[0001] The present invention relates to a descaling formulation for application in WCs.
[0002] The descaling products for WCs that currently exist are products based on hydrochloric
acid and are almost always formulated with rheology modifying systems to ensure a
greater effectiveness on the vertical surfaces of the WC.
[0003] The flowing speed on the ceramic walls of the WC must in fact be reduced, thus increasing
the contact time of the product with the limestone and thus obtaining the removal
of a greater quantity of encrustation.
[0004] Traditional viscosifying systems are characterized by the presence of ethoxylated
fatty amines and ethoxylated amine oxides and have a strong tendency to yellow under
extreme pH conditions caused by the presence in the formulations of strong mineral
acids, such as hydrochloric acid. Furthermore, over time, these viscosifying agents
give the descaling formulation a dark yellow to reddish colour, and in order to remedy
this colouring and obtain a product having a more attractive colour for the consumer,
and above all a colour that does not change over time, blue or green dyes are added,
that are capable of masking the dark yellow/red colouring.
[0005] Also as a result of their viscosity, the resulting formulations however tend to leave
a very persistent colour on the glazed surface of bathroom fixtures. The complete
elimination of this product residue and therefore colour, requires various flushings
of wastewater with a consequent additional water consumption.
[0006] This has given rise to the need for a WC cleaning product, a descaler, which does
not leave coloured residues on the surface of the WC after use. On the one hand, in
fact, as mentioned above, it is essential to try to reduce the amount of water used
to a minimum, thus avoiding water flushings only for the elimination of colour residues:
this requirement is of primary importance within a global need for minimizing water
waste; the expression of discontent by the users of descaling products due to the
non-perfect removal of the product from the surface of the WC, with the consequent
formation of coloured spots that disappear only after several water flushings, has
led, on the other hand, to the search for a descaling formulation for WCs that does
not have the above-mentioned drawbacks.
[0007] The simplest solution for solving the problem of colour residues, i.e. eliminating
the dye from the formulation, is not feasible in fact, due to the poor aesthetic effect
of the mixture obtained: yellow is not a desirable colour for this category of products,
as it does not convey a sense of hygiene to the end user.
[0008] Another way of avoiding colour deposits on the walls of WCs is to use a white formulation
that is then camouflaged with the ceramic of the WC. A similar solution must, however,
take into account the inherent difficulty in covering a base tending to yellow: with
time, the white formulation in any case tends to turn from white to beige and even
to brown.
[0009] Furthermore, even if the end-user were to accept a colouring of the product that
changes over time towards yellow/beige, it would in any case be extremely difficult
to identify a pigmenting system capable of giving the formulation a white colour and
resisting pH values lower than 1.
[0010] The most common white pigment, titanium dioxide, is not capable of withstanding the
pH conditions of descaling products of WCs for long, and it dissolves completely in
a few days. The fate of all the other mineral fillers (gypsum, carbonates, silicates)
that can be used for the same purpose is similar.
[0011] The objective of the present invention is therefore to identify a descaling formulation
for WC applications which overcomes the drawbacks of the formulations of the state
of the art.
[0012] This and further objectives that will appear evident from the text of the present
patent application have been achieved by the descaling formulation for WCs according
to the present invention.
[0013] The present invention therefore relates to a descaling formulation for WCs characterized
in that it comprises or consists of:
- a) a viscosifying agent consisting of a cationic surfactant and an anionic surfactant
selected, respectively, from quaternary ammonium salts and salts of strong aromatic
organic acids;
- b) a pigmenting agent consisting of, or comprising a colloidal aqueous dispersion
of an inert organic polymer consisting of a styrene-acrylic copolymer, having an average
molecular weight ranging from 300,000 to 800,000 Daltons, preferably equal to 500,000
Daltons, and a concentration of solids ranging from 20 to 50% by weight, preferably
equal to 35% by weight; and
- c) a descaling agent selected from hydrochloric acid, phosphoric acid, sulfuric acid
or sulfamic acid, preferably hydrochloric acid.
[0014] More specifically, the quaternary ammonium salt can be selected from salts having
general formula (I)
R
1R
2R
3R
4N
+ Cl
- (I)
wherein R
1, R
2, R
3, R
4, the same as or different from each other, are alkyl or alkyl-aryl groups having
a number of carbon atoms ranging from 1 to 30.
[0015] The quaternary ammonium salt is preferably selected from tallow-trimethylammonium
chloride or hexadecyltrimethyl-ammonium chloride.
[0016] Tallow is a product of animal origin, consisting of a mixture of triglycerides of
C
14-C
18, saturated and unsaturated,
long-chain fatty acids.
[0017] The salt of a strong aromatic organic acid is preferably selected from sulfonates
having general formula (II)
R
1-Ar-SO
3Na (II)
wherein R
1 is an alkyl group having a number of carbon atoms ranging from 1 to 30 and Ar is
a phenyl group.
[0018] The salt of the strong aromatic organic acid is more preferably selected from dodecylbenzenesulfonic
acid sodium salt, 4-methylbenzenesulfonic acid sodium salt and relative mixtures.
[0019] The weight ratio of quaternary ammonium salts/salts of strong aromatic organic acids
ranges from 1,000:1 to 10:1, preferably from 5:1 to 4:1.
[0020] The viscosifying agent is present in the formulation according to the present invention
in a quantity ranging from 0.1 to 10% by weight: more specifically, the cationic surfactant
is present in a quantity ranging from 0.09 to 9% by weight and the anionic surfactant
in a quantity ranging from 0.01 to 1% by weight with respect to the total weight of
the descaling formulation.
[0021] The pigmenting agent is preferably a colloidal aqueous dispersion of an inert organic
polymer, namely a styrene-acrylic copolymer, obtained by the polymerization of styrene
and acrylic/methacrylic acid, having an average molecular weight ranging from 300,000
to 800,000 Daltons, preferably equal to 500,000 Daltons, and a concentration of solids
ranging from 20 to 50% by weight, preferably equal to 35% by weight. The molecular
weight is a number average molecular weight.
[0022] The pigmenting agent is present in the formulation according to the present invention
in a quantity ranging from 0.01 to 5% by weight with respect to the total weight of
the descaling formulation.
[0023] The descaling agent is selected from hydrochloric acid, phosphoric acid, sulfuric
acid or sulfamic acid; it is preferably hydrochloric acid, more preferably aqueous
hydrochloric acid at 33% by weight.
[0024] The descaling agent is present in the formulation according to the present invention
in a quantity ranging from 0.1 to 60% by weight, in the case of HCl at 33% by weight.
[0025] The formulation according to the present invention may optionally also comprise a
perfuming agent or fragrance in a quantity ranging from 0.01 to 1% by weight with
respect to the total weight of the descaling formulation.
[0026] The descaling formulation for WCs according to the present invention preferably comprises
or consists of
- a) a viscosifying agent consisting of tallow-trimethylammonium chloride or hexadecyltrimethyl-ammonium
chloride and a mixture of dodecylbenzenesulfonic acid sodium salt and 4-methyl-benzenesulfonic
acid sodium salt, in a weight ratio quaternary ammonium salt /mixture of sodium salts
ranging from 5:1 to 4:1;
- b) a pigmenting agent consisting of a colloidal aqueous dispersion of a styrene-acrylic
copolymer, having an average molecular weight of 500,000 Daltons and a concentration
of solids equal to 35% by weight; and
- c) a descaling agent which is aqueous hydrochloric acid at 33% by weight.
[0027] The descaling formulation for WCs according to the present invention more preferably
consists of:
- a) a viscosifying agent consisting of 1.5% by weight of tallow-trimethylammonium chloride
or hexadecyl-trimethylammonium chloride and 0.35% by weight of a mixture of dodecylbenzene
sulfonic acid sodium salt and 4- methyl-benzenesulfonic acid sodium salt;
- b) a pigmenting agent consisting of 0.6% by weight of a colloidal aqueous dispersion
of a styrene-acrylic copolymer, having an average molecular weight of 500,000 Daltons
and a concentration of solids equal to 35% by weight;
- c) 41% by weight of aqueous hydrochloric acid at 33% by weight, as descaling agent;
- d) 0.1% by weight of a fragrance,
the complement to 100 consisting of water.
[0028] The weight percentages always refer to the total weight of the descaling formulation
for WCs according to the present invention.
[0029] A further object of the present invention therefore relates to the use of the descaling
formulation according to the present invention for application on the surface of bathroom
fixtures, preferably for application on the surface of WCs, as a descaling agent and
detergent.
[0030] The technical difficulties previously indicated and typical of the formulations of
the state of the art or possible alternative solutions to the technical problem considered,
have very surprisingly been solved by the descaling formulation for WCs according
to the present invention characterized by the presence of a particular viscosifying
system with a high resistance to yellowing, combined with a pigmenting system resistant
to low pH values, all without jeopardizing the dissolution properties of the limestone
of a traditional descaling formulation, i.e. based on hydrochloric acid or, more generally,
on strong mineral acids.
[0031] The particular viscosifying system of the formulation according to the present invention
is based on the combination of a cationic surfactant such as a quaternary ammonium
salt and an anionic surfactant, deriving from a strong aromatic organic acid.
[0032] Quaternary ammonium salts are compounds known for their high chemical stability in
a very wide pH range: more specifically, the stability is particularly high in an
acid environment, whereas with extremely alkaline pHs degradation by Hofmann elimination
may occur. The chemical stability evidently also results in a lower tendency towards
yellowing, a phenomenon mainly caused by the presence of free amines.
[0033] The micelles that are formed in the presence of the cationic surfactant can be disturbed
by the addition of a suitable hydrotrope, with the formation of rod-like micellar
species and a simultaneous increase in the viscosity. It should in fact be borne in
mind that a descaling formulation for WCs must be characterized by specific viscosity
characteristics in order to be able to function and remove encrustations efficiently.
[0034] As the environment of the formulation is strongly acidic, a hydrotropic agent had
to be identified among the salts of very strong acids that could not be protonated
with the consequent formation of insoluble species.
[0035] Salts of carboxylic acids and organic phosphates were therefore excluded, whereas
sulfates, theoretically excellent candidates, showed a tendency towards hydrolysis
which made their use extremely non-recommendable.
[0036] Sulfonates, and in particular the sodium salt of dodecylbenzenesulfonic acid, surprisingly
proved to be particularly effective.
[0037] It is important however to operate with the dosages defined above, in order to avoid
the precipitation of species deriving from the formation of ionic pairs between oppositely
charged surfactants.
[0038] Although the viscosifying system according to the present invention reaches a lower
viscosity with respect to the traditional formulations based on ethoxylated amines,
it guarantees in any case a correct adhesion of the descaling formulation according
to the present invention to the walls of the WC and consequently an effective descaling
effect.
[0039] It has also been surprisingly found that the descaling formulation according to the
present invention can be characterized by a white pigmentation by the addition of
a colloidal dispersion of inert organic polymers. This dispersion proved to be surprisingly
stable even at a pH lower than 1.
[0040] More specifically, it is a colloidal aqueous dispersion of a styrene-acrylic copolymer
which can be assimilated according to the INCI nomenclature with a polystyrene, i.e.
having chemical properties similar to those of a polystyrene.
[0041] A fragrance can also be added to the aqueous mixture of hydrochloric acid, cationic
surfactant, anionic surfactant and polystyrene dispersion, with a slight drop in the
final viscosity.
[0042] The descaling formulation for WCs according to the present invention thus obtained
has no performance differences, expressed as the quantity of calcium carbonate removed,
with respect to traditional descaling products containing amines/ ethoxylated amine
oxides and dyes.
[0043] It has the undoubted advantage, however, of keeping its white colouring (as shown
in figures 1 and 2 discussed in the following examples) almost constant and not requiring
unnecessary water flushings to remove the colour residues from the walls of the WC
with a consequent significant water saving.
[0044] The following examples are provided for purely illustrative purposes.
[0045] In all the examples provided hereunder, the descaling formulation was prepared as
follows:
- a mixer was loaded with all the deionized water necessary for the process, at room
temperature;
- hydrochloric acid at 33% by weight was then added under stirring and under a suction
hood;
- the cationic surfactant was subsequently added, depending on the composition, stirring
until complete mixing;
- the anionic surfactant was then added in solid form, adding it slowly under stirring,
until complete dissolution;
- the solution of styrene-acrylic inert polymer was subsequently added, stirring until
a white homogeneous dispersion had been obtained;
- the fragrance was finally added, mixing for 15 minutes in order to obtain a complete
dispersion of the oil in the aqueous phase.
[0046] In the examples, nine gel tablets were tested, whose
qualitative and quantitative compositions are indicated in table 1 below.
Example 1
[0047] Base composition of the reference product of the state of the art, containing HCl,
amines and ethoxylated amine oxides:
| Composition in raw materials |
% (w/w) |
| Demineralized water |
57.00000 |
| Hydrochloric acid 33% |
41.00000 |
| Ethoxylated oleic amine Trade-name: Arlypon VPC, Basf |
1.50000 |
| Unsaturated ethoxylated C16-C18 and C18 alcohols, |
0.50000 |
| Trade-name: Arlypon VPC, Basf |
[0048] The product Arlypon VPC is a mixture of ethoxylated oleic amine and ethoxylated unsaturated
C
16-C
18 and C
18 alcohols, in a 3: 1 weight ratio.
Example 2
[0049] Base composition of the formulation according to the present invention containing
HCl, quaternary ammonium salts and sulfonates:
| Composition in raw materials |
%(w/w) |
| Demineralized water |
57.15000 |
| Hydrochloric acid 33% |
41.00000 |
| tallow-trimethylammonium chloride |
1.50000 |
| Mixture of dodecylbenzenrsulfonic sodium salt and 4-methyl-benzenesulfonic acid sodium
salt |
0.35000 |
| Trade-name: Marlon ARL, Sasol |
Example 3
[0050] Base composition of the formulation according to the present invention containing
HCl, quaternary ammonium salts and sulfonates:
| Composition in raw materials |
%(w/w) |
| Demineralized water |
57.15000 |
| Hydrochloric acid 33% |
41.00000 |
| hexadecyltrimethylammonium chloride |
1.50000 |
| Mixture of dodecylbenzenrsulfonic sodium salt and 4-methyl-benzenesulfonic acid sodium
salt |
0.35000 |
| Trade-name: Marlon ARL, Sasol |
Example 4
[0051] Final formulation according to the present invention with the base formulation of
Example 2:
| Composition in raw materials |
%(w/w) |
| Demineralized water |
56.45000 |
| Hydrochloric acid 33% |
41.00000 |
| tallow-trimethylammonium chloride |
1.50000 |
| Polystyrene dispersion |
0.60000 |
| Mixture of dodecylbenzenrsulfonic sodium salt and 4-methyl-benzenesulfonic acid sodium
salt |
0.35000 |
| Trade-name: Marlon ARL, Sasol |
| Fragrance |
0.10000 |
Example 5
[0052] Final formulation of the reference product of the state of the art, containing the
traditional base of Example 1:
| Composition in raw materials |
%(w/w) |
| Demineralized water |
56.89000 |
| Hydrochloric acid 33% |
41.00000 |
| Ethoxylated oleic amine Trade-name: Arlypon VPC, Basf |
1.50000 |
| Unsaturated ethoxylated C16-18 and C18alcohols, |
0.50000 |
| Trade-name: Arlypon VPC, Basf |
| Fragrance |
0.10000 |
| Dyes |
0.01000 |
Example 6
[0053] The physico-chemical characteristics of the products of the previous examples 1-5
are indicated in the Table 1 below:
Table 1
| Product |
Titre HCl (% w/w) |
Density (g/mL) |
Viscosity (cPs) |
| Example 1 |
14.6 |
1.067 |
80 |
| Example 2 |
14.7 |
1.064 |
46 |
| Example 3 |
14.2 |
1.068 |
53 |
| Example 4 |
13.7 |
1.061 |
37 |
| Example 5 |
13.7 |
1.067 |
78 |
[0054] The acid titre is determined by classical volumetric titration with a standard solution
of 0.1N NaOH and a phenolphthalein indicator.
[0055] The density is measured by means of a Mettler DA - 100 M microdensometer, injecting
the sample directly into the U-tube of the instrument, after calibration with demineralized
water.
[0056] The viscosity of the products is measured by a Ford cup with a 2 mm diameter hole,
completely filling the instrument with the fluid under examination and measuring the
time taken for its total emptying.
[0057] The following performance tests were then carried out comparing the final formulation
of Example 4 according to the present invention and the final formulation of Example
1 according to the state of the art.
Performance tests
[0058] The descaling power of a WC cleaner was evaluated with two performance tests suitable
for measuring how much CaCO
3 (limestone) is consumed over time.
Test 1: Marble cube test, which involves immersing a cube of white Carrara marble,
having a known weight and size, in the descaling liquid for certain times (5, 30 and
60 minutes). After careful rinsing and drying of the cube, its weight is measured
to determine the percentage of CaCO3 consumed by the product.
Test 2: Marble slab test, which involves immersing a slab of white Carrara marble,
having a known weight and size, in the descaling liquid for a time equal to 10 seconds;
the slab is then placed in a vertical position on a grid to allow the liquid to flow
along the surface of the marble for a period of 10 minutes. After careful rinsing
and drying of the slab, its weight is measured to determine the percentage of CaCO3 consumed by the product. For both tests, the highest percentage of CaCO3 removed corresponds to the best performance of the product.
[0059] The results of Test 1, performed on a marble cube, for the formulation of Example
4 in comparison with the formulation of Example 5, are indicated in Table 2:
Table 2
| Product |
Quantity of CaCO3 removed (%) |
| 5 minutes |
30 minutes |
60 minutes |
| Example 4 |
1.88 |
8.69 |
14.18 |
| Example 5 |
1.5 |
6.5 |
13.8 |
[0060] The results of Test 2, performed on a marble slab, for the formulation of Example
4 in comparison with the formulation of Example 5, are indicated in Table 3:
Table 3
| Product |
Quantity of CaCO3 removed (%) in 10 minutes |
| Example 4 |
0.245 |
| Example 5 |
0.204 |
[0061] From the data shown in Tables 2 and 3, a slight improvement or at least a substantial
performance identity between a descaling formulation according to the state of the
art and a descaling formulation according to the present invention is also evident.
Example 7
[0062] The colour stability over time was then tested with respect to the base formulation
according to the state of the art of Example 1 and the base formulation according
to the present invention of Example 2, and for the final descaling formulation of
Example 4 according to the present invention.
[0063] Figure 1 shows the two samples, the base formulation according to the state of the
art of Example 1 (on the left) and the base formulation according to the present invention
of Example 2 (on the right), stored at 40°C for three months: the different tendency
towards yellowing of the base is evident. The base formulation according to the state
of the art of Example 1 has a substantially brown colour, whereas the base formulation
according to the present invention of Example 2 is still completely transparent.
[0064] Figure 2 shows the descaling formulation according to the present invention of Example
4, stored at 5°C (left), 20°C (center) and 40°C (right) for three months: the colour
stability of the product is evident, which is white and remains white even after storage
for three months at 40°C.
1. A descaling formulation for WCs
characterized in that it comprises or consists of
a) a viscosifying agent consisting of a cationic surfactant and an anionic surfactant
selected, respectively, among quaternary ammonium salts and salts of strong aromatic
organic acids, the weight ratio of quaternary ammonium salts/salts of strong aromatic
organic acids preferably ranging from 1,000: 1 to 10:1, even more preferably from
5:1 to 4:1;
b) a pigmenting agent consisting of, or comprising a colloidal aqueous dispersion
of an inert organic polymer consisting of a styrene-acrylic copolymer, having an average
molecular weight ranging from 300,000 to 800,000 Daltons, preferably equal to 500,000
Daltons, and a concentration of solids ranging from 20 to 50% by weight, preferably
equal to 35% by weight; and
c) a descaling agent selected from hydrochloric acid, phosphoric acid, sulfuric acid
or sulfamic acid, preferably hydrochloric acid.
2. The formulation according to claim 1, wherein the quaternary ammonium salt can be
selected from salts having general formula (I)
R1R2R3R4N+ Cl- (I)
wherein R1, R2, R3, R4, the same as or different from each other, are alkyl or alkyl-aryl groups having
a number of carbon atoms ranging from 1 to 30, and is preferably selected from tallow-trimethylammonium
chloride or hexadecyltrimethylammonium chloride.
3. The formulation according to one or more of the previous claims, wherein the salt
of a strong aromatic organic acid is selected from sulfonates having general formula
(II)
R1-Ar-SO3Na (II)
wherein R1 is an alkyl group having a number of carbon atoms ranging from 1 to 30 and Ar is
a phenyl group, preferably selected from dodecylbenzenesulfonic acid sodium salt,
4-methylbenzenesulfonic acid sodium salt and relative mixtures.
4. The formulation according to one or more of the previous claims, wherein the viscosifying
agent a) is present in a quantity ranging from 0.1 to 10% by weight, the cationic
surfactant being present in a quantity ranging from 0.09 to 9% by weight and the anionic
surfactant in a quantity ranging from 0.01 to 1% by weight with respect to the total
weight of the descaling formulation.
5. The formulation according to one or more of the previous claims, wherein the pigmenting
agent is a colloidal aqueous dispersion of an inert organic polymer, namely a styrene-acrylic
copolymer, having an average molecular weight equal to 500,000 Daltons, and a concentration
of solids equal to 35% by weight, in a quantity ranging from 0.01 to 5% by weight
with respect to the total weight of the descaling formulation.
6. The formulation according to one or more of the previous claims, wherein the descaling
agent is selected from hydrochloric acid, phosphoric acid, sulfuric acid or sulfamic
acid, preferably hydrochloric acid, more preferably aqueous hydrochloric acid at 33%
by weight.
7. The formulation according to one or more of the previous claims, wherein the descaling
agent is aqueous hydrochloric acid at 33% by weight in a quantity ranging from 0.1
to 60% by weight.
8. The formulation according to one or more of the previous claims, further comprising
a perfuming agent or fragrance in a quantity ranging from 0.01 to 1% by weight with
respect to the total weight of the descaling formulation.
9. The formulation according to one or more of the previous claims, which comprises or
consists of
a) a viscosifying agent consisting of tallow-trimethylammonium chloride or hexadecyltrimethyl-ammonium
chloride and a mixture of dodecylbenzenesulfonic acid sodium salt and 4-methyl-benzenesulfonic
acid sodium salt, in a weight ratio quaternary ammonium salt/mixture of sodium salts
ranging from 5:1 to 4:1;
b) a pigmenting agent consisting of a colloidal aqueous dispersion of a styrene-acrylic
copolymer, having an average molecular weight of 500,000 Daltons and a concentration
of solids equal to 35% by weight; and
c) a descaling agent which is aqueous hydrochloric acid at 33% by weight .
10. The formulation according to one or more of the previous claims, which consists of
a) a viscosifying agent consisting of 1.5% by weight of tallow trimethylammonium chloride
or hexadecyl-trimethylammonium chloride and 0.35% by weight of a mixture of dodecylbenzene
sulfonic acid sodium salt and 4- methyl-benzenesulfonic acid sodium salt;
b) a pigmenting agent consisting of 0.6% by weight of a colloidal aqueous dispersion
of a styrene-acrylic copolymer, having an average molecular weight of 500,000 Daltons
and a concentration of solids equal to 35% by weight;
c) 41% by weight of aqueous hydrochloric acid at 33% by weight, as descaling agent;
d) 0.1% by weight of a fragrance,
the complement to 100 consisting of water.
11. Use of the descaling formulation according to one or more of the claims from 1 to
10, for application on the surface of bathroom fixtures, preferably for application
on the surface of WCs, as descaling agent and detergent.