Method for producing a lubricious amorphous carbon film

Coating processes – Coating by vapor – gas – or smoke – Carbon or carbide coating

Reexamination Certificate

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C427S249700, C427S255290

Reexamination Certificate

active

06514565

ABSTRACT:

FIELD OF THE INVENTION
The present invention is directed to methods for increasing the lubricity of a film of amorphous carbon, to amorphous carbon films formed by such methods, and to anodized aluminum surfaces sealed with those films.
BACKGROUND OF THE INVENTION
Diamond-like carbon—or “amorphous carbon”—is known to have a low coefficient of friction. As a result, amorphous carbon commonly is used to coat a variety of materials which are exposed to friction and wear during use.
Aluminum is commonly used to manufacture many different articles, some of which are exposed to substantial friction and wear during use. Aluminum tends to resist corrosion because a substantially transparent “natural” oxide layer forms at the surface of aluminum upon exposure to air. The oxide layer prevents direct contact between the underlying aluminum and corrosive materials in the surrounding environment. Unfortunately, this “natural oxide” layer does not always have a uniform thickness. Because of this, natural oxides generally are removed from aluminum products, and the product then is “anodized,” or controllably oxidized, to provide a protective oxide layer with better quality and substantially greater thickness.
Anodizing processes generally involve the use of a bath containing an electrolyte, such as sulfuric acid, oxalic acid, chromic acid, phosphoric acid, or combinations thereof, with or without certain addition agents. The aluminum workpiece generally is used as an anode and a component made of steel or other suitable material is used as a cathode. The anode and cathode are immersed in the electrolyte solution, and a direct or alternating current is passed through the electrolyte.
Although anodizing, itself, imparts satisfactory corrosion resistance to aluminum components, anodizing also suffers from several disadvantages. One disadvantage is the porosity of the oxide formed at the surface of the aluminum component. A typical anodizing treatment results in a porous polygonal cellular microstructure superimposed on a thin (less than 100 nm) “barrier” layer. The diameter of the pores in the microstructure can be as small as 10 nm. The cell dimension can be as small as about 30 nm.
The pores formed at the surface of anodized aluminum are undesirable because they tend to serve as corrosion sites, which give rise to deep pits. Deep pits in the anodized surface often result in “blooms” or white spots on the surface of the aluminum. In order to protect anodized aluminum from corrosion, especially in halide or salt-containing environments, the pores of the aluminum oxide customarily are sealed by immersion in a hot solution containing hexavalent chromium. A complex chemical reaction occurs, forming a solid compound of chromium, aluminum, oxygen, and some hydrogen within the pores of the anodized surface. This solid compound seals the pores against penetration by corrosive agents.
Unfortunately, hexavalent chromium solutions are toxic. The use and disposal of hexavalent chromium solutions therefore creates environmental concerns. Environmental concerns, and their associated costs, have created an urgent need for alternative sealing processes that are free from such hazards. The need for alternative sealing processes is intensified because the process used to form a chromate sealant does not purge the pores of the aluminum before or while the chromate sealant is formed. As a result, at least some gas remains in many of the pores, serving as corrosion sites.
Some have attempted to develop alternate sealing processes using other chemical solutions. Until recently, these alternative chemical solutions have not been entirely successful. The-present invention provides an effective method for sealing anodized aluminum surfaces with a sealant which is not only non-toxic, but even more lubricious than previous amorphous carbon coatings.
SUMMARY OF THE INVENTION
The present invention provides a film of amorphous carbon comprising as an integral component an effective amount of a lubricity-increasing agent. In a preferred embodiment, the film is disposed on and substantially fills the pores in an anodized aluminum surface.


REFERENCES:
patent: 3715211 (1973-02-01), Quaintance
patent: 3734784 (1973-05-01), Bereday et al.
patent: 4022925 (1977-05-01), Reuter et al.
patent: 4225398 (1980-09-01), Hasegawa et al.
patent: 4483751 (1984-11-01), Murayama et al.
patent: 4537793 (1985-08-01), Kehrer et al.
patent: 4660297 (1987-04-01), Danielson
patent: 5000831 (1991-03-01), Osawa et al.
patent: 5102689 (1992-04-01), Bachmann et al.
patent: 5116592 (1992-05-01), Weinberg
patent: 5230929 (1993-07-01), Caporiccio et al.
patent: 5238705 (1993-08-01), Hayashi et al.
patent: 5249554 (1993-10-01), Tamor et al.
patent: 5275850 (1994-01-01), Kitoh et al.
patent: 5279866 (1994-01-01), Bourget et al.
patent: 5391407 (1995-02-01), Dearnaley
patent: 5449924 (1995-09-01), Hur et al.
patent: 5501745 (1996-03-01), Dearnaley
patent: 5506446 (1996-04-01), Hoffman et al.
patent: 5512330 (1996-04-01), Dearnaley
patent: 5523121 (1996-06-01), Anthony et al.
patent: 5728465 (1998-03-01), Dorfman et al.
patent: 5740941 (1998-04-01), Lemelson
patent: 5786038 (1998-07-01), Conley et al.
patent: 5858477 (1999-01-01), Veerasamy et al.
patent: 5863621 (1999-01-01), Dearnaley et al.
patent: 6299946 (2001-10-01), Toyoguchi et al.
patent: 49-5822 (1974-02-01), None
C.J. Bedell et al., “Diamond-like Carbon From the Ion-Beam Decomposition of Polyphenyl Ether”,Applications of Diamond Films&Related Materials, 1991, pp. 833-838.
Malcolm W. Browne, “Diamond Coating May be Future of Tool Manufacture”,San Antonio Express-News, Apr. 1, 1996 No page No.
G. Dearnaley, “Materials Science Aspects of Ion Beam Technology”,Surface Engineering, 1991, vol. 7, No. 2, pp. 127-136.
Gerhard Herzberg, “III. Electronic Spectra and Electronic Structure of Polyatomic Molecules”,Molecular Spectra and Molecular Structure, 1950, D. Van Nostrand Company, pp. 488-512.
Keith O. Legg, “Surface Engineering with Ion-Assisted Coatings”,Nuclear Instruments and Methods in Physics Research, 1987, B24/25, pp. 565-567.

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