CUTTING END MILL
20200230714 ยท 2020-07-23
Inventors
Cpc classification
B23C5/10
PERFORMING OPERATIONS; TRANSPORTING
B23B2251/40
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An object of the present invention is to provide helically fluted end mill with a diamond cutting surface. More particularly, it is an object of the present invention to provide a helically fluted end mill with helical grooves in the flutes that are filled with compacted polycrystalline diamond that can provide an effective cutting length based on the appropriate relationship between cutting length, diameter, the number of flutes, angle, and the number of polycrystalline diamond segments per flute.
Claims
1. A cutting end mill comprising A cutting end and a base end and a body having a cylindrical sidewall therebetween and a longitudinal central axis; A groove across the cutting end; At least one flute on the sidewall penetrating the body and extending from the cutting end toward base end; A groove adjacent to an edge of each flute spirally extending along the sidewall; polycrystalline materials affixed onto the groove characterized in that polycrystalline materials are formed into a plurality of segments having different angles and lengths per flute is in the number of 2 to 30 and wherein a spiral angle is in the range of 5 to 60 degree thereby providing the maximum cutting length of 128 mm.
2. A cutting end mill according to claim 1 wherein a plurality of polycrystalline diamond segments mounted on flutes are arranged in a two-dimensional array configuration wherein each segment is positioned along a flute in a continuous manner thereby forming a horizontal array and each segment on one flute is substantially aligned to other corresponding segment in any adjacent flutes with a displacement of the alignment in the range of 0.3-1.0 mm. thereby forming a vertical array.
3. A cutting end mill according to claim 2 wherein a displacement of the alignment is preferably in the range of 0.5-1.0 mm.
4. A cutting end mill according to claim 1, wherein the width of a segment is in the range of 1.5-5 mm. and the length is in the range of 3.2-18 mm.
5. A cutting end mill according to claim 4 wherein the width of a segment is in the range of 2-3 mm.
6. A cutting end mill according to claim 4 wherein the length is in the range of 3.2-10.8 when the cutting diameter is in the range of 8-10, the cutting length is in the range of 0-40, and the helix angle is in the range of 5-60 degrees.
7. A cutting end mill according to claim 4 wherein the length is in the range of 4-10.8 when the cutting diameter is in the range of 10-16, the cutting length is in the range of 0-64, and the helix angle is in the range of 5-60 degrees.
8. A cutting end mill according to claim 4 wherein the length is in the range of 4.8-10.8 when the cutting diameter is in the range of 16-18, the cutting length is in the range of 0-72, and the helix angle is in the range of 5-60 degrees.
9. A cutting end mill according to claim 4 wherein the length is in the range of 6.4-12 when the cutting diameter is in the range of 18-22, the cutting length is in the range of 0-88, and the helix angle is in the range of 5-60 degrees. A cutting end mill according to claim 4 wherein the length is in the range of 6.4-14.4 when the cutting diameter is in the range of 22-25, the cutting length is in the range of 0-100, and the helix angle is in the range of 5-60 degrees.
10. A cutting end mill according to claim 4 wherein the length is in the range of 7.2-18 when the cutting diameter is in the range of 25-32, the cutting length is in the range of 0-128, and the helix angle is in the range of 5-60 degrees.
11. A cutting end mill according to claim 1, wherein the said tool has a rake angle up to 12 degrees and preferably in the range between 5-7 degrees.
12. A cutting end mill according to claim 1, wherein the maximum number of flutes is 12.
13. A cutting end mill according to claim 1, wherein polycrystalline materials are PCD or PCBN brazed or soldered onto the groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0015] For a better understanding of the preferred embodiment and to show how it may be performed, it will now be described in more detail by way of examples only with reference to the accompanying drawings. The parts shown in the drawings will be represented by the referenced number. The description, however, does not imply to any limitation, and the scope of the invention will be in accordance with the claims attached herein.
[0016] A cutting end mill as disclosed comprises a cutting end and a base end and a body having a cylindrical sidewall therebetween and a longitudinal central axis; a groove across the cutting end; at least one tlute on the sidewall penetrating the body and extending from the cutting end toward base end; a groove adjacent to an edge of each flute spirally extending along the sidewall; polycrystalline materials affixed onto the groove characterized in that polycrystalline materials are formed into a plurality of segments having different angles and lengths per flute is in the number of 2 to 30 and wherein a spiral angle is in the range of 5 to 60 degree thereby providing the maximum cutting length of 128 mm.
[0017] In one aspect, a plurality of polycrystalline diamond segments can be mounted on flutes and can be arranged in a two-dimensional array configuration wherein each segment is positioned along a flute in a continuous manner thereby forming a horizontal array and each segment on one flute is substantially aligned to other corresponding segment in any adjacent flutes thereby forming a vertical array. This embodiment can avoid the limitation found from the prior works in which a single piece of flat (two-dimensional) PCD segment cannot be brazed onto the carbide shank due to the flute's twisted and helical geometry. With this embodiment, there are multiple pieces of segment along one flute. However, from the research findings, the segment edge(s) that will be placed adjacent to another segment in order to form a cutting edge must be arranged in the manner that the segment edge of one flute does not exactly align with those of other adjacent flutes in the vertical array. Each segment on one flute should rather be substantially aligned to other corresponding segment in any adjacent flutes with a displacement of the alignment in the range of 0.3-1.0 mm. In such embodiment, a displacement of the alignment is preferably in the range of 0.5-1.0 mm.
[0018] Additionally, for the possible embodiment as mentioned above, the width of a segment should be configured in the range of 1.5-5 mm. and the length should be configured in the range of 3.2-18 mm. However, the preferable width of a segment is in the range of 2-3 mm. For the segment length, different preferable lengths can be used primarily depending on the cutting diameter, cutting length, and helix angle. For certain embodiments, the length can be in the range of 3.2-10.8 when the cutting diameter is in the range of 8-10, the cutting length is in the range of 0-40, and the helix angle is in the range of 5-60 degrees. The length can also be in the range of 4-10.8 when the cutting diameter is in the range of 10-16, the cutting length is in the range of 0-64, and the helix angle is in the range of 5-60 degrees. The length can also be in the range of 4.8-10.8 when the cutting diameter is in the range of 16-18, the cutting length is in the range of 0-72, and the helix angle is in the range of 5-60 degrees. The length can also be in the range of 6.4-12 when the cutting diameter is in the range of 18-22, the cutting length is in the range of 0-88, and the helix angle is in the range of 5-60 degrees. The length can also be in the range of 6.4-14.4 when the cutting diameter is in the range of 22-25, the cutting length is in the range of 0-100, and the helix angle is in the range of 5-60 degrees. The length can also be in the range of 7.2-18 when the cutting diameter is in the range of 25-32, the cutting length is in the range of 0-128, and the helix angle is in the range of 5-60 degrees. The findings from the experiments are incorporated as per the table shown in
[0019] Additionally, for the preferred embodiments, a cutting end mill in any of the above claims wherein the maximum number of flutes is 12. Polycrystalline materials according to these embodiments can be PCD or PCBN brazed or soldered onto the groove.
[0020] The finished product according to one of the embodiments is shown in
[0021] One aspect that distinguishes the end mills according to this invention and those currently available in the market is the radial rake angle. PCD pieces for normal PCD end mill are unmachined, therefore are flat (2-dimensional). PCD pieces for this present invention are machined to create a 3-dimensional geometry thereby providing the desired radial rake angle and spiral angle.
[0022] Several advantages can thus be appreciated from the invention as per this disclosure. These include the smaller gap between segments and the longer tool life when compared to carbide end mill. This present invention can also have hook or scoop on the rake face, which then leads to a better result with regard to the surface finish. Hence, there is lower cutting force. Under the characteristics of the relevant parameters found from the research, the effective cutting area can be maintained or enhanced and the flexibility in terms of the manufacturing process and usability is clearly improve while the cost of the components can be controlled.
[0023] It will be appreciated by persons skilled in the art that the present inventions are not limited by what has been particularly shown described hereinabove. Rather the scope of the present invention includes both combinations and sub-combinations of the features described hereinabove as well as modifications and variations thereof which would occur to a person of skill in the art upon reading the foregoing description and which are not in the prior art.
Best Mode
[0024] As disclosed in the details of the preferred embodiments as aforementioned.