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A Coating System For Steel

Abstract: A coating system for steel, the coating system comprising a zinc based primary coat and an outer wherein the outer coat comprises a nanocomposite of polyurethane resin and modified clay.

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Notices, Deadlines & Correspondence

Patent Information

Application #
Filing Date
28 February 2008
Publication Number
42/2009
Publication Type
INA
Invention Field
CHEMICAL
Status
Email
Parent Application

Applicants

CROMPTON GREAVES LTD
CG HOUSE, DR ANNIE BESANT ROAD, WORLI, MUMBAI

Inventors

1. GHOSH SUSMITA
CROMPTON GREAVES LTD, ADVANCED MATERIAL & PROCESS TECHNOLOGY CENTRE, CG GLOBAL R&D CENTRE, KANJUR MARG(EAST), MUMBAI-400042.
2. JAISWAL RAJENDRA
CROMPTON GREAVES LTD, ADVANCED MATERIAL & PROCESS TECHNOLOGY CENTRE, CG GLOBAL R&D CENTRE, KANJUR MARG(EAST), MUMBAI-400042.
3. PATIL VIJAY
CROMPTON GREAVES LTD, ADVANCED MATERIAL & PROCESS TECHNOLOGY CENTRE, CG GLOBAL R&D CENTRE, KANJUR MARG(EAST), MUMBAI-400042.
4. SINGAL VIVEK
CROMPTON GREAVES LTD, ADVANCED MATERIAL & PROCESS TECHNOLOGY CENTRE, CG GLOBAL R&D CENTRE, KANJUR MARG(EAST), MUMBAI-400042.

Specification

FORM 2
THE PATENTS ACT, 1970
(39 OF 1970)
As amended by the Patents (Amendment) Act, 2005
&
The Patents Rules, 2003
As amended by the Patents (Amendment) Rules, 2006
COMPLETE SPECIFICATION
(See section 10 and rule 13)
TITLE OF THE INVENTION A coating system for steel
APPLICANTS
Crompton Greaves Limited, CG House, Dr Annie Besant Road, Worli, Mumbai 400 030, Maharashtra, India, an Indian Company
INVENTORS
Ghosh Susmita, Dr Jaiswal Rajendra, Patil Vijay and Dr Singal Vivek, Crompton Greaves Ltd, Advanced Material & Process Technology Centre, CG Global R&D Centre, Kanjur Marg (East), Mumbai 400042, Maharashtra, India, all Indian nationals
PREAMBLE TO THE DESCRIPTION
The following specification particularly describes the nature of this invention and the manner in which it is to be performed:

Field of Invention
The present invention relates to a coating system comprising a Zn containing primary coat and an outer coat comprising a nanocomposite of polyurethane and modified clay
Background
Polyurethane coatings are widely used for the protection of steel from corrosion. US 3447949 discloses a coating system for steel having a base coat comprising polyurethane resin, epoxy resin and titanium dioxide and an outer coat comprising polyurethane resin and iron oxide pigment. To improve the adhesion strength of the outer coat and also to improve the barrier properties of the coating, micaceous iron oxide is often applied as an intermediate coat to the base coat and the outer coat. However, the improvement in the adhesion strength on application of the intermediate coat is not usually high and also the impact strength, flexibility and peel strength of such coatings are low.
There is a need for a coating system for steel that has improved properties
Detailed Description
Accordingly the invention provides coating system for steel, the coating system comprising a zinc based primer coat and an outer coat comprising a nanocomposite of polyurethane resin and modified clay.


In one embodiment the invention provides a coating system for steel, the coating system comprising a zinc containing primary coat and an outer coat wherein the outer coat comprises a nanocomposite of polyurethane resin and modified clay.
In another embodiment, the invention provides a coating system for steel comprising a zinc containing primary coat and an outer coat, the outer coat comprising 50 to 80 % by weight of acrylic polyol resin, 0.8 to 4 % by weight of modified clay and 15% - 40% by weight of titanium dioxide.
In another embodiment, the invention provides a coating system for steel comprising a zinc containing primary coat, an outer coat comprising a nanocomposite of polyurethane resin and additionally one or more intermediate coat(s)
In another embodiment, the invention provides a coating system for steel comprising a zinc containing primary coat, an outer coat comprising a nanocomposite of polyurethane resin and additionally one or more intermediate coat(s) of micaceous iron oxide
In a further embodiment there is provided a steel coated with a zinc containing primary coat and an outer coat comprising a nanocomposite of a polyurethane resin and modified clay.
The protective coating of the invention comprises a zinc containing primary coat and an outer coat based on a nanocomposite of polyurethane resin and clay. An acrylic polyol


resin is used for the formation of the nanocomposite with clay. The clays useful for the preparation of nanocomposite include montmorillonite and other clay minerals from the montmorillonite group as well as those clay minerals capable of being expanded by intercalating with an organic modifier. The clay is first modified using organic modifiers and further the nanocomposite is formed by exfoliating the clay with an acrylic polyol resin.
The resin-clay nanocomposite used as the outer coat offers several advantages including improving the barrier properties of the coating thereby avoiding penetration of water to the surface of steel. Further, the nanocomposite outer coat adheres well to the primer coat as well as renders high impact strength, flexibility and solvent, chemical and corrosion resistance.
The coating system of the invention can be a two coat system or can comprise more than two coats. When the coating system is a two coat system, the coating system contain a primary coat of an epoxy primer containing 10-12% zinc and a secondary coat comprising a nanocomposite of unsaturated polyurethane resin and clay.
The invention is further illustrated by way of the following examples
Examples:
Example 1: Preparation of modified clay
50 g of montmorillonite clay was dispersed in 2 liters of distilled water at 80°C with stirring for 1 hr. 0.05 moles of the intercalating agent, CTAB (Cetyl trimethyl


ammonium bromide) and stearyl amine modified quaternary ammonium chloride was added to the solution. The resultant mixture was stirred for 4 hours. The solution was then filtered and the modified clay was washed with hot water for about 3-4 times to remove residual modifiers. The complete removal of the modifiers was confirmed by testing for halogen in the washings. The modified clay obtained was then dried in an air circulating oven at 100+ 10 °C for 8-10 hrs and ground into a fine powder which was then passed through 200 mesh sieve.
.Example 2: Preparation of nanocomposite coating composition
Sonication and high speed mixing was carried out on a mixture of acrylic polyol resin taken in 50% to 80 % by weight of the total formulation and montmorillonite taken in 0.8 to 4 % by weight of the total formulation. Sonication and high speed mixing were continued for two hours. Further, solvent, anti-settling agent, dispersing agent were added to the above mixture and the sonication was continued for another 15 -20 minutes. Titanium dioxide was added in 15% - 40% by wt. of the total formulation and the entire mixture was ball milled for 2 hours to get the coating composition.
Example 3: Application of the coating system of the invention
A primary coat of epoxy zinc phosphate primer (having zinc present to the extent of 10-12%) of thickness in the range of 50-70 micron was first applied by spray coating of steel. The primary coat was dried at room temperature for 8-10 hrs. Subsequently, an outer coat having a thickness of 50-70 microns was applied using the coating composition obtained by example 2. Further the outer coat was left for drying at room temperature for 8-10 hrs.


Example 4: Application of conventional coating system
A primary coat of thickness 70-80 micron, of a zinc rich epoxy primer (having zinc present to the extent of 85-90%) was applied by spraying. The primary coat was dried at room temperature for 8-10 hrs. Subsequently, an outer coat of micaceous iron oxide having thickness 100-120 micron was applied by spraying. The second coat was dried at room temperature for 8-10 hrs. Further an outer coat of aliphatic polyurethane having thickness 70-80 micron was applied by spraying and the coat was dried at room temperature for 8-10 hrs.
The adhesion strength, impact strength, flexibility, corrosion resistance, solvent and chemical resistance of the coatings of the invention as well as that of conventional coatings were measured. The adhesion strength was measured by following the ASTM D-4541 procedure. Impact strength of the coatings were determined by using the ASTM D- 2794 method. ASTM B-117 was used to study the corrosion resistance of the coated steel on exposure to salt spray. Solvent resistance was determined by treatment of the coated steel with acetone. Chemical resistance was determined by continuous dipping of the coated steel in 5% H2SO4. Chemical resistance was also determined by dipping of the coated steel in 5% NaOH. The properties of the conventional coating system and of the coating system of the invention are compared in table 1.


Table 1: Comparison of properties of the coating system of the invention with the conventional three coat system

From table 1, it is clear that the coating system of the invention have improved adhesion strength, impact strength, flexibility and solvent resistance as compared to the conventional three coat system. Moreover, coating system of the invention possess corrosion and chemical resistance comparable to the conventional coatings comprising three coats. Apart from this, the coating system of the invention can be used even without the intermediate micaceous iron oxide coat as required in the conventional three coat system, thereby considerably reducing the application time of

the coating. Consequently, the productivity of the coatings is increased besides reducing the cost and labour of application.

We Claim
1. A coating system for steel, the coating system comprising a zinc based primary coat and an outer coat wherein the outer coat comprises a nanocomposite of polyurethane resin and modified clay.
2. The coating system as claimed in claim 1 wherein the outer coat comprises 50 to 80 % by weight of acrylic polyol resin, 0.8 to 4 % by weight of modified clay and 15% - 40% by weight of titanium dioxide.
3. The coating system as claimed in claim 1 or 2 additionally comprising one or more intermediate coat(s).
4. The coating system as claimed in claim 3 wherein the intermediate coat comprises micaceous iron oxide.
5. Steel coated with the coating system as claimed in any one of the claims 1 to 4.






ABSTRACT
A coating system for steel, the coating system comprising a zinc based primary coat and an outer coat wherein the outer coat comprises a nanocomposite of polyurethane resin and modified clay.

Documents

Orders

Section Controller Decision Date
15 N. Ramchander 2014-03-27
15 N. Ramchander 2014-03-27
15 N. Ramchander 2014-03-27
15 N. Ramchander 2014-03-27
15 N. Ramchander 2014-03-28

Application Documents

# Name Date
1 405-mum-2008-abstract.doc 2018-08-10
1 405-MUM-2008_EXAMREPORT.pdf 2018-08-10
2 405-MUM-2008-REPLY TO EXAMINATION REPORT(15-4-2013).pdf 2018-08-10
3 405-mum-2008-form-3.pdf 2018-08-10
4 405-mum-2008-form-26.pdf 2018-08-10
5 405-mum-2008-form-2.pdf 2018-08-10
7 405-mum-2008-form-1.pdf 2018-08-10
8 405-MUM-2008-FORM 26(6-5-2010).pdf 2018-08-10
9 405-MUM-2008-FORM 2(TITLE PAGE)-(28-2-2008).pdf 2018-08-10
10 405-MUM-2008-FORM 18(6-5-2010).pdf 2018-08-10
11 405-MUM-2008-FORM 1 4-7-2008.pdf 2018-08-10
12 405-mum-2008-description (complete).pdf 2018-08-10
13 405-mum-2008-correspondence-received.pdf 2018-08-10
14 405-MUM-2008-CORRESPONDENCE(IPO)-(27-3-2014).pdf 2018-08-10
15 405-MUM-2008-CORRESPONDENCE(6-5-2010).pdf 2018-08-10
16 405-MUM-2008-CORRESPONDENCE(5-10-2009).pdf 2018-08-10
17 405-MUM-2008-CORRESPONDENCE 4-7-2008.pdf 2018-08-10
18 405-mum-2008-claims.pdf 2018-08-10
20 405-MUM-2008-CLAIMS(MARKED COPY)-(15-4-2013).pdf 2018-08-10
21 405-MUM-2008-CLAIMS(AMENDED)-(15-4-2013).pdf 2018-08-10
22 405-mum-2008-abstract.pdf 2018-08-10