] The proteolytic enzyme and/or amylase enzyme will normally be present in the compositions
in an effective amount in the range of from about 0.01% to about 5%, preferably from
about 0.5% to about 2%, by weight of the composition. For the proteolytic enzymes,
the suitable amounts will generally provide from about 0.005 to about 0.1, more preferably
from about 0.01 to about 0.07 Anson units per gram of composition, depending on the
use to which the composition will be applied. Generally, lower levels of amylase are
required.
[0073] Any of the known and conventional enzyme stabilizing compounds may be used in this
invention.
[0074] The preferred enzyme stabilizing system of the invention described in detail in our
prior copending application Serial No. 07/684,149, incorporated herein by reference,
and is a mixture of (i) a boron compound selected from among boric acid, boric oxide
and alkali metal borate, particularly sodium borate, especially sodium tetraborate,
e.g. boras (Na₂BrO₇10H₂O), (ii)an hydroxpolycarboxylic acid having from 4 to 8 carbon
atoms, preferably 4, 5 or 6 carbon atoms, two or three carboxyl (-COOH) groups and
1 to 4, preferably 2 or 3 hydroxyl (-OH) groups, and (iii) a water-soluble calcium
salt capable of providing calcium (Ca++) ions in aqueous media.
[0075] The boron compound (i) is boric acid or a compound capable of producing boric acid,
such as boric oxide or a salt, such as sodium borate. Borax is readily available and
is preferred.
[0076] The boric acid compound is used in an amount of from about 0.25% to about 10%, Preferably
from about 0.5% to about 8%, more preferably from about 1% to about 5%, such as 2%,
3% or 4%, by weight, of the total detergent composition.
[0077] Citric acid is the preferred hydroxypolycarboxylic acid, especially in view of its
ready availability and its contribution to improving the overall physical stability
of the composition, i.e., prevent phase separation. However, other hydroxycarboxylic
acids, such as malic acid, tartaric acid, isocitric acid, trihydroxyglutaric acid
and mucic acid, may also he used. Lactic acid, which has only 3 carbon atoms, will
also provide enzyme stabilization; however, replacing e.g. citric acid with an equal
weight of lactic may result in compositions which are less physically stable - i.e.
undergo phase separation.
[0078] The acid is usually incorporated into the composition as the free acid (or hydrated
free acid), but may also be added in the form of its salt, especially alkali metal
salt. In fact, it is thought that under the preferred alkaline pH conditions for the
detergent compositions, the hydroxypolycarboxylic acid will be present in its ionized
(salt) state.
[0079] The hydroxpolycarboxylic acid is used in an mount of from about 1% to about 3%, preferably
from about 1.2 to 2.6%, especially from about 1.5 to about 2.5% by weight of the total
detergent composition. However, when, e.g., citric acid is also used as a builder
it may be added in amounts up to about 20% by weight, preferably up to about 12% by
weight, of the composition
[0080] The level of calcium ion as component (iii) in the detergent composition is from
about 18 to about 50 millimoles, preferably from about 22 to about 36 millimoles,
per liter of the composition. Suitable water-soluble calcium salts which can be used
as a source of calcium ion include both inorganic and organic salts, such as calcium
chloride, calcium acetate and calcium formate. Calcium chloride is preferred. About
0.2% CaCl₂ corresponds to about 18 millimoles Ca++ per liter. A small amount of calcium
ion, generally from about 0.05 to about 0.4 millimole per liter, is often also present
due to calcium in the enzyme preparation or water, but any such naturally present
calcium ion will generally be insignificant to the added calcium ion.
[0081] While the above described three component stabilizing system is preferred, other
known enzyme stabilizers, such as those described in the background section of our
prior application Serial No. 07/684,149, incorporated herein by reference, may also
be used.
VI. Liquid Carrier
[0082] The liquid carrier for the liquid compositions of this invention is preferably water
alone but an aqueous carrier containing minor amounts of a lower alcohol, such as
ethanol or isopropanol, may also be used in some cases.
[0083] Generally, water levels may be up to about 70% by weight of the composition, for
example, from about 10 to about 70%, preferably from about 15% to 50%, by weight.
The water may be deionized, but usually tap water is sufficient.
[0084] The viscosity of the present liquid detergent is normally in the range of about 800
or 1000 to 10,000 centipoises, preferably 2,000-7,000 centipoises
, over a temperature range of from 0° to 35°C, but products of other suitable viscosities
may also be useful. At the viscosities mentioned, the liquid detergent is pourable,
stable, nonseparating and uniform. The pH of the liquid detergent suspension usually
in the range of 7 to 11.5, preferably 7 to 10.0, especially preferably 7.8 to 9.0,
appears to help to maintain product stability and pourability.
[0085] As necessary, pH modifiers, such as water soluble bases, e.g. caustic, KOH, amines,
or ammonia, or acids, preferably mineral acids, e.g. HCl, will be added to obtain
the desired pH level.
[0086] The amounts of the various active ingredients, within the ranges described above,
are selected to provide acceptable cleaning performance. For use in a conventional
automatic washing machine of the type customarily found in the United States dosage
levels will generally range from about ¼ cup to about 1½ cups. For European type machines
a usual dose per wash cycle is generally from about 100 to 200 ml, with 180 ml being
standard for a normal liquid detergent and 110 ml being standard for a concentrated
product.
[0087] A particularly preferred composition for a concentration product which will still
be stable, free-flowing and easily pourable, and will provide effective cleaning and
softening performance when used at a dosage level of about 110 milliliters is as follows,
(A) (1) from about 10 to 12% of anionic surface active C₈-C₁₂ alkyl sulfate ethoxylated
with from 2 to 5 moles ethylene oxide;
(A) (2) from about 2 to 4% of nonionic surface active C₁₀₋ C₁₄ fatty alcohol condensed
with from about 2 to 6 moles ethylene oxide;
(B) from about 18 to 26% of zeolite detergency builder;
(C) from about 0.8 to 1.5% of homo-or co-polymer of acrylic acid or salt thereof as
a polymeric structurant and viscosity stabilizer;
(D) from about 0.2 to 2% of protease, amylase, or mixed protease-amylase enzyme;
(E) an enzyme stabilizing effective amount of an enzyme stabilizing system;
(F) from about 2 to 6% of clay softening agent; and
(G) water and optionally perfume and ether adjuvants; wherein the total of (A) and
(B) is from 33 to 40% of the composition, and the total of (B) and (F) is from about
22 to 30% of the composition.
VII. Processing
[0088] Although the ingredients can often be added in any desired order usually the enzyme,
when present, will be the last added ingredient and will always follow the addition
of the enzyme stabilizing additives.
[0089] Conventional manufacturing methods may be employed to a large extent in the prosecution
of the described liquid detergent compositions. In one procedure, a portion of the
aqueous medium may be added to a mixing vessel and the surfactant components may be
mixed therewith in any suitable order, such as anionic, nonionic and amphoteric detergents,
followed by higher fatty acid and hydroxypolycarboxylic acid and neutralizing agent,
such as sodium hydroxide solution. Then zeolite and/or other builders may be added,
followed by polyacrylate, enzyme and boric acid and calcium ion source. Bentonite
may be pre-mixed with another portion of the water or may be added directly to the
composition, sometimes with additional water, after which the balance of the water,
brightener, dye and perfume may be admixed. When other components of the detergent
composition are also employed, they may be added to the mixer at appropriate times
and the various orders of addition may be modified to make them appropriate to the
types of products being made and to the types of equipment being used.
[0090] In an alternative procedure which has been found convenient, there is first formed
a premixture (premix) of the calcium compound with some or all of the surface active
compounds and with some or all of the hydroxypolycarboxylic acid. The premix is prepared
as a homogeneous aqueous mixture wherein the aqueous media (e.g. water) may be added
as such or as a carrier for one of the other ingredients in the premix. Anti-foaming
agent may be included in the premix or in the main batch or both. Thickening or viscosity
modifiers and clay softener are preferably added to the main mixing bath, the viscosity
modifiers generally being added at or near the beginning of the mixing sequence before
and after the premix.
[0091] A convenient order for addition of the ingredients is water, polymeric structurant,
thickener, if any, coloring agents and/or brighteners, borax and builder following
by the clay and premix and anti-foaming agent. Final pH adjustment is usually made
right before the enzyme component(s). The precise order of addition will depend on
the specific ingredients, type of mixing apparatus and desired characteristics in
the final product.
[0092] The following examples illustrate, but do not limit the invention. Unless otherwise
indicated, all parts and percentages are by weight and temperatures are in ·F.
Example 1
[0093] A pourable liquid heavy duty detergent composition is prepared by first thoroughly
mixing the following ingredients until each ingredient is completely dissolved or
uniformly dispersed.
Concentration Ingredient |
Amount Added (wt %) |
Citric Acid, hydrate |
2.0 |
CaCl₂ |
0.3 |
Borax |
3.0 |
Nonionic(2) |
3.5 |
Tallow Amphopolycarboxy-glycinate(4) (30%) |
6.0 |
AEOS(1) (28%) |
31.7 |
Sodium Polyacrylate |
1.0 |
Zeolite A |
15.0 |
Bentonite Clay |
11.0 |
Oleic Acid |
1.5 |
Silicone Antifoam (20%) |
0.75 |
NaOH (50%) |
2.0 |
Quaternium 15(3) |
0.1 |
Alcalase 2.5 LDX |
0.6 |
Water Plus Minors |
q.s.to 100% |
HCl |
to pH = 7.3 |
(1) Sodium alkyl polyethoxy sulfate wherein the alkyl is 12 to 15 carbon atoms and the
polyethoxy is 3 ethoxy groups. |
(2) C₁₃₋C₁₅ fatty alcohol condensed with 7 moles ethylene oxide and 4 moles propylene
oxide. |
(3) Dowicil 200 by Dow Chemical [cis-isomer of 1- (3-chloroalkyl)-3,5,7-triaza-1-azoniaadamantine
chloride] |
(4) Ampholak™ 7TK, from Kenobel AB |
Example 2
[0094] The following composition is prepared, as decribed above:
Ingredient |
Amount (as actives) weight percent) |
AEOS-3EO(70%) |
8.0 |
Nonionic(1) |
3.0 |
Zeolite A |
16.8 |
Sodium Polyacrylate |
1.0 |
Bentonite Clay |
10.0 |
Oleic Acid |
3.0 |
Dequest 2060(3) |
0.3 |
Durazym, 16.0 L (Novo)(2) |
0.3 |
Citric acid, anhydrous |
1.8 |
Calcium chloride, dihydrate |
0.4 |
Borax, granular |
3.0 |
Silicone Antifoam |
0.2 |
Water Plus Minors |
Balance to 100 |
(1)C₁₂₋C₁₄ fatty alcohol with 3 moles ethylene oxide |
(2) Protease enzyme |
(3) Diethylenetriamine pentamethylene phosphonic acid |
[0095] In the above formulation, the oleic acid and citric acid are neutralized with 1.60%
KOH. The resulting composition is an easily pourable stable heavy duty liquid laundry
detergent.
[0096] Similar results are obtained if in the above formulation a small amount of dodecylbenzene
sulfonate (LAS) anionic is used in place of a portion of the AEOS.3EO surfactant,
e.g., AEOS.3EO = 6%, LAS = 2%, nonionic = 3%.
Example 3
[0097] In order to demonstrate that the mechanism of stabilization of the built aqueous
laundry detergent compositions of this invention is independent of the electrical
conductivities and spherulite phase described in the aforementioned patent to Haslop
a series of experiments was carried out with two different formulations of surfactants
to determine whether or not the electrolyte levels in the subject compositions correspond
to the First Minimum Conductivity of the surfactants plus water components of the
composition.
[0098] The results of these experiments, as described below, lead to the conclusions that:
1. The electrolytes level used in the stable compositions of this invention does not
correspond to the First Minimum conductivity of the surfactants/water composition.
2. The First Minimum Conductivity of the surfactants composition does not correspond
to the drop of conductivity in the finished (final) product but to the rising (increasing)
part of the curve.
[0099] In carrying out these experiments only the citrate and chloride components are considered
as "Electrolytes". Borax is only sparingly soluble in water (i.e., is lower than that
of sulfate) and, therefore, is not considered to fall within Haslop's definition of
Electrolyte. Calcium chloride also fails to meet the Haslop definition of Electrolyte.
[0100] The following composition A is used in the first series of conductivity measurements:
COMPOSITION A |
|
Weight % |
AEOS.3EO (70%) |
5.8 |
Nonionic(1) |
2.7 |
LAS |
Varied |
Zeolite A |
15.8 |
Sodium Polyacrylate |
1.0 |
Bentonite Clay |
10.0 |
Dequest 2060S |
0.3 |
Oleic Acid |
2.2 |
Silicone Antifoam |
0.2 |
Enzymes |
0.5 |
Citric Acid Monohydrate |
2.0 |
Borax Granular |
3.0 |
Calcium Chloride |
0.4 |
KOH |
1.6 |
Water plus Minors |
Balance |
(1) C₁₂₋C₁₄ fatty alcohol with 3 moles ethylene oxide |
[0101] The results of the conductivity measurements for Composition A are shown in figures
1-5.
[0102] The composition of Example 2 was used in the second series of conductivity measurements.
The results are shown in Figure 6.
[0103] In each series of experiments the tests were carried out in two ways. The Electrolytes
(K citrate and chloride 2.5:0.5) are incorporated in:
1. Surfactants (AEOS,NI soap, and (for Composition A) LAS at various levels); and
2. The whole formulation excluding Electrolytes.
[0104] The First Conductivity Minimum is not clearly observed in the whole formulation (finished
product). A very small decrease of conductivity is observed at about 5% Electrolyte
in the whole formula of Composition A (Fig. 1) and Example 2 without LAS (Fig. 6).
At 3.3% LAS (Composition A) a First Conductivity Minimum is observed between 8 and
10% electrolytes (Fig. 5). In the "surfactants only" tests, the First Conductivity
Minimum for the composition without LAS is at about 20% electrolyte for composition
A (Fig. 1) and at 10% for Example 2 (Fig. 6). As the LAS content increases (see Figs.
2-4), the First Conductivity Minimum in the "surfactant only" tests is shifted to
about 6 to 7% Electrolytes.
[0105] Since only a total of about 3% of K citrate and sodium chloride are present in the
finished product as shown in these examples, it is evident that stabilization is not
a function of electrolyte level. Furthermore, microphotographs of the finished product
compositions of this invention do not show the existence of space-filling spherulites
which is a characteristic of the stabilized composition of Haslop.
Example 4
[0106] The composition of Example 2 was repeated except that the clay and polyacrylate,
or polyacrylate only, were omitted. The results are shown in the following Table 1.
[0107] In the absence of the polyacrylate and clay phase separation was observed by the
end of one week and increased with time. In the composition containing clay but not
polyacrylate there was no phase separation after 3 months, at temperatures ranging
from 4°C to 38°C, however, the viscosity of the composition increased from about 2400
cps to from about 15,000 to 20,000 cps.
[0108] It is presumed, on the basis of the foregoing observations, that in the present invention
stabilization is dependent on an interaction between the surfactant structure and
the polymeric dispersion of the high clay payload which in turn maintains the zeolite
builder in suspension.

[0109] For the complete formulation of Example 2 the degree of phase separation after ageing
for 3 months is as follows:
Temperature |
Phase separation (%) |
4°C |
4.8 |
R.T. |
2.3 |
43°C |
4.4 |
[0110] For the purpose of the present invention, compositions exhibiting phase separation
of less than about 5% over the temperature range of 4°C to 43°C are considered stable.
Example 5
[0111] The procedure of Example 2 was repeated but at a higher concentration of active ingredients,
thereby providing equivalent cleaning performance using a lower dosage of the formula,
as follows:
Ingredient |
Amount (as actives) (weight percent) |
AEOS-3EO(70%) |
11.20 |
Nonionic(1) |
3.80 |
Zeolite A |
23.00 |
Sodium Polyacrylate |
1.10 |
Bentonite Clay |
4.00 |
Oleic Acid |
3.00 |
Dequest 2060S(3) |
0.60 |
Durazym 16.0 L (Novo)(2) |
0.70 |
Citric acid, anhydrous |
2.00 |
Calcium chloride, dihydrate |
0.40 |
Borax, granular |
3.00 |
Silicone Antifoam |
0.50 |
Dowicil 75 |
0.10 |
Water plus minors |
Balance to 100 |
(1) C₁₂₋C₁₄ fatty alcohol with 3 moles ethylene oxide |
(2) Procease enzyme |
(3) Heptasodium salt of diethylene triamine pentamethylene phosphoric acid |
[0112] The pH of the formula is adjusted to 8 with alkali metal hydroxide. This formulation
contains about 56% of active ingredients. The resulting composition is an easily pourable
stable concentrated heavy duty liquid laundry detergent. This formulation is particularly
designed for use in European type washing machines at a dosage level of about 110
ml. whereas the composition of Example 2 requires a dosage level of about 180 ml.
to achieve equivalent cleaning performances.
[0113] It is noted that the amount of clay in this formula is already lower than the amount
of clay in the composition of Example 2. The clay reduction was necessary to maintain
a suitable product viscosity in view of the higher solids levels of the zeolite and
surfactants. However, while there is a reduction in softening performance relative
to Example 2, a softening level acceptable to the consumer is provided.
1. A stable, free-flowing, easily pourable aqueous liquid built fabric treating composition
comprising anionic surface active detergent, clay fabric softener, non-phosphate detergent
builder, and anti-flocculating, structurant polymeric dispersing agent,
wherein the anionic surfactant is present in amount to provide effective cleaning
performance and comprises at least about 50% by weight, based on the total surfactant
of a C8-C20 alkyl ethyoxy sulfate with from 1 to about 11 ethylene oxide groups per
mole of the alkyl sulfate, and
wherein the clay fabric softener, and non-phosphate detergent builder are present
in amounts of 0.5 to 20 weight percent and 5 to 30 weight percent respectively, said
composition having a solids content of at least 15% weight percent.
2. The composition of claim 1 wherein the non-phosphate detergent builder comprises a
zeolite.
3. The composition of claim 1 wherein the anti-flocculating, structurant polymeric dispersing
agent comprises a polyacrylic acid homopolymer or copolymer.
4. The composition of claim 1 which comprises
|
weight % |
C₈₋C₂₀ alkyl ethoxy sulfate |
3 to 30 |
Zeolite builder |
5 to 30 |
Polymeric dispersing agent |
0.5 to 3 |
Clay softener and, further comprising |
0.5 to 20 |
Enzyme |
0.01 to 5 |
wherein said zeolite builder comprises zeolite A, said enzyme is selected from
the group consisting of proteases, amylases, and mixtures thereof, and said polymeric
dispersing agent comprises a polymer or copolmer of acrylic acid or a salt thereof.
5. The composition of claim 4 which comprises (a) said anionic c₈ ₋ c₂₀ alkyl polyethoxy
sulfate and further comprising (b) a nonionic surface active detergent compound at
a ratio of anionic to nonionic surfactant of from about 1:4 to about 10:1, the total
amount of surfactant being in the range of from about 5 to 30% by weight.
6. The composition of claim 4 wherein said polymeric dispersing agent has a molecular
weight in the range of from about 500 to about 8,000.
7. The composition or claim 1 which has a viscosity in the range of from about 1,000
to 10,000 centipoise over a temperature range of from 0°C to 35°C.
8. The composition of claim 4 further comprising
an enzyme stabilization system comprising
(i) from about 0.25 to about 10%, by weight, of a boron compound selected from the
group consisting of boric acid, boric oxide, and alkali metal borates;
(ii) from about 1 to about 3%, by weight, of an hydroxypolycarboxylic acid selected
from the group consisting of aliphatic di- and tri-carboxylic acids with from 1 to
4 hydroxyl groups and with from 4 to 8 carbon atoms; and
(iii) a water soluble calcium salt in an amount sufficient to provide from about 18
to about 50 millimoles of calcium ion per liter of the composition.
9. The composition of claim 7 wherein the enzyme stabilization system comprises (i) borax,
(ii) citric acid and (iii) calcium chloride.
10. The composition of claim 8 wherein the enzyme stabilization system comprises from
about 0.5 to about 8% by weight (i), from about 1.5 to about 2.5% by weight (ii) and
(iii) in an amount sufficient to provide from about 22 to about 36 millimoles of calcium
ion per liter of the composition.
11. The composition of claim 5 wherein the anionic (a) is an alkyl polyethoxy sulfate
wherein the alkyl is from 10 to 18 carbon atoms and which includes from 3 to 11 ethoxy
groups, and wherein the nonionic (b) is an ethylene oxide fatty alcohol condensation
product or a mixed ethylene oxide-propylene oxide fatty alcohol condensation product
of the formula
RO(C₃H₆O)p(C₂H₄O)qH
wherein R is a straight on branched, primary or secondary aliphatic hydrocarbon, of
from 8 to 20 carbon atoms, p in a number of from 2 to 8 on average, and q is a number
of from 2 to 12 on average.
12. The composition of claim 1 which further comprises one or more additional adjuvants
selected from higher fatty acid of from about 10 to 22 carbon atoms, soil-suspending
agents, hydrotropes, corrosion inhibitors, dyes, perfumes, silicates, optical brighteners, perfume, antifoaming agents, germicides, fabric softening agents other than said
clay softener, pH modifiers and pH buffers.
13. A built aqueous liquid enzyme containing cleaning composition comprising
(A) from about 3 to about 30%, by weight, of surface active detergent compounds comprising
first C8 - C20 alkyl ethoxy (1 to 11 moles ethoxy) sulfate and least one of nonionic
and ampholytic detergent compounds;
(B) from about 5 to about 28%, by weight, of at least one zeolite detergency builder;
(C) from about 0.1 to 5%, by weight, of a homo- or co-polymer of acrylic acid or salt
thereof;
(D) from about 0.1 to about 3%, by weight, of a protease, amylase, or mixed protease-amylase
enzyme;
(E) an enzyme stabilization system containing
(i) from about 0.5 to about 8%, by weight, of boric acid, boric oxide or alkali metal
borate;
(ii) from about 1.5 to about 2.5%, by weight, of citric acid; and
(iii) a water-soluble calcium salt in an amount sufficient to provide from about 22
to about 36 millimoles of calcium ion per liter of the composition;
(F) from about 0.5 to about 20% by weight of a clay softening agent; and
(G) water, and optionally perfume and other adjuvants, wherein the total of (B) and
(F) is at least 15% by weight of the composition.
14. A concentrated stable, free-flowing, easily pourable aqueous liquid built fabric treating
composition capable of cleaning and softening soiled fabrics when used at a dosage
of about 110 milliliters, said composition comprising by weight of the total composition
(A) (1) from about 10 to 12% of anionic surface active C₈₋C₁₂ alkyl sulfate ethoxylated
with from 2 to 5 moles ethylene oxide;
(A) (2) from about 2 to 4% of nonionic surface active C₁₀₋ C₁₄ fatty alcohol condensed
with from about 2 to 6 moles ethylene oxide;
(B) from about 18 to 26% of zeolite detergency builder;
(C) from about 0.8 to 1.5% of homo-or co-polymer of acrylic acid or salt thereof as
a polymeric structurant and viscosity stabilizer;
(D) from about 0.2 to 2% of protease, amylase, or mixed protease-amylase enzyme;
(E) an enzyme stabilizing effective amount of an enzyme stabilizing system;
(F) from about 2 to 6% of clay softening agent; and
(G) water and optionally perfume and ether adjuvants; wherein the total of (A) and
(B) is from 33 to 40% of the composition, and the total of (B) and (F) is from about
22 to 30% of the composition.
15. A method of laundering stained or soiled fabrics comprising contacting the fabrics
with the liquid detergent composition of claim 1.