IP Library Granted Patent US 7,575,647
Granted Patent B2
US 7,575,647 · App. 11/528,769 · Granted Aug 18, 2009

Corrosion-resistant fuel tank

Assignee: The Louis Berkman Co.
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Quick Facts
Patent No.
US 7,575,647
App. No.
11/528,769
Granted
Aug 18, 2009
Kind
B2
Abstract

A fuel tank that is at least partially formed of a corrosion-resistant coated metal that is coated with a corrosion resistant alloy. The corrosion resistant alloy is a tin metal alloy or a tin and zinc metal alloy. The corrosion resistant alloy may also include one or more metal additives to improve the coating process and/or to alter the properties of the tin or tin and zinc metal alloy.

Claims (26)

1. A method of forming a corrosion-resistant metal strip for use in the at least partial formation of a petroleum receptacle comprising:

a) providing a metal strip having a top and bottom surface;

b) coating the top and bottom surface of said metal strip with a corrosion-resistant tin-zinc alloy by a hot dip process, said corrosion-resistant tin-zinc alloy forming a multi-phase alloy upon cooling which resists corrosion by petroleum products, said corrosion-resistant tin-zinc alloy comprising tin, zinc and metal additive, at least about 95 weight percent of said corrosion-resistant tin-zinc alloy comprised of tin and zinc, said zinc content of said corrosion-resistant tin-zinc alloy being up to about 30 weight percent, said metal additive including a metal selected from the group consisting of chromium, copper, lead, magnesium, manganese, molybdenum, nickel, silicon, titanium and mixtures thereof;

c) forming a heat created intermetallic layer between said strip and said corrosion-resistant tin-zinc alloy and,

d) controlling a coating thickness of said corrosion-resistant tin-zinc alloy on said top and bottom surface of said strip such that the average coating thickness on each surface of said strip is up to about 1270 microns.

2. The method as defined in claim 1 , including the step of plating a nickel layer on said top and bottom surface of said metal strip prior to said corrosion-resistant tin-zinc alloy being applied to said metal strip, said nickel layer having an average thickness on each side of said metal strip of up to about 3 microns, said coating thickness of said corrosion-resistant tin-zinc alloy being greater than the thickness of said plated nickel layer.

3. The method as defined in claim 2 , said heat created intermetallic layer having an average thickness of less than about 3 microns, said heat created intermetallic layer including iron, tin and zinc.

4. The method as defined in claim 3 , wherein said heat created intermetallic layer includes at least one additional metal selected from the group consisting of aluminum, lead, magnesium, manganese, nickel, titanium and mixtures thereof.

5. The method as defined in claim 1 , said heat created intermetallic layer having an average thickness of less than about 3 microns, said heat created intermetallic layer including iron, tin and zinc.

6. The method as defined in claim 1 , wherein said heat created intermetallic layer includes at least one additional metal selected from the group consisting of aluminum, lead, magnesium, manganese, nickel, titanium and mixtures thereof.

7. The method as defined in claim 1 , wherein said corrosion-resistant tin-zinc alloy includes at least one metal selected from the group consisting of magnesium, aluminum, manganese, lead, copper, chromium, molybdenum, nickel, silicon, titanium, or mixtures thereof.

8. The method as defined in claim 1 , wherein said hot dip process includes at least partially immersing said strip into a molten bath of corrosion-resistant tin-zinc alloy.

9. The method as defined in claim 1 , including the step of controlling the cooling rate of said hot dip coating to regulate the crystal size formation in the corrosion-resistant tin-zinc alloy.

10. A method of forming a corrosion-resistant metal strip that is used in the at least partial formation of a petroleum receptacle comprising:

a) providing a metal strip having a top and bottom surface, said metal strip having an average thickness of about 127-5080 microns;

b) coating the top and bottom surface of said metal strip with a corrosion-resistant tin-zinc alloy by a hot dip process to form a heat created intermetallic layer between said surfaces of said metal strip and said corrosion-resistant tin-zinc alloy, said corrosion-resistant tin-zinc alloy forming a multi phase alloy upon cooling which resists corrosion by petroleum products, at least about 90 weight percent of said corrosion-resistant tin-zinc alloy comprised of tin and zinc, said zinc content of said corrosion-resistant tin-zinc alloy being up to about 30 weight percent, said heat created intermetallic layer having an average thickness of less than about 10 microns and including iron, nickel, tin and zinc; and,

c) controlling a coating thickness of said corrosion-resistant tin-zinc alloy on said top and bottom surface of said metal strip such that the average coating thickness on each surface of said metal strip is about 2.5-1270 microns.

11. The method as defined in claim 10 , wherein said heat created intermetallic layer includes at least one additional metal selected from the group consisting of aluminum, copper, lead, magnesium, manganese, silicon, titanium and mixtures thereof.

12. The method as defined in claim 11 , wherein said corrosion-resistant tin-zinc alloy includes at least one metal additive selected from the group consisting of aluminum, chromium, copper, lead, magnesium, manganese, molybdenum, nickel, silicon, titanium and mixtures thereof.

13. The method as defined in claim 12 , including the step of plating a nickel layer on said top and bottom surface of said metal strip prior to said corrosion-resistant tin-zinc alloy being applied to said metal strip, said nickel layer having an average thickness on each side of said metal strip of up to about 3 microns, said coating thickness of said corrosion-resistant tin-zinc alloy being greater than the thickness of said plated nickel layer.

14. The method as defined in claim 13 , including the step of forming a heat created intermetallic layer between said strip and said corrosion-resistant tin-zinc alloy, said heat created intermetallic layer having an average thickness of less than about 3 microns, said heat created intermetallic layer including iron, tin and zinc.

15. The method as defined in claim 10 including the step of plating a nickel layer on said top and bottom surface of said metal strip prior to said corrosion-resistant tin-zinc alloy being applied to said metal strip, said nickel layer having an average thickness on each side of said metal strip of up to about 3 microns, said coating thickness of said corrosion-resistant tin-zinc alloy being greater than the thickness of said plated nickel layer.

16. The method as defined in claim 10 , including the step of forming a heat created intermetallic layer between said strip and said corrosion-resistant tin-zinc alloy, said heat created intermetallic layer having an average thickness of less than about 3 microns, said heat created intermetallic layer including iron, tin and zinc.

17. The method as defined in claim 10 wherein said corrosion-resistant tin-zinc alloy includes at least one metal selected from the group consisting of magnesium, aluminum, manganese, lead, copper, chromium, molybdenum, nickel, silicon, titanium, or mixtures thereof.

18. The method as defined in claim 10 , wherein said hot dip process includes at least partially immersing said metal strip into a molten bath of corrosion-resistant tin-zinc alloy.

19. The method as defined in claim 10 , including the step of controlling the cooling rate of said hot dip coating to regulate the crystal size formation in the corrosion-resistant tin-zinc alloy.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 26, 2012
From: THE LOUIS BERKMAN LLC WEST VIRGINIA D/B/A FOLLANSBEE STEEL; THE LOUIS BERKMAN COMPANY
To: REVERE COPPER PRODUCTS, INC.
Reel/Frame 028641/0096 →
SECURITY AGREEMENT Recorded Jul 5, 2012
From: REVERE COPPER PRODUCTS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 028553/0405 →
Continuity (255)
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Continuation In Part 0817552300
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Continuation In Part 0837353300 · Jan 17, 1995
Continuation 0825487500 · Jun 6, 1994
Division 0820940000
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Continuation In Part 0833833700 · Nov 14, 1994
Division 0822909700 · Apr 18, 1994
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Continuation In Part 0860407800 · Feb 20, 1996
Division 0843804200 · May 8, 1995
Continuation In Part 0833838600 · Nov 14, 1994
Continuation 0817552300
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Continuation In Part 0892962300
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Division 0843804200
Continuation In Part 0834136500
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Continuation 1152876900
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Division 0843804200
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Continuation In Part 0898098500 · Oct 20, 1997
Continuation 0863617900 · Apr 22, 1996
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Continuation 0815302600 · Nov 17, 1993
Division 0785866200
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Continuation In Part 0907131600 · May 1, 1998
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Continuation In Part 0796740700 · Oct 26, 1992
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Continuation In Part 0785866200
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Continuation In Part 0910057800 · Jun 19, 1998
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Continuation In Part 0916157300 · Sep 28, 1998
Continuation In Part 0892962300
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Continuation In Part 0892962300
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Continuation 0815302600
Division 0785866200
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Continuation 1085445100
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Continuation In Part 0942016500 · Oct 18, 1999
Continuation In Part 0892962300
Continuation In Part 0860407400
Division 0855145600
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Continuation 1085445100
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Continuation In Part 0942016500 · Oct 18, 1999
Continuation In Part 0916158000
Continuation In Part 0892962300
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Division 0855145600
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Continuation In Part 0837353300
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Continuation In Part 0815437600
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Continuation 1152876900
Continuation 1085445100
Continuation 1014414800
Continuation 0963482800
Continuation In Part 0892962300
Continuation In Part 0860407400
Division 0855145600
Division 0840292500
Continuation In Part 0837353300
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Division 0820940000
Continuation In Part 0815437600
Continuation 0804264900
Continuation 1152876900
Continuation 1085445100
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Continuation In Part 0892962300
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