Technical field
[0001] The present invention deals with textile printing pastes comprising as thickener
an enzimatically depolymerized polygalactomannan.
[0002] The fabrics printed with the textile printing pastes comprising an enzimatically
depolymerized polygalactomannan show a higher colour strength and an excellent colour
brightness, as demonstrated by an improved visual effect which is noticeable on the
final article.
Background Art
[0003] Textile printing pastes serve to transfer dyes onto the fabric in a controlled way
through a silk-screen, in order to have the correct formation of the desired pattern
and decoration.
[0004] The textile printing paste composition is critical and largely determines the quality
of the final article.
[0005] Printing pastes are prepared by solubilising a thickener in water and, successively,
by adding the dye and other possible chemical auxiliaries useful to the process (such
as pH regulators, antifoam agents, stabilisers and others) and have usually a solid
content comprised between 4 and 20% by weight.
[0006] Commonly used thickeners are mainly composed by one or more water soluble natural
or semisynthetic polymers of varying molecular weight, such as starch and its derivatives,
alginates, polysaccharides from tamarind kernels, cellulose derivatives, polygalactomannans
in general and polygalactomannans from guar seeds and their derivatives in particular.
[0007] The function of thickeners is to guarantee the viscosity to the paste in order to
allow a better control in the pattern reproduction and sufficient fluidity for an
easy passage through the silk-screen holes onto the fabric.
[0008] Depolymerized polygalactomannans are among the most used thickeners for printing
with acid dyes on fabrics made of fibres like wool, silk and polyamide.
[0009] The expert in the field acknowledges that depolymerized polygalactomannans possess
good characteristics in the typical printing process and can be promptly removed in
the final washing phase.
[0010] Commercially available depolymerized polygalactomannans are obtained by reducing
the molecular weight of natural polygalactomannans by chemical methods, such as using
acids or alkalis, or, mainly, through the use of oxidative agents, i.e., hydrogen
peroxide (as described for example in
JP 03-290196).
[0011] Physical methods (using high speed agitation or various radiation sources), biochemical
methods (wherein polysaccharide hydrolytic enzymes, bacteria, or fungi are used) and
thermal methods are also known to reduce the molecular weight of polygalactomannans,
but find limited applications on industrial scale.
[0012] For example,
JP 1-020063 reports how to treat guar gum with hydrochloric acid at 40-70 °C in the presence
of a cellulase or a pectinase to produce a hydrolyzed guar having Brookfield viscosity
from 150 to 20,000 mPa
*s at 5% by weight in water which can be used for food. It is doubtful whether the
depolymerisation is driven by the acidic medium or by the presence of a non specific
hydrolytic enzyme: indeed cellulase and pectinase are not able to break the 1-4 linkages
between two mannose units.
[0013] JP 61-274695 describes how to detach the galactose branches from a guar with an alpha-galactosidase
to make it suitable as dietary fiber or additive for dietary foods. The process taught
by
JP 61-274695 is not properly a depolymerisation, because the alpha-galactosidase acts on the lateral
branches of the polygalactomannan and does not break its mannose backbone.
[0014] Purely enzymatic methods (i.e. no acids or alkalis or oxidizing agents used in conjunction
with the enzyme) are described in the literature to furnish highly depolymerized polygalactomannan,
which are not suitable as thickener.
[0015] JP 63-269993 describes that hardly digestible polysaccharides originated from vegetables such
as guar gum are partially decomposed by a plant tissue hydrolytic enzyme having galactomannase
activity to obtain a partially decomposed product having a viscosity of ≤10 mPa
*s (measured by DVL-B type digital viscometer at 25 °C and 30 rpm and 1% aqueous solution)
used as a dietary fiber or added to various dietary foods.
[0016] WO 99/04027 teaches how to obtain highly depolymerized polygalactomannans, particularly for food
and pharmaceutical use (but also for oil field and personal care) by treating polygalactomannans
splits with enzymes. Any suitable lytic enzyme is said to be utilizable: for example
cellulase, hemicellulase, mannanase, galactomannanase, and even protease. Actually,
the exemplified depolymerized polygalactomannans are obtained by treatment with a
hemicellulase enzyme, have negligible viscosity in water and cannot be used as thickeners
for textile printing pastes.
[0017] WO 2005/080668 deals with a thickener for printing pastes based on polygalactomannans derivatives
and a protease, and with textile printing pastes containing said thickener. In this
application it is said that the addition of said protease, permits to obtain printing
pastes free from dotting caused by presence of proteins in the polygalactomannans.
No mention is made about the possibility of depolymerizing the polygalactomannans.
[0018] It has now been found that polygalactomannans which have been properly depolymerized
by enzymatic treatment may be used as thickeners in textile printing pastes and that,
surprisingly, they provide improved properties to the printing pastes in which they
are used.
[0019] In particular, it has been found that these printing pastes give improved colour
brightness to a printed substrate and a higher yield of the dyes, when compared with
those prepared using chemically depolymerized polygalactomannans.
[0020] The reason of this behaviour has not been deeply investigated, but possibly it may
be due to the different molecular weight distribution deriving from the two different
depolymerisation processes. Enzymatically depolymerized polygalactomannans show in
gel permeation chromatography (GPC) a broad molecular weight distribution, almost
bimodal, while chemically depolymerized polygalactomannans have a more narrow and
regular distribution of the molecular weights.
[0021] With the expression "reducing end" we mean the end of a polysaccharide with a reducing
anomeric carbon (C
1) that is not involved in a glycosidic bond. The content of reducing ends can be determined
with different analytical techniques, such as spectrophotometry, gas-chromatography
or
1H-NMR, and is expressed as µmoles of glucose per gram of polysaccharide.
Drawings
[0022] Figure 1 show a overlay chromatogram obtained by gel permeation chromatography of
an enzymatically depolymerized guar polygalactomannan (dotted line) and of a same
guar polygalactomannan depolymerized with a chemical agent (full line).
Summary of the invention
[0023] It is therefore an essential object of the present invention the use of enzymatically
depolymerized polygalactomannans having a content of reducing ends comprised between
150 and 450 µmoles/g, preferably between 200 and 350 µmoles/g, and Brookfield® viscosity
at 20°C and 20 rpm of about 20,000 mPa
*s at a concentration comprised between 2 and 12% by weight, preferably between 4 and
12% by weight, in water as thickeners for textile printing pastes.
[0024] Another object of the invention is a textile printing paste comprising as thickener
from 2.8 to 10%, preferably from 3.5 to 8%, by weight of an enzymatically depolymerized
polygalactomannan having a content of reducing ends comprised between 150 and 450
µmoles/g, preferably between 200 and 350 µmoles/g, and Brookfield® viscosity at 20°C
and 20 rpm of about 20,000 mPa
*s at a concentration comprised between 2 and 12% by weight, preferably between 4 and
12% by weight, in water.
Detailed description of the invention
[0025] The enzymatically depolymerized polygalactomannans of the invention may be obtained
by depolymerisation of polygalactomannans derived from various natural sources.
[0026] Preferably the polygalactomannan is guar, which is extracted from a leguminosae (
Cyamopsis tetragonoloba) cultivated mainly in the arid and pre-desertic area between India and Pakistan.
[0027] In one preferred embodiment the polygalactomannan is guar in the form of flour.
[0028] In another embodiment the polygalactomannan is guar in the form of splits. Commercially
available polygalactomannans different from guar may also be used to prepare the enzymatically
depolymerized polygalactomannans. Examples of suitable polygalactomannans are those
obtained from tara (tara gum), locust bean (locust bean gum), cassia (cassia gum),
sesbania bispinosa (sesbania gum or daincha gum) and fenugreek (fenugreek gum).
[0029] In order to obtain the depolymerized polygalactomannans that can be used as thickeners
for textile printing pastes, the polygalactomannan shall be treated with an endo-β-mannanase,
such as Mannaway 4.0L from Novozymes and Rohalase GMP from AB enzymes. The depolymerisation
reaction can be conducted, for example, by adding from 0.0001 to 20 part by weight
each 100 part by weight of polygalactomannan of the mentioned commercial mannanase
and stirring at a temperature comprised between 20 and 90 °C for from 1 to 24 hours.
[0030] Preferably, the polygalactomannan is treated with the enzyme in the presence of from
10 to 200 parts by weight of water each 100 parts by weight of polygalactomannan.
[0031] The enzymatic depolymerisation shall be carefully controlled to produce a depolymerized
polygalactomannan having a content of reducing ends comprised between 150 and 450
µmoles/g, and Brookfield® viscosity at 20°C and 20 rpm of about 20,000 mPa
*s at a concentration comprised between 2 and 12% by weight in water.
[0032] It is therefore necessary to inactivate the enzyme as soon as the depolymerized polygalactomannan
has reached the desired viscosity, by way of example introducing a prolonged heating
step, such as by heating for 1-5 hours at a temperature of 100 °C or higher, or by
adding chemical inactivator such as N-bromosuccinimide or transition metal ions, for
example Ag
+; Hg
2+, Zn
2+, Cu
2+.
[0033] The enzymatically depolymerized polygalactomannans of the invention are characterized
by the content of reducing ends per gram of polygalactomannan, in fact the enzymatically
depolymerized polygalactomannans show a higher number of reducing ends compared to
a chemically depolymerized polygalactomannan with the same viscosity.
[0034] The textile printing pastes used in the present invention can include at least a
dye. Dyes differ from pigment colorants in that they are used as liquid solutions,
not as solid particle dispersions. In other words, dyes are typically completely soluble
in water whereas pigment colorants are not. The enzymatically depolymerized polygalactomannan
of the invention is particularly useful for the preparation of printing pastes containing
acid dyes. According to a preferred embodiment, the textile printing pastes comprise
acid dyes. More preferably, the textile printing pastes contain from 0.1 to 10% by
weight of one or more acid dyes.
[0035] Examples of suitable acid dyes can be chosen among the group of anthraquinone type
dyes, such as Colour Index (Cl) Acid Blue 43 or Cl Acid Blue 129, the azo-dyes, such
as Cl Acid Red 88 or Cl Acid Red 114, and triphenylmethane dyes, such as Cl Acid Violet
17, Cl Acid Blue 15, Cl Acid Blue 7 and Cl Acid Green 3. Particularly preferred are
premetalized acid dyes, for example Cl Acid Blue 193 or Cl Acid black 194.
[0036] The textile printing paste according to the invention can further contain one or
more other polymer having thickening function, chosen among alginates, starch and
its derivatives, tamarind derivatives, synthetic polymers, cellulose derivatives,
polygalactomannan derivatives, such as hydroxypropyl polygalactomannan and carboxymethyl
polygalactomannan, preferably in a quantity not higher than 4% by weight.
[0037] The textile printing paste according to the invention can further comprise textile
printing additives familiar to the expert, such as wetting agents, emulsifiers, dispersing
agents; solubilizing agents; defoamers; reducing agents, oxidizing agents, resist
agents, pH regulators, complexing agents, preservatives; and mixture thereof.
[0038] Wetting agents, emulsifiers, dispersing agents can be anionic, cationic or nonionic
in a known manner. Examples of these are: reaction products of aliphatic, araliphatic
or aromatic hydroxy compounds, carboxylic acids, carboxylic acid amides or amines
with ethylene oxide; sulfuric acid half esters or phosphoric acid partial esters thereof;
fatty acid esters of mono- or polysaccharides or fatty acid sorbitan esters and ethoxylation
products thereof; C
10-C
20 -alkanesulfonates, C
8-C
12 alkylbenzenesulfonates; C
8-C
18 alkyl sulfates or phosphates; or condensed aromatic sulfonic acids, such as naphthalene-formaldehyde-sulfonates.
Substances of the type mentioned can also serve as leveling agents.
[0039] Solubilizing agents as further additives are, for example, glycols, mono- to tetraalkyleneglycols
and ethers or esters thereof with C
1-C
4 alcohols or C
1-C
4 carboxylic acids.
[0040] Defoamers are, for example, compositions comprising vegetable oils or mineral oils
or, in particular, propylene oxide/ethylene oxide block polymers. The textile printing
additives mentioned in the preceding paragraphs can be present in an amount of 0 to
10% by weight, based on the total weight of the pastes according to the invention.
[0041] The textile printing pastes of the invention can be prepared according to the usual
procedures, by slowly adding the thickener(s) to water, under mechanical stirring,
until complete dissolution is achieved, and by adding to the thickener solution the
additives (pH regulators, antifoam, and so on) and the dye, and finally by adding
water up to the desired concentration of active substances.
[0042] In the printing process of the invention, the textile materials are subjected to
printing using essentially any textile screening techniques known in the art. One
common technique is silk screen printing where the paste is applied to the surface
of the fabric by pressing the paste through screens. The screens are conventionally
made of silk, but any screen suitable for silk screen printing can be utilized, for
example in nylon or polyester. Rotary screen printing and flat (bed) screen printing
are examples of industrially applicable printing techniques. Inkjet printing for textile
material is also suitable for the realization of the invention.
[0043] Textile materials which can be printed using the pastes according to the invention
are fiber materials of loose fibers, woven or knitted goods or those in the form of
nonwovens, based on natural or synthetic fibers or mixtures thereof. Examples of natural
fibers are wool, silk, linen, as well as jute. Examples of synthetic fibers are polyamides,
polyacrylonitriles or polypropylenes.
Examples
Test methods
[0044] The viscosity of the solutions was measured 2 hours after the dissolution of the
depolymerized polygalactomannans with a DV-E Brookfield® viscometer at 20°C and at
20 rpm.
[0045] Gel permeation chromatography (GPC) was performed by dissolving the depolymerized
guar samples at a concentration of 0.3 g of sample in 100 ml of 0.10 M ammonium acetate
("mobile phase solution"). Two hundred microliters of each solution, filtered on a
0.45 micron membrane filter were injected into a HPLC equipped with a evaporative
light scattering detector detector. The following columns were used at a temperature
of 60 °C: Supelco Progel -TSK G3000 PWXL, Progel-TSK G6000 PWXL, and Progel-TSK PWXL
guard column. The HPLC was set at a flow rate of 0.8 ml/min for 50 minutes.
[0047] The strength of the colours of the printed fabrics was evaluated instrumentally using
a DataColor Int. reflectance spectrophotometer (Spectral Test SE600 PLUS-CT) under
a DL65/10° illuminant. The (K/S) values were calculated according to AATCC Evaluation
Procedure 6.
Examples 1-5
[0048] Enzymatically depolymerized polygalactomannan (Examples 1-3) were prepared by mixing
100 g of different guar flours with 0.5 g of Mannaway 4.0L (Novozymes) and 150 g of
water and heating at 60 °C. After 60 minutes the temperature was increased to 100
°C for other 60 min for the denaturation of the enzyme. The obtained product was dried
in a fluidized bed at 80 °C for 60 minutes and then milled into powder form. The final
moisture content of the powders was about 10-12% by weight.
[0049] For comparison a guar flour depolymerized with NaOH and hydrogen peroxide was used
(Example 4).
[0050] Table 1 reports the concentration (% by weight) in water at which the Brookfield®
viscosity is 20,000 mPa
*s and the amount of reducing ends of the depolymerized polygalactomannans utilized
in the printing test and of an unmodified guar flour (Example 5).
Table 1
| Sample |
Concentration (% wt) |
Reducing ends (µmoles/g) |
| Example 1 |
7.0 |
210 |
| Example 2 |
9.5 |
289 |
| Example 3 |
9.9 |
323 |
| Example 4* |
11.0 |
70.4 |
| Example 5* |
1.6 |
89.0 |
PRINTING TEST
Visual evaluation
[0051] The amount of thickeners of Examples 1-4 required to reach a viscosity of 20,000
mPa
*s were added, under mechanical stirring, to 91 g of water and mixed until complete
dissolution (about 40 min). The solutions were allowed to rest for about half an hour.
[0052] 50 g of thiodiglycol and 50 g of urea were weighed in a 1000 ml beaker and carefully
mixed. The mixture was dissolved by pouring under stirring boiling water to obtain
1000 g of solution. The solution was then filtered on a polyester canvas of 54 micron.
[0053] 60 g of thickener solution were carefully homogenized with 40 g of the solution containing
thiodiglycol and urea under mechanical stirring. Subsequently 2.0 g of (NH
4)
2SO
4 were added, under stirring, in order to control the pH during the colour fixing phase.
[0054] A white silk fabric was printed with the printing pastes prepared with the depolymerized
polygalactomannans of Examples 1-4 by using an appropriate 77 threads/cm silk screen
(5 stripes 5x40 cm design) and a Zimmer laboratory printing machine set at speed 4
and pressure 2. A 4 mm steel rod was used.
[0055] The fabric so obtained was then dried at a temperature of 90°C for 1 minute in oven
and treated for 40 minutes, for fixing, in an Arioli vaporising machine set at 102
°C. The printed fabric was washed at 30 °C in the presence of soap, dried and finally
ironed.
[0056] The appearance of the printed fabrics were visually evaluated. The area printed with
the pastes according to the invention were whiter than the area printed with the comparative
paste.
[0057] The printing tests were repeated, using the same ingredients and following the same
printing procedure, but adding 30 g of Red Tiacidol GRE or Dark Blue Tiasolan LB (acid
dyes commercialized by Lamberti SpA) in the thiodiglycol and urea solution.
[0058] The appearance of the dyed printed fabrics were visually evaluated. The area printed
with the pastes according to the invention showed colour with a superior brightness
compared with the area printed with the comparative paste.
Instrumental evaluation
[0059] The printing tests were repeated following the same printing procedure reported above,
using the thickeners of Example 2 and comparative Example 4, the same other ingredients,
but adding 30 g of Yellow Tiacidol K- 5GN (acid dye commercialized by Lamberti SpA)
in the thiodiglycol and urea solution.
[0060] Table 2 shows the colour strenght (K/S) of the silk fabrics printed using the paste
of Example 2 (front area and back area) and of the fabric printed using the paste
of comparative Example 4 (front area and back area). The percent increase of K/S is
also reported.
Table 2
| |
K/S front |
% Increase K/S |
K/S back |
% Increase K/S |
| |
(wavelenght 420 nm) |
| Example 4* |
7.80 |
- |
4.57 |
- |
| Example 1 |
9.38 |
20,27 |
5.75 |
25.83 |
1. Use as thickeners for textile printing pastes of enzymatically depolymerized polygalactomannans
having a content of reducing ends comprised between 150 and 450 µmoles/g and Brookfield®
viscosity at 20°C and 20 rpm of about 20,000 mPa*s at a concentration comprised between 2% and 12% by weight in water.
2. The use according to Claim 1) wherein said enzymatically depolymerized polygalactomannans
have a content of reducing ends comprised between 200 and 350 µmoles/g.
3. The use according to Claim 1) wherein said enzymatically depolymerized polygalactomannans
have Brookfield® viscosity at 20°C and 20 rpm of about 20,000 mPa*s at a concentration comprised between between 4% and 12% by weight in water.
4. Textile printing paste comprising as thickener from 2.8% to 10% by weight of an enzymatically
depolymerized polygalactomannan having a content of reducing ends comprised between
150 and 450 µmoles/g and Brookfield® viscosity at 20°C and 20 rpm of about 20,000
mPa*s at a concentration comprised between 2% and 12% by weight in water.
5. The textile printing paste according to Claim 4) comprising from 3.5% to 8% of said
enzymatically depolymerized polygalactomannan.
6. The textile printing paste according to Claim 4) comprising from 0.1 % to 10% by weight
of one or more acid dyes.
7. The textile printing paste according to Claim 4), further comprising up to 4% by weight
of one or more polymers having thickening function chosen among alginates, starch
and its derivatives, tamarind derivatives, synthetic polymers, cellulose derivatives
and polygalactomannan derivatives.
8. The textile printing paste according to Claim 4), further comprising up to 10% by
weight of one or more additives chosen among wetting agents, emulsifiers, dispersing
agents; solubilizing agents; defoamers; reducing agents, oxidizing agents, resist
agents, pH regulators, complexing agents, preservatives and mixture thereof.
1. Verwendung enzymatisch depolymerisierter Polygalactomannane, die einen Gehalt an reduzierenden
Enden zwischen 150 und 450 µmol/g und eine Brookfield-Viskosität bei 20 °C und 20
UpM von etwa 20 000 mPa.s bei einer Konzentration zwischen 2 und 12 Gew.-% in Wasser
haben, als Verdickungsmittel in Textildruckpasten.
2. Verwendung nach Anspruch 1, wobei die enzymatisch depolymerisierten Polygalactomannane
einen Gehalt an reduzierenden Enden zwischen 200 und 350 µmol/g haben.
3. Verwendung nach Anspruch 1, wobei die enzymatisch depolymerisierten Polygalactomannane
eine Brookfield-Viskosität bei 20 °C und 20 UpM von etwa 20 000 mPa.s bei einer Konzentration
zwischen 4 und 12 Gew.-% in Wasser haben.
4. Textildruckpaste, umfassend 2,8 bis 10 Gew.-% enzymatisch depolymerisiertes Polygalactomannan,
das einen Gehalt an reduzierenden Enden zwischen 150 und 450 µmol/g und eine Brookfield-Viskosität
bei 20 °C und 20 UpM von etwa 20 000 mPa.s bei einer Konzentration zwischen 2 und
12 Gew.-% in Wasser hat, als Verdickungsmittel.
5. Textildruckpaste nach Anspruch 4, die 3,5 bis 8 % enzymatisch depolymerisiertes Polygalactomannan
aufweist.
6. Textildruckpaste nach Anspruch 4, die 0,1 bis 10 Gew.-% eines oder mehrerer Säurefarbstoffe
aufweist.
7. Textildruckpaste nach Anspruch 4, die ferner bis zu 4 Gew.-% eines oder mehrerer Polymere
mit Verdickungsfunktion aufweist, ausgewählt aus Alginaten, Stärke und ihren Derivaten,
Tamarinde-Derivaten, synthetischen Polymeren, Cellulose-Derivaten und Polygalactomannan-Derivaten.
8. Textildruckpaste nach Anspruch 4, die ferner bis zu 10 Gew.-% eines oder mehrerer
Additive aufweist, ausgewählt aus Netzmitteln, Emulgakoren, Dispergiermitteln; Lösungsvermittlern;
Entschäumern; Reduktionsmitteln, Oxidationsmitteln. Reservierungsmitteln, pH-Regulatoren,
Komplexierungsmitteln, Konservierungsmitteln und Mischungen davon.
1. Utilisation à titre d'agents épaississants de pâtes d'impression pour textiles de
polygalactomannanes dépolymérisés par voie enzymatique ayant une teneur en extrémités
réductrices comprise entre 150 et 450 µmoles/g et une viscosité Brookfield® à 20 °C
et 20 tours/min d'environ 20 000 mPa·s à une concentration comprise entre 2 et 12
% en poids dans l'eau.
2. Utilisation selon la revendication 1) dans laquelle lesdits polygalactomannanes dépolymérisés
par voie enzymatique ont une teneur en extrémités réductrices comprise entre 200 et
350 µmoles/g.
3. Utilisation selon la revendication 1) dans laquelle lesdits polygalactomannanes dépolymérisés
par voie enzymatique ont une viscosité Brookfield® à 20 °C et 20 tours/min d'environ
20 000 mPa·s à une concentration comprise entre 4 et 12 % en poids dans l'eau.
4. Pâte d'impression pour textiles comprenant à titre d'agent épaississant de 2,8 à 10
% en poids d'un polygalactomannane dépolymérisé par voie enzymatique ayant une teneur
en extrémités réductrices comprise entre 150 et 450 µmoles/g et une viscosité Brookfield®
à 20 °C et 20 tours/min d'environ 20 000 mPa.s à une concentration comprise entre
2 et 12 % en poids dans l'eau.
5. Pâte d'impression pour textiles selon la revendication 4 comprenant de 3,5 à 8 % en
poids dudit polygalactomannane dépolymérisé par voie enzymatique.
6. Pâte d'impression pour textiles selon la revendication 4 comprenant de 0,1 à 10 %
en poids d'un ou de plusieurs colorants acides.
7. Pâte d'impression pour textiles selon la revendication 4, comprenant en outre jusqu'à
4 % en poids d'un ou de plusieurs polymères ayant une fonction épaississante choisis
parmi les alginates, l'amidon et ses dérivés, les dérivés de tamarin, les polymères
synthétiques, les dérivés cellulosiques et les dérivés de polygalactomannane.
8. Pâte d'impression pour textiles selon la revendication 4, comprenant en outre jusqu'à
10 % en poids d'un ou de plusieurs additifs choisis parmi les agents de mouillage,
les émulsifiants, les agents de dispersion ; les agents solubilisants ; les anti-mousse
; les agents réducteurs, les agents oxydants, les agents de réserve, les régulateurs
de pH, les agents complexants, les conservateurs et leur mélange.