TECHNICAL FIELD
[0001] The invention relates to a builder system for use in detergent compositions. The
invention more particularly relates to a builder system that ensures faster removal
of Calcium ions from washing solutions while being less expensive than Phosphate and
Zeolite based building systems.
BACKGROUND AND RELATED ART
[0002] Soaps which are alkali metal salts of fatty acids have traditionally been used for
personal washing applications. Soaps have also been used for washing laundry. When
washing laundry with soaps, the efficiency of washing is lower when washed in hard
water. Hard water refers to water having high levels of dissolved Calcium and Magnesium
salts. The dissolved Calcium and Magnesium ions react very quickly with the alkali
metal cation (sodium or potassium) of the soap, leading to formation of Calcium soap
which is insoluble in water and therefore leading to poor detergency. With the advent
of synthetic detergents which are alkali metal salts of long chain acids of petroleum
origin, the same problem persists. Most popular synthetic detergents include linear
alkyl benzene sulphonates, alpha olefin sulphonates, and primary alkyl sulphates which
belong to the class of anionic surfactants. Surfactants of the non-ionic, cationic,
amphoteric and zwitterionic character are also known.
[0003] Cleaning performance of most synthetic surfactants are also affected by the washing
in hard water.
[0004] Compounds that react preferentially with the dissolved Calcium and Magnesium ions
present in hard water, thereby maintaining the desired high concentration of the detergent
in its active form, have been used in detergent compositions. Such compounds or mixture
of compounds are known as detergency builders. Commonly known detergency builders
are alkali metal carbonates, silicates, phosphates and structured compounds like Zeolites.
Alkali metal carbonates like Sodium Carbonate, commonly referred to as soda ash is
a very inexpensive and widely used builder in low cost detergent formulations. Premium
detergents use builders like phosphates and/or Zeolites since they have better building
properties but are more expensive. There has been continuous work to develop more
efficient and faster building systems using less expensive materials. Further, use
of phosphates in detergents, is believed by many to be responsible for the eutrophication
of rivers and other natural waters bodies. Thus a lot of effort has been made to develop
faster building systems using sodium carbonate as the main raw material.
[0005] EP0234818 (Unilever, 1987) discloses a detergent composition containing (i) a detergent active
system comprising a mixture of (a) an anionic non-soap detergent active; (b) a non-ionic
detergent active; and (c) soap; (ii) a watersoluble alkali metal carbonate; and (iii)
a water-insoluble particulate carbonate material which is a seed crystal for Calcium
carbonate; characterised in a specific combination of weight ratios of the various
detergent actives. The builder system in this publication is a mixture of soda and
Calcium carbonate. There have been many improvements to this technology and many products
launched which are improvements over this basic technology where combination of soda
and Calcium carbonate is used. The present inventors have determined that the best
building systems available presently using sodium carbonate as the basic builder still
do not provide the desired fast building and there is scope for improvement on this
technology which can be perceived by the consumers in the cleanliness of their washed
laundry or in terms of costs of the products. The present inventors have found that
use of the specific builder system disclosed in
EP0234818 along with a specific co-builder provides for very fast building never before achieved
with similar systems.
[0006] US7186677 (Henkel, 2007) describes a method for producing surfactant granules having good solubility and
varying bulk densities comprising (a) providing a mixture of anionic surfactant acids
and builder acids having a weight ratio of 1:100 to 1:20 of builder acid to surfactant
acid; and (b) contacting the mixture with at least one solid neutralising agent. The
builder acid is selected from citric, tartaric, succinic, malonic, adipic, maleic,
fumaric, oxalic, gluconic, nitrilotriacetic, aspartic, ethylenediaminetetracetic,
among many other acids wherein the builder acid has a particle size below 200 µm.
[0008] It is thus an object of the present invention to provide for a builder system for
a detergent composition that provides faster building as compared to at least some
of the prior art for similar systems.
[0009] It is another object of the present invention to provide for a builder system for
a detergent composition that provides for fast building while having a lower cost
as compared to at least some of the prior art systems.
SUMMARY OF THE INVENTION
[0010] The invention provides for a builder system for a detergent composition comprising:
- (i) a water soluble alkali metal carbonate;
- (ii) 5% to 50% by weight of the builder system, a seed for precipitating Calcium carbonate,
which is Calcium carbonate; and
- (iii) a co-builder which is a di-carboxylic acid or a salt thereof, wherein said co-builder
has an average particle size less than 150 microns.
[0011] It is preferred that the water solubility of the co-builder is more than 1 g/l at
25°C.
[0012] Particularly preferred di-carboxylic acids are oxalic, malonic and succinic acid.
DETAILED DESCRIPTION OF THE INVENTION
[0013] The invention relates to a builder system for a detergent composition. One component
of the builder system is a water soluble alkali metal carbonate. The alkali metal
is preferably sodium or potassium, sodium being preferred. Thus the most preferred
alkali metal carbonate is sodium carbonate. The alkali metal carbonate is preferably
present in an amount in the range of 10% to 90%, more preferably 25% to 90%, most
preferably 45% to 80% by weight of the builder system.
[0014] Another important element of the builder system of the invention is a seed for precipitating
Calcium carbonate. By "a seed for precipitating Calcium carbonate" is meant a compound
which has the ability to act as a seed for precipitation of Calcium carbonate in aqueous
media. The seed for precipitating Calcium carbonate is a substantially water insoluble
particulate material. This water insoluble particulate material may be present in
the builder system or generated insitu when the builder system is dispersed in water.
The more preferred aspect provides for the substantially water insoluble particulate
material to be present in the builder system. The substantially water insoluble particulate
material is Calcium carbonate. Calcium carbonate may be calcite, or aragonite; and
is more preferably Calcite. Calcite is preferably High Surface Area Calcite. Preferably
the Calcium carbonate seed has a surface area greater than 20 m
2/g, more preferably greater then 30 m
2/g, most preferably greater than 60 m
2/g. The seed for precipitating Calcium carbonate is present in an amount in the range
of 5% to 50%, more preferably from 10% to 40%, most preferably from 15% to 30% by
weight of the builder system.
[0015] The builder system of the invention comprises a co-builder which is a di-carboxylic
acid or a salt thereof. The co-builder preferably has water solubility of more than
1 g/l at 25°C. Preferred di-carboxylic acids are chosen from oxalic acid, malonic
acid or succinic acid, most preferred being oxalic acid. The preferred salts of the
di-carboxylic acid are alkali metal or ammonium salts, alkali metal salts being more
preferred. The co-builder is present in an amount in the range of 2% to 20%, more
preferably from 4% to 12% by weight of the builder system. The invention works best
when the co-builder is present as a powder i.e in a low particle size form. The average
particle size of the co-builder is less than 150 microns, more preferably less than
75 microns. Ideally, the co-builder is molecularly dispersed in the detergent composition
in which the builder system is present. This can be achieved by dissolving the co-builder
in water and spraying the solution onto the detergent composition or the builder system
and then drying to the desired moisture content.
[0016] The builder system of the invention provides for relatively fast building kinetics,
faster than prior art systems. The builder system ensures that the Ca
2+ ion concentration in input water reduces from about 200 ppm to less than, or about,
1.2 ppm, more preferably to less than, or about, 1.0 ppm, further more preferably
less than, or about, 0.5 ppm, optimally less than, or about, 0.3 ppm, in about 30
seconds. The builder system of the invention is preferably substantially free of phosphate
builders. Further, more preferably the builder system is substantially free of Zeolite
builders.
[0017] According to another aspect of the invention, there is provided a process to prepare
a builder system for a detergent composition comprising mixing powders of a water
soluble alkali metal carbonate, 5% to 50% by weight of the builder system a seed for
precipitating Calcium carbonate, which is Calcium carbonate; and a co-builder which
is a dicarboxylic acid or a salt thereof.
[0018] In the above process, the powders of the co-builder have an average particle size
less than 150 microns, more preferably less than 75 microns.
[0019] In a preferred aspect, the process of the invention comprises:
- (i) dissolving dicarboxylic acid or salts thereof in water to form a solution;
- (ii) dry mixing powders of a water soluble alkali metal carbonate with 5% to 50% by
weight of the builder system a seed for precipitating Calcium carbonate, which is
Calcium carbonate to form a powder mix; and
- (iii) mixing said solution from step (i) with the powder mix of step (ii).
[0020] The solution is preferably sprayed onto the powder mix during the mixing step (iii).
[0021] According to another aspect of the present invention, there is provided a detergent
composition comprising (i) the builder system according to the invention and (ii)
a surfactant selected from any one of the anionic, non-ionic, cationic, zwitterionic
or amphoteric class. The builder system of the invention may be present in an amount
in the range of 5% to 80%, more preferably 15% to 60%, most preferably 25% to 50%
by weight of the detergent composition. Suitable surfactants are compounds commonly
used as surface-active agents given in the well-known textbooks "Surface Active Agents",
Volume I by Schwartz and Perry and "Surface Active Agents and Detergents", Volume
II by Schwartz, Perry and Berch.
[0022] According to another aspect of the present invention there is provided a process
to prepare a detergent composition comprising dry mixing powders of a surfactant selected
from any one of the anionic, non-ionic, cationic, zwitterionic or amphoteric class
with the powders of the builder system of the present invention.
[0023] According to yet another aspect of the present invention there is provided a process
to prepare a detergent composition comprising the steps of:
- (i) dissolving a dicarboxylic acid or salts thereof in water to form a solution;
- (ii) dry mixing powders of a surfactant selected from any one of the anionic, non-ionic,
cationic, zwitterionic or amphoteric class with a water soluble alkali metal carbonate
and 5% to 50% by weight of the builder system a seed for precipitating Calcium, which
is Calcium carbonate, to form a powder mix; and
- (iii)mixing said solution from step (i) with the powder mix of step (ii).
[0024] Preferably the process comprises a step of drying the detergent composition to moisture
content of less than 10%.
[0025] The invention will now be illustrated with the following non-limiting examples.
Examples
Comparative Examples A to F
[0026] These are examples as per prior art builder systems.
[0027] Various builder compositions were prepared and added to hard water containing 200
ppm Calcium ions at concentrations as shown in Table -1. Disodium oxalate, when used,
was added after crushing to powder to an average particle size of about 145 microns.
The building kinetics was studied by measuring the Ca
2+ ion concentration, at various time periods and the data is presented in Table -1.
The method of determining Ca
2+ concentration is given below:
Measurement of Calcium ion concentration
[0028] The method involved titration with EDTA (di sodium salt of Ethylene Diamine Tetra
Acetic acid) using EBT (Eriochrome Black - T) as indicator. About 2 ml of the Calcium
ion solution was pipetted out into a 150 ml conical flask. The solution was diluted
with about 10 ml water. To this was added 5 ml of Ammonia-Ammonium chloride pH 10
buffer. Further, about 35 mg of 1% EBT in potassium nitrate solution was added. A
wine red colour was obtained. A standardized EDTA solution was added dropwise from
a burette with constant stirring. As more EDTA was added the colour gradually changed
from wine red to violet. The end point was identified by a sudden colour change from
violet to blue. The Calcium ion concentration was calculated by using the formula:
Table - 1
| Comparative Example |
Sodium carbonate, g/l |
HSAC g/l |
Disodium Oxalate, g/l |
Time, s |
Concentration of Calcium ions, ppm |
| A |
1.5 |
0 |
0 |
60 |
10.4 |
| B |
1.5 |
0 |
0 |
300 |
1.8 |
| C |
1.5 |
0.5 |
0 |
60 |
4.7 |
| E |
1.5 |
0.5 |
0 |
120 |
1.2 |
| F |
1.5 |
0 |
0.4 |
30 |
3.6 |
| G |
1.5 |
0 |
0.4 |
60 |
1.7 |
| Note: HSAC means High Surface Area Calcite with surface area of (20-30) m2/g. |
[0029] The comparative examples of the prior art are able to bring the Ca
2+ ion concentration down from 200 ppm to a minimum of about 1.2 to 2 ppm and the time
required is about 1 to 2 minutes (Best being Comparative Examples E and G).
Examples 1 to 6
[0030] These are examples as per the invention having a combination of sodium carbonate,
HSAC and di sodium oxalate.
[0031] Various builder compositions were prepared and added to hard water containing 200
ppm Calcium ions at concentrations as shown in Table -2. In Examples 1 to 5, the builder
system was a dry mix of the sodium carbonate and High Surface Area Calcite (HSAC)
to which a solution of disodium oxalate in water was sprayed and mixed. In Example
6, the disodium oxalate granules were first crushed to a powder to an average particle
size of about 145 microns. The disodium oxalate powder was then dry mixed with the
sodium carbonate and HSAC. The building kinetics was studied by measuring the Ca
2+ ion concentration, at various time periods. The results are summarized in Table -2
Table - 2
| Example |
Sodium carbonate, g/l |
HSAC, g/l |
Disodium Oxalate, g/l |
Time, s |
Concentration of Calcium ions, ppm |
| 1 |
1.5 |
0.5 |
0.1 |
30 |
1.2 |
| 2 |
1.5 |
0.5 |
0.1 |
60 |
0.7 |
| 3 |
1.5 |
0.5 |
0.15 |
30 |
1.0 |
| 4 |
1.5 |
0.5 |
0.15 |
60 |
0.4 |
| 5 |
1.5 |
0.5 |
0.3 |
30 |
0.28 |
| 6 |
1.5 |
0.5 |
0.3 |
30 |
0.96 |
[0032] The data in Table-2 when compared to data in Table - 1 indicates that the builder
system of the invention provides for relatively faster building kinetics as compared
to builder systems of the prior art.
Comparative Example H and Examples 7 and 8:
[0033] These are examples pertaining to the performance of builder systems as per the invention
(Examples 7, 8) as compared to prior art building system (Comparative Example - H).
[0034] Various builder compositions were prepared and added to hard water containing 200
ppm Calcium ions at concentrations (in grams per litre or g/l) as shown in Table -3.
The building efficacy was studied by measuring the Ca
2+ ion concentration, 2 minutes after addition of the compositions and the data is presented
in Table -3. The method of determining Ca
2+ concentration is same as given earlier:
Table - 3
| Example |
Sodium carbonate, g/l |
HSAC, g/l |
Oxalic acid, g/l |
Concentration of Calcium ions, ppm |
| Comparative Example H |
1.5 |
0.5 |
0 |
1.2 |
| Example 7 |
1.5 |
0.5 |
0.3 |
0.4 |
| Example 8 |
1.5 |
0.5 |
0.42 |
0.28 |
| Note: Oxalic acid was used in the above experiments in a particle size of < 0.075 mm. |
[0035] The data in Table-3 indicates that inclusion of a dicarboxylic acid viz. Oxalic acid
in a Sodium Carbonate/Calcite building system provides for more efficient building
as compared to builder system of the prior art.
Comparative Examples I to N and Examples 9 to 11:
[0036] These examples relate to the cleaning performance of fabrics cleaned with detergent
compositions of the invention compared to commercial detergent products.
[0037] Detergent compositions were used to clean various test monitors as shown in Table
-4. WFK10D (composite soil on cotton fabric) had an initial reflectance of about 45,
WFK20D (composite soil on poly-cotton fabric) of about 40 and WFK30D (composite soil
on polyester fabric) of about 40. All detergent compositions had sodium linear alkyl
benzene sulphonate as the active surfactant at about 0.7 g/l in the wash liquor. The
builder systems of the various detergent compositions in the wash liquor were as follows:
SURF EXCEL™ : 1.02 g/l STPP + 0.89 g/l sodium carbonate + 0.07 g/l HSAC
RIN ADVANCED™ : 0.16 g/l STPP + 1.4 g/l sodium carbonate + 0. 3 g/l HSAC
Examples 9 to 11: 1.5 g/l sodium carbonate + 0.5 g/l HSAC+ 0. 4 g/l disodium oxalate.
STPP is sodium tri poly phosphate.
[0038] The cost of the compositions as per the invention (Examples 9 to 11) is comparable
to the RIN ADVANCED
™ composition and about 30% lower than the SURF EXCEL
™ composition. The water used for cleaning had hardness value of 48 FH. The protocol
used for cleaning is given below.
[0039] The experiments were carried out in a Tergo-to-meter. The various compositions were
dissolved in the tergo-o-meter pot for 10 minutes at 90 rpm speed. The test monitors
were soaked in the solution for 15 minutes followed by 30 minutes of wash cycle in
the pot at 90 rpm. The test monitors were then rinsed three times at a liquid to cloth
ratio of 25.
[0040] The test monitors were then dried. The reflectance of the monitors was then measured.
Average of reflectance data (ΔR 460) on three different monitors was taken.
[0041] The data on the reflectance is given in Table -4 below.
Table - 4
| Examples |
Product |
Test Monitor |
ΔR 460 |
| Comparative Example I |
SURF EXCEL™ |
WFK10D |
20.0 |
| Comparative Example J |
RIN ADVANCED™ |
WFK10D |
17.4 |
| Example 9 |
As per invention |
WFK10D |
19.6 |
| Comparative Example K |
SURF EXCEL™ |
WFK20D |
14.9 |
| Comparative Example L |
RIN ADVANCED™ |
WFK20D |
12.2 |
| Example 10 |
As per invention |
WFK20D |
17.8 |
| Comparative Example M |
SURF EXCEL™ |
WFK30D |
16.7 |
| Comparative Example N |
RIN ADVANCED™ |
WFK30D |
14.3 |
| Example 11 |
As per invention |
WFK30D |
19.2 |
[0042] The data in Table -4 indicates that detergent composition according to the invention
provides same or superior cleaning as compared to one of the best commercial detergent
product SURF EXCEL
™, but at lower cost. Further the detergent composition of the invention provides superior
cleaning for all test monitors as compared to RIN ADVANCED
™, at same cost.
1. A builder system for a detergent composition comprising:
(i) a water soluble alkali metal carbonate;
(ii) 5% to 50% by weight of the builder system, a seed for precipitating Calcium carbonate,
which is Calcium carbonate; and
(iii) a co-builder which is a di-carboxylic acid or a salt thereof, wherein said co-builder
has an average particle size less than 150 microns.
2. A builder system as claimed in claim 1 wherein said co-builder has water solubility
of more than 1 g/l at 25°C.
3. A builder system as claimed in any one of the preceding claims wherein said di-carboxylic
acid is selected from oxalic acid, malonic acid or succinic acid.
4. A builder system as claimed in any one of the preceding claims wherein said co-builder
is present in an amount in the range of 2 to 20 % by weight of the builder system.
5. A builder system as claimed in any one of the preceding claims wherein said alkali
metal carbonate is present in an amount in the range of 10 to 90 % by weight of the
builder system.
6. A process to prepare a builder system for a detergent composition comprising mixing
powders of a water soluble alkali metal carbonate, 5% to 50% by weight of the builder
system a seed for precipitating Calcium carbonate, which is Calcium carbonate; and
a co-builder which a dicarboxylic acid or a salt thereof, said co-builder having an
average particle size of less than 150 microns.
7. A process to prepare a builder system for a detergent composition as claimed in claim
6, comprising the steps of:
(i) dissolving dicarboxylic acid or salts thereof in water to form a solution;
(ii) dry mixing powders of a water soluble alkali metal carbonate with 5% to 50% by
weight of the builder system a seed for precipitating Calcium carbonate, which is
Calcium carbonate to form a powder mix; and
(iii) mixing said solution from step (i) with the powder mix of step (ii).
8. A detergent composition comprising:
(i) a builder system as claimed in any one of the preceding claims 1 to 5; and,
(ii) a surfactant selected from any one of the anionic, non-ionic, cationic, zwitterionic
or amphoteric class.
9. A detergent composition as claimed in claim 8 wherein said builder system is present
in an amount in the range of 5 to 80% by weight of the detergent composition.
10. A process to prepare a detergent composition comprising the step of dry mixing powders
of a surfactant selected from any one of the anionic, non-ionic, cationic, zwitterionic
or amphoteric class with the builder system as claimed in any one of the preceding
claim 1 to 5.
11. A process to prepare a detergent composition comprising the steps of:
(i) dissolving a dicarboxylic acid or salts thereof in water to form a solution said
acid or salts thereof having an average particle size of less than 150 microns;
(ii) dry mixing powders of a surfactant selected from any one of the anionic, non-ionic,
cationic, zwitterionic or amphoteric class with a water soluble alkali metal carbonate
and 5% to 50% by weight of the builder system a seed for precipitating Calcium, which
is Calcium carbonate, to form a powder mix; and
(iii)mixing said solution from step (i) with the powder mix of step (ii).
1. Builder-System für ein Waschmittel, umfassend:
(i) ein wasserlösliches Alkalimetallcarbonat;
(ii) 5 bis 50 Gewichts-%, bezogen auf das Builder-System, an Impfmaterial zum Präzipitieren
von Calciumcarbonat, das Calciumcarbonat ist, und
(iii) einen Co-Builder, der eine Dicarbonsäure oder ein Salz davon ist, wobei der
Co-Builder eine durchschnittliche Partikelgröße von weniger als 150 Mikrometer hat.
2. Builder-System, wie es in Anspruch 1 beansprucht ist, wobei der Co-Builder eine Wasserlöslichkeit
von mehr als 1 g/l bei 25 °C hat.
3. Builder-System, wie es in einem der vorangehenden Ansprüche beansprucht wird, wobei
die Dicarbonsäure aus Oxalsäure, Malonsäure und Bernsteinsäure ausgewählt ist.
4. Builder-System, wie es in einem der vorangehenden Ansprüche beansprucht wird, wobei
der Co-Builder in einer Menge im Bereich von 2 bis 20 Gewichts-%, bezogen auf das
Builder-System, vorliegt.
5. Builder-System, wie es in einem der vorangehenden Ansprüche beansprucht wird, wobei
das Alkalimetallcarbonat in einer Menge im Bereich von 10 bis 90 Gewichts-%, bezogen
auf das Builder-System, vorliegt.
6. Verfahren zur Herstellung eines Builder-Systems für ein Waschmittel, umfassend Mischen
von Pulvern eines wasserlöslichen Alkalimetallcarbonats, von 5 bis 50 Gewichts-%,
bezogen auf das Builder-System, Impfmaterial zum Präzipitieren von Calciumcarbonat,
welches Calciumcarbonat ist, und eines Co-Builders, der eine Dicarbonsäure oder ein
Salz davon ist, wobei der Co-Builder eine durchschnittliche Partikelgröße von weniger
als 150 Mikrometer hat.
7. Verfahren zur Herstellung eines Builder-Systems für ein Waschmittel, wie in Anspruch
6 beansprucht, umfassend die Schritte:
(i) Lösen von Dicarbonsäure oder Salzen davon in Wasser unter Bildung einer Lösung;
(ii) trockenes Mischen von Pulvern eines wasserlöslichen Alkalimetallcarbonats mit
5 bis 50 Gewichts-%, bezogen auf das Builder-System, eines Impfmaterials zum Präzipitieren
von Calciumcarbonat, welches Calciumcarbonat ist, unter Bildung einer Pulvermischung
und
(iii) Mischen der Lösung aus Schritt (i) mit der Pulvermischung von Schritt (ii).
8. Waschmittel, umfassend:
(i) ein Builder-System, wie es in einem der vorangehenden Ansprüche 1 bis 5 beansprucht
wird, und
(ii) ein Tensid, ausgewählt aus einer der anionischen, nicht-ionischen, kationischen,
zwitterionischen oder amphoteren Klassen.
9. Waschmittel, wie es in Anspruch 8 beansprucht wird, wobei das Builder-System in einer
Menge im Bereich von 5 bis 80 Gewichts-% des Waschmittels vorliegt.
10. Verfahren zur Herstellung eines Waschmittels, umfassend den Schritt des trockenen
Mischens von Pulvern eines Tensids, ausgewählt aus einer der anionischen, nicht-ionischen,
kationischen, zwitterionischen oder amphoteren Klassen, mit dem Builder-System, wie
es in einem der vorangehenden Ansprüche 1 bis 5 beansprucht wird.
11. Verfahren zur Herstellung eines Waschmittels, umfassend die Schritte:
(i) Lösen einer Dicarbonsäure oder von Salzen davon in Wasser unter Bildung einer
Lösung, wobei die Säure oder Salze derselben eine durchschnittliche Partikelgröße
von weniger als 150 Mikrometer haben;
(ii) trockenes Mischen von Pulvern eines Tensids, ausgewählt aus einer der anionischen,
nicht-ionischen, kationischen, zwitterionischen oder amphoteren Klassen, mit einem
wasserlöslichen Alkalimetallcarbonat und von 5 bis 50 Gewichts-%, bezogen auf das
Builder-System, Impfmaterial zum Präzipitieren von Calcium, welches Calciumcarbonat
ist, um eine Pulvermischung zu bilden, und
(iii) Mischen der Lösung aus Schritt (i) mit der Pulvermischung von Schritt (ii).
1. Système adjuvant de détergence destiné à une composition détergente, qui comprend
:
(i) un carbonate de métal alcalin soluble dans l'eau ;
(ii) de 5 % à 50 % en poids du système adjuvant de détergence d'un germe cristallin
destiné à précipiter le carbonate de calcium, qui est un carbonate de calcium ; et
(iii) un co-adjuvant qui est un acide dicarboxylique ou un sel de celui-ci, ledit
co-adjuvant ayant une taille moyenne de particules inférieure à 150 microns.
2. Système adjuvant de détergente selon la revendication 1, ledit co-adjuvant ayant une
solubilité dans l'eau supérieure à 1 g/L à 25 °C.
3. Système adjuvant de détergence selon l'une quelconque des revendications précédentes,
ledit acide dicarboxylique étant choisi parmi l'acide oxalique, l'acide malonique
ou l'acide succinique.
4. Système adjuvant de détergence selon l'une quelconque des revendications précédentes,
ledit co-adjuvant étant présent en une quantité dans la plage de 2 à 20 % en poids
du système adjuvant de détergence.
5. Système adjuvant de détergence selon l'une quelconque des revendications précédentes,
ledit carbonate de métal alcalin étant présent en une quantité variant de 10 à 90
en poids du système adjuvant de détergence.
6. Procédé de préparation d'un système adjuvant de détergence destiné à une composition
détergente qui comprend le mélange de poudres d'un carbonate de métal alcalin soluble,
de 5 % à 50 % en poids du système adjuvant de détergence d'un germe cristallin destiné
à précipiter le carbonate de calcium, qui est un carbonate de calcium ; et un co-adjuvant
qui est un acide dicarboxylique ou un sel de celui-ci, ledit co-adjuvant ayant une
taille moyenne de particules inférieure à 150 microns.
7. Procédé de préparation d'un système d'adjuvant de détergence destiné à une composition
détergente selon la revendication 6, qui comprend les étapes consistant à :
(i) dissoudre l'acide dicarboxylique ou les sels de celui-ci dans l'eau pour former
une solution ;
(ii) mélanger à sec les poudres d'un carbonate de métal alcalin soluble avec 5 % à
50 % en poids du système d'adjuvant de détergence d'un germe cristallin destiné à
précipiter le carbonate de calcium, qui est le carbonate de calcium, pour former une
mélange de poudres ; et
(iii) mélanger ladite solution de l'étape (i) avec le mélange de poudres de l'étape
(ici).
8. Composition détergente qui comprend :
(i) un système adjuvant de détergente selon l'une quelconque des revendications 1
à 5 précédentes ; et
(ii) un tensioactif choisi dans l'une quelconque des classes anionique, non ionique,
cationique, zwitterionique ou amphotère,
9. Composition détergente selon la revendication 6, ledit système adjuvant de détergence
étant présent en une quantité dans la plage de 5 à 80 % en poids de la composition
détergente.
10. Procédé de préparation d'une composition détergente qui comprend l'étape consistant
à mélanger à sec des poudres d'un tensioactif choisi dans l'une quelconque des classes
anionique, non ionique, cationique, zwitterionique ou amphotère avec le système adjuvant
de détergence selon l'une quelconque des revendications 1 à 5 précédentes.
11. Procédé de préparation d'une composition détergente qui comprend les étapes consistant
à :
(i) dissoudre un acide dicarboxylique ou des sels de celui-ci dans l'eau pour former
une solution, ledit acide ou lesdits sels de celui-ci ayant une taille moyenne de
particules inférieure à 150 microns ;
(ii) mélanger à sec des poudres d'un tensioactif choisi dans l'une quelconque des
classes anionique, non ironique, cationique, zwitterionique ou amphotère avec un carbonate
de métal alcalin soluble dans l'eau et de 5 % à 50 % en poids du système adjuvant
de détergente d'un germe cristallin destiné à précipiter le carbonate de calcium,
qui est du carbonate de calcium, pour former un mélange de poudres ; et
(iii) mélanger ladite solution de l'étape (i) avec le mélange de poudres de l'étape
(ii).