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Title:
TEXTILE PRINTING AND DYEING
Document Type and Number:
WIPO Patent Application WO/1988/002043
Kind Code:
A1
Abstract:
A process for direct colouring of textile fibres comprising appropriately pre-treating said fibers, preparing a solution of a cross-linking agent being a solution of a water insoluble technical hexamethoxymethyl melanine in a C4-8 glycol, adding said solution of the cross-linking agent to a dye liquor or printing paste containing a colourant (excluding cationic dyestuffs) in the presence of an acid donor, applying the resultant mixture to said fibers and drying and curing said fibers. Also provided is a dye liquor or print paste comprising a colourant (excluding cationic dyestuffs), an acid donor and a cross-linking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a C4-8 glycol.

Inventors:
DONENFIELD HENRY (AU)
LEMANIS EDUARD (AU)
Application Number:
PCT/AU1987/000310
Publication Date:
March 24, 1988
Filing Date:
September 10, 1987
Export Citation:
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Assignee:
BASF AUSTRALIA (AU)
DONENFIELD HENRY (AU)
International Classes:
D06M15/423; D06P1/44; D06P1/56; D06P1/642; D06P1/651; D06P5/00; (IPC1-7): D06P1/642; D06P1/651; D06P1/18
Foreign References:
AU8507482A1983-01-06
AU4135264A
US4417898A1983-11-29
US4288226A1981-09-08
GB2031029A1980-04-16
DE2916672A11980-11-06
DE3320629A11984-12-13
Other References:
DERWENT ABSTRACT, Accession No. 83-761912/37, Class F06; & JP,A,58 132 179, (MARUNAKA SEISEN KK), 6 August 1983.
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Claims:
52 -THE CLAIMS
1. DEFINING THE INVENTION ARE. AS FOLLOWS: A process for direct colouring of textile fibres comprising appropriately pretreating said fibres, preparing a solution of a crosslinking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a c4_8 glycol, adding said solution of the crosslinking agent to a dye liquor or printing paste containing a colourant (excluding cationic dyestuffs) in the presence of an acid donor, applying the resultant mixture to said fibres and drying and curing said fibres.
2. A process for dyeing textile fibres comprising appropriately pretreating said fibres, preparing a solution of a crosslinking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a C4_8 glycol, adding said solution of the crosslinking agent to a dye liquor containing a colourant (excluding cationic dyestuffs) in 'the presence of an acid donor selected from the group consisting of one or more saturated aliphatic C4 _6 dicarboxylic acids, e.g. succinic, glutamic and adipic acids, or commercially available mixtures thereof, acrylic acid polymers, and heat saponifiable organic esters, applying the resultant mixture to said fibres and drying and curing said fibres.
3. A process as claimed in claim 2 wherein said textile fibres are 100% cellulosic fibres and their blends with synthetic fibres, e.g. cotton and cotton/polyester blends, as well as Rayon and Rayon/polyester blends (Rayon is regenerated cellulose).
4. A process as claimed in either of the preceding claims 2 and 3 wherein the amount of melamine and glycol are in the ranges 5 to 80 g/1 (g/kg) and 5 to 120 g/1 (g/kg) respectively based on the dye liquor.
5. 53 .
6. A process as claimed in claim 4 wherein said melamine and glycol are used in an amount of 10 to 50 g/1 and 15 to 50 g/1 (g/kg) respectively based on the dye liquor.
7. A process as claimed in any one of the preceding claims 2 to 5 wherein said acid donor is used in an amount of 1 to 5 g/1 based on the dye liquor.
8. A process as claimed in any one of the preceding claims 2 to 6 wherein said C4_a is selected from the group consisting of 2methylbutane1, 4diol; butane 1,2diol; butane1,3diol; butane1,4diol; butane2,3diol; hexane2, 5diol; pentane1, 5diol; neopentyl glycol; 2methylpentane2,4diol; 2methylpentane l,5diol and hexane1,6diol.
9. A process as claimed in any one of the preceding claims 2 to 7 wherein said colourant is selected from pigments, anionic dyes, vat dyes, disperse dyes and suitable blends thereof.
10. A process as claimed in any one of the preceding claims 2 to 8 wherein said drying and curing are effected in one operation.
11. A process as claimed in claim 9 wherein said drying/curing is effected in the temperature range "150210°C for a period of 5 seconds to 4 minutes (preferably 180210°C for a period of 15 to 60 seconds).
12. A process as claimed in any one of the preceding claims 2 to 10 wherein there is also added to the dye liquor a pigment binder e.g. dispersions of crosslinked copolymers of acrylic acid ester, acrylonitrile, acrylic acid and Nmethylόl methyl acrylamide in an amount of 10 to 100 g/1. 54 .
13. A process for printing textile fibres comprising appropriately pretreating said fibres, preparing a solution of a crosslinking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a C4_ glycol, adding said solution of a crosslinking agent to a printing paste containing a colourant (excluding cationic dyestuffs) in the presence of an acid donor selected from acrylic acid polymers, applying the resultant mixture to said fibres and drying and curing said fibres.
14. A process as claimed in claim 12 wherein said textile fibres are 100% cellulosic fibres and their blends with synthetic fibres, e.g. cotton and cotton/polyester blends, as well as Rayon and Rayon/polyester blends (Rayon is regenerated cellulose).
15. A process as claimed in either of the preceding claims 12 and 13 wherein the amount of melamine and glycol are in the ranges 5 to 80 g/kg and 5 to 120 g/kg respectively based on the print paste.
16. A process as claimed in claim 14 wherein said melamine and glycol are used in an amount of 10 to 50 g/kg and 15 to 50 g/kg respectively based on the print paste.
17. A process as claimed in any one of the preceding claims 12 to 15 wherein the acrylic acid polymer is used in an amount of 10 to 100 g/kg (preferably 10 to 50' g/kg) based on the print paste.
18. A process as claimed in any one of the preceding claims 12 to 16 wherein said C4 _ glycol is selected from the group consisting of 2methylbutanel , 4diol ; butane 1,2diol; butane1 , 3diol ; butane1 , 4diol ; butane2 , 3diol ; 55 hexane2,5diol; pentane1, 5diol; neopentyl glycol; 2methylpentane2,4diol; 2methylpentanel, 5diol and hexane1,6—diol.
19. A process as claimed in any one of the preceding claims 12 to 17 wherein said colourant is selected from pigments, anionic dyes, vat dyes, disperse dyes and suitable blends thereof.
20. A process as claimed in any one of claims 12 to 18 wherein a silicone or vegetable oil, preferably castor oil (first pressing) and, optionally, urea are added to the print paste.
21. A process as claimed in claim 19 wherein said silicone oil is in the range between 1000 to 15,000 cps, preferably between 5000 to 12,500 cps.
22. A process as claimed in either of claims 19 and 20 wherein said silicone oil (optionally with urea) is used in an amount of between 1 to 100 g/kg, preferably 10 to 60 g/kg, print paste (each), more preferably 25 to 35 g/kg silicone oil and 30 to 70 g/kg urea.
23. A process as claimed in any one of claims 12 to 21 wherein silicate particles are added to the print paste.
24. A process as claimed in any one of the preceding claims 12 to 22 wherein said drying and curing are effected in one operation.
25. A process as claimed in claim 23 wherein said drying/curing is effected in the temperature range 150210°C for a period of 5 seconds to 4 minutes (preferably 180210°C for a period of 15 to 60 seconds). 56 .
26. A process as claimed in any one of claims 12 to 24 wherein the printed fibres are also subjected to heat calendering, e.g. under 2 to 5 tons pressure plus heat.
27. A process as claimed in any one of the preceding claims 12 to 25 wherein there is also added to the print paste a pigment binder, e.g. dispersions of crosslinked copolymers of acrylic acid ester, acrylonitrile, acrylic acid and Nmethylol methyl acrylamide in an amount of 10 to 100 g/kg.
28. A process for direct colouring of textile fibres comprising appropriately pretreating said fibres, adding a crosslinking agent being C4 _8 glycol to a dye liquor or printing paste containing a high sublimation fast Red disperse dyestuff in the presence of an acid donor, applying the resultant mixture to said fibres and drying and curing said fibres.
29. A process for direct colouring of textile fibres comprising appropriately pretreating said fibres, dispersing a crosslinking agent being a water insoluble technical hexamethoxymethyl melamine in a dye liquor or printing paste containing a colourant consisting of a pigment or predominantly a pigment in the presence of an acid donor and, optionally, in the presence of silicone or vegetable oil, applying the resultant mixture to said fibres and drying and curing said fibres.
30. A dye liquor or print paste comprising a colourant (excluding cationic dyestuffs), an acid donor and a crosslinking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a C. _3 glycol. 57 .
31. A dye liquor comprising a colourant (excluding cationic dyestuffs), an acid donor selected from the group consisting of one* or more saturated aliphatic C4_6 dicarboxylic acids e.g. succinic, glutamic and adipic acids, or commercially available mixtures thereof, acrylic acid polymers and/or copolymers, and heat saponifiable organic esters and a crosslinking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a C4_8 glycol.
32. A dye liquor as claimed in claim 30 wherein said textile fibres are 100% cellulosic fibre's and their blends with synthetic fibres, e.g. cotton and cotton/polyester blends, as well as Rayon and Rayon/polyeste blends (Rayon is regenerated cellulose).
33. A dye liquor as claimed in claim 30 or 31 wherein the amount of melamine and glycol are in the range of 5 to 80 g/1 and 5 to 120 g/1 based on the dye liquor.
34. A dye liquor as claimed in claim 32 wherein said melamine and glycol are used in an amount of 10 to 50 g/1 and 15 to 50 g/1 respectively based on the dye liquor.
35. A dye liquor as claimed in any one of claims 30 to 33 wherein said acid donor is used in an amount of 1 to 5 g/1 based on the dye liquor.
36. A dye liquor as claimed in any one of claims 30 to 34 wherein said C4_8 glycol is selected from the group consisting of 2methylbutanel,4diol; butane1,2diol; butane1, 3diol; butane1,4diol; butane2,3diol; hexane2,5 diol; pentane1, 5diσl; neopentyl glycol; 2methylpentane 2,4diol; 2methylpentanel, 5diol and hexane1,6diol. 58 .
37. A dye liquor as claimed in any one of claims 30 to 35 wherein said colourant is selected from pigments, anionic dyes, vat dyes, disperse dyes and suitable blends thereof.
38. A dye liquor as claimed in any one of claims 30 to 36 also containing a pigment binder, e.g. dispersions of crosslinked copolymers of acrylic acid ester, acrylonitrile, acrylic acid and Nmethylol methyl acrylamide in an amount of 10 to 100 g/1.
39. A dye liquor comprising a high sublimation fast Red disperse dyestuff, an acid donor and a crosslinking agent being a C4_8 glycol.
40. A print paste comprising a colourant (excluding cationic dyestuffs), an acid donor selected from acrylic acid polymers and/or copolymers, and a crosslinking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a Cd _ 8 glycol.
41. A print paste as claimed in claim 39 wherein said textile fibres are 100% cellulosic fibres and their blends with synthetic fibres, e.g. cotton and cotton/polyester blends, as well as Rayon and Rayon/polyester blends (Rayon is regenerated cellulose).
42. A print paste as claimed in either of claims 39 and 40 wherein the amount of melamine and glycol are in the ranges 5 to 80 g/kg and 5 to 120 g/kg respectively based on the print paste.
43. A print paste as claimed in claim 41 wherein said melamine and glycol are used in an amount of 10 to 50 g/kg and 15 to 50 g/kg respectively based on the print paste. 59 .
44. A print paste as claimed in any one of preceding claims 39 to 42 wherein the acrylic acid polymer is used in an amount of 10 to 100 g/kg, preferably 10 to 50 g/kg.
45. A print paste as claimed in any one of preceding claims 39 to 43 wherein said C4_8 glycol is selected from the group consisting of 2methylbutanel,4diol; butane 1,2diol; butane1, 3diol; butane1, 4diol; butane2, 3diol; hexane2,5diol; pentane1,5diol neopentyl glycol; 2methylpentane2,4diol; 2methylpentanel,5diol and hexane—1,6diol.
46. A print paste as claimed in any one of preceding claims 39 to 44 wherein said colourant is selected from pigments, anionic dyes, vat dyes, disperse dyes and suitable blends thereof.
47. A print paste as claimed in any one of preceding claims 39 to 45 also comprising a silicone or vegetable oil, preferably castor oil (first pressing) and, optionally, urea.
48. A print paste as claimed in claim 46 wherein said silicone oil is in the range between 1000 to 15,000 cps, preferably between 5000 to 12,500 cps.
49. A print paste as claimed in either of claims 46 and 47 wherein said silicone oil (optionally with urea) is in an amount of between 1 to 100 g/kg, preferably 10 to 60 g/kg, print paste (each), more preferably 25 to 35 g/kg silicone oil and 30 to 70 g/kg urea.
50. A print paste as claimed in any one of the preceding claims 39 to 48 also including silicate particles. 60 .
51. A print paste as claimed in any one of the preceding claims 39 to 49 also including a pigment binder, e.g. dispersions of crosslinked copolymers of acrylic acid ester, acrylonitrile, acrylic acid and Nmethylol methyl acrylamide in an amount of 10 to 100 g/1.
52. A print paste for direct printing of textile fibres comprising a high sublimation fast Red disperse dyestuff, an acrylic acid polymer and a crosslinking agent being a C4_8 glycol, optionally in the presence of a silicone or vegetable oil.
53. A print paste comprising as the colourant, pigments or predominantly pigments, and a water insoluble technical hexamethoxymethyl melamine dispersed therein, optionally in the presence of silicone or vegetable oil.
54. 3 A crosslinking agent for use in combination with a dye liquor or print paste being a solution of a water insoluble technical hexamethoxymethyl melamine in a C4 _8 glycol .
55. A crosslinking agent as claimed in claim 53 wherein the amount of melamine and glycol are in the ranges 5 to 80 g/1 (g/kg) and 5 to 120 g/1 (g/kg) respectively based on the dye liquor or print paste.
56. A crosslinking agent as claimed in claim "54 wherein said melamine and glycol are used in an amount of 10 to 50 g/1 (g/kg) and 15 to 50 g/1 (g/kg) respectively based on the dye liquor or print paste. 61 .
57. A crosslinking agent as claimed in any one of the preceding claims 53 to 55 wherein said Cd_8 is selected from the group consisting of 2methylbutanel, 4diol; butane 1,2diol; butane1,3diol; butane1, 4diol; butane2, 3diol; hexane2, 5diol; pentane1, 5diol; neopentyl glycol; 2methylpentane2, 4diol; 2methylpentanel,5diol and hexane1,6diol.
58. A crosslinking agent for use in combination with a print paste being a solution of a water insoluble technical hexamethoxymethyl melamine in a C4_8 glycol, and a silicone or vegetable oil, preferably castor oil (first pressing) and optionally urea.
59. A crosslinking agent as claimed in claim 57 wherein said silicone oil is in the range between 1000 to 15,000 cps, preferably between 5000 to 12,500 cps.
60. " A crosslinking agent as claimed in either of the p&eceding claims 57 and 58 wherein said silicone oil (optionally with urea) is in an amount of between 1 to 100 g/kg, preferably 10 to 60 g/kg, print paste (each), more preferably 25 to 35 g/kg silicone oil and 30 to 70 g/kg urea.
61. A crosslinking agent as claimed in any one of preceding claims 57 to 59 also including silicate particles.
Description:
TEXrUE PRINTING AND DYEING

This invention relates to textile printing and dyeing (hereinafter sometimes referred to as 'textile colouring' or 'colouring'). There are currently two common methods of textile printing, viz. direct and transfer paper printing. Of thes two methods of printing, direct printing is by far the more prevalent form of printing because transfer paper printing is limited to certain synthetic fibres and their mixtures with cellulosic fibres and the effect of transfer paper printing is different from the character of conventional printing.

Direct colouring may take the form of pigment or soluble dyestuff colouring. As is well known, direct colouring with pigments as opposed to soluble dyestuffs, involves physically binding the pigments to the fibre surface using a binder, e.g. acrylic dispersion. Nowadays, pigment printing is preferred because of its ease of application e.g. the pigment preparations are incorporated in a printing emulsion containing water, thickener, emulsifier and various fixing agents, handle modifiers and, optionally, solvents such as white spirit, the resultant emulsion being printed onto the textiles, dried and heat cured. The disadvantages of pigment colouring are the handle and the limited fastness to rubbing. Furthermore, the pigment colouring process when used in dyeing as opposed to printing has the further disadvantage of being limited to pale shades only, because of limitations in build-Up and unsatisfactory rub-fastness properties, in depth generally above 2% by weight fabric (b.w.f.) pigment preparation on the fibre e.g. 20 g/1 with 100% liquor pick up by weight of fabric.

Printing of synthetic/cellulosic fibre mixtures with soluble dyestuff mixtures has the disadvantage of high cost and/or poor reproducibility whilst dyeing with soluble

dyes does not have the aforementioned disadvantage of reproducibility to the same extent as printing.

Printing with soluble dyestuffs requires lengthy processing, e.g. after printing and/or dyeing, the goods need to be steamed or heat cured to fix the dyestuffs and subsequently thickeners and unfixed dyestuffs and other unreacted reagents used need to be removed in a separate washing process. Similarly, conventional anti-migration agents and unfixed dyestuff and other unreacted agents need to be removed by washing from fabrics dyed by continuous dyeing processes with soluble dyes by conventional methods.

Furthermore, printing of fibre mixtures, e.g. synthetic/cellulosic fibre mixtures with soluble dyestuffs requires the application of two or more dyestuff types, specific for each fibre. Because of the different fixing procedures for each dyestuff class, the process normally suffers almost insurmountable disadvantages of high costs and/or poor reproducibility.

Accordingly, it is a principal objective of this invention to provide a process for direct colouring of textile fibres which combines substantially all the advantages of both pigment and dyestuff colouring, but substantially avoids the disadvantages of both types of direct colouring. It is another objective of this invention to simplify the application, and particularly the selection, of pigments and dyestuffs to suit various textile fibres and mixtures thereof and hence to reduce the costs by reduction of inventory and capital costs. According to one aspect of the invention, there is provided a process for direct colouring of textile fibres comprising appropriately pre-treating/cleaning said fibres by conventional methods, preparing a solution of a cross-linking agent being a solution of a water insoluble technical hexamethoxymethyl melamine, hereinafter referred to as "melamine" (see also attached Chemical Glossary of

Trade Marks), in a C _ a glycol, adding said solution of the cross-linking agent to a dye liquor or printing paste containing a colourant, e.g. pigments or dyestuffs and mixtures thereof (excluding cationic dyestuffs) in the presence of an acid donor, applying the resulta'nt mixture to said fibres and drying and curing said fibres.

The invention is applicable to a wide variety of fibres but the invention is of particular advantage and ' importance to fabrics consisting of 100% cellulosic fibres and their blends of synthetic fibres, e.g. cotton, cotton/polyester and polyester/rayon blends.

Preferably, the amount of melamine, glycol and acid donor are in the ranges of 5 to 80g/l(g/kg), 5 to 120g/l (g/kg) and 1 to 100g/l(g/kg) respectively based on the dye liquor or print paste. More preferably, the above amounts are 10 to 50g/l and 15 to 50g/l respectively for the melamine and the glycol.

It is essential that the melamine is water insoluble. As is well known, pure hexamethoxymethyl melamine is a water soluble substance at room temperature. To render the melamine water insoluble, it is slightly self-condensed.

By necessity, polycondensed mixtures of nuclear melamine are obtained, the complicated chemistry of which could be stated in a simplified form as follows:

Water insoluble melamine derivatives, such as penta/hexamethoxymethyl melamine (P/H MOMM), by necessity will be a mixture of polycondensed poly-nuclear melamine. As all N-methylol compounds are in equilibrium with their amines and free formaldehyde, there will always be a possibility for formation of free amino groups which may react with another N-methylol group and form a diaminal (uron) N-N'-methylene compound. N-methylol compounds are basically amino-semi-acetals and their methyl derivatives will be amino-acetals .

- 4 - The commercial, at room temperature insoluble, melamine ' derivatives, described as essential for this invention (such as Luwipal* 066 and Cymel** 303), therefore, will be a mixture of insoluble poly-nuclear polycondensates, free formaldehyde, methanol and P/H MOMM.

In contrast to water soluble melamines (such as Luwipal* 068 and Kaurit* M70), which do not give satisfactory results in this invention, products such as Luwipal 066* are practically totally methylated (penta or hexa). In the presence of aqueous acid (below about pH 5), the methyl group can be split off; the product becomes soluble again and starts to react and condensate.

The production of such a poly condensed compound is well-known and is generally as follows: Melamine is reacted with formaldehyde and acetylated with methanol. In the presence of acid catalysts and in the absence of other functional groups, it condenses with itself. Such a product is termed "technical" hexamethoxymethyl melamine and is .commercially available. Generally, these mixtures comprise 50 to 70% by weight hexamethoxymethyl melamine and also contain its condensation products of 2 to 3 and up to 6 molecules of precondensed melamine. For instance, a typical mixture may contain about 60% by weight hexamethoxymethyl melamine, about 13% by weight of the 2 to 4 molecular condensate and about 26% of the 6 molecular condensate (e.g. Luwipal 066*).

Examples of C 4 _ 8 glycols are 2-methyl-butane-l, 4- diol, butane—1,2-diσl, butane-1, 3-diol, butane-1,4-diol and butane-2,3-diol, hexane-2, 5-diol, pentane-1, 5-diol * and neopentyl glycol. Preferably, the glycols used are 2-methyl -pentane-2 , 4-diol, 2-methylpentane-l, 5-diol and hexane-1 , 6- diol.

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT ** Trade Mark of AMERICAN CYANAMID COMPANY

For the dyeing of fibres, the acid donor is preferably one or more saturated aliphatic C 4 _ 6 dicarboxylic acids and these are used in an amount of 1 to 5 g/1 by volume of dyebath. Examples of these acids are succinic, glutamic and adipic acids, or commercially available mixtures thereof (e.g. Eulysin*S). Alternatively, an acrylic acid polymer or a heat saponifiable organic ester such as Eulysin* WP, can be used as acid donor.

For the preparation of print pastes, the acid donor is preferably a preparation of a high molecular weight acrylic acid homopolymer or copolymer with acrlyamide and is used preferably in an amount of 10 to 100 g/kg., more preferably 10-50 g/kg by weight print paste. Its primary function is however as a conventional thickener in the print pastes.

The process according to the invention, can be applied using dyestuffs or pigments, however, pigments, anionic dyes, vat dyes and disperse dyes are preferred (cationic dyestuffs generally do not work because of their ionic nature). It may be advantageous to use blends of different types of colourants, e.g. pigments with similar colour dyestuffs, to obtain improved yield and fastness properties .

Drying can be done separately from curing or preferably in one operation. The curing reaction is very fast provided the fibres can be dried very quickly. Generally, curing is in the temperature range to 220°C for a period of 5 seconds to 4 minutes, preferably in the temperature range 180° to 210°C for a period of fifteen to sixty seconds.

The dye liquor may contain further conventional additives, such as anti-foam agents (e.g. Leophen M* ) , dispersion agent (e.g. Setamol* WS ) , wetting agents (LEOPHEN M*) and anti-migration agents (e.g. Primasol* AMK) . Often level dyeings are obtained particularly in the case of pigments, without addition of conventional anti-migration

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

- 6 - agents; therefore a separate drying process in most cases is not necessary and the fabrics can be dried at curing temperatures. In fact, this is the preferred method.

The print pastes may, in addition, also contain 5 conventional thickening agents. In the process of this invention, the thickening agents, e.g. polyacrylates, may act as the acid donor. Furthermore, agents may be added to the paste to improve the printing properties thereof e.g. diethylene glycol. Optionally, emulsifiers (e.g. Luprintol ] _0 PE*) and solvents with low or no aromatic content may also be added.

Advantageously, silicone oils and vegetable oils, optionally in the presence of urea, may also be added to the print paste to enhance further the rub fastness and soft ■JL handle.

It is preferred to use silicone oil which should be, preferably, between 1,000 to 15,000 cps (centipoise) and, more preferably, between 5,000 and 12,500 cps.

The preferred vegetable oil is castor oil (first 20 pressing).

Preferably, the amount of silicone oil (optionally with urea) added is 1-lOOg/kg print paste (each), but more preferably 10-60g/kg print paste (each), and more preferably 20-35g/kg print paste of silicone oil and 30-70g/kg urea. 25 According to a further aspect of the invention, additions of small amounts of pigment binders are preferred and have a beneficial effect on the resultant fastness properties, particularly rub- and wash-fastness. The use of a binder is particularly beneficial for 100% cotton ' goods or Q their mixture, if they have not been sufficiently pretreated. Binders are also sometimes beneficially added for the purpose of preventing anionic dyestuffs staining white polya ide fibres during the first washing process. Accordingly, the use (e.g. 10 to 100 g/kg by weight print 35 paste or dye liquor) of dispersions of cross-linked copolymers of acrylic acid ester, acrylonitrile, acrylic

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

acid and N-methylol methyl acrylamide (Helizarin Binder* TW) were found to be beneficial.

In deep shades, 10 to 100 g/kg, by weight print paste or dye liquor, of binder was used, this having three further benefits:

(a) increase in rub fastness; and

(b) assistance in fixation of the colourants on 100% cotton, especially if it is not well pretreated (purified); and (c) preventing staining of accompanying polyamide fibres during washing. Interesting and very elegant, pleasing and useful print effects can be obtained by addition of silicate particles (e.g. Iriodin**) to the print paste. This effect can be further enhanced by curing the prints by heat calendering (e.g. under 2 to 5 tons pressure plus heat), instead of heat curing only.

According to another aspect of the invention, there is provided an improved dye liquor or print paste comprising a colourant (excluding cationic dyestuffs), an acid donor and a cross-linking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a C 4 _ 8 ' glycol .

According to a further aspect of the invention, '" there is provided a cross-linking agent for use in combination with a dye liquor or print paste being a solution of a water insoluble technical hexamethoxymethyl melamine in a C 4 _ 8 glycol.

According to yet a further aspect of the i'nvention, in the case of the use of a high sublimation fast Red disperse dyestuff (e.g. Celestren* Red 2G, CI Disperse Red 346) the cross-linking agent may simply be a C 4 _ glycol In this situation, similar advantages and effects are obtainable to those in connection with the aforementioned cross-linking agent.

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT ** Regd. Trade Mark of MERCK DARMSTADT

According to another aspect of the invention, there is provided an improved print paste comprising a colourant (excluding cationic dyestuffs), one or more synthetic thickening agents, a cross-linking agent being a solution of a water insoluble technical hexamethoxymethyl melamine in a c 4 _ 8 glycol and a silicone or vegetable oil, optionally in the presence of urea.

According to a further aspect of the invention, there is provided a composition for enhancing the handle, 0 the rub resistance and water absorption of print pastes comprising a mixture of silicone oil and urea.

According to yet a further aspect of the invention, the improved print paste and resultant print properties can be obtained by dispersing the water insoluble technical 5 hexamethoxymethyl melamine into the print paste (described above) without previously dissolving it in a C 4 _ 8 glycol. In this case, the print paste composition is limited to containing, as a colourant, pigments or predominantly

* pigments. Thus, according to this aspect of the invention, 0 there is provided a composition for enhancing the handle, the rub resistance and wet fastener properties of print pastes containing, as the colourant, pigments or predominantly pigments, and a mixture of silicone or vegetable oil and hexamethoxymethyl melamine (technical," 5 water insoluble) e.g. Luwipal 066*.

The C 4 _ 8 glycols appear to have several functions:

1) They dissolve and keep the melamine resin in solution.

2) They provide hydroxyl groups for cross-lirrking with 0 functional groups inthe colourants, the melamine resin and the fibres.

3) They can cross-link with the melamine forming the melamine acetal, which in turn can cross-link via the hydroxy groups in the cellulose with similar 5 groups in the pigments or dyestuffs, depressing the swelling of the fibre.

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

4) They improve the wet fastness, presumably by forming insoluble complexes with the dyestuffs and probably condensing with the hydroxyl groups in cotton, The resultant dyestuff particles seem to be present in highly crystallised form since quite goods yields and brillance are obtained. Similarly, the melamine resin reacts with various functional groups, e.g. hydroxyl, carboxyl, amide, sulpho, etc., commonly found in natural fibres, such as cotton, and various dyestuffs, e.g. anionic dyestuffs.

It will be clear from the above that the invention

'has the following advantages to offer to the user:

1. No wash-off necessary to remove unfixed dye bath impurities (saving of energy and capital), compared to conventional processes of dyeing and printing

100% cellulose or blends thereof with synthetic fibres by using conventional (non-pigment) dyestuff systems . For example: - Disperse/Vat dyestuffs applied to PE/Cotton fabric PALANIL/INDANTHREN* Disperse/Reactive dyestuffs applied to PE/Cotton fabric; PALANIL/BASILEN* Reactant dyestuffs applied to PE/Cotton fabric; CELLESTREN*

2. No causticizing pretreatment for the textile fabric needed compared to some other dyestuff classes, in other processes. Faster processing, e.g. curing times which translates into capital saving-. 3. Improved wet, light and rub fastness properties, compared to some other dyestuff classes and processes, e.g. compared to some direct dyestuffs, acid dyestuffs and pigments in deep shades, etc. Also the resistance to dry cleaning solvents is improved.

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

4. Handle of fabric is at least comparable or improved relative to conventional pigment prints or dyeing.

5. Good definition of prints.

6. Applicable to wide variety of fabrics, i.e. quite non-fibre specific. Fibre reactive groups cross-link whilst fibres without such groups e.g. polyester, are bound by adhesion with the melamine derivative resin on the one hand and the insoluble dye complex on the other, e.g. salt formation with the melamine and cross-linking between dye, C 4 _ 3 diols and melamine.

7. Non-staining or very little staining of polya ide or wool fabric during washing.

8. Faster curing at 180-210°C for as quick as 15 to 60 seconds.

9. Shorter fixation time in dry heat. This makes fixation by dry heat, e.g. stenter/hot flue, very economical.

Compared to pigment printing, the invention has the following advantages:

(a) Improved fastness to rubbing in deep shades;

(b) Depending on the chemical nature of the dyestuff used, no binder or considerably smaller amounts of binder and acid donor are necessary.

It will further be appreciated from the above that the present invention provides a process which is more economical (Table I) than the prior art processes and which provides improved reproducibility. Furthermore, the colourants are most easily applied because only one colour type can be used on the fibre mixtures. Moreover, there are advantages for 100% cotton fabrics, namely more economical dyestuffs can be used as there can be freer selection of dyestuffs for their various properties, i.e. light fastness, dry cleaning properties etc., irrespective of what the intended original use for the dye was, i.e. dyes originally

intended for completely other applications can now be used, to obtain highly desirable results, e.g. anionic dyestuffs originally intended to be used for the dyeing of leather can be used for dyeing and printing of 100% cotton. From the above, it follows that:

Elegant combination of dyeing, printing, and finishing processes are possible (Table II and Example 12 ) .

Deep shades can be dyed rub- and wash-fast utilizing the invention with most pigments; basically most organic pigments are suitable. Carbon black and iron oxide mixtures work also for production of dark brown shades. Carbon black works on its own for production of blacks. - Most colour depths can be obtained, wherein conventional pigment dyeing the depth is limited to approximately 2% pigment preparation by weight of fabric dyed.

High sublimation disperse dyes, e.g. Cellestren* ' when used in the invention, can be completely fixed, with heat, making further processing, such as washing rinsing and drying unnecessary. Similarly, disperse and vat dye mixtures, e.g. Cottestren* can be. fixed with heat alone by utilising the invention.

- Anionic dyestuffs offer cost advantages in dark shades, particularly Eukesolar* liquid/ Vialon*. In light shades pigments are used preferably for light fastness. - The wash fastness of direct dyes are improved.

By using, in addition, the optional components of silicone or vegetable oil, optionally in the presence of urea, the following additional advantages are obtained: 1. The soft handle and the rub fastness is further improved.

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

2. The prints have improved absorbency.

3. Compared to conventional pigment prints, apart from the softer handle and superior rub fastness, also lesser amounts of binder dispersion .are necessary. For example, in the invention, never more tha 100 g/kg print paste is necessary, whilst in conventional print paste up to 200 g/kg are being necessarily used, Even so, by conventional methods, one cannot obtain the same exceptionally high rub fastness properties, compared to the invention. Binders with low glass transition temperature can be used to advantage, resulting in particularly soft handles. These binders could not be used in conventional pigment printing in deep shades as the high amounts needed would result in "sticky" handle and poor rub fastness. 4. The invention is ideal for terry goods and delicate jersey knit goods, as well as for fibre blends such as acetate/cotton and Polyester/Rayon, however, it is of course applicable and shows advantages on all kinds of textile fibres. 5. The prints generally withstand 1000 rubs by the

AASC crockmeter method, whilst the standard test method is 10 rubs.

The invention will now be described and illustrated in the following Examples which have been carried out, unless otherwise indicated, by the following general methods .

GENERAL METHODS** Method I Pretreatment I- - for 100% cotton. The loomstate cloths are saturated at 20-30° with a liquor containing:

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT ** The general methods of pre-treat ent are by no means mandatory, as any soundly practised conventional pre-treatment method will suffice for the purpose of this invention.

a detergent stable to alkalis e.g. Kieralon OL* 6.6 g/1 a wetting agent eg. Leophen M* 1.5 g/1 a Peroxide stabiliser and extraction agent

Prestogen EB 21 g/1 Caustic Soda (46% solution) 70ml/l

Hydrogen Peroxide 50% 50ml/l

After saturation, the fabrics are squeezed to a pick up of approx. 80% b.w.f., rolled up into a batch, covered wityh polyethylene film and kept rolled for 16 hours. The fabric roll is then transferred to a jig machine and treated with the following chemicals:

Caustic soda (46%) 15ml/l oxidative starch degrading agent eg. Lufibrol O* 3 g/1 Kieralon OL 2 g/1 start running at 40°C, raise over one end to 95°C, run two ends at 95°C, rinse with water for two ends at 95°C, rinse with fresh water for two ends at 40°C, neutralise with cold water containing dicarboxylic or carboxylic acids eg. Eulysin S to pH 6-8. After this treatmemt, the fabrics should be reasonably free o " f sizing agents and impurities and should have a neutral to slightly acid pH value.

Method II

Pretreatment for 50/50 Polyester Cotton. Loomstate cloth, containing sizes, sighting colour and other impurities, is saturated with the following chemicals, liquor:

Alkali stable wetting agent eg. Leophen FK-1* 7 g/1

Detergent, stable to alkali eg. Kieralon OL 3 g/1 Peroxide stabiliser eg. Prestogen K* 10 g/1

Caustic coda (46%) 20ml/l

Sodium silicate 8 g/1

Oxidative starch degrading agent eg. Lufibrol 0 9 g/1 Hydrogen Peroxide 50% 44ml/l

Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

After saturation, the fabric is squeezed to a pick up of 90% by weight fabric and steamed for 6 mins at 103-105°C in saturated steam, eg. Arioli steamer.

After steaming, the fabric is washed off in open width, through an open-width washing machine as follows: 1st Tank containing:

Sodium hydroxide flakes 15 g/1

Kieralon OL 6 g/1

Reductive extraction agent eg. Lufibrol KB* 4 g/1 Bath temperature 98 σ C 2nd Tank containing:

Sodium hydroxide flakes 10 g/1

Kieralon OL 3 g/1

Lufibrol KB 4 g/1 Bath temperature 98°C 3rd Tank containing: 3 g/1 Kieralon OL Bath temperature 98°C

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

4th Tank containing Water at 98°C

5th Tank containing:

Water, set with Eulysin S to pH 4-5

6th Tank containing overflowing cold water.

Method III

Pretreatment for nylon/cotton/acetate.

The loomstate fabric is desized on a jig machine with '1% solution of starch degrading enzyme at 60°C; pH 5-6.

After 8 hours reaction, the fabric is washed in *a winch machine with

Kieralon OL 2g/l at 80 C for 30 mins. followed by one rin with water at 45°C, one rinse at room temperature.

The fabric is now ready for colouring according to inventi

Method IV

Preparation of cross linking agent solution

The indicated amount of tech. hexamethoxymethyl melamine is dissolved, by stirring at room temperature, into the indicated amount of a suitable diol (see p. ). This solutio is now ready for use.

Method V

Preparation of typical print paste

Into the prescribed amount of water (usually 600 to 800 g/kg) print paste emulsion is added by stirring at room temperature the prescribed amounts of:

- Antifoam and/or wetting agent, plus optionally urea

- Thickening agents

- Handle modifying agents, e.g. silicone and vegetable oils and cross linking agent solution

This mixture is homogenised by stirring at high speeds, e.g. 2,-800 to 3,000 RPM, with a suitable mixing machine. Finally, the prescribed amount of binder dispersion is added by slow stirring - say 500 RPM.

To this mixture the prescribed amounts of colours are added by slow stirring. The paste is made ready for printing,' " by a final adjustment to constant printing viscosity, either by addition of electrolyte solution or additional thickening agent; and by straining through a mesh at least as fine as the finest screen used for printing.

Method VI

Preparation of conventional print paste for pigment printing on screen printing machines .

To the prescribed amount of water (usually 600-750 g/kg print paste) at room temperature, is added by stirring, the prescribed amounts of following ingredients:

- 17 - Ammonia (32%) Antifoa Thickeners

Handle modifiers and emulsifying emulsion -> . Yield improving agents

1/2 of the prescribed amount of binder dispersion.

Into this mixture is emulsified at high speed 2800-3000 the prescribed amount of solvent eg. white spirit.

Finally, the second half of binder dispersion is added 0 under slow stirring.

To this preparation the prescribed amounts of colours are added by slow stirring; the printpaste is ready for print after adjusting to a constant printing viscosity, either by addition of electrolyte solution or additional thicken -5 agents, and after straining through a mesh at least as fine as the finest screen used in printing.

Method VII

Preparation of padding liquor.

To a smaller than prescribed amount of water, at room tem erature 25-30°C, are added by stirring the prescribed amou of following ingredients:

Wetting Agent (non foaming) Cross linking agent solution Acid donor Binder dispersion Colour

The mixture is adjusted to the prescribed volume with water and stirred until homogeneous. It is strained into a padding trough, through a fine sieve or cloth.

SUBSTITUTE SHEET

EXAMPLE 1

A. Printing with 1:2 metal complex anionic disperse dyestuff (Method I, II respectively for preparation; IV and V for print paste preparation)

1,000 g of dyestuff printing paste was first prepared by mixing the following materials:

Water Xg

(variable) Mixture of Acid Violet CI 12196 and Acid Blue CI 12195 (EUKESOLAR** Navy R cone, liquid) 20g

Tech. Hexamethoxymethyl Melamine (CYMEL 303*) lOg

2-methyl pentane-2, 4-diol 20g Polyacrylic Printing Binder (Helizarin

Binder TW) 30g Dicarboxylix ' acids (EULYSIN S) 2g

Polyacrylic thickener ( UTEXAL HP**) Yg

(variable)

100Og

The above print paste composition was then applied to 100% cotton and to 50/50 polyester cotton fabric through a flat screen of 50 mesh using a magnetic roller squeegee on a J. Zimmer flat bed printing machine, dried at 60 9 C and then cured for 3-4 minutes at 170°C or, alternatively, 15-60 seconds at 190°C, no wash-off being necessary.

* Trade Mark of AMERICAN CYANAMID COMPANY

** Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

B. Dyeing with 1:2 metal complex anionic disperse dyestuff

The same process as described for printing was used except that the following composition (l,000g) was first prepared as a padding liquor: (Method VII)

Water 749g Mixture of Acid Violet CI 12196 and

Acid Blue CI 12195 (EUKESOLAR Navy R cone, liquid) 25g

Non-foaming wetting agent (LEOPHEN M) Ig

Polyacrylic Printing Binder (Helizarin TW) 15g

Tech. Hexamethoxymethyl Melamine (CYMEL 303) lOg

2-methyl pentane-2,4-diol 40g

Dicarboxilic acids (EULYSIN S) 2g

lOOOg

The above padding liquor was applied at 25 α C on a cotton and polyester cotton fabric, 70% pick up; dried and cured like the print (see above).

Good to very good fastness properties to light, washing and rubbing (wet and dry) were obtained.

SUBSTITUTE SHEET

EXAMP LE 2

The following print paste was prepared as in Example 1 (Methods IV, V) :

Water 731g

Ammonia 3g

Anti foaming agent ( DEFOAMER TP*) 3g

LUTEXAL HP 63g

2-methyl pentane-2, 4-diol 15g

Tech. Hexamethoxymethyl Melamine (CYMEL 303) 15g

Helizarin Binder TW lOOg

Acid Black CI63 (EUKESOLAR Black R cone, liquid) 24g

EUKESOLAR Navy Blue R cone, liquid 36g

Acid Red CI226 (EUKESOLAR Red G) 5g

EUKESOLAR Yellow G 5g

lOOOg

20 metres of cotton sheeting cloth was printed with the above formulation on a flat bed BUSER printing machine, using a 80 mesh screen, dried at 110°C and crease resist finished by foam application of a crease resist glyoxal urea formaldehyde resin, e.g. FIXAPRET TX 205* and cured on a stenter for 11 seconds at 190°C; running speed 76m/min.

SUBSTITUTE SHEET

The following composition was used for the foam resin application, through a Stork rotary screen applicator:

Water 761g

Acetic acid 90% 2g

Polyethylene emulsion, e.g. Perapret PE 240* 60g Fixapret TX 205 165g

Nekanil* TC 129 (non-ionic surface active, foaming agent) lOg Lutensit* TC KD (anionic surface active, foaming agent) 2g

lOOOg

25% application b.w.f.

Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

EXAMPLE 3

Blue and black prints were produced with a print paste prepared as in Example 1, as follows:

Water Xg (variable)

Lutexal HP 50g

Diethylene Glycol lOg

(to improve running properties) 2-methyl pentane-2, 4-diol 15g

Tech. Hexamethoxymethyl Melamine (CYMEL 303) lOg

Eukesolar cone, liquid (variable)

lOOOg

Blue : 5g/kg Eukesolar Navy R cone, liquid, 15g/kg Luconyl Blue 679 (Aqueous dispersion of Pigment Blue 15)

Black : 70g/kg Eukesolar Black R cone, liquid.

The above compositions were printed, dried, heat fixed at 190°C, 76m/min. (crease resist foam finished as in Example 2), 11 sec. dwell time. Various other dark prints were produced in this way, e.g. royal blue, dark blue, dark brown, black on 100% cotton and 50/50 PE/cotton fabric.

, ,- C' s " ϋ# s > rv ' tf \f&

EXAMPLE 4

r- Brown Print with 1:2 metal complex anionic disperse dyestuff

Paste prepared as in Example 1:

Wate 699.4g

10 Defoamer* TP 10% solution lOg

Diethylene glycol 20g

Ammonia 32% (10% solution) 50g

Lutexal HP 50g

Helizarin Binder TW lOOg ,c 2-methyl pentane-2,4-diol 15g

Tech. Hexamethoxymethyl Melamine (CYMEL 303) 15g

Eukesolar Red G' cone, liquid 17g

Eukesolar Yellow RL liquid (Acid Yellow CI119) 4g

Eukesolar Black RL cone, liquid 18g 20 Eukesolar Navy Blue RL cone, liquid 1.6g

lOOOg

Printed and dried as in Example 1 on 100% cotton

25 and 50/50 polyester cotton fabric and cured for 60 seconds at 190°C.

30

35 * Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

SU B S -trruTE SHEET

EXAMPLE 5

Printing with 1:2 metal complex, water soluble anionic dyestuffs

lOOOg print paste was prepared with the following composition:

10

Water 720g 1:2 metal complex dyestuff Ortolan* Black RL

(Acid Black CI 63) or Ortolan* Brown 3R

(Acid Brown) 30g

15 2-methyl pentane-2, 4-diol 30g

Tech. Hexamethoxymethyl Melamine (Luvipal 066) 30g

Polyacrylic Thickeners ( Lutexal HP 80g and Lutexal HVW) lOg

Polyacrylic Dispersion Printing Binder lOOg

20 Helizarin Binder TW

lOOOg

The composition was printed, dried and cured as in

-j- Example 1

30

5 * Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

SUBSTITUTE SHEET

EXAMPLE 6

Print on 100% and 50/50 polyester/cotton fabric with 1:2 metal complex disulphonate dyestuff

Print paste was prepared and printed as in Example 1, but with the following composition:

Water 700g

Lutexal HP 60g

Helizarin Binder TW lOOg

2-methyl pentane-2, 4-diol 15g Tech. Hexamethoxymethyl Melamine 15g

Silicone Oil** 200/12500 40g

Liquid paraffin 40g 1:2 metal complex disulphonate-Acid Red CI357

(Acidol Scarlet M-L*) 30g * lOOOg

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT ** Also known as "Siloxane 200/12500" manufactured by DOW CORNING

SUBSTITUTE SHEET

- 27 -

EXAMPLE 7

Printing and dyeing with disperse dyestuff on 100% cotton and 50/50 polyester cotton fabric

A. Printing was effected as in Example 1, with the following print paste composition:

Water 715g

Lutexal HP 60g

Helizarin Binder TW 150g

Diethylene Glycol 20g

2-methyl pentane-2, 4-diol 15g

Tech.. Hexamethoxymethyl Melamine lOg Disperse Yellow CI 213

(Cellestren Yellow 5G) 30g

lOOOg Printing and curing was carried out for 60 seconds at 190°C (no predrying).

B. Dyeing

The following padding liquor was prepared (Method VII ) :

Water 834g

Leophen M lg

2-methyl pentane-2, 4-diol 90g

Tech. Hexamethoxymethyl Melamine 15g

Helizarin Binder TW 20g

Eulysin WP lOg

Cellestren Yellow 5G' 30g

lOOOg

SUBSTITUTE SHEET

- 28 -

EXAMPLE 7 B. continued:

The above liquor composition was applied to produce a 65% pick-up by weight of fabric on 100% cotton and 50/50 polyester cotton fabric; curing for 60 seconds at 190°C.

EXAMPLE 8

Dyeing on 100% cotton and 50/50 polyester/cotton fabric with a red disperse dye

A pad dyeing was carried out as in Example 7B, with the following pad liquor:

Water 699g

Leophen M Ig

2-methyl pentane-2,4-diol- 120g

Tech. Hexamethoxymethyl Melamine 60g

Eulyε*in WP lOg Secondary Dispersion of Polyethylene Wax

(PERAPRET PE 240*) 30g

Cellestren Red 2G' 80g

lOOOg

Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

SUBSTITUTE SUHFT

- 29 - EXAMPLE 9

Printing and dyeing with aqueous pigment dispersions

A. A print paste was prepared and printed on 100% cotton sheeting; 50/50 polyester/cotton and 65/35 polyester cotton; as in Example 1 with the following print paste

Wa er 805g

Lutexal HP 30g

Silicone Oil 200/12500 50g Helizarin Binder TW 50g Tech. Hexamethoxymethyl Melamine 15g Aqueous Dispersion of Pigment Red (Helizarin Red GR) 50g

lOOOg

B. Dyeing with an aqueous pigment dispersion

The following pad liquor was prepared:

Water 835g

Leophen M ig

2-methyl pentane-2 , 4-diol 90g

Tech. Hexamethoxymethyl Melamine lOg

Anti-migration agent, e.g. Vitexal PFA* 2g

Eulysin S 2g

Helizarin Red GR 60g

lOOOg

Padded at 25°C and 65% pick-up; curing for 60 seconds at 190°C.

Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

SUBSTITUTE SHEET

- 30 -

EXAMPLE 10

Print on 50/50 polyester/cotton with 1:2 metal complex - sulphonamide dyestuff, combined with 1:2 metal complex disperse dyestuff

A print paste was prepared and printed as set out in the General Methods with the following composition:

Water 805g

Lutexal HP 50g

Diethylene Glycol lOg

2-methyl pentane-2, 4-diol 30g

Tech. Hexamethoxymethyl Melamine 30g

Eulysin WP 5g

Acid Red CI 226 (Eukesolar Red G cone.) lOg

Acid Yellow CI 119 (Eukesolar Yellow R) lOg

Acid Blue/Violet Mix (Ortolan N. Blue BR) 40g

lOOOg

Printed on Zimmer magnetic table with 50 mesh flat screen and then cured 60 seconds at 190°C.

- 31 -

EXAMPLE 11

Print with aqueous pigment dispersion, combined with disperse dyestuff

(General Methods I, II, III respectively, IV and V).

Print on 100% cotton, 50/50 polyester cotton and 50/50 acetate/cotton fabric were prepared, printed and cured as in Example 10 with the following composition:

Water 765g

Lutexal HVW lOg

Lutexal HP . 40g

Helizarin Binder TW 80g

Diethylene glycol lOg

2-methyl pentane-2 , 4-diol 20g

Tech. Hexamethoxymethyl Melamine 20g

Eulysin WP 5g Aqueous Dispersion of Pigment Green CI 36

(Luconyl Green 915*) 40g Disperse Yellow CI 213

(Cellestren Yellow 5G) lOg

l O O O g

sires rtiiυτfc SttE&T

- 32 - EXAMPLE 12 (General Methods I, II, IV, VI and VII)

Combined dyeing/printing and finishing process c technique, on 100% cotton and 50/50 polyester cotton light weight sheeting fabrics a "TAUPE" and a "COCOA" shade was produced.

A. A padding liquor was prepared as in Example 9B, with .. Q the following composition:

Water 911.5g Leophen M Ig

2-methyl pentane-2,4-diol 40g

,c Tech. Hexamethoxymethyl Melamine lOg

Eulysin S 20g Vitexal PFA 2.5g

Helizarin Binder TW 15g

20 100 °3

To two lots of 100 litres, each of this padding liquor, the following colour composition was added:

2c Aqueous Dispersions of: Taupe Cocoa

Pigment Red (cf. Table III)

(Helizarin Pink BT) 0.16g 0.87g

,» Pigment Yellow 83

(Helizarin Brilliant Yellow RRT) 0.36g 0.62g

Helizarin Dark Brown TT 1.36g 7.5 g

(mixture of carbon black & iron oxide)

35

Padding Liquor lOOOg lOOOg

SUBSTITUTE SHEET

- 33 -

2 lots of fabric were padded with each formulation respectively, to 60% pick-up, through a Kuesters pad mangle; the pad dyeings were pre-dried to 12% residual moisture, by infra red radiation.

Both fabrics were overprinted with the following pigment print pastes:

Water 630g/kg - 803g/kg

Ammonia 32% 2g/kg - 2g/kg

Anti foam (1:1 water) 2g/kg - 2g/kg

Lutexal HP 26g/kg - 24g/kg

Emulsion FK 8520* 50g/kg - 40g/kg

Luprimol** CW (colour intensifier) 30g/kg - 24g/kg White spirit lOOg/kg - 50g/kg

Helizarin Binder TW 150g/kg - 50g/kg

Alginate Thickener 5% solution lOg/kg - lOg/kg

Two designs, Gallery and Heathcote respectively, were printed with 7 and 3 colourways respectively containing various amounts (from lOOg/kg to 1.5 g/kg), of combinations selected from two or more aqueous pigment dispersions, from the following range: 'HELIZARIN Black HDT, Blue RT, Red BBT, Violet RFKI, Yellow RRT, Green BT, Scarlet B, Blue BT, Dark Brown TT.

A Buser flat bed machine using 60 and 80 mesh screens at 25m/min. running speed was used.

The prints were dried at 110°C 20 seconds; they were then coated with a crease resist foam containing a standard glyoxal urea formaldehyde resin formulation (Fixapret TX205*) (Method VII) through a Stork rotary screen and cured through a stenter at 190°.C for 11 seconds, running speed 76m/min. Thus, the ground dyed shade, the print and the crease resistant finish was cured in one operation.

* Manufactured by BASF AUSTRALIA LTD.

** Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

SUBSTITUTE SHEET

- 34 - The following fastness properties were obtained:

COCOA**/GALLERY** TAUPE**/HEATHCOTE** poly/cotton cotton poly/cotton cotton

Light 7 6 7 6

Rub Dry 4 4 4/5 4/5

Wet 3/4 3(print) 4/5 4/5

dye./print dye./print dye./print dye./print

Machine Wash

Domestic Detergent 1 x wash 4/5 4/5 4/5 4/5 4/5 4/5 4/5 4/5 5 x wash 4 4/5 3 4/5 4/5 4/5 3 4/5

Industrial Detergent

Kierolan OL plus soda ash

x 5 washes 4/5 4/5 4/5

These fastness properties were considered above average f.oor domestic sheeting fabrics widely sold in Australia.

** Trade/brand names of Sheridan Textiles (formerly Division of Pacific Dunlop Limited)

SUBSTITUTE SHEET

EXAMPLE 13

A print was produced, as in Example 10, using the following composition: Water 717 g

Ammonia 5 g

Antifoam* B 29 g

Lutexal HD 24 g

Luvipal 066 10 g methyl Pentane-1,5 diol 80 g

Silicone Oil 200/12500 ** 40 g

Helizarin Binder TW 45 g

Cellestren Red 2G 35 g

Helizarin Red GR 15 g

1000 g

EXAMPLE 14

The following standard formulation was used to check behaviour of a variety of colourants, when applied to

100% cotton, by padding to 60% ' - •' .ck up and curing for 60 seconds at 200°C.

Colourant Xg(variable) Tech. Hexamethoxymethyl melamine 30 g

(Luvipal 066)

2-methyl pentane-1 , 5 diol 45 g alternatively

2-methyl pentane-2 , 4 diol 45 g" alternatively

Hexane-1,6-diol 45 g

Leophen M 1.2 g

Eulysin S r 2.5 g

Helizarin Binder TW 20 g

1000 g * Marketed by BASF AUSTRALIA ** DOW CORNING AUSTRALIA

The dyeings were soaped with an industrial detergent

e.g. 2g/l Kieralon B* for 10 min at 100°C,

Rinsed and dried and tested for fastness properties.

The following properties were found (unless otherwise indicated, the glycol used was 2-methyl-l,5-diol) :

Regd. trade mark of BASF AKTIENGESELLSCHAFT

37 -

Light Wash Solvent Rubbing

Xeno- Test perchlor dry wet test ISO 3 a) b) c) a) b) c )

5 g/1 Helizarin

Brilliant Pink BT >6 4-5 5 4 4-5 4-5 5 4 4 soaped >6 4-5 5 4-5 4-5 4-5 5 4 3-4

5 g/1 Helizarin

Brilliant Yellow ] RRT>6 4-5 5 4-5 4-5 4-5 5 3- -4 3-4 soaped >6 4-5 5 4-5 4-5 4-5 5 3- -4 3-4

5 g/1 Helizarin

Dark Brown TT >6 3-4 4-5 4-5 4 4-5 5 4 3-4 soaped >6 4 4-5 4-5 4-5 4-5 5 4 3-4

5 g/1 Helizarin

Dark Brown TT soaped >6 4 4-5 4-5 4 4-5 5 4 3-4

(2,4-diol) >6 4 4-5 4-5 4-5 4-5 5 4 3-4

5 g/1 Helizarin

Dark Brown TT soaped >6 4 4-5 4-5 4 4-5 5 4 3-4

(1,6-diol) >6 4-5 4-5 4-5 4-5 4-5 5 3- -4 3

30 g/1 Cellestren

Blue GG 5 4-5 4-5 4-5 2 4 4- •5 2- 3 2-3 soaped 5-6 4-5 4-5 4-5 2-3 4 4- •5 2- •3 2-3

50 g/1 Indanthren

Blue GCD >6 4 4-5 4-5 4 4-5 5 3 3 soaped >6 4-5 4-5 4-5 4 4-5 5 3 3

75 g/1 Eukesolar

Black R liquid 4 4 4-5 2 4^5 3-4 4- 5 4 3 soaped 4 3 4-5 1-2 4 3 4- 5 4 2-3

Notes:

Light fastness is measured on scale 1-8 (8 being the best) a) = change of shade on scale 1-5 (5 being the best) b) = staining of cotton on scale 1-5 (5 being the best) c) = staining of wool on scale 1-5 (5 being the best)

> means greater than

EXAMPLE " 1 5

Dyeing with disperse dyestuff (as per Example IB but with no hexamethylene melamine) on 100% cotton and 50/50 polyester cotton.

Water 669g

Leophen M Ig

Primasol AMK 20g Perapret PE 2/40 30g

2-methyl pentane 2,4-diol 200g

Cellestren Red 2G 80g

lOOOg

Pad 65% pick up; dry 60°C; cure 60 seconds at

200°C.

- 39 -

EXAMPLE 16

Printing with solvent dyes

A print paste was prepared according to the general method, except that the solvent dyes were always predissolved in cyclohexane.

Water 728g

Lutexal HP 30g

Helizarin Binder TW lOOg

2-methyl pentane-2, 4-diol 15g

Tech. Hexamethoxymethyl Melamine (CYMEL 303) 15g

Solvent Blue CI 21 (Oracet Blue*) 1.25g

Solvent Black CI 6 (Savinyl Black BN**) 7 g

Solvent Brown CI 28 (Savinyl Brown GLS**) 0.6 g

Solvent Red CI 122 (Neozapon Red GE***) 0.6 g

Cyclohaxanone lOOg

lOOOg

Printed, dried and cured as in Example 1

* Regd. Trade Mark of CIBA GEIGY

** Regd. Trade Mark of SANDOZ

*** Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

"

SUBSTITUTE SHEET

- 40 -

EXAMPLE 17

As Example 16 except that for the colourants, the following composition was used:

Aqueous Dispersion of Pigment Yellow CI (Luconyl Yellow 098***) 2.5g/kg. print/paste

Solvent Blue CI 38 (Savinyl Blue 3 GLS'**) 2.5g/kg. print/paste

SUBSTITUTE SHEET

- 41 -

EXAMPLE 18

An improved colourant range is produced by

(a) mixing various selected colourants together (e.g. 450g CI Pigment Red 112 preparation plus 50g Disperse Yellow 213) at room temperature;

(b) Mixing separately, at room temperature, 475g silicone oil 200/12500** and 25g hexamethoxymethyl melamine (technical water insoluble), resulting in a very smooth paste, which is then added to mixture (a) and the components are then mixed together at room temperature resulting in colour ( c) .

Varying amounts of colour (c) are then added to a print paste containing : 50 g/kg urea x g/kg thickener e.g. Lutexal HP* (variable)

20-100 g/kg Acrylic Binder dispersion (e.g. Helizarin

Binder TW* ) 9 g/kg Hexamethoxymethyl melamine (technical insoluble) (e.g. Luwipal 066*) 1-35 g/kg Silicone oil 12/12,500 y g/kg water (variable) Total - lOOOg EXAMPLE 19

Preparation of a typical colourant, provisionally termed- "Donanthren Yellow GC"

Pigment Yellow 16 4000g

Disperse Yellow 213 lOOOg

Silicone oil 200/12500 4750g Hexamethoxymethyl melamine 250g (technical, water insoluble)

(Luwipal 066) Total lOOOOg

The above ingredients were mixed together by simple stirring at room temperature until a homogeneous product was obtained. This composition is now ready for use in print pastes as the "colourant".

* Regd. Trade Mark of BASF AKTIENGESELLSCHAFT ** Made by DOW CORNING

EXAMPLE 20

A product, provisionally termed Product XPG, is prepared by stirring together at room temperature, until homogeneous, 9800g of hexamethoxymethyl melamine (technical, water insoluble) (Luwipal 066) and 200g of silicone oil 200/12500 Total lOOOOg This composition can be used as an additive to print paste to enhance the softness of handle, the rub resistance and wet fastness properties of said print paste. EXAMPLE 21 lkg yellow print paste was produced by blending together at room temperature with a variable speed stirrer (0-3000 RPM) the following ingredients: Water 750g

Polyacrylic thickner 40g (Lutexal HP) "Urea 60g

Heliz ' arin Binder TW lOOg Product XPG (Example 20) lOg Yellow colourant as in Example 19 40g Total lOOOg

This paste was printed on 100% cotton fine woven fabric, 65/35 polyester/rayon, 50/50 polyester/cotton, non- chlorinated wool, polyester/cotton/lycra knitted fabric and 100% cotton towelling, through an 80 mesh flat bed-screen, on a Zimmer magnetic squeegee table, dried at 100°C and cured at 190° C for 60 seconds. ISO wash test 3 gave a rating of 4—5 and standard rub test by crock meter 10 rubs was 5. EXAMPLE 22 1 kg Black Print Paste

The following composition was blended together at room temperature, by stirring, until a homogenous paste was

- 43 - obtained: Water 717g

Polyacrylic Thickener (Lutexal HP) 40g Urea 60g

Helizarin Binder TW lOOg Silicone 200/12,500 35g Hexamethoxymethyl melamine (technical, water insoluble) (Luwipal 066) lOg Helizarin Black HDT 20g Helizarin Blue RT 9g Helizarin br.Red BBT 4g Cellestren* Yellow 5G 5g lOOOg

This paste was printed on 100% cotton, and 65/35 polyester/rayon fabrics, through a 80 mesh flatbed screen, on a Zimmer magnetic squeegee table, dried at 100°C and cured at 190°C for 60 seconds. EXAMPLE 23

The same procedure was used as in Example 21 but using the following colours:

A) 45g/kg Aqueous preparation of Pigment Yellow 16

5g/kg Disperse Yellow 213 23 g/kg Aqueous preparation of Pigment Orange 34

2 gm/kg Disperse Yellow 213

C) 25g/kg Aqueous preparation of Pigment Red 146 20g/kg Aqueous preparation of Pigment Yellow 83

5g/kg Disperse Yellow 213

D) 25g/kg Aqueous preparation of Pigment Blue 15:3 20g/kg Aqueous preparation of Pigment Blue 15:1

5g/kg Aqueous preparation of Pigment Violet 23 lOg/kg Aqueous preparation of Pigment Blue 15:3 lOg/kg Aqueous preparation of Pigment Green 36 25g/kg Aqueous preparation of Pigment Green 36 25g/kg Aqueous preparation of Pigment Green 7

Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

G) 45g/kg Aqueous preparation of Pigment Violet 23

5g/kg Cellestren Red 2G* H) lOg/kg Aqueous preparation of CI Pigment Yellow 83 12.5g/kg Aqueous preparation of CI Pigment Black 1 18.8g/kg Aqueous preparation of CI Pigment Blue

15:1 lOg/kg Aqueous preparation of CI Pigment Red 146 All gave the same good fastness properties as in Example 21. EXAMPLE 24 lkg matt white print paste, suitab.le to be printed on coloured ground shades, was prepared by blending together the following ingredients:

Water 555g Polyacrylic thickener (Lutexal HP) 40g Acrylic Binder Dispersion

(Helizarin Binder TW) 150g

Silicone oil Siloxane DC 200/12500 50g

Hexamethoxymethyl melamine (Luwipal 066) 5g

Aqueous preparation of rutile Titanium

Dioxide eg. Helizarin white RFKl 200g

Total lOOOg This paste was printed dried and cured as in Example 21, but on 50/50 polyester/cotton sheeting fabric. The same good fastness properties were obtained. EXAMPLE 25

The same procedure was used as in Example 21 but using the following formulation:

- 45 - Water 685g

Urea 60g

Thickener (Lutexal HP) 40g

Hexamethoxymethyl melamine (technical, water insoluble)

(Luwipal 066) lOg

Hexylene glycol 30g

Silicone oil 200/12500 35g

Helizarin Binder TW lOOg Disperse Yellow 213 30g

Pigment Red 146 lOg

Total lOOOg The same good fastness properties as in Example 21 were obtained. Very soft prints with very good fastness properties were obtained.

All the materials produced in the above examples (for which detailed fastness figures are not provided) were tested, with emphasis on light,, rubbing and wash fastness a°d assessed visually.

The following methods, issued by the Standards Association of Australia, were used to test all the samples ( except No. 14 ) : light fastness AS 2001.4.21 ( VTF lamp) rub fastness AS 2001.4.3 (lOx and 100 x extended rubbing) washing AS 2001.4.15 also ISO 3 (International Standards

Organization) - dry cleaning AS2001.4.16

The materials produced in Example 14 were tested according to the International Standards Organization specifications. (It is to be noted that the AS standards are based on the ISO specifications but adapted to the more stringent climatic conditions prevailing in Australia and required particularly for meeting Government contracts requirements ) . * Regd. Trade Mark of BASF AKTIENGESELLSCHAFT

- 45a - In all cases the materials tested at least met and often surpasses commercial standard requirements as practised in Australia, Europe, U.S.A. and other developed markets .

- 46 - EXAMPLE 26

COMPARATIVE EXAMPLE - Illustrating Processing Advantages

Dyeing or printing of PE/Cotton with disperse and VAT dyes / compared to Invention

Typical Process: Invention

Pre-Treatment: Desizing Desizing

Caustic Extraction (optional) Not required

Bleaching Bleaching

Washing Washing

Drying Drying Dyeing

Pad Vat and Disperse Dyes Pad dyestuff and cross linking agents, etc.

Dry *Dry

Heatfix, say 60 sec. 210°C Heatfix, say 3-4 minutes, 1.70°C, or

5-60 sec. , 190°C-210°C or HT-steam, say, 10-15 min. 185°C

Pad with NaOH and Hydrosulphite Steam, say 60 seconds. 102°C

Rinse, oxidize, soap, rinse

Dry

*Optional, but precautions should be that excess liquor is removed and does not cause migration/sagging.

Printing by conventional process

Similar to dyeing, but specialised steamer (Flash Ager) required - not available or not installed in Australia at present. With the invention, however, no such specialised machinery is needed.

- 47 -

EXAMPLE 27

Dyeing or printing of PE/Cotton with disperse and reactive dyestuffs compared to invention

Typical Process: Invention

Pre-Treatment:

Desizing Desizing

Caustic Extraction Not required

Bleaching Bleaching

Washing Washing

Drying Drying

Dyeing

Pad Disperse Dyes Pad dyestuffs and cross linking agent, etc.

Dry Dry

Heatfix, say 60 sec. 215°C Heatfix, say 3-4 minutes,. 170°C, or 5-60 sec, 190°C-210°C or HT—steam, say, 10-15 min. at 185°C

Reduction clear (hydrosuphite/ caustic) Not required Wash Not required Dry Not required

Repad with reactives Not required Fix Not required Wash Not required Dry Not required

Printing

Not practical - generally Highly practical - non reproducible results reproducible results, since both fibres coloured with same colourant.

SUBSTITUTE SHEET

- 48 -

TABLE I I

EXAMPLE OF ELEGANT PROCESS SEQUENCES

For dyeing a ground shade on P/C 50/50 light-weight bed sheeting, followed by printing and resin finishing:

A. 1. Pad ground shade with invention and dry (e.g. infra red pre-dry followed in one operation by cylinder or hot flue drying). 2. Print with invention or pigments; dry in one operation. 3. Apply crease-resist resin by foam and fix ground shade, prints, and resin in one operation, say at 190°C, 15-17 seconds.

B. 1. Prepad colour/invention plus crease resist resin, e.g. Fixapret COC from the same bath, dry.

2. Print with invention or conventional pigment paste.

3. Heat fix ground shade, resin and print in one stenter pass.

TABLE 1 CONTINUOUS DYEING OR PRINTING OF PE/COTTON

PRE-TREATMENT CONVENTIONAL CELLESTREN DISPERSE/VAT INVENTION

PIGMENTS SYSTEM

( Resizing yes very necessary yes yes G

01 ω

-4 Caustic Extraction optional very necessary desirable no advantage km

H

Bleaching yes yes yes yes jf¥| trnojra Washing yes yes yes yes

« Drying yes yes yes yes

Dyeing:

Pad Dyestuffs Helizarin Cellestren Palanil wide selection, Indanthren except cationic

Dry yes yes yes Optional. Can be combined with heat fixation

TABLE 1(Continued) CONTINUOUS DYEING OR PRINTING OF PE/COTTON

PRE-TREATMENT CONVENTIONAL CELLESTREN DISPERSE/VAT INVENTION PIGMENTS SYSTEM

Fix Dyestuffs Dry heat 150°C, Dry heat: 215°C Dry heat: 215°C Dry heat, 190oC. 4.5 min. or 30 seconds 30-45 seconds 5-7 seconds HT-steam, 175°C, HT steam 1* 15 min. 15 minutes

Repad Chemicals No No Yes No e.g. Hydro Caustic -p- Pad Steam Fix No No Yes No pi say 60 min. 102°C

Rinse, oxidise, No Remove Glyecin* Yes No soap, rinse (fixing agent) CD and unfixed resi¬ dues by washing

Dry No Yes Yes No

Printing Similar Similar - Glyezin • Similar, but Similar CD can be added to Flash Ager

- 50 - TABLE III Chemical Glossary of Trade Marks Product Cas* No. Description

5

1. Lutexal HP 26100-47-0 ammonium acrylate, polymer with acrylamide (C 3 H 5 O) χ

(C 3 H 4 0 2 H 3 N) ]c 64742-96-7 solvent naptha (petroleum) ln heavy aliphatic ( f not specified) 104376-61-6 1,2, 3-propanetriol, polymer with

(chloromethyl) oxirane and ιg oxirane, omo-9-octadecenyl ether, (Z) 37295-87-1 isononylphenol, ethoxylated (water) (C 2 H 4

20

2. Acrisint 311 9003-01-4 acrylic acid, homopolymer

< C 3 H 4°_ >X

3. Eulysin WP 3002-18-4 triethanolamine triacetate 25 C i2 H 2i N ° 6

4. Primasol AMK 25085-02-3 acrylamide, polymer with sodium acrylate

(C 3 H 5 NO.C 3 H 4 0 2 .Na) χ

30 25987-30-8 acrylic acid, polymer with acrylamide, sodium salt (C 3 H 5 0.C 3 H 4 0 2 ) χ . χ Na

5. Luprintol PE 82471-42-9 poly( oxy-1 , 2-ethanediyl ) ,

35 α-2-(2,4-DI=methyl- phenoxy)-l-( 2, 4-dimethyl- phenoxy)=methyl ethyl-,

- 51

w-hydroxy- (mf not specified)

Helizarin Brill.Pink BT 1047-16-1 CI.** pigment violet 19 Aqueous preparation 22094-93-5 C.I. pigment yellow 081 based on : 6358-30-1 C.I. pigment violet 23

Siloxane 200/12500 to 200/1000 63148-62-9 Siloxanes and silicones, di-Me.

8. Luwipal 066 3089-11-0 1,3,5-triamine, N,N,N' , N',N'',N'' hexamethoxy¬ methyl melamine

Cymel 303 hexakis (methoxymethyl )-

C 1 5 H 3 0 N 6 °6

Setamol WS 9084-06-4 napthalenesulfonic acid, polymer with formaldehyde sodium salt ( C 1, U. Ho. OJ, S .CH 2,.

O) .xNa

Ortolan B Brown 3R C.I. acid brown 33

Cellest en Yellow 5G Liquid 64611-92-3 Butanamide, -( 2 , 4- dimethoxyphenyl )-3-oxo-2- [ [2-(3-phenyl-l,2-4- oxadiazol-5-yl )phenyl ]A20 ;

SUBSTITUTE SHEET

- 51a -

Helizarin Red GR 6535-46-2 C.I. pigment red 112

(aqueous preparation of '

* Chemical Abstracts System.

** Colour index as published by: Society of Dyers and

Colourists U.K. and American Association of Textile Chemists and Colourists.

SUBSTITUTE SHEET