DESIGN FOR INTERNAL COOLING PASSAGES FOR ROTATING CUTTING TOOLS
20200338649 ยท 2020-10-29
Assignee
Inventors
- Zhigang Wang (South Windsor, CT, US)
- Changsheng Guo (South Windsor, CT, US)
- Robert W. Day (Enfield, CT, US)
- Gordon Miller Reed (Plantsville, CT, US)
Cpc classification
B23C5/28
PERFORMING OPERATIONS; TRANSPORTING
B23B2250/125
PERFORMING OPERATIONS; TRANSPORTING
Y10T409/304032
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23D77/006
PERFORMING OPERATIONS; TRANSPORTING
B23B27/10
PERFORMING OPERATIONS; TRANSPORTING
B23B51/06
PERFORMING OPERATIONS; TRANSPORTING
Y10T408/455
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23B2251/40
PERFORMING OPERATIONS; TRANSPORTING
Y10T408/45
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A cutting tool comprising a tool body comprising a shank and a cutter opposite the shank, the body defining a length from a shank end to an end face opposite the shank end, a central axis extends along the length of the body; at least one tooth having a cutting edge, the cutting edge extending along the tooth from the shank to the end face; a flute formed adjacent the at least one tooth; at least one cooling channel formed in the tooth proximate the at least one cutting edge, the at least one cooling channel having an elongated cross sectional shape with an elliptical portion and a circular portion opposite the elliptical portion, wherein the elliptical portion is located proximate the cutting edge.
Claims
1. A cutting tool comprising: a tool body comprising a shank and a cutter opposite said shank, said tool body defining a length from a shank end to an end face opposite said shank end, a central axis extends along said length of said body; at least one tooth having a cutting edge, said cutting edge extending along said tooth from said shank to said end face; a flute formed adjacent said at least one tooth; and at least one cooling channel formed in said tooth proximate said at least one cutting edge, said at least one cooling channel having an elongated cross sectional shape with an elliptical portion and a circular portion opposite said elliptical portion, wherein said elliptical portion is located proximate said cutting edge; wherein said at least one cooling channel comprises a major axis aligned with a direction of resultant cutting force of said cutting edge.
2. (canceled)
3. The cutting tool according to claim 1, wherein said elongated cross sectional shape is configured to rout a liquid coolant toward said elliptical portion proximate said cutting edge from said circular portion.
4. The cutting tool according to claim 3, wherein said at least one cooling channel is configured such that a centrifugal force propels said liquid coolant into said elliptical portion.
5. The cutting tool according to claim 4, wherein said centrifugal force is aligned tangential to a flow direction of said liquid coolant within said at least one cooling channel.
6. The cutting tool according to claim 1, wherein said elongated cross sectional shape of said at least one cooling channel is configured to maintain a liquid coolant within a nucleate boiling region.
7. The cutting tool according to claim 1, wherein said elongated cross sectional shape of said at least one cooling channel is configured to force a liquid coolant toward a hottest portion of said tooth proximate said cutting edge.
8. The cutting tool according to claim 7, wherein said liquid coolant is selected from the group consisting of water, nitrogen, carbon dioxide, and ammonia.
9. The cutting tool according to claim 1, wherein said at least one cooling channel extends through said body from said shank end to said end face.
10. The cutting tool according to claim 1, wherein said at least one cooling channel extends to a cooling channel outlet at said end face.
11. The cutting tool according to claim 10, wherein said at least one cooling channel is configured as an open system, such that said coolant exits said cooling channel outlet.
12. The cutting tool according to claim 10, wherein said at least one cooling channel is configured as a closed system, such that said coolant is supplied from said shank end proximate to said end face and returns to said shank end within said tool body.
13. The cutting tool according to claim 12, wherein said tool body comprises a central return cooling channel configured to carry coolant from said end face to said shank end.
14. The cutting tool according to claim 1, wherein said elongated cross sectional shape and location is configured to rout a liquid coolant toward said elliptical portion proximate said cutting edge in which said coolant has vaporized.
15. A process for cooling a cutting tool comprising: providing a tool body comprising a shank with a shank end and a cutter opposite said shank, said cutter defining an end face; at least one tooth having a cutting edge, said cutting edge extending along said tooth from said shank to said end face; at least one cooling channel formed in said tooth proximate said at least one cutting edge, said at least one cooling channel having an elongated cross sectional shape with an elliptical portion and a circular portion opposite said elliptical portion, wherein said elliptical portion is located proximate said cutting edge; flowing a liquid coolant through said at least one cooling channel; and routing said liquid coolant within said elongated cross sectional shape from said circular portion toward said elliptical portion proximate said cutting edge.
16. The process of claim 15, further comprising: propelling said liquid coolant with a centrifugal force into said elliptical portion of said at least one cooling channel.
17. The process of claim 16, wherein said centrifugal force is aligned tangential to a flow direction of said liquid coolant within said at least one cooling channel.
18. The process of claim 15, further comprising: maintaining said a liquid coolant within a nucleate boiling region by use of said elongated cross sectional shape of said at least one cooling channel.
19. The process of claim 15, further comprising: forcing a liquid coolant toward a hottest portion of said tooth by employing said elongated cross sectional shape of said at least one cooling channel.
20. The process of claim 19, further comprising: routing said liquid coolant toward said elliptical portion in which said coolant has vaporized by locating said elongated cross sectional shape proximate said cutting edge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0039] Referring to
[0040] The tool body 10 includes a tooth 22 having a cutting edge 24. The cutting edge 24 extends along the tooth 22 from the shank 12 to the end face 18. There can be multiple sets of the tooth 22, such as sets of 2, 3 or 4 of the cutting tooth 22. A flute 26 is associated with the tooth 22 and extends along the tool body 10 up to the shank 12. The shank 12 is the cylindrical non-fluted portion of the tool body 10 used to attach and locate the tool body 10 in a tool holder (not shown). The flutes 26 of the tool body 10 can be the deep helical grooves running up the cutter 14. The cutting edge 24 (sharp blade) along the edge of the flute 26 defines the tooth 22. The tooth 22 cuts the material, and chips (not shown) of this material are pulled up the flute 26 by the rotation of the cutter 14. The flutes 26 along with cutting edge 24 of the tooth 22 can include a helix shape 28 that can have a variety of angles.
[0041] Referring also to
[0042] The elongated cross sectional shape 31 and the location of the cooling channel 30 relative to the cutting edge 24 are configured to rout a liquid portion of the coolant 38 toward the elliptical portion 32 proximate the cutting edge 24 in which the coolant 38 has already vaporized. The vaporized portion of the coolant 38 is less efficient at removing the thermal energy from the cutting edge 24 than the liquid coolant 38.
[0043] In an exemplary embodiment, the cooling channel 30 is configured such that during operation a centrifugal force propels the liquid coolant 38 into the elliptical portion 32 of the cooling channel 30, thus providing superior heat removal in that location. The centrifugal force can be aligned tangential to a flow direction 46 of the liquid coolant 38 within the cooling channel 30. The elongated cross sectional shape of the cooling channel 30 is configured to maintain the liquid coolant 38 within a nucleate boiling region. Maintaining the coolant 38 within the nucleate boiling region improves the heat transfer from the cutting edge 24. The elongated cross sectional shape 31 of the cooling channel 30 is configured to force the liquid coolant 38 toward the hottest portion of the tooth 22, thus maximizing the removal of thermal energy being generated at the cutting edge 24.
[0044] The cooling channels 30 shown at
[0045] As shown in the details at
[0046] The coolant 38 can be selected from the group consisting of water, nitrogen, carbon dioxide, and ammonia. The coolant 38 can include liquid nitrogen, and carbon dioxide, peanut oil and the like. In an exemplary embodiment, the coolant 38 can comprise an energy efficient refrigerant medium, such as ammonia and carbon dioxide.
[0047] As seen in
[0048] In an exemplary embodiment, the cooling channel 30 can be located relative to a cutter outer profile 52 at a distance D. The distance D can be quantified to be about a diameter 54 of the circular portion 34 or the length of a minor axis 56 of the elliptical portion 32.
[0049] The area of the elliptical portion 32 can include a ratio between the major axis 48 and the minor axis 56 from about 4 to about 8. The shape and size of the elliptical portion 32 is configured to enlarge a contact area 58 (heat transfer area) between the coolant 38 and the cutter 14 while utilizing the same amount of coolant 38. There are structural/mechanical limits to how large the contact area 58 can be, before the strength of the cutting edge 24 is reduced to below acceptable limits.
[0050] A technical advantage of the shape and location of the disclosed cooling channel includes increased heat transfer rates, and thus greater material removal rates because the high cutting speeds can be used due to the effective cooling for difficult-to-machine alloys.
[0051] Another technical advantage of the shape and location of the disclosed cooling channel includes lower cost and higher productivity.
[0052] Another technical advantage of the shape and location of the disclosed cooling channel includes the need for fewer cutting machines (lower capital investment).
[0053] Another technical advantage of the shape and location of the disclosed cooling channel results in reduced energy consumption for coolant delivery and mist collectors.
[0054] Another technical advantage of the shape and location of the disclosed cooling channel includes an estimated reduction of energy consumption of up to 50% per manufacturing unit related directly and indirectly to the lack of having to produce the holistic modeling on optimal amounts of coolant needed for production.
[0055] Another technical advantage of the shape and location of the disclosed cooling channel is an estimated reduction of 50% of power consumption in non-optimized facilities.
[0056] Another technical advantage of the shape and location of the disclosed cooling channel can result in reduced usage and reduced waste of coolant, helping to ensure a more environmentally benign process.
[0057] Another technical advantage of the shape and location of the disclosed cooling channel can result in improved tool life and machined surfaces due to the minimization of thermal shock from the machining process.
[0058] There has been provided a cutting tool. While the cutting tool has been described in the context of specific embodiments thereof, other unforeseen alternatives, modifications, and variations may become apparent to those skilled in the art having read the foregoing description. Accordingly, it is intended to embrace those alternatives, modifications, and variations which fall within the broad scope of the appended claims.