Cutting Tool
20190224760 ยท 2019-07-25
Inventors
- Kouichi Amaya (Fukui City, JP)
- Ryuzo Tanaka (Fukui City, JP)
- Yoshiaki Kano (Fukui City, JP)
- Yasunori Takezawa (Fukui City, JP)
- Tetsuya Igarashi (Fukui City, JP)
Cpc classification
B23C5/28
PERFORMING OPERATIONS; TRANSPORTING
B23B51/0486
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A cutting tool 1 has cutting edges 2 formed by a plurality of side surfaces on both sides 21, 22 raised at a side portion along a longitudinal direction, and the cutting tool 1 in which a coolant passage pipe 30 is extended around a rotation center axis 5, and coolant passage pipes 31 branched from the extended coolant passage pipe 30 are projected along a direction of a raised side surface 21 on a rotating direction side of the raised side surfaces on both sides 21, 22.
Claims
1. A cutting tool comprising: cutting edges formed by a plurality of side surfaces on opposite sides of each cutting edge with the side surfaces being raised regularly along a rotating direction around a rotation center axis at a side portion along a longitudinal direction, a main coolant passage pipe extended around a rotation center axis of the cutting tool, and branched coolant passage pipes branched from the extended main coolant passage pipe and projected along a direction of a raised side surface on a rotating direction side of the raised side surfaces on opposite sides, wherein on an entire area of the raised side surface on the rotating direction side from a raised end site which is at a minimum distance position from the rotation center axis in which the raised side surface starts to a leading end of the raised side surface, a projected portion which faces the rotating direction side is provided along a direction from the raised end site toward the leading end at opposite sides of the raised side surface in a direction orthogonal to a widthwise direction of the raised side surface. wherein on the raised side surface on the rotating direction side, a projected portion of each branched coolant passage pipe which faces the rotating direction side is provided along a direction from a raised end site toward a leading end at said opposite sides in a direction orthogonal to the longitudinal direction.
2. The cutting tool according to claim 1, wherein a projected position of each branched coolant passage pipe is at a raised end site of one of: a side surface on the rotating direction side or a vicinity of an interior of the side surface on the rotating direction side.
3. (canceled)
4. The cutting tool according to claim 1, wherein a projected position of each branched coolant passage pipe is at a halfway site on a raised side surface on the rotating direction side.
5. The cutting tool according to claim 4, wherein a raised side surface from the projected position of each branched coolant passage pipe to a leading end of the cutting edge assumes an inwardly recessed curve shape which is reverse to the rotating direction side.
6. The cutting tool according to claim 1, wherein an ejection hole at a leading end of each branched coolant passage pipe assumes a long and narrow shape along the longitudinal direction.
7. (canceled)
8. The cutting tool according to claim 1, wherein each branched coolant passage pipe assumes a shape that sequently changes in direction such that the pipe bypasses a vicinity of the rotation center axis at a leading end of the raised side surfaces on opposite sides and then reaches a projected position of the raised side surface.
9. The cutting tool according to claim 1, further including: a ring-shaped coolant passage pipe along the rotating direction at a position between the end site and the rotation center axis, and nearer to the end site than the rotation center axis, and interposed between the main coolant passage pipe and the plurality of coolant passage pipes leading to each ejection hole thereof.
Description
BRIEF EXPLANATION ON DRAWINGS
[0020]
[0021]
[0022]
[0023]
DESCRIPTION OF EMBODIMENTS
[0024] As shown in
[0025] In the first embodiment, as shown in
[0026] In the first embodiment, after being ejected from an ejection hole 4 positioned at the leading end of the projected coolant passage pipe 31, coolant flows from the vicinity of the raised end site up to a leading end 20 of the cutting edge. As described previously, a flowing area of the coolant is subjected to a pressure along the rotating direction and increased thereby, thus making it possible to cool a wide area of the raised side surface 21.
[0027] As shown in
[0028] In the second embodiment, as shown in
[0029] In the second embodiment, coolant flows up to the leading end 20 of the cutting edge along a part of the raised side surface 21 on the rotating direction side. The second embodiment may be slightly lower in cooling efficiency than the first embodiment in that the coolant does not necessarily flow through a substantially entire area.
[0030] However, the raised side surface 21 on the rotating direction side is not made flat as shown in
[0031] Further, in the second embodiment, as shown in
[0032] As shown in
[0033] In order that coolant flows in a wide area of the raised side surface 21 on the rotating direction side after being ejected from the ejection hole 4, as shown in
[0034] As described in the section of Advantageous Effects of Invention, on the raised side surface 21 on the rotating direction side, coolant is subjected to a pressure along the rotating direction, thereby exhibiting a flowing state that the side surface 21 is increased in flowing area.
[0035] Where the flowing area is increased beyond a width direction of the side surface 21, that is, a direction orthogonal to a direction from the end site of the side surface 21 to the leading end due to an increase in flowing area, there is a slight possibility that coolant may leak from the side surface 21.
[0036] However, in the case that on the side surface 21, a projected portion which faces to the side in the rotating direction is provided along a direction from the raised end site to the leading end at both ends in a direction orthogonal to the above direction, aforementioned possibility can be avoided.
[0037] Hereinafter, a description will be given by following examples.
Example 1
[0038] As shown in
[0039] In Example 1, the bypass configuration is provided in the vicinity inside the leading end 20 of the cutting edge, thus making it possible to promote cooling of the cutting edge 2.
Example 2
[0040] As is shown in
[0041] As shown in Example 2, by the interposition of the coolant passage pipe 32 formed in a ring shape along the rotating direction, that is, in the ring shape at the center of a rotation center axis 5, to connect a raised side surface 21 of each of the cutting edges 2 on the rotating direction side to a raised side surface 22 on reverse to the rotating direction side, both end sites are cooled to promote further efficient cooling in each of the previous embodiments.
INDUSTRIAL APPLICABILITY
[0042] As described so far, according to the method for cooling the cutting tool in the present invention, it is possible to cool efficiently not only the leading end of a cutting edge responsible for heating but also a raised side surface on a rotating direction side. It is also possible to remove reliably chips produced on a raised side surface on the rotating direction side, which greatly contributes to usefulness of the invention.
EXPLANATION ON SIGNS
[0043] 1: Cutting tool [0044] 2: Cutting edge [0045] 20: Leading end of cutting edge [0046] 21: Raised side surface on a rotating direction side [0047] 22: Raised side surface on reverse to rotating direction side [0048] 30: Coolant passage pipe extended along periphery of rotation center axis [0049] 31: Radially branched coolant passage pipe [0050] 32: Ring-shaped coolant passage pipe [0051] 4: Ejection hole [0052] 5: Rotation center axis