Claims
- 1. A cutting tool for cutting a material, the tool comprising:
a cylindrical body having a cross-sectional diameter and a longitudinal rotating axis; a plurality of teeth disposed on a circumference of the body, each tooth having a cutting edge and separated by a flute; and wherein number of teeth is selected such that a ratio of the number of teeth to the diameter in millimeter (mm) is at least 0.75:1.
- 2. A cutting tool for cutting a material, the tool comprising:
a cylindrical body having a cross-sectional diameter and a longitudinal rotating axis; a plurality of teeth disposed on a circumference of the body, each tooth having a cutting edge and separated by a flute; and wherein the cylindrical body is rotated with a tooth pass frequency of at least 400 teeth-per-second.
- 3. A cutting tool for cutting a material, the tool comprising:
a cylindrical body having a cross-sectional diameter and a longitudinal rotating axis; a plurality of teeth disposed on a circumference of the body, each tooth having a cutting edge and separated by a flute; and wherein number of teeth is selected such that a ratio of the number of teeth to the diameter in millimeter (mm) is at least 0.75:1, and that the cylindrical body is rotated with a tooth pass frequency of at least 400 teeth-per-second.
- 4. A cutting tool for cutting a material, the tool comprising:
a cylindrical body having a cross-sectional diameter and a longitudinal rotating axis; a plurality of teeth disposed on a circumference of the body, each tooth having a cutting edge and separated by a flute; and wherein the tool is used for machining in a way that the material removal rates are about 65 cubic centimeters per minute per centimeter of flute length or higher (65 Cubic Centemeters/Min-Centemeter).
- 5. A cutting tool for cutting a material, the tool comprising:
a cylindrical body having a cross-sectional diameter and a longitudinal rotating axis; a plurality of teeth disposed on a circumference of the body, each tooth having a cutting edge and separated by a flute; and wherein number of teeth is selected such that a ratio of the number of teeth to the diameter in millimeter (mm) is at least 0.75:1, that the cylindrical body is rotated with a tooth pass frequency of at least 400 teeth-per-second, and that the tool is used for machining in a way that the material removal rates are about 65 cubic centimeters per minute per centimeter of flute length or higher (65 Cubic Centemeters/Min-Centemeter).
- 6. The cutting tool of claim 1 wherein the diameter is about 19 mm, the number of teeth is 21, and the ratio is 1.1:1.
- 7. The cutting tool of claim 1 wherein the cylindrical body is rotated with a tooth pass frequency in a range of 600 teeth-per-second to 900 teeth-per-second.
- 8. The cutting tool of claim 1 wherein the material is selected from Iron, Iron alloys, Steel, Steel alloys, Titanium, Titanium alloys, Nickel, Nickel alloys, power generation alloys, difficult to cut aerospace alloys and automotive alloys.
- 9. The cutting tool of claim 1 wherein at least one of the teeth includes a hole for circulating high pressure coolant.
- 10. The cutting tool of claim 1 wherein the cutting tool is selected from the group including an end mill, shell mill, and a face mill.
- 11. The cutting tool of claim 1 wherein the cylindrical body is made from a tool material selected from the group including high speed steel, tool steel, ceramic, and solid carbide.
- 12. The cutting tool of claim 1 wherein the teeth are formed from a material selected from the group including high speed steel, tools steel, ceramic, solid carbide, and indexable insert of the material.
- 13. The cutting tool of claim 1 wherein the cutting edge includes an edge preparation, and the edge preparation is selected from the group including a T-land edge, a sharp-edge radius, and a ground and honed edge.
- 14. The cutting tool of claim 1 further comprising a shank.
- 15. The cutting tool of claim 1 including a surface coating.
- 16. The cutting tool of claim 1 wherein the flutes are helically-shaped.
- 17. The cutting tool of claim 1 wherein a helix angle between the cutting edge and the longitudinal axis is from about 0 to about 60 degrees.
- 18. The cutting tool of claim 1 wherein the cylindrical body has a diameter of from about 6 to about 300 mm.
- 19. The cutting tool of claim 1 wherein the teeth are impregnated with a material selected from the group including: silicon carbide, aluminum oxide, diamond, cubic boron nitride, garnet, and zirconia.
- 20. The cutting tool of claim 1 wherein the plurality of teeth include a first tooth which makes a first cut in the material, and a second tooth which makes a second cut in the material; and
wherein a time between the first cut and the second cut using an equation: T=T(t=0)+[Ts−T(t=0)]{1−erf[X/{square root}4αt]}; wherein T is a transient temperature, T (t=0) is an initial temperature, Ts is a temperature after a first cutting pass by the cutting tool, erf is an error function, X is a distance into the material from a top surface, α is a thermal diffusivity of the material, and t is the time between the first cut and the second cut, such that heat softens the material and allows the second tooth to more easily cut the material.
- 21. A method of cutting a material, comprising the steps of:
providing a cutting tool comprising:
a cylindrical body having a cross-sectional diameter and a longitudinal rotating axis; a plurality of teeth disposed on a circumference of the body, each tooth having a cutting edge and separated by a flute; and wherein number of teeth is selected such that a ratio of the number of teeth to the diameter in millimeter (mm) is at least 0.75:1; making a first cut in the material using a first tooth of the cutting tool, such that an amount of heat is conducted into the material; making a second cut in the material using a second tooth of the cutting tool, before the heat dissipates from the material; and wherein the heat softens the material and allows the second tooth to more easily cut the material.
- 22. The method of claim 21 wherein time between the first cut and the second cut is determined by an equation:
- 23. The method of claim 21, further comprising a step of rotating the cylindrical body with a tooth pass frequency of at least 400 teeth-per-second.
- 24. The method of claim 21 further comprising a step of rotating the cylindrical body with a tooth pass frequency of in a range of 600 teeth-per-second to 900 teeth-per-second.
- 25. The method of claim 21, wherein the steps of making the first and second cuts are steps in a rough machining, whereby medium machining and finish machining are eliminated.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application is a Continuation-In-Part (CIP) patent application of U.S. patent application, Ser. No. 10/408,891, filed on Apr. 8, 2003, which claims priority of U.S. provisional patent application No. 60/370,777 filed Apr. 8, 2002; this application is also related to U.S. patent application, Ser. No. 10/408,966, filed on Apr. 8, 2003, which claims priority of U.S. provisional patent application No. 60/370,777 filed Apr. 8, 2002; the entire subject matters of which are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
|
60370777 |
Apr 2002 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10408891 |
Apr 2003 |
US |
Child |
10896783 |
Jul 2004 |
US |