Rotary cutting tool with increased stiffness and method of assembling same
09764394 · 2017-09-19
Assignee
Inventors
- Kevin Michael Gamble (Stahlstown, PA, US)
- Ronald Louis Dudzinsky (Derry, PA, US)
- James Michael Waggle (Derry, PA, US)
Cpc classification
B23C5/109
PERFORMING OPERATIONS; TRANSPORTING
B23C5/006
PERFORMING OPERATIONS; TRANSPORTING
Y10T407/14
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
Y10T407/1904
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 rotary cutting tool includes a cutter body having a head, a shank, and a cavity extending along a central, longitudinal axis of the cutter body. The head includes at least one cutting insert mounted in a pocket adjacent to a chip groove. A stiffening device includes a plurality of slugs with high compressive strength disposed within the cavity, and a first compression screw threaded into a rearward end of the cutting tool. In another embodiment, a second compression screw is threaded into a forward end of the cutter body. In another embodiment, each slug includes a coolant hole, circumferential grooves and axial grooves on its outer diameter, and a plurality of radial grooves on each end, and the first compression screw has a coolant hole for allowing coolant to pass therethrough.
Claims
1. A rotary cutting tool, comprising: a cutter body having a forward end and a rearward end, the cutter body including a head, a shank, and a cavity extending from the rearward end toward the forward end along a central, longitudinal axis of the cutter body, the cavity having threads at one end thereof, the head including at least one cutting insert mounted in a pocket adjacent to at least one chip groove; and a stiffening device including: a first compression screw threaded into the rearward end, and a plurality of cylindrical slugs with high compressive strength disposed within the cavity, wherein the plurality of cylindrical slugs are of uniform diameter and are slip-fitted into the cavity, wherein the plurality of cylindrical slugs collectively define a first end of the plurality of cylindrical slugs and a second end of the plurality of cylindrical slugs, wherein the first end of the plurality of cylindrical slugs engages an end wall of the cavity and the second end of the plurality of cylindrical slugs engages the first compression screw, and wherein, when the first compression screw is threaded into the rearward end of the cutting tool, lateral movement of the plurality of slugs within the cavity is prevented and the stiffening device increases the stiffness of the cutting tool via: compressing the plurality of slugs; and thereby tensioning the cutter body.
2. The rotary cutting tool according to claim 1, wherein each slug includes a coolant hole longitudinally extending therethrough, a plurality of circumferential grooves on an outer diameter thereof, a plurality of axial grooves on the outer diameter thereof, and a plurality of radial grooves on each end thereof, and wherein the first compression screw has a coolant hole longitudinally extending therethrough.
3. The rotary cutting tool according to claim 1, wherein the first compression screw comprises one end which: is non-threaded; is cylindrical-shaped so as to have approximately the same diameter as the plurality of slugs; and engages the second end of the plurality of slugs.
4. The rotary cutting tool according to claim 3, wherein, when threaded into the rearward end of the cutting tool, the one end of the first compression screw abuts the second end of the plurality of slugs.
5. The rotary cutting tool according to claim 1, wherein the rotary cutting tool comprises a helical end mill.
6. The rotary cutting tool according to claim 1, wherein the at least one chip groove is cut into an exterior surface of the cutter body in a helical or spiral manner.
7. The rotary cutting tool according to claim 1, wherein the plurality of cylindrical slugs are disposed via being stacked within the cavity, wherein each said cylindrical slug directly contacts one or more adjacent cylindrical slugs.
8. A rotary cutting tool, comprising: a cutter body having a forward end and a rearward end, the cutter body including a head, a shank, and a cavity extending from the rearward end toward the forward end along a central, longitudinal axis of the cutter body, the cavity having threads at both ends thereof, the head including at least one cutting insert mounted in a pocket adjacent to at least one chip groove; and a stiffening device including: a first compression screw threaded into the rearward end, a second compression screw threaded into the forward end, and a plurality of cylindrical slugs with high compressive strength disposed within the cavity between the first compression screw and the second compression screw, wherein the plurality of cylindrical slugs are of uniform diameter and are slip-fitted into the cavity, wherein the plurality of cylindrical slugs collectively define a first end of the plurality of cylindrical slugs and a second end of the plurality of cylindrical slugs, wherein the first end of the plurality of cylindrical slugs engages the second compression screw and the second end of the plurality of cylindrical slugs engages the first compression screw, and wherein, when the first compression screw is threaded into the rearward end of the cutting tool and the second compression screw is threaded into the forward end of the cutting tool, lateral movement of the plurality of slugs within the cavity is prevented and the stiffening device increases the stiffness of the cutting tool via: compressing the plurality of slugs; and thereby tensioning the cutter body.
9. The rotary cutting tool according to claim 8, wherein each slug includes a coolant hole longitudinally extending therethrough, a plurality of circumferential grooves on an outer diameter thereof, a plurality of axial grooves on the outer diameter thereof, and a plurality of radial grooves on each end thereof, and wherein the first compression screw has a coolant hole longitudinally extending therethrough.
10. The rotary cutting tool according to claim 8, wherein the first compression screw comprises one end which: is non-threaded; is cylindrical-shaped so as to have approximately the same diameter as the plurality of slugs; and engages the second end of the plurality of slugs.
11. The rotary cutting tool according to claim 8, wherein the second compression screw comprises one end which: is non-threaded; is cylindrical-shaped so as to have approximately the same diameter as the plurality of slugs; and engages the first end of the plurality of slugs.
12. The rotary cutting tool according to claim 11, wherein, when threaded into the forward end of the cutting tool, the one end of the second compression screw abuts the first end of the plurality of slugs.
13. The rotary cutting tool according to claim 8, wherein the rotary cutting tool comprises a helical end mill.
14. The rotary cutting tool according to claim 8, wherein the at least one chip groove is cut into an exterior surface of the cutter body in a helical or spiral manner.
15. A rotary cutting tool, comprising: a cutter body having a forward end, a rearward end, the cutter body including a head, a shank, and a cavity extending from the rearward end toward the forward end along a central, longitudinal axis of the cutter body, the cavity having threads at one end thereof, the head including at least one cutting insert mounted in a pocket adjacent to at least one chip groove; and a stiffening device including a first compression screw threaded into the rearward end and a plurality of cylindrical slugs with high compressive strength disposed within the cavity, wherein each slug includes a coolant hole longitudinally extending therethrough, a plurality of circumferential grooves on an outer diameter thereof, a plurality of axial grooves on the outer diameter thereof, and a plurality of radial grooves on each end thereof, and wherein the first compression screw has a coolant hole longitudinally extending therethrough, and wherein the stiffening device increasing the stiffness of the cutting tool when the first compression screw is threaded into the rearward end of the cutting tool.
16. The rotary cutting tool according to claim 15, wherein the plurality of cylindrical slugs engage an end wall of the cavity and the other end of the plurality of cylindrical slugs engage the first compression screw.
17. The rotary cutting tool according to claim 15, further comprising a second compression screw threaded into the forward end of the cutter body.
18. The rotary cutting tool according to claim 15, wherein the plurality of slugs are cylindrical-shaped, and wherein one end of the first compression screw is non-threaded and cylindrical-shaped so as to have approximately the same diameter as the plurality of slugs.
19. The rotary cutting tool according to claim 15, wherein the rotary cutting tool comprises a helical end mill.
20. The rotary cutting tool according to claim 15, wherein the at least one chip groove is cut into an exterior surface of the cutter body in a helical or spiral manner.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) While various embodiments of the invention are illustrated, the particular embodiments shown should not be construed to limit the claims. It is anticipated that various changes and modifications may be made without departing from the scope of this invention.
(2)
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DETAILED DESCRIPTION OF THE INVENTION
(10) Below are illustrations and explanations for a version of a helical end mill and a cutting insert therefor. However, it is noted that the helical end mill and cutting insert may be configured to suit the specific application and is not limited only to the example in the illustrations.
(11) Referring now to
(12) The cutter body 12 is of an elongated and generally cylindrical shape. The cutter body 12 comprises a shank 16 and a head 18. The shank 16 is configured so as to be capable of insertion and securing within the spindle of a milling machine (not shown) as is well known in the art. The shank 16 may be of any shape or design so as to be capable of this insertion and securing. Such designs include, but are not limited to, V-flange, taper, shell mill mount, and Weldon shank.
(13) The head 18 is a generally cylindrical body that extends axially from the shank 16 to a forward end 20, thereby defining an exterior surface 22 therebetween. The exterior surface 22 of the head 18 preferably includes a plurality of helical chip grooves or flutes 24 formed therein. It will be appreciated that the invention is not limited by the number of helical chip grooves 24. In the illustrated embodiment, two grooves out of a total of three grooves are shown in
(14) One aspect of the invention is that the cutting tool 10 includes a stiffening device, shown generally at 30, for increasing stiffness of the cutting tool 10. As used herein, the stiffness of the cutting tool is the rigidity of the cutting tool 10 and is defined as the resistance to the cutting tool 10 to deformation in response to an applied force. The complementary concept to stiffness is flexibility or pliability: the more pliable the cutting tool 10, the less stiff it is. The stiffness, k, of a body is a measure of the resistance offered by an elastic body to deformation. For an elastic body with a single degree of freedom, for example, stretching or compression of a rod, the stiffness is defined as:
k=F/δ (Eq. 1)
(15) where,
(16) F is the force applied on the body, and
(17) δ is the displacement produced by the force along the same degree of freedom (for example, the change in length of a stretched spring).
(18) A body may also have a rotational stiffness, k, given by:
k=M/θ (Eq. 2)
(19) where,
(20) M is the applied moment, and
(21) θ is the rotation.
(22) The stiffening device 30 is disposed within a cylindrical-shaped cavity 40 that extends from a rearward end 21 of the cutter body 12. The stiffening device 30 includes a plurality of cylindrical slugs 32 and at least one compression screw 34. In the illustrated embodiment, a single compression screw 34 is threaded into the rearward end 21 of the cutter body 12. One end 34a of the compression screw 34 may be non-threaded and cylindrical-shaped so as to have approximately the same diameter as the cylindrical slugs 32 (i.e., slightly smaller than the inner diameter of the cavity 40). The opposite end 34b of the compression screw 34 may have a hexagonal-shaped recess 34b for receiving a tool (not shown), such as an Allen wrench, and the like.
(23) In the illustrated embodiment, the cavity 40 extends entirely through the shaft 16 and partially into the head 18 of the cutter body 12 along the central, longitudinal axis of the cutter body 12. One end of the cavity 40 has threads 42 (
(24) In the illustrated embodiment, the slugs 32 are solid with an outside diameter that is slightly smaller in diameter than the inside diameter of the cavity 40 such that the slugs 32 can be slip-fitted into the cavity 40. The cylindrical slugs 32 are made of a suitable material, for example, tungsten carbide, and the like, that has a high compressive strength. Tungsten carbide is approximately two times stiffer than steel, with a Young's modulus of approximately 550 GPa, and is much denser than steel or titanium. It should be appreciated that the invention is not limited by the shape of the slugs 32, and that the invention can be practiced with any desirable shape, such as square, rectangular, and the like, so long as the shape of the slugs 32 is complementary to the shape of the cavity 40.
(25) Because the composition of the cylindrical slugs 32 is quite hard and the cutter body 12 is made of hard material, lateral movement of the cylindrical slugs 32 in the cavity 40 will transmit shocks to the cavity 40. To prevent such lateral movement, one end of the stack of cylindrical slugs 32 engage an end wall 36 of the cavity 40 and the other end of the cylindrical slugs 32 engage the compression screw 34, as shown in
(26) Referring now to
(27) Referring now to
(28) As shown in
(29) As shown in
(30) Although the embodiment shown in
(31) To assemble the stiffening device 30 shown in
(32) To assemble the stiffening device 30 shown in
(33) To assemble the stiffening device 30 shown in
(34) The patents and publications referred to herein are hereby incorporated by reference.
(35) Having described presently preferred embodiments the invention may be otherwise embodied within the scope of the appended claims.