Claims
- 1. A process of manufacturing razor blades of high corrosion resistance, including the steps of:
- annealing a strip of steel consisting of more than 0.45% and less than 0.55% by weight carbon, 0.4 to 1.0% by weight silicon, 0.5 to 1.0% weight manganese, 12 to 14% by weight chromium, and 1.0 to 1.6% by weight molybdenum, with the balance being iron and inevitable impurities, to obtain a carbide density of 100 to 150 particles per 100 square micron to provide an annealed strip of steel;
- austenitizing the annealed strip of steel continuously at a temperature of 1075.degree. to 1120.degree. C. to provide an austenitized strip of steel;
- cooling said austenitized strip of steel to a temperature between -60.degree. to -80.degree. C. for hardening same to provide a cooled strip of steel; and
- tempering said cooled strip of steel at a temperature of 250.degree. to 400.degree. C. to produce a tempered strip of steel having a Vickers hardeness of at least 620, wherein said tempered strip of steel has a residual austenite content that gradually decreases from a surface of said tempered strip of steel inwardly, said residual austenite content ranges from 24 to 32% at said surface of said tempered strip of steel and from 6 to 14% at a depth of 50 microns below said surface of said tempered strip of steel.
- 2. A process according to claim 1, wherein said carbide density of 100 to 150 particles per 100 square microns is produced by annealing in a continuous annealing process at 800.degree. to 840.degree. C. and a heating rate of at least. 15.degree. C./hr.
- 3. A process according to claim 1, wherein said strip of steel has a carbide density of 10 to 45 particles per 100 square microns after hardening and tempering.
- 4. A strip of steel of high corrosion resistance for manufacturing razor blades, said steel consisting essentially of more than 0.4% and less than 0.55% by weight carbon, 0.4 to 1.0% by weight silicon, 0.5 to 1.0% by weight manganese, 12 to 14% by weight chromium, and 1.0 to 1.6% by weight molybdenum, with the balance being iron and inevitable impurities, wherein said strip of steel is annealed to obtain a carbide density of 100 to 150 particles per 100 square microns, subsequently austenitized continuously at a temperature o 1075.degree. to 1120.degree. C., then cooled to a temperature between -60.degree. and -80.degree. C. for hardening same, and tempered at a temperature of 250.degree. to 400.degree. C. to produce a Vickers hardness of at least 620 and a carbide density of 10 to 45 particles per 100 square microns wherein said tempered strip of steel has a residual austenite content that gradually decrease from a surface of said tempered strip of steel inwardly, said residual austenite content ranges from 24 to 32% at said surface of said tempered strip of steel and from 6 to 14% at a depth of 50 microns below said surface of said tempered strip of steel.
- 5. Steel of high corrosion resistance, consisting essentially of more than 0.45% and less than 0.55% by weight carbon, 0.4 to 1.0% by weight silicon, 0.5 to 1.0% by weight manganese, 12 to 14% by weight chromium, and 1.0 to 1.6% by weight molybdenum, with the balance being iron and inevitable impurities, wherein said steel is annealed to obtain a carbide density of 100 to 150 particles per 100 square microns then hardened and tempered to produce a carbide density of 10 to 45 particles per 100 square microns, wherein said tempered steel has a residual austenite content that gradually decreases from a surface of said tempered steel inwardly, said residual austenite content ranges from 24 to 32% at said surface of said tempered steel and from 6 to 14% at a depth of 50 microns below said tempered steel surfaces.
- 6. A steel according to claim 5, wherein said carbide density of 10 to 45 particles per 100 square microns is produced by:
- a) hardening by austenitizing continuously at a temperature of 1075.degree. to 1120.degree. C. and cooling to a temperature between -60.degree. and -80.degree. C., and
- b) by tempering at a temperature of 250.degree. to 400.degree. C.
- 7. Steel as set forth in claim 5, consisting essentially of more than 0.48% and less than 0.52% by weight carbon, 0.45 to 0.60% by weight silicon, 0.7 to 0.85% by weight manganese, 13 to 14% by weight chromium, and 1.15 to 1.45% by weight molybdenum.
Priority Claims (1)
Number |
Date |
Country |
Kind |
90121538 |
Nov 1990 |
EPX |
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Parent Case Info
This is a continuation division, of application Ser. No. 699,120 filed Mar. 12, 1991, U.S. Pat. No. 5,275,672.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3575737 |
Carlen |
Apr 1971 |
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4180420 |
Sastri et al. |
Dec 1979 |
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Foreign Referenced Citations (1)
Number |
Date |
Country |
1279482 |
Jun 1972 |
GBX |
Continuations (1)
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Number |
Date |
Country |
Parent |
669120 |
Mar 1991 |
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