Claims
- 1. A cutting tool comprising:
a blade portion having a sharpened edge and a body portion; wherein at least one of the blade portion and the body portion are formed from a bulk amorphous alloy material.
- 2. The cutting tool as described in claim 1, wherein the bulk amorphous alloy is described by the following molecular formula: (Zr,Ti)a(Ni,Cu, Fe)b(Be,Al,Si,B)c, wherein “a” is in the range of from about 30 to 75, “b” is in the range of from about 5 to 60, and “c” in the range of from about 0 to 50 in atomic percentages.
- 3. The cutting tool as described in claim 1, wherein the bulk amorphous alloy is described by the following molecular formula: (Zr,Ti)a(Ni,Cu)b(Be)c, wherein “a” is in the range of from about 40 to 75, “b” is in the range of from about 5 to 50, and “c” in the range of from about 5 to 50 in atomic percentages.
- 4. The cutting tool as described in claim 1, wherein the bulk amorphous alloy is described by the following molecular formula: Zr41Ti14Ni10Cu12.5Be22.5.
- 5. The cutting tool as described in claim 1, wherein the bulk amorphous alloy can sustain strains greater than 1.2% or more without any permanent deformation or breakage.
- 6. The cutting tool as described in claim 1, wherein the bulk amorphous alloy has a high fracture toughness of at least about 10 ksi-{square root}in.
- 7. The cutting tool as described in claim 1, wherein the bulk amorphous alloy has a high fracture toughness of at least about 20 ksi-{square root}in.
- 8. The cutting tool as described in claim 1, wherein the bulk amorphous alloy has a high hardness value of at least about 4 Gpa.
- 9. The cutting tool as described in claim 1, wherein the bulk amorphous alloy has a high hardness value of at least about 5.5 GPa.
- 10. The cutting tool as described in claim 1, wherein the bulk amorphous alloy is based on ferrous metals wherein the elastic limit of the bulk amorphous alloy is about 1.2% and higher.
- 11. The cutting tool as described in claim 1, wherein the bulk amorphous alloy is based on ferrous metals wherein the elastic limit of the bulk amorphous alloy is about 1.2% and higher, and the hardness of the amorphous alloys is about 7.5 Gpa and higher.
- 12. The cutting tool as described in claim 1, wherein the bulk amorphous alloy is described by a molecular formula selected from the group consisting of: Fe72Al5Ga2P11C6B4 and Fe72Al7Zr10MO5W2B15.
- 13. The cutting tool as described in claim 1, wherein the at least one portion formed from the bulk amorphous alloy is designed such that it does not undergo plastic deformation at strain levels of at least about 1.2%.
- 14. The cutting tool as described in claim 1, wherein the at least one portion formed from the bulk amorphous alloy is designed such that it does not undergo plastic deformation at strain levels of at least about 2.0%.
- 15. The cutting tool as described in claim 1, wherein the bulk amorphous alloy further comprises a ductile metallic crystalline phase precipitate.
- 16. The cutting tool as described in claim 1, further comprising a handle mounted onto the body portion.
- 17. The cutting tool as described in claim 16, wherein the handle is formed from a material selected from the group consisting of: a plastic, a metal and wood.
- 18. The cutting tool as described in claim 1, wherein at least the blade portion portion is formed from the bulk amorphous alloy.
- 19. The cutting tool as described in claim 1, wherein the sharpened edge is formed from a bulk amorphous alloy and has a radius of curvature of about 150 Angstroms or less.
- 20. The cutting tool as described in claim 1, wherein the blade portion is further coated with a high-hardened material selected from the group consisting of: TiN, SiC and diamond.
- 21. The cutting tool as described in claim 1, wherein the cutting tool is anodized.
- 22. The cutting tool as described in claim 1, wherein the at least one portion formed from the bulk amorphous alloy has a thickness of at least 0.5 mm.
- 23. The cutting tool as described in claim 1, wherein the cutting tool is in the form of one of either a knife or a scalpel.
- 24. The cutting tool as described in claim 1, wherein the sharpened edge is serrated.
- 25. A cutting tool comprising:
a blade portion having a sharpened edge and a body portion; wherein both the blade portion and the handle portion are formed from a bulk amorphous alloy material.
- 26. A method of manufacturing a cutting tool comprising:
forming blank from a bulk amorphous alloy; shaping the blank to form a blade portion and a body portion; and sharpening said blade portion to form a sharpened edge.
- 27. The method as described in claim 26, wherein the bulk amorphous alloy is described by the following molecular formula: (Zr,Ti)a(Ni,Cu, Fe)b(Be,Al,Si,B)c, wherein “a” is in the range of from about 30 to 75, “b” is in the range of from about 5 to 60, and “c” in the range of from about 0 to 50 in atomic percentages
- 28. The method as described in claim 26, wherein the bulk amorphous alloy is described by the following molecular formula: (Zr,Ti)a(Ni,Cu)b(Be)c, wherein “a” is in the range of from about 40 to 75, “b” is in the range of from about 5 to 50, and “c” in the range of from about 5 to 50 in atomic percentages.
- 29. The method as described in claim 26, wherein the bulk amorphous alloy is described by the following molecular formula: Zr41Ti14Ni10Cu12.5Be22.5.
- 30. The method as described in claim 26, wherein the bulk amorphous alloy further comprises a ductile metallic crystalline phase precipitate.
- 31. The method as described in claim 26, wherein the bulk amorphous alloy is based on ferrous metals wherein the elastic limit of the bulk amorphous alloy is about 1.2% and higher, and the hardness of the amorphous alloys is about 7.5 Gpa and higher.
- 32. The method as described in claim 26, wherein the bulk amorphous alloy is described by a molecular formula selected from the group consisting of: Fe72Al5Ga2P11C6B4 and Fe72Al7Zr10MO5W2B15.
- 33. The method as described in claim 26, wherein the both the blade and body portion are formed of a bulk amorphous alloy.
- 34. The method as described in claim 26, wherein the blade portion is sharpened such that the blade has a radius of curvature of about 150 Angstroms or less.
- 35. The method as described in claim 26, wherein the step of forming one of the blade portion and handle portion comprises one of the methods selected from the group consisting of: molding and casting.
- 36. The method as described in claim 26, wherein the step of forming one of the blade portion and body portion comprises cutting a blank from a sheet of bulk amorphous alloy formed by one of the methods selected from the group consisting of: molding, casting and thermoplastic casting.
- 37. The method as described in claim 26, further comprising coating the blade portion with a high hardness material selected from the group consisting of: SiC, diamond and TiN.
- 38. The method as described in claim 26, further comprising mounting a handle to the body portion of the cutting tool.
- 39. The method as described in claim 26, further comprising anodizing the cutting tool.
- 40. The method as described in claim 26, further comprising forming serrations on the sharpened edge.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is based on U.S. application Ser. No. 60/274,339, filed Mar. 7, 2001, the disclosure of which is incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60274339 |
Mar 2001 |
US |