Claims
- 1. A method of surface decarburizing a cemented carbide cutting tool, comprising the steps of:
- placing the cutting tool in a protective environment;
- heating the cutting tool to an elevated temperature of about 800.degree. C. while the cutting tool is in said protective environment; and
- maintaining the cutting tool at said elevated temperature for a time of about 60 minutes, wherein said protective environment comprises a controlled partial pressure of decarburizing gas.
- 2. A method of surface decarburizing a cemented carbide cutting tool, comprising the steps of:
- placing the cutting tool in a protective environment;
- heating the cutting tool to an elevated temperature of about 800.degree. C. while the cutting tool is in said protective environment; and
- maintaining the cutting tool at said elevated temperature for a time of about 60 minutes, wherein said protective environment is a gas selected from the group consisting of hydrogen, carbon dioxide, oxygen and mixtures thereof.
- 3. A method of surface decarburizing a cemented carbide microdrill, comprising the steps of:
- placing the microdrill in a protective environment;
- heating the microdrill to an elevated temperature of about 800.degree. C. while the microdrill is in said protective environment; and
- maintaining the microdrill at said elevated temperature for a time of about 60 minutes, wherein said protective environment comprises a controlled partial pressure of decarburizing gas.
- 4. A method of surface decarburizing a cemented carbide microdrill, comprising the steps of:
- placing the microdrill in a protective environment;
- heating the microdrill to an elevated temperature of about 800.degree. C. while the microdrill is in the protective environment; and
- maintaining the microdrill at said elevated temperature for a time of about 60 minutes, wherein said protective environment is a gas selected from the group consisting of hydrogen, carbon dioxide, oxygen and mixtures thereof.
- 5. A method of surface decarburizing a cemented carbide microdrill, wherein said microdrill includes:
- a drill body having a cutting tip, an axis of symmetry, and a plurality of flutes, wherein said flutes have a rake surface at said cutting tip, and
- said cutting tip includes a plurality of side blades between said flutes and joined at a web, a plurality of flank surfaces extending from an outer diameter of said cutting tip to said axis of symmetry and a plurality of primary cutting edges at the intersection of said flank surfaces with said rake surfaces,
- the method comprising the steps of:
- refining said primary cutting edges such that a radius surface extends from said flank surfaces to said rake surfaces;
- placing the microdrill in a protective environment;
- heating the microdrill to an elevated temperature of between 600.degree. C. and 1100.degree. C. while the microdrill is in the protective environment; and
- maintaining the microdrill at said elevated temperature for a time of between 15 and 120 minutes.
- 6. A method of surface decarburizing a cemented carbide microdrill, wherein said microdrill includes:
- a drill body having a cutting tip, an axis of symmetry, and a plurality of flutes, wherein said flutes have a rake surface at said cutting tip, and
- said cutting tip includes a plurality of side blades between said flutes and joined at a web, a plurality of flank surfaces extending from an outer diameter of said cutting tip to said axis of symmetry and a plurality of primary cutting edges at the intersection of said flank surfaces with said rake surfaces,
- the method comprising the steps of:
- refining said primary cutting edges to form an angular surface on the forward end of said rake surfaces;
- placing the microdrill in a protective environment;
- heating the microdrill to an elevated temperature of between 600.degree. C. and 1100.degree. C. while the microdrill is in the protective environment; and
- maintaining the microdrill at said elevated temperature for a time of between 15 and 120 minutes.
- 7. A method of surface decarburizing a cemented carbide microdrill, wherein said microdrill includes:
- a drill body having a cutting tip, an axis of symmetry, and a plurality of flutes, wherein said flutes have a rake surface at said cutting tip, and
- said cutting tip includes a plurality of side blades between said flutes and joined at a web, a plurality of flank surfaces extending from an outer diameter of said cutting tip to said axis of symmetry and a plurality of primary cutting edges at the intersection of said flank surfaces with said rake surfaces,
- the method comprising the steps of:
- refining said primary cutting edges to form an angular surface on the forward end of said rake surface, and a radius surface that extends from said angular surface to said flank surface;
- placing the microdrill in a protective environment;
- heating the microdrill to an elevated temperature of between 600.degree. C. and 1100.degree. C. while the microdrill is in the protective environment; and
- maintaining the microdrill at said elevated temperature for a time of between 15 and 120 minutes.
BACKGROUND OF THE INVENTION
This application is a continuation-in-part of U.S. application Ser. No. 08/151,801 filed on Nov. 15, 1993, now abandoned.
US Referenced Citations (30)
Foreign Referenced Citations (3)
Number |
Date |
Country |
A57-071714 |
May 1982 |
JPX |
A01-242764 |
Sep 1989 |
JPX |
A1678532 |
Sep 1991 |
SUX |
Non-Patent Literature Citations (2)
Entry |
Sidney H. Avner, Introduction to Physical Metallurgy, pp. 129-137, 415-421, 625-631 (1974). |
Modern Machine Shop, Jun. 1989, Mazoff, J., "Choose the Best Drill Point Geometry", pp. 66-67. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
151801 |
Nov 1993 |
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