WO2014091748A1 - Rotating cutting tool and rotating grinding tool - Google Patents

Rotating cutting tool and rotating grinding tool Download PDF

Info

Publication number
WO2014091748A1
WO2014091748A1 PCT/JP2013/007261 JP2013007261W WO2014091748A1 WO 2014091748 A1 WO2014091748 A1 WO 2014091748A1 JP 2013007261 W JP2013007261 W JP 2013007261W WO 2014091748 A1 WO2014091748 A1 WO 2014091748A1
Authority
WO
WIPO (PCT)
Prior art keywords
flow
hole
cutting
tool
lid member
Prior art date
Application number
PCT/JP2013/007261
Other languages
French (fr)
Japanese (ja)
Inventor
直也 本田
Original Assignee
兼房株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 兼房株式会社 filed Critical 兼房株式会社
Priority to MX2015007738A priority Critical patent/MX2015007738A/en
Publication of WO2014091748A1 publication Critical patent/WO2014091748A1/en

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23CMILLING
    • B23C5/00Milling-cutters
    • B23C5/28Features relating to lubricating or cooling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23CMILLING
    • B23C5/00Milling-cutters
    • B23C5/02Milling-cutters characterised by the shape of the cutter
    • B23C5/10Shank-type cutters, i.e. with an integral shaft
    • B23C5/109Shank-type cutters, i.e. with an integral shaft with removable cutting inserts

Definitions

  • the present invention relates to rotary cutting tools and rotary grinding tools such as milling and end mills for cutting and grinding of workpieces such as wood, wood board, resin, ceramic materials, metals, and composite materials thereof.
  • a fluid such as gas, liquid, powder, or a mixture thereof for cooling the cutting tip or discharging chips generated by cutting through the tool body.
  • the present invention relates to a rotary cutting tool and a rotary grinding tool provided with a supply passage.
  • a rotary cutting tool such as a milling cutter has a cutting tip formed of cemented carbide, polycrystalline diamond, CBN, ceramics, etc. attached to the outer periphery of the tool body, and the lead angle of the cutting tip can be easily adjusted according to the processing content of the workpiece.
  • the corner is set properly.
  • a passage for supplying fluids such as liquid and gas for cooling and chip removal is embedded in the tool body so that the rotary cutting tool can cope with high speed machining.
  • a multi-blade specification in which a large number of cutting tips are arranged on the tool body is adopted.
  • a passage hole for pressure fluid is drilled in the axial center portion of the end mill body up to the vicinity of the head portion, and provided on the head portion of the end mill body.
  • An end mill is disclosed in which a small-diameter hole is drilled in an oblique direction from the wall surface of the tip pocket toward a passage hole for pressure fluid. This end mill sprays pressurized fluid from the small-diameter hole toward the vicinity of the tip edge of the cutting edge to cool the head of the end mill body and the cutting edge during the cutting process, and discharges the chips filled in the chip pocket to the rear. It is formed as follows.
  • a surface grinding machine in which a grinding liquid is supplied from a plurality of supply holes provided along an inner peripheral surface of a rotating grindstone.
  • the grinding liquid enters the mounter branch passage through the internal passage of the spindle shaft disposed in the spindle housing including the motor, and is supplied to the object to be ground from the branch passage through the supply hole.
  • the present invention is intended to solve the above-mentioned problem, and a gas for cooling the chip or discharging chips in the vicinity of the cutting tip or rotating grindstone on the end face side from the supply hole provided in the tool body in the axial direction.
  • Another object of the present invention is to provide a rotary cutting tool and a rotary grinding tool capable of easily and inexpensively forming a flow hole for injecting a fluid, which is a liquid, powder, or a mixture thereof.
  • the structural feature of the present invention is that cutting tips are fixed at a plurality of locations along the circumferential direction at least on the end face side of the outer periphery of the cylindrical tool body, and the axis of the cutting tool is fixed to the tool body.
  • a rotary cutting tool provided with a supply hole for fluid circulation extending in the direction, which is recessed on the end face of the tool body in a coaxial manner and communicated with the supply hole, and is overlapped and fixed to the circulation recess
  • a lid member is provided, and a plurality of flow holes are provided between the flow recess and the cover member to communicate the vicinity of the cutting hole on the outer periphery of the tool body with the supply hole.
  • the rotary cutting tool is rotationally driven, so that the cutting of the cutting material fixed to the tool main body and the cutting edge of the cutting tip fixed to the tool body or the peripheral cutting provided on the outer peripheral side, plane cutting of the work material, Cutting such as grooving is performed.
  • a fluid such as a gas supplied from the power rotary shaft side of the processing machine passes through a supply hole of the tool body through a flow hole provided between the flow recess and the lid member, and a plurality of fluids on the outer periphery side of the tool body are provided. Sprayed in the vicinity of the cutting tip.
  • the heated state around the cutting tip that occurs when cutting the workpiece can be cooled, and chips generated from the workpiece can be discharged smoothly, ensuring good operation of the rotary cutting tool. Is done.
  • the flow hole through which the fluid passes can be easily formed in at least one of the flow recess and the cover member between the flow recess formed in the tool body and the cover member.
  • the labor and time for forming the flow hole are reduced, and the cost of the rotary cutting tool is reduced.
  • the labor and time required for forming flow holes are further reduced. Is further reduced.
  • the flow hole is provided on one side of the flow recess and the lid member. Accordingly, since the flow hole can be provided by processing on one side of the flow recess and the lid member, the processing becomes very easy, and the cost of the flow hole processing can be greatly reduced.
  • the flow hole can be processed simultaneously with the formation of the flow recess, so that the processing labor is reduced, and when the flow hole is formed in the cover member, it is integrated with the cover member by pressing or the like. Since it can be formed, the labor of processing is further reduced.
  • a notch portion communicating with the flow hole at a position near the cutting tip of the tool body.
  • a grinding wheel is fixed along the circumferential direction at least on the end face side of the outer periphery of the cylindrical tool body, and a supply hole for fluid circulation extending in the axial direction is provided in the tool body.
  • a rotary grinding tool provided with a flow recess recessed coaxially on the end surface of the tool body and communicating with the supply hole, and a lid member fixed to be overlapped with the flow recess, A plurality of flow holes for communicating the vicinity of the supply hole and the grinding wheel between them are provided.
  • a fluid such as gas can be jetted from the flow hole provided between the flow recess and the lid member through the supply hole of the tool body to the vicinity of the rotating grindstone on the outer periphery of the tool body. It is possible to cool the heating state around the rotating grindstone generated during the grinding, and it is possible to blow away the grinding sludge generated from the work, thereby ensuring a good operation of the rotating grinding tool.
  • the fluid distribution hole may be formed by simple processing between the flow recess formed in the tool body and the lid member, and a small-diameter supply hole that directly penetrates the tool body as in the past. There is no need to perform an esoteric process to form the. As a result, according to the present invention, the labor and time required for forming the flow holes are reduced, so that the cost of the rotary grinding tool can be reduced.
  • the flow hole is provided on one side of the flow recess and the lid member. Accordingly, since the flow hole can be provided by processing on one side of the flow recess and the lid member, the processing becomes very easy, and the cost of the flow hole processing can be greatly reduced.
  • the flow hole through which the fluid passes can be formed by simple processing between at least one of the flow recess and the cover member between the flow recess and the cover member formed in the tool body. Since it is not necessary to perform an intricate processing that is inclined with respect to the axis, the labor for forming the flow hole is reduced, and the cost of the rotary cutting tool and rotary grinding tool is reduced. In particular, in a multi-blade rotary cutting tool in which a large number of cutting tips are arranged in the tool body for high-speed rotation, the labor and time required for forming a flow hole are further reduced, so the cost of the rotary cutting tool is further increased. To reduce.
  • FIG. 1 It is a front view which shows the shank type milling machine which concerns on Example 1.
  • FIG. 2 is a side view showing the milling machine.
  • FIG. 3 is a sectional view taken along the line III-III in FIG. 1.
  • 6 is a front view showing a milling cutter according to Embodiment 2.
  • FIG. FIG. 7 is a cross-sectional view taken along line VII-VII in FIG. 6.
  • FIG. 6 is a front view showing a rotary grinding tool according to Example 3.
  • FIG. It is a side view which shows the rotary grinding tool. It is sectional drawing of the WW line direction of FIG. It is a front view which shows the state which removed the cover member with the same rotation grinding tool.
  • FIG. 1 is a front view and a side view of a multi-blade shank type milling cutter (hereinafter, referred to as a milling cutter) used in metal processing or the like that is an example of a rotary cutting tool according to Embodiment 1.
  • FIG. FIG. 4 is a front view showing a state where the lid member is removed.
  • the milling cutter 10 is a long round bar-shaped iron member, and is integrally provided with a large-diameter tool main body 11 and a shank 12 smaller in diameter than the tool main body 11 coaxially connected to one axial end of the tool main body 11.
  • the lid member 31 is fitted and fixed to the flow recess 19 provided on the tip surface side (the other end side in the axial direction) of the tool body 11.
  • the milling machine 10 is attached to a power rotary shaft S of a processing machine such as a milling machine by a shank 12.
  • the tool body 11 and the shank 12 are provided with a supply hole 13 which is a through hole for allowing the compressed air (fluid) penetrating at the axial center position to flow therethrough.
  • the tool body 11 is divided into an end face side cutting portion 15 and a central portion 16 having a slightly smaller diameter than the shank 12 and a larger diameter than the shank 12 with the axial middle as a boundary.
  • a stepped portion 17 is formed.
  • the cutting portion 15 is provided with a circular flow recess 19 that is recessed inwardly with the axial center as the center at the tip surface on the other end side in the axial direction.
  • the flow recess 19 includes a cylindrical outer hole portion 21 on the end surface side, an annular inclined hole portion 22 inclined toward the axial center on the inner side thereof by about 20 °, and an inner periphery of the inclined hole portion 22. It has a circular bottom hole portion 23 that is slightly recessed inward in the direction, and a fixing hole 24 that is a screw hole extending in the axial direction at equal intervals in four circumferential directions on the outer peripheral edge side in the bottom hole portion 23. Is provided.
  • the inclined hole portion 22 is an inclined groove portion 25 in which a portion connected in a radial direction to a notch portion 29 on the outer peripheral side of the cutting portion 15 to be described later is slightly recessed in the axial direction at 16 locations spaced at equal intervals in the circumferential direction. Yes.
  • an inclined surface 18 is formed between the outer peripheral edge and the outer hole portion 21 that is inclined approximately 10 ° inward in the axial direction.
  • the cutting portion 15 is a straight line having a predetermined width inclined at about 5 ° toward the rotational rear side with respect to the axial direction at 16 locations spaced at equal intervals in the circumferential direction of the outer peripheral surface.
  • the groove portion 26 is formed to extend between both ends, and a straight convex portion 27 that protrudes relatively in the radial direction is formed between the groove portions 26.
  • the width of the groove portion 26 and the convex portion 27 is substantially the same. It has become.
  • the front end side (the other end side in the axial direction) of the convex portion 27 is a mounting seat 28 to which a cutting tip 38 to be described later is attached, and notches communicated with the groove portion 26 by notching both sides in the circumferential direction of the mounting seat 28. It is part 29.
  • the notch 29 communicates with the inclined groove 25 on the radially inner side in a flush manner.
  • a cutting tip 38 made of polycrystalline diamond or the like is fixed to the front side of the mounting seat 28 by brazing.
  • the cutting tip 38 may be a replaceable blade type instead of a fixed type.
  • a lid member 31 is attached to the flow recess 19 of the cutting portion 15.
  • the lid member 31 is a circular thick plate having flat front and back surfaces 32, 33 having the same diameter as the outer diameter of the outer hole portion 21, and the outer peripheral edge side of the back surface 33 is the entire circumference in the circumferential direction. Is inclined obliquely at an inclination angle of approximately 20 ° to form a conical annular inclined portion 34.
  • the inclination angle of the inclined portion 34 is matched with the inclination angle of the inclined hole portion 22 of the flow recess 19.
  • Mounting holes 35 are provided through the plate surface at four equally spaced locations on the outer peripheral side of the back surface 33.
  • the thickness of the lid member 31 is substantially the same as that of the outer hole portion 21 of the flow recess 19.
  • the lid member 31 is fitted into the flow recess 19 of the cutting portion 15 from the back surface 33 side, and the inclined portion 34 is overlapped with the inclined hole portion 22 so that the mounting hole 35 is aligned with the position of the fixing hole 24 provided in the cutting portion 15.
  • the screw 36 is inserted through the mounting hole 35 and screwed into the fixing hole 24 to be attached to the cutting portion 15.
  • the inclined portion 34 of the lid member 31 is in close contact with the inclined hole portion 22 of the flow recess 19, and a large gap is formed between the back surface 33 and the bottom plate portion 23, and the front surface 32. Is greatly recessed from the inner peripheral edge of the inclined surface 18 of the cutting portion 15.
  • a flow hole 25 a that is a slight gap is formed between the inclined groove portion 25 of the flow recess 19 and the inclined portion 34 of the lid member 31.
  • the compressed air supplied from the supply hole 13 can smoothly pass between the flow recess 19 and the mounting seat 28 through the flow hole 25a.
  • the milling cutter 10 is driven to rotate by the side blade at the end of the cutting tip 38 fixed to the mounting seat 28 of the tool body 11 or the outer peripheral blade provided on the outer peripheral side. Face milling and grooving of the work material are performed.
  • compressed air such as cooling gas supplied from the power rotary shaft S of the processing machine is formed between the inclined portion 34 and the inclined groove portion 25 of the lid member 31 through the supply hole 13. Injected from 25 a to the vicinity of the plurality of cutting tips 38 through the notch 29.
  • the heating state of the cutting tip 38 and the cutting part 15 generated when cutting the workpiece can be cooled, and chips generated from the workpiece can be discharged smoothly.
  • the milling machine 10 Good operation is ensured.
  • a large number of flow holes 25a through which compressed air passes can be easily formed in the inclined groove 25 at the same time as the flow recess 19 is formed in the tool main body 11, and directly in the tool main body as in the past. There is no need to perform a difficult process of forming a large number of small-diameter supply holes penetrating therethrough with respect to the axis. As a result, according to the first embodiment, the labor for forming the flow hole 25a is reduced, and the manufacturing cost of the milling cutter 10 is reduced.
  • the notch part 29 was provided between the attachment seats 28 of the cutting part 15, and the compressed air which ejected through the flow hole 25a at the time of the processing of the workpiece by the milling machine 10 is notch part. 29 is stably supplied to the vicinity of the cutting tip 38, and chips generated by the cutting process are discharged smoothly. Further, in the first embodiment, since the notch portion 29 is provided, the cutting operation on the side surface of the cutting tip 38 is simplified, so that the cost of the milling cutter 10 is further reduced.
  • the milling cutter 40 according to the second embodiment is not provided with a flow hole through which the compressed air passes like the milling cutter 10 of the first embodiment, but provided on the lid member 51 side.
  • a tool main body 41 and a shank 12 similar to those of the milling cutter 10 of the first embodiment are integrally provided, and a lid member 51 is fitted and fixed to a flow recess 43 of the tool main body 41.
  • the tool main body 41 has substantially the same structure as the tool main body 11, and the same reference numerals as those of the tool main body 11 are attached to the common parts.
  • the tool main body 41 is provided with a cutting portion 42 on the end face side and a central portion 16, and the boundary between both is a stepped portion 17.
  • the cutting portion 42 is provided with a flow recess 43 that is recessed in a curved shape inwardly with the axial center as the center on the tip surface on the other end side in the axial direction.
  • the flow recess 43 is provided with an outer hole portion 21, an inclined hole portion 44, and a bottom hole portion 23, and on the outer peripheral side of the bottom hole portion 23, fixed holes 24 are provided at equal intervals in four circumferential directions.
  • the inclined hole portion 44 does not have the inclined groove portions 25 at 16 locations in the circumferential direction like the inclined hole portion 22 of the first embodiment, and has a continuous conical shape.
  • the cutting part 42 is not provided with a notch like the cutting part 15 of the first embodiment. In the cutting part 42, other configurations such as the groove part 26, the convex part 27, and the mounting seat 28 are the same as those of the cutting part 15 of the first embodiment, and the description thereof is omitted.
  • the lid member 51 fitted in the flow recess 43 of the cutting part 42 has substantially the same outer shape as the lid member 31 as shown in FIG. 9, but the shape of each surface is different.
  • the cover member 51 is a circular thick plate with flat front and back surfaces 52 and 53 having the same diameter as the outer diameter of the outer hole portion 21, and the outer peripheral edge side of the back surface 53 is approximately 20 ° along the entire circumference in the circumferential direction.
  • a conical annular inclined portion 54 is formed by being cut out obliquely at an inclination angle.
  • mounting holes 55 are provided through the plate surface at four positions that are equally spaced in the circumferential direction.
  • flow channel portions 56 having a predetermined width that extend slightly in the radial direction from the center side position to the outer peripheral edge from the mounting hole 55.
  • the flow groove portion 56 is in a state where the front and back surfaces 52 and 53 are slightly cut off at the inner and outer ends.
  • the lid member 51 is fitted into the flow recess 43 of the cutting portion 42 from the back surface 53 side, and the attachment hole 55 is fitted to the position of the fixing hole 24 and the inclined portion 54 is overlapped with the inclined hole portion 44.
  • the screw 36 is inserted and screwed into the fixing hole 24 to be attached to the cutting portion 15.
  • the inclined portion 54 of the lid member 51 is brought into close contact with the inclined hole portion 44 of the flow recess 43, and a large gap is formed between the back surface 53 and the bottom hole portion 23.
  • 52 substantially coincides with the inner peripheral edge of the inclined surface 18 of the cutting portion 42.
  • a flow hole 57 that is a slight gap is formed between the flow groove portion 56 of the lid member 51 and the inclined hole portion 44 of the flow recess 43.
  • the compressed air supplied from the supply hole 13 can smoothly pass between the flow recess 43 and the mounting seat 28 through the flow hole 57.
  • the heating state of the cutting tip 38 and the cutting part 42 generated when the workpiece is cut or ground by the milling cutter 40 can be cooled, and chips generated from the workpiece can be blown away. And good cutting operation of the milling cutter 40 is ensured.
  • the flow groove part 56 for forming the flow hole 57 can be provided only in the lid member 51, the flow groove part 56 can be formed integrally with the cover member 51 by press working or the like. The labor is further reduced, and the cost for processing the flow hole 57 can be greatly reduced.
  • the milling cutters of Examples 1 and 2 are for end face processing in which the cutting tip is provided only on the outer peripheral end face of the cutting part, but the structure in which the cutting tip is provided also on the outer peripheral face of the cutting part. It may be. Moreover, in the said Example 1, 2, although the process for formation of a flow hole is performed only to the cutting part 15 and the cover member 51, it is also possible to form not only in this but in both.
  • the third embodiment relates to the rotary grinding tool 60.
  • the rotary grinding tool 60 is integrally provided with a tool body 61 and a shank 62 having the same outer shape as the milling cutter 40 of the second embodiment, and is provided with a supply hole 63 penetrating the axis of the tool body 61 and the shank 62.
  • a lid member 51 similar to that of the second embodiment is attached to the flow recess 71 of the tool body 61.
  • the tool body 61 is divided into a grinding part 65 on the end face side and a central part 66 having a slightly smaller diameter than the grinding part 65 on the shank 62 side and a larger diameter than the shank 62 with the middle in the axial direction as a boundary.
  • a stepped portion 67 is formed.
  • the grinding part 65 is provided with a mounting seat 68 that is cut out in an annular shape at the outer peripheral edge of the tip end surface on the other end side in the axial direction. Fixed.
  • the grinding portion 65 is provided with a flow recess 71 that is recessed in a curved shape on the inside centered on the shaft center on the inner side of the mounting seat 68.
  • the flow recess 71 is provided with an outer hole 72, an inclined hole 73 conically recessed, and a bottom hole 74.
  • screw holes are provided at equal intervals in four circumferential directions.
  • a fixing hole 75 is provided. Since the lid member 51 fitted in the flow recess 71 of the grinding part 65 is the same as that shown in the second embodiment, the description thereof is omitted.
  • the grinding wheel 78 has an annular shape, the inner diameter is the same as the inner diameter of the mounting seat 68, the outer diameter is slightly larger than the outer diameter of the grinding portion 65, and the thickness is slightly larger than the depth of the mounting seat 68.
  • the grinding part 65 is disposed so as to protrude from the outer peripheral surface and the front end surface.
  • the lid member 51 is fitted to the flow recess 71 of the grinding portion 65 from the back surface 53 side, is mounted with the mounting hole 55 aligned with the fixing hole 75 position and the inclined portion 54 superimposed on the inclined hole portion 73, and is ground by the screw 36. It is fixed to the part 65.
  • the inclined portion 54 of the lid member 51 is brought into close contact with the inclined hole portion 73 of the flow recess 71, and a large gap is formed between the back surface 53 and the bottom hole portion 74, and the front surface 52 is inclined. It substantially coincides with the inner peripheral edge of the surface 18.
  • a flow hole 76 which is a slight gap, is formed between the flow groove 56 of the lid member 51 and the inclined hole portion 73 of the flow recess 71, and the flow hole 76 is formed on the tip inner peripheral side of the grinding wheel 78 of the grinding portion 65. Communicate. As a result, the compressed air is smoothly injected from the supply hole 63 to the vicinity of the inner periphery of the grinding wheel 78.
  • the heating state of the grinding wheel 78 and the grinding unit 65 generated when the workpiece is ground by the rotary grinding tool 60 can be cooled, and the grinding sludge generated from the workpiece is blown off. And good operation of the rotary grinding tool 60 is ensured.
  • the flow groove portion 56 for forming the flow hole 76 can be provided only in the cover member 51, the flow hole can be formed integrally with the cover member by pressing or the like, so that the processing work is troublesome. Furthermore, since it reduces, the cost of a flow hole processing can be reduced significantly.
  • the flow holes can be provided only on the grinding part side as in Example 1, and can also be provided on both the grinding part and the lid member.
  • the milling and rotary grinding tools shown in Examples 1, 2, and 3 are of a shank type, but may be of a type that does not have a shank and directly fixes the tool body to the rotating shaft.
  • a rotary cutting tool re-polishing is facilitated by making the lid member detachable.
  • the lid member is fixed with brazing or the like. May be.
  • the supply holes provided in the tool main body and the shank are not limited to the axial center position, and are not limited to one and may be a plurality.
  • the rotary cutting tools shown in the above embodiments are merely examples, and various modifications can be made without departing from the spirit of the present invention.
  • a flow hole through which a fluid of a rotary cutting tool or a rotary grinding tool passes is formed between a flow recess and a lid member formed in the tool body by simple processing in at least one of the flow recess and the lid member. Since the labor for forming the flow hole is reduced as compared with the conventional case, the tool cost can be reduced, which is useful.

Abstract

In the present invention, in a milling cutter (10), cutting tips (38) are affixed to a plurality of attachment seats (28) disposed along the peripheral direction at least at the end surface side of the outer periphery of a cylindrical tool main body (11), and a supply hole (13) for fluid flow-through is provided to the center of the tool main body (11) extending in the axial direction thereof. The milling cutter (10) is provided with: a flow-through concavity (19) that interconnects with the supply hole (13) and is recessed coaxially with the end surface of the tool main body (11); and a lid member (31) affixed superposed to the flow-through concavity (19). Between the flow-through concavity (19) and the lid member (31) are provided a plurality of flow-through holes (25a) that interconnect the supply hole (13) and the vicinity of the plurality of cutting tips (38) at the outer periphery of the tool main body (11).

Description

回転切削工具及び回転研削工具Rotary cutting tool and rotary grinding tool
 本発明は、木材、木質ボード、樹脂、窯業系材料、金属、これらの複合材等の被加工材の切削加工や研削加工を行うフライス、エンドミル等の回転切削工具や回転研削工具に係り、特に工具本体に取り付けられた切削チップや砥石の近傍に、工具本体内を通して切削チップ等の冷却や切削によって生じる切屑等の排出等のための気体、液体、粉体あるいはこれらの混合物である流体物を供給する通路を設けた回転切削工具及び回転研削工具に関する。 The present invention relates to rotary cutting tools and rotary grinding tools such as milling and end mills for cutting and grinding of workpieces such as wood, wood board, resin, ceramic materials, metals, and composite materials thereof. In the vicinity of the cutting tip or grindstone attached to the tool body, a fluid such as gas, liquid, powder, or a mixture thereof for cooling the cutting tip or discharging chips generated by cutting through the tool body. The present invention relates to a rotary cutting tool and a rotary grinding tool provided with a supply passage.
 フライス等の回転切削工具は、工具本体の外周に超硬合金、多結晶ダイヤモンド、CBN、セラミックス等で成形された切削チップが取り付けられ、被加工物の加工内容に応じて切削チップのリード角やすくい角を適正に設定して使用されている。特に、回転切削工具が高速加工に対応できるようにするために、冷却や切屑除去のための液体や気体等の流体物を供給するための通路が工具本体に埋設されており、さらにこれに加えて工具本体に多数の切削チップを配設した多刃仕様が採用されている。 A rotary cutting tool such as a milling cutter has a cutting tip formed of cemented carbide, polycrystalline diamond, CBN, ceramics, etc. attached to the outer periphery of the tool body, and the lead angle of the cutting tip can be easily adjusted according to the processing content of the workpiece. The corner is set properly. In particular, a passage for supplying fluids such as liquid and gas for cooling and chip removal is embedded in the tool body so that the rotary cutting tool can cope with high speed machining. A multi-blade specification in which a large number of cutting tips are arranged on the tool body is adopted.
 従来、この種の回転切削工具としては、例えば特許文献1に示すように、エンドミル本体の軸心部に圧力流体用の通路孔を頭部付近まで穿設し、一方エンドミル本体の頭部に設けたチップポケットの壁面から圧力流体用の通路孔へ向けて斜め方向に小径孔を穿設して連通させてなるエンドミルが開示されている。このエンドミルは、小径孔より先端切刃コーナー近傍に向けて圧力流体を噴射させて切削加工時のエンドミル本体の頭部及び切刃の冷却を行うとともにチップポケット内に充満する切屑を後方に排出するように形成されている。また、特許文献2に示すように、回転砥石の内周面に沿って設けられた複数個の供給孔から研削液が供給される平面研削盤が開示されている。この平面研削盤では、研削液は、モータを含むスピンドルハウジングに配設されたスピンドル軸の内部通路を通ってマウンターの分岐路内に入り、この分岐路から供給孔を経て被研削物に供給される。 Conventionally, as this type of rotary cutting tool, for example, as shown in Patent Document 1, a passage hole for pressure fluid is drilled in the axial center portion of the end mill body up to the vicinity of the head portion, and provided on the head portion of the end mill body. An end mill is disclosed in which a small-diameter hole is drilled in an oblique direction from the wall surface of the tip pocket toward a passage hole for pressure fluid. This end mill sprays pressurized fluid from the small-diameter hole toward the vicinity of the tip edge of the cutting edge to cool the head of the end mill body and the cutting edge during the cutting process, and discharges the chips filled in the chip pocket to the rear. It is formed as follows. Further, as shown in Patent Document 2, a surface grinding machine is disclosed in which a grinding liquid is supplied from a plurality of supply holes provided along an inner peripheral surface of a rotating grindstone. In this surface grinder, the grinding liquid enters the mounter branch passage through the internal passage of the spindle shaft disposed in the spindle housing including the motor, and is supplied to the object to be ground from the branch passage through the supply hole. The
 しかし、上記エンドミルの場合、チップポケットの壁面から圧力流体用の通路孔へ向けて斜め方向に小径孔を穿設して連通させる必要があるため、穿設が複雑に三次元加工となり加工コストが高価になるため、エンドミルの価格が高価になるという問題がある。上記エンドミルにおいて、高速加工に対応するために周方向に多数の切刃を配設した多刃仕様とした場合、孔加工がさらに複雑になると共に、加工時間も長くなるため、工具価格がさらに高価になる。これに関しては、上記平面研削盤用回転砥石においても同様である。 However, in the case of the above-mentioned end mill, since it is necessary to drill small diameter holes in an oblique direction from the wall surface of the chip pocket toward the passage hole for the pressure fluid, the drilling is complicated and three-dimensional machining is required, so that the machining cost is reduced. Since it becomes expensive, there exists a problem that the price of an end mill becomes expensive. In the above-mentioned end mill, when it is a multi-blade specification in which a large number of cutting blades are arranged in the circumferential direction to support high-speed machining, the hole machining becomes more complicated and the machining time becomes longer, so the tool price is more expensive. become. The same applies to the rotary grindstone for surface grinders.
特開2001-239420JP 2001-239420 A 特開平7-223152JP-A-7-223152
 本発明は、上記問題を解決しようとするもので、工具本体内に軸方向に設けた供給孔から端面側の切削チップや回転砥石の近傍に切削チップ等の冷却や切屑排出等のための気体、液体、粉体あるいはこれらの混合物である流体物を噴射させるための流通孔を簡易にかつ安価に形成することが可能な回転切削工具及び回転研削工具を提供することを目的とする。 The present invention is intended to solve the above-mentioned problem, and a gas for cooling the chip or discharging chips in the vicinity of the cutting tip or rotating grindstone on the end face side from the supply hole provided in the tool body in the axial direction. Another object of the present invention is to provide a rotary cutting tool and a rotary grinding tool capable of easily and inexpensively forming a flow hole for injecting a fluid, which is a liquid, powder, or a mixture thereof.
 上記目的を達成するために本発明の構成上の特徴は、筒状の工具本体の外周における少なくとも端面側にて周方向に沿った複数箇所に切削チップが固定されており、工具本体にその軸方向に延びた流体流通用の供給孔を設けた回転切削工具であって、工具本体の端面にて同軸状に凹んで供給孔に連通する流通凹部と、該流通凹部に重ね合わせて固定される蓋部材とを設け、流通凹部と蓋部材との間に供給孔と工具本体外周の切削チップ近傍を連通させる複数の流通孔を設けたことにある。 In order to achieve the above object, the structural feature of the present invention is that cutting tips are fixed at a plurality of locations along the circumferential direction at least on the end face side of the outer periphery of the cylindrical tool body, and the axis of the cutting tool is fixed to the tool body. A rotary cutting tool provided with a supply hole for fluid circulation extending in the direction, which is recessed on the end face of the tool body in a coaxial manner and communicated with the supply hole, and is overlapped and fixed to the circulation recess A lid member is provided, and a plurality of flow holes are provided between the flow recess and the cover member to communicate the vicinity of the cutting hole on the outer periphery of the tool body with the supply hole.
 上記のように構成した発明においては、回転切削工具を回転駆動させることにより、工具本体に固定された切削チップの端部の切刃や外周側に設けた外周刃により被削材の平面切削、溝加工等の切削加工が行われる。加工の際に、加工機械の動力回転軸側から供給される気体等の流体物が、工具本体の供給孔を通して流通凹部と蓋部材との間に設けた流通孔から工具本体外周側の複数の切削チップ近傍に噴射される。これにより、被削物の切削の際に生じる切削チップ周囲の加熱状態を冷却することができ、また被削物から生じる切屑をスムーズに排出することができ、回転切削工具の良好な動作が確保される。 In the invention configured as described above, the rotary cutting tool is rotationally driven, so that the cutting of the cutting material fixed to the tool main body and the cutting edge of the cutting tip fixed to the tool body or the peripheral cutting provided on the outer peripheral side, plane cutting of the work material, Cutting such as grooving is performed. During processing, a fluid such as a gas supplied from the power rotary shaft side of the processing machine passes through a supply hole of the tool body through a flow hole provided between the flow recess and the lid member, and a plurality of fluids on the outer periphery side of the tool body are provided. Sprayed in the vicinity of the cutting tip. As a result, the heated state around the cutting tip that occurs when cutting the workpiece can be cooled, and chips generated from the workpiece can be discharged smoothly, ensuring good operation of the rotary cutting tool. Is done.
 本発明においては、流体物の通過する流通孔を、工具本体に形成された流通凹部と蓋部材の間に流通凹部と蓋部材の少なくとも一方に容易に形成することができ、従来のように工具本体に直接貫通した小径の供給孔を軸に対して傾斜して形成する難解な加工を行う必要がない。その結果、本発明によれば、流通孔形成の手間や加工時間が削減されるため、回転切削工具のコストが低減する。また、特に、高速回転のために工具本体に多数の切削チップを配設した多刃仕様の回転切削工具については、流通孔形成の手間や加工時間が一層削減されるため、回転切削工具のコストがさらに低減する。 In the present invention, the flow hole through which the fluid passes can be easily formed in at least one of the flow recess and the cover member between the flow recess formed in the tool body and the cover member. There is no need to perform a difficult process of forming a small-diameter supply hole that penetrates directly into the main body so as to be inclined with respect to the axis. As a result, according to the present invention, the labor and time for forming the flow hole are reduced, and the cost of the rotary cutting tool is reduced. In particular, for multi-blade rotary cutting tools in which a large number of cutting tips are arranged in the tool body for high-speed rotation, the labor and time required for forming flow holes are further reduced. Is further reduced.
 また、本発明において、流通孔が、流通凹部と蓋部材のいずれか一方側に設けられることが好ましい。これにより、流通孔を流通凹部と蓋部材のいずれか一方側の加工により設けることができるため、加工が非常に容易になり、流通孔加工のコストの大幅な低減が可能になる。流通孔を流通凹部に設ける場合は、流通凹部の形成と同時に流通孔を加工できるので加工の手間が減少し、また流通孔を蓋部材に形成する場合は、プレス加工等により蓋部材と一体で形成できるので加工の手間がさらに減少する。 In the present invention, it is preferable that the flow hole is provided on one side of the flow recess and the lid member. Accordingly, since the flow hole can be provided by processing on one side of the flow recess and the lid member, the processing becomes very easy, and the cost of the flow hole processing can be greatly reduced. When the flow hole is provided in the flow recess, the flow hole can be processed simultaneously with the formation of the flow recess, so that the processing labor is reduced, and when the flow hole is formed in the cover member, it is integrated with the cover member by pressing or the like. Since it can be formed, the labor of processing is further reduced.
 また、本発明において、工具本体の切削チップ近傍位置に流通孔に連通する切欠き部を設けることが好ましい。これにより、回転切削工具による被削材の加工時に、流通孔を通して噴出した流体物が、切欠き部によって切削チップ近傍に安定して供給される。また、切欠き部によって、切削チップ側面の刃付け作業が簡易になるため、回転切削工具のコストがさらに低減する。 In the present invention, it is preferable to provide a notch portion communicating with the flow hole at a position near the cutting tip of the tool body. As a result, when the work material is processed by the rotary cutting tool, the fluid ejected through the flow hole is stably supplied to the vicinity of the cutting tip by the notch. Moreover, since the cutting operation on the side surface of the cutting tip is simplified by the notch, the cost of the rotary cutting tool is further reduced.
 本発明の他の特徴は、筒状の工具本体の外周における少なくとも端面側にて周方向に沿って研削砥石が固定され、工具本体にその軸方向に延びた流体流通用の供給孔を設けた回転研削工具であって、工具本体の端面にて同軸状に凹んで供給孔に連通する流通凹部と、該流通凹部に重ね合わせて固定される蓋部材とを設け、流通凹部と蓋部材との間に供給孔と研削砥石の近傍を連通させる複数の流通孔を設けたことにある。 Another feature of the present invention is that a grinding wheel is fixed along the circumferential direction at least on the end face side of the outer periphery of the cylindrical tool body, and a supply hole for fluid circulation extending in the axial direction is provided in the tool body. A rotary grinding tool, provided with a flow recess recessed coaxially on the end surface of the tool body and communicating with the supply hole, and a lid member fixed to be overlapped with the flow recess, A plurality of flow holes for communicating the vicinity of the supply hole and the grinding wheel between them are provided.
 他の特徴においても、気体等の流体物が、工具本体の供給孔を通して流通凹部と蓋部材との間に設けた流通孔から工具本体外周の回転砥石近傍に噴射させることができ、被削物の研削の際に生じる回転砥石周囲の加熱状態を冷却することができ、また被削物から生じる研削スラッジを吹き飛ばすことができ、回転研削工具の良好な動作が確保される。他の特徴においても、流体物の流通孔を、工具本体に形成された流通凹部と蓋部材の間に簡易な加工により形成すればよく、従来のように工具本体に直接貫通した小径の供給孔を形成する難解な加工を行う必要がない。その結果、本発明によれば、流通孔形成の手間や加工時間が削減されるため、回転研削工具のコストを低減できる。 In another feature, a fluid such as gas can be jetted from the flow hole provided between the flow recess and the lid member through the supply hole of the tool body to the vicinity of the rotating grindstone on the outer periphery of the tool body. It is possible to cool the heating state around the rotating grindstone generated during the grinding, and it is possible to blow away the grinding sludge generated from the work, thereby ensuring a good operation of the rotating grinding tool. In another feature, the fluid distribution hole may be formed by simple processing between the flow recess formed in the tool body and the lid member, and a small-diameter supply hole that directly penetrates the tool body as in the past. There is no need to perform an esoteric process to form the. As a result, according to the present invention, the labor and time required for forming the flow holes are reduced, so that the cost of the rotary grinding tool can be reduced.
 さらに、他の特徴において、流通孔が、流通凹部と蓋部材のいずれか一方側に設けられることが好ましい。これにより、流通孔を流通凹部と蓋部材のいずれか一方側の加工により設けることができるため、加工が非常に容易になり、流通孔加工のコストの大幅な低減が可能になる。 Furthermore, in another feature, it is preferable that the flow hole is provided on one side of the flow recess and the lid member. Accordingly, since the flow hole can be provided by processing on one side of the flow recess and the lid member, the processing becomes very easy, and the cost of the flow hole processing can be greatly reduced.
 本発明においては、流体物が通過する流通孔を、工具本体に形成された流通凹部と蓋部材の間に流通凹部と蓋部材の少なくとも一方に簡易な加工により形成すればよく、従来のように軸に対して傾斜して形成する難解な加工を行う必要がないため、流通孔形成の手間が削減され、回転切削工具や回転研削工具のコストが低減する。特に、高速回転のために工具本体に多数の切削チップを配設した多刃仕様の回転切削工具においては、流通孔形成の手間や加工時間が一層削減されるため、回転切削工具のコストがさらに低減する。 In the present invention, the flow hole through which the fluid passes can be formed by simple processing between at least one of the flow recess and the cover member between the flow recess and the cover member formed in the tool body. Since it is not necessary to perform an intricate processing that is inclined with respect to the axis, the labor for forming the flow hole is reduced, and the cost of the rotary cutting tool and rotary grinding tool is reduced. In particular, in a multi-blade rotary cutting tool in which a large number of cutting tips are arranged in the tool body for high-speed rotation, the labor and time required for forming a flow hole are further reduced, so the cost of the rotary cutting tool is further increased. To reduce.
実施例1に係るシャンクタイプフライスを示す正面図である。It is a front view which shows the shank type milling machine which concerns on Example 1. FIG. 同フライスを示す側面図である。It is a side view showing the milling machine. 図1のIII-III線方向の断面図である。FIG. 3 is a sectional view taken along the line III-III in FIG. 1. 同フライスで蓋部材を取り外した状態を示す正面図である。It is a front view which shows the state which removed the cover member with the same milling machine. 蓋部材を示す平面図、正面図及び底面図である。It is the top view which shows a cover member, a front view, and a bottom view. 実施例2に係るフライスを示す正面図である。6 is a front view showing a milling cutter according to Embodiment 2. FIG. 図6のVII-VII線方向の断面図である。FIG. 7 is a cross-sectional view taken along line VII-VII in FIG. 6. 同フライスで蓋部材を取り外した状態を示す正面図である。It is a front view which shows the state which removed the cover member with the same milling machine. 蓋部材を示す平面図、正面図及び底面図である。It is the top view which shows a cover member, a front view, and a bottom view. 実施例3に係る回転研削工具を示す正面図である。6 is a front view showing a rotary grinding tool according to Example 3. FIG. 同回転研削工具を示す側面図である。It is a side view which shows the rotary grinding tool. 図11のW-W線方向の断面図である。It is sectional drawing of the WW line direction of FIG. 同回転研削工具で蓋部材を取り外した状態を示す正面図である。It is a front view which shows the state which removed the cover member with the same rotation grinding tool.
 以下、本発明の実施形態について図面を用いて説明する。図1、図2及び図3は、実施例1に係る回転切削工具の一例である金属加工等に用いられる多刃仕様のシャンクタイプフライス(以下、フライスと記す。)について、正面図、側面図及びIII-III線方向断面図により示したものであり、図4は蓋部材を取り外した状態を正面図により示したものである。 Hereinafter, embodiments of the present invention will be described with reference to the drawings. 1, 2, and 3 are a front view and a side view of a multi-blade shank type milling cutter (hereinafter, referred to as a milling cutter) used in metal processing or the like that is an example of a rotary cutting tool according to Embodiment 1. FIG. FIG. 4 is a front view showing a state where the lid member is removed.
 フライス10は、長尺の丸棒状の鉄製部材であり、大径の工具本体11と、工具本体11の軸方向一端に同軸状に接続された工具本体11より小径のシャンク12とを一体で設けており、工具本体11の先端面側(軸方向他端側)に設けた流通凹部19に蓋部材31が嵌め合わされて固定されている。フライス10は、シャンク12によってフライス盤等の加工機械の動力回転軸Sに取り付けられるようになっている。工具本体11とシャンク12は、軸心位置にて貫通した圧縮空気(流体物)を流通させるための貫通孔である供給孔13を設けている。工具本体11は、軸方向中間を境として端面側の切削部15と、シャンク12側の切削部15よりわずかに小径でシャンク12より大径の中央部16とに分けられて、両者の境界が段差部17になっている。 The milling cutter 10 is a long round bar-shaped iron member, and is integrally provided with a large-diameter tool main body 11 and a shank 12 smaller in diameter than the tool main body 11 coaxially connected to one axial end of the tool main body 11. The lid member 31 is fitted and fixed to the flow recess 19 provided on the tip surface side (the other end side in the axial direction) of the tool body 11. The milling machine 10 is attached to a power rotary shaft S of a processing machine such as a milling machine by a shank 12. The tool body 11 and the shank 12 are provided with a supply hole 13 which is a through hole for allowing the compressed air (fluid) penetrating at the axial center position to flow therethrough. The tool body 11 is divided into an end face side cutting portion 15 and a central portion 16 having a slightly smaller diameter than the shank 12 and a larger diameter than the shank 12 with the axial middle as a boundary. A stepped portion 17 is formed.
 切削部15は、図3及び図4に示すように、軸方向他端側の先端面に軸心を中心に内側に凹んだ円形の流通凹部19を設けている。流通凹部19は、端面側の円筒形の外孔部21と、その内側で軸心に向けて略20°程度に傾斜した環状の傾斜孔部22と、傾斜孔部22の内周縁にて軸方向内側にわずかに凹んだ円形の底孔部23を有しており、底孔部23内の外周縁側には周方向の4箇所に等間隔に軸方向に延びたねじ孔である固定孔24を設けている。傾斜孔部22は、周方向に等間隔に離間した16箇所にて後述する切削部15外周側の切欠き部29と径方向に繋がる部分がわずかに軸方向に凹んだ傾斜溝部25になっている。 As shown in FIGS. 3 and 4, the cutting portion 15 is provided with a circular flow recess 19 that is recessed inwardly with the axial center as the center at the tip surface on the other end side in the axial direction. The flow recess 19 includes a cylindrical outer hole portion 21 on the end surface side, an annular inclined hole portion 22 inclined toward the axial center on the inner side thereof by about 20 °, and an inner periphery of the inclined hole portion 22. It has a circular bottom hole portion 23 that is slightly recessed inward in the direction, and a fixing hole 24 that is a screw hole extending in the axial direction at equal intervals in four circumferential directions on the outer peripheral edge side in the bottom hole portion 23. Is provided. The inclined hole portion 22 is an inclined groove portion 25 in which a portion connected in a radial direction to a notch portion 29 on the outer peripheral side of the cutting portion 15 to be described later is slightly recessed in the axial direction at 16 locations spaced at equal intervals in the circumferential direction. Yes.
 切削部15端部においては、外周縁と外孔部21との間は軸方向内側に略10°程度傾斜した傾斜面18となっている。切削部15は、図1~図3に示すように、外周面の周方向に等間隔に離間した16箇所に軸方向に対して回転後方側に向けて略5°程度傾斜した所定幅の真直ぐな溝部26が両端間に延びて形成されており、溝部26の間が相対的に径方向に突出した真直ぐな凸状部27になっており、溝部26と凸状部27の幅はほぼ同一になっている。 At the end of the cutting portion 15, an inclined surface 18 is formed between the outer peripheral edge and the outer hole portion 21 that is inclined approximately 10 ° inward in the axial direction. As shown in FIGS. 1 to 3, the cutting portion 15 is a straight line having a predetermined width inclined at about 5 ° toward the rotational rear side with respect to the axial direction at 16 locations spaced at equal intervals in the circumferential direction of the outer peripheral surface. The groove portion 26 is formed to extend between both ends, and a straight convex portion 27 that protrudes relatively in the radial direction is formed between the groove portions 26. The width of the groove portion 26 and the convex portion 27 is substantially the same. It has become.
 凸状部27の先端側(軸方向他端側)は、後述する切削チップ38が取り付けられる取付座28になっており、取付座28の周方向両側が切欠かれて溝部26と連通する切欠き部29となっている。切欠き部29は、径方向内側の傾斜溝部25に面一で連通している。取付座28の回転前方側には、多結晶ダイヤモンド等からなる切削チップ38がロー付により固定されている。なお、切削チップ38については、固定タイプではなく替刃タイプのものでもよい。 The front end side (the other end side in the axial direction) of the convex portion 27 is a mounting seat 28 to which a cutting tip 38 to be described later is attached, and notches communicated with the groove portion 26 by notching both sides in the circumferential direction of the mounting seat 28. It is part 29. The notch 29 communicates with the inclined groove 25 on the radially inner side in a flush manner. A cutting tip 38 made of polycrystalline diamond or the like is fixed to the front side of the mounting seat 28 by brazing. The cutting tip 38 may be a replaceable blade type instead of a fixed type.
 切削部15の流通凹部19には、蓋部材31が取り付けられている。蓋部材31は、図5に示すように、径が上記外孔部21の外径と同一の表裏両面32,33が平坦な円形の厚板であり、裏面33の外周縁側が周方向全周に沿って略20°の傾斜角度で斜めに切り欠かれて円錐環状の傾斜部34となっている。傾斜部34の傾斜角度は、上記流通凹部19の傾斜孔部22の傾斜角度に合わされている。裏面33外周縁側の周方向に等間隔な4箇所には、取付孔35が板面を貫通して設けられている。蓋部材31の厚さは、上記流通凹部19の外孔部21とほぼ同等の厚さとなっている。 A lid member 31 is attached to the flow recess 19 of the cutting portion 15. As shown in FIG. 5, the lid member 31 is a circular thick plate having flat front and back surfaces 32, 33 having the same diameter as the outer diameter of the outer hole portion 21, and the outer peripheral edge side of the back surface 33 is the entire circumference in the circumferential direction. Is inclined obliquely at an inclination angle of approximately 20 ° to form a conical annular inclined portion 34. The inclination angle of the inclined portion 34 is matched with the inclination angle of the inclined hole portion 22 of the flow recess 19. Mounting holes 35 are provided through the plate surface at four equally spaced locations on the outer peripheral side of the back surface 33. The thickness of the lid member 31 is substantially the same as that of the outer hole portion 21 of the flow recess 19.
 蓋部材31は、切削部15の流通凹部19に裏面33側から嵌め合わされ、取付孔35を切削部15に設けた固定孔24位置に合わせて傾斜部34を傾斜孔部22に重ね合わせることにより装着され、取付孔35からビス36を挿入して固定孔24に螺着させることにより切削部15に取り付けられる。このような蓋部材31の取り付けにより、蓋部材31の傾斜部34が流通凹部19の傾斜孔部22に密着し、裏面33と底板部23との間が大きな隙間となっており、また表面32が切削部15の傾斜面18内周縁から大きく凹んだ状態になっている。また、流通凹部19の傾斜溝部25によって、蓋部材31の傾斜部34との間にわずかな隙間である流通孔25aが形成される。供給孔13から供給される圧縮空気が、この流通孔25aを通して流通凹部19と取付座28間を円滑に通過できるようになっている。 The lid member 31 is fitted into the flow recess 19 of the cutting portion 15 from the back surface 33 side, and the inclined portion 34 is overlapped with the inclined hole portion 22 so that the mounting hole 35 is aligned with the position of the fixing hole 24 provided in the cutting portion 15. The screw 36 is inserted through the mounting hole 35 and screwed into the fixing hole 24 to be attached to the cutting portion 15. By attaching the lid member 31 as described above, the inclined portion 34 of the lid member 31 is in close contact with the inclined hole portion 22 of the flow recess 19, and a large gap is formed between the back surface 33 and the bottom plate portion 23, and the front surface 32. Is greatly recessed from the inner peripheral edge of the inclined surface 18 of the cutting portion 15. In addition, a flow hole 25 a that is a slight gap is formed between the inclined groove portion 25 of the flow recess 19 and the inclined portion 34 of the lid member 31. The compressed air supplied from the supply hole 13 can smoothly pass between the flow recess 19 and the mounting seat 28 through the flow hole 25a.
 以上のような構成の実施例1においては、フライス10を回転駆動させることにより、工具本体11の取付座28に固定された切削チップ38の端部の側面刃や外周側に設けた外周刃により被削材の正面フライス加工、溝加工等が行われる。加工の際に、加工機械の動力回転軸Sから供給される冷却用の気体等の圧縮空気が、供給孔13を通して蓋部材31の傾斜部34と傾斜溝部25との間に形成された流通孔25aから切欠き部29を介して複数の切削チップ38の近傍に噴射される。これにより、被削物の切削の際に生じる切削チップ38及び切削部15の加熱状態を冷却することができ、また被削物から生じる切屑を円滑に排出することができ、その結果、フライス10の良好な動作が確保される。 In the first embodiment having the above-described configuration, the milling cutter 10 is driven to rotate by the side blade at the end of the cutting tip 38 fixed to the mounting seat 28 of the tool body 11 or the outer peripheral blade provided on the outer peripheral side. Face milling and grooving of the work material are performed. During processing, compressed air such as cooling gas supplied from the power rotary shaft S of the processing machine is formed between the inclined portion 34 and the inclined groove portion 25 of the lid member 31 through the supply hole 13. Injected from 25 a to the vicinity of the plurality of cutting tips 38 through the notch 29. Thereby, the heating state of the cutting tip 38 and the cutting part 15 generated when cutting the workpiece can be cooled, and chips generated from the workpiece can be discharged smoothly. As a result, the milling machine 10 Good operation is ensured.
 実施例1においては、圧縮空気の通過する多数の流通孔25aを、工具本体11に流通凹部19を形成すると同時に、傾斜溝部25に容易に形成することができ、従来のように工具本体に直接貫通した多数の小径の供給孔を軸に対して傾斜して形成する難解な加工を行う必要がない。その結果、実施例1によれば、流通孔25a形成の手間が削減され、フライス10の製造コストが低減する。特に、高速加工のため多数の切削チップ38を配設した多刃仕様のフライス10については、流通孔25a形成の手間や加工時間が一層削減されるため、フライス10のコストがさらに低減する。また、実施例1においては、切削部15の取付座28間に切欠き部29を設けたことにより、フライス10による被削材の加工時に、流通孔25aを通して噴出した圧縮空気が、切欠き部29によって切削チップ38近傍に安定して供給されると共に、切削加工によって生じた切屑の排出が円滑に行われる。さらに、実施例1においては、切欠き部29を設けたことにより、切削チップ38側面の刃付け作業が簡易になるため、フライス10のコストがさらに低減する。 In the first embodiment, a large number of flow holes 25a through which compressed air passes can be easily formed in the inclined groove 25 at the same time as the flow recess 19 is formed in the tool main body 11, and directly in the tool main body as in the past. There is no need to perform a difficult process of forming a large number of small-diameter supply holes penetrating therethrough with respect to the axis. As a result, according to the first embodiment, the labor for forming the flow hole 25a is reduced, and the manufacturing cost of the milling cutter 10 is reduced. In particular, for the multi-blade milling machine 10 provided with a large number of cutting tips 38 for high-speed machining, the labor and processing time for forming the flow holes 25a are further reduced, so that the cost of the milling machine 10 is further reduced. Moreover, in Example 1, the notch part 29 was provided between the attachment seats 28 of the cutting part 15, and the compressed air which ejected through the flow hole 25a at the time of the processing of the workpiece by the milling machine 10 is notch part. 29 is stably supplied to the vicinity of the cutting tip 38, and chips generated by the cutting process are discharged smoothly. Further, in the first embodiment, since the notch portion 29 is provided, the cutting operation on the side surface of the cutting tip 38 is simplified, so that the cost of the milling cutter 10 is further reduced.
 つぎに、実施例2について図6~図9に基づいて説明する。
 実施例2に係るフライス40は、上記実施例1のフライス10のように圧縮空気が通過する流通孔を工具本体11側に設けたものではなく、蓋部材51側に設けたものである。フライス40は、実施例1のフライス10と同様の工具本体41とシャンク12とを一体で設けており、工具本体41の流通凹部43に蓋部材51が嵌め合わされて固定されている。工具本体41は、上記工具本体11と略同一構造であり、共通部分については以下工具本体11と同一符号を付す。工具本体41は、端面側の切削部42と、中央部16とを設け、両者の境界が段差部17になっている。
Next, Example 2 will be described with reference to FIGS.
The milling cutter 40 according to the second embodiment is not provided with a flow hole through which the compressed air passes like the milling cutter 10 of the first embodiment, but provided on the lid member 51 side. In the milling cutter 40, a tool main body 41 and a shank 12 similar to those of the milling cutter 10 of the first embodiment are integrally provided, and a lid member 51 is fitted and fixed to a flow recess 43 of the tool main body 41. The tool main body 41 has substantially the same structure as the tool main body 11, and the same reference numerals as those of the tool main body 11 are attached to the common parts. The tool main body 41 is provided with a cutting portion 42 on the end face side and a central portion 16, and the boundary between both is a stepped portion 17.
 切削部42は、軸方向他端側の先端面に軸心を中心に内側に曲面状に凹んだ流通凹部43を設けている。流通凹部43は外孔部21と、傾斜孔部44と、底孔部23とを設け、底孔部23の外周側には周方向の4箇所に等間隔に固定孔24を設けている。傾斜孔部44は、実施例1の傾斜孔部22のように周方向の16箇所に傾斜溝部25を設けていなく、連続した円錐環状となっている。切削部42は、実施例1の切削部15のように切欠き部を設けていない。切削部42において、溝部26、凸状部27、取付座28等の他の構成については、実施例1の切削部15と同様であり、説明を省略する。 The cutting portion 42 is provided with a flow recess 43 that is recessed in a curved shape inwardly with the axial center as the center on the tip surface on the other end side in the axial direction. The flow recess 43 is provided with an outer hole portion 21, an inclined hole portion 44, and a bottom hole portion 23, and on the outer peripheral side of the bottom hole portion 23, fixed holes 24 are provided at equal intervals in four circumferential directions. The inclined hole portion 44 does not have the inclined groove portions 25 at 16 locations in the circumferential direction like the inclined hole portion 22 of the first embodiment, and has a continuous conical shape. The cutting part 42 is not provided with a notch like the cutting part 15 of the first embodiment. In the cutting part 42, other configurations such as the groove part 26, the convex part 27, and the mounting seat 28 are the same as those of the cutting part 15 of the first embodiment, and the description thereof is omitted.
 切削部42の流通凹部43に嵌め合わされる蓋部材51は、図9に示すように、上記蓋部材31とほぼ同様の外形となっているが、各面の形状が異なっている。蓋部材51は、径が上記外孔部21の外径と同一の表裏両面52,53が平坦な円形の厚板であり、裏面53の外周縁側が周方向全周に沿って略20°の傾斜角度で斜めに切り欠かれて円錐環状の傾斜部54となっている。裏面53外周縁側には、取付孔55が周方向に等間隔な4箇所に板面を貫通して設けられている。傾斜部54の周方向の等間隔な16箇所には、取付孔55よりわずかに中心側位置から外周縁まで径方向に延びた所定幅の流通溝部56が設けられている。流通溝部56は、内外端において表裏両面52,53側をわずかに切欠いた状態となっている。 The lid member 51 fitted in the flow recess 43 of the cutting part 42 has substantially the same outer shape as the lid member 31 as shown in FIG. 9, but the shape of each surface is different. The cover member 51 is a circular thick plate with flat front and back surfaces 52 and 53 having the same diameter as the outer diameter of the outer hole portion 21, and the outer peripheral edge side of the back surface 53 is approximately 20 ° along the entire circumference in the circumferential direction. A conical annular inclined portion 54 is formed by being cut out obliquely at an inclination angle. On the outer peripheral edge side of the back surface 53, mounting holes 55 are provided through the plate surface at four positions that are equally spaced in the circumferential direction. At sixteen equidistant positions in the circumferential direction of the inclined portion 54, there are provided flow channel portions 56 having a predetermined width that extend slightly in the radial direction from the center side position to the outer peripheral edge from the mounting hole 55. The flow groove portion 56 is in a state where the front and back surfaces 52 and 53 are slightly cut off at the inner and outer ends.
 蓋部材51は、切削部42の流通凹部43に裏面53側から嵌め合わされ、取付孔55を固定孔24位置に合わせて傾斜部54を傾斜孔部44に重ね合わせて装着され、取付孔55からビス36を挿入して固定孔24に螺着させることにより切削部15に取り付けられる。このような蓋部材51の取り付けにより、蓋部材51の傾斜部54が流通凹部43の傾斜孔部44に密着し、裏面53と底孔部23との間が大きな隙間となっており、また表面52が切削部42の傾斜面18内周縁とほぼ一致している。蓋部材51の流通溝部56によって、流通凹部43の傾斜孔部44との間にわずかな隙間である流通孔57が形成される。供給孔13から供給される圧縮空気が、この流通孔57を通して流通凹部43と取付座28間を円滑に通過できるようになっている。 The lid member 51 is fitted into the flow recess 43 of the cutting portion 42 from the back surface 53 side, and the attachment hole 55 is fitted to the position of the fixing hole 24 and the inclined portion 54 is overlapped with the inclined hole portion 44. The screw 36 is inserted and screwed into the fixing hole 24 to be attached to the cutting portion 15. By such attachment of the lid member 51, the inclined portion 54 of the lid member 51 is brought into close contact with the inclined hole portion 44 of the flow recess 43, and a large gap is formed between the back surface 53 and the bottom hole portion 23. 52 substantially coincides with the inner peripheral edge of the inclined surface 18 of the cutting portion 42. A flow hole 57 that is a slight gap is formed between the flow groove portion 56 of the lid member 51 and the inclined hole portion 44 of the flow recess 43. The compressed air supplied from the supply hole 13 can smoothly pass between the flow recess 43 and the mounting seat 28 through the flow hole 57.
 上記構成の実施例2においても、フライス40による被削物の切削や研削の際に生じる切削チップ38及び切削部42の加熱状態を冷却することができ、また被削物から生じる切屑を吹き飛ばすことができ、フライス40の良好な切削動作が確保される。そして、実施例2においては、流通孔57を形成するための流通溝部56を蓋部材51のみに設けることができるため、プレス加工等により蓋部材51と一体で流通溝部56を形成できるので加工の手間がさらに減少し、流通孔57加工のコストの大幅な低減が可能になる。 Also in the second embodiment having the above-described configuration, the heating state of the cutting tip 38 and the cutting part 42 generated when the workpiece is cut or ground by the milling cutter 40 can be cooled, and chips generated from the workpiece can be blown away. And good cutting operation of the milling cutter 40 is ensured. And in Example 2, since the flow groove part 56 for forming the flow hole 57 can be provided only in the lid member 51, the flow groove part 56 can be formed integrally with the cover member 51 by press working or the like. The labor is further reduced, and the cost for processing the flow hole 57 can be greatly reduced.
 なお、上記実施例1、2のフライスは、切削チップが切削部の外周側端面にのみ設けられた端面加工用となっているが、切削チップを切削部の外周面にも設けた構造のものであってもよい。また、上記実施例1、2においては、流通孔の形成のための加工を、切削部15と蓋部材51のみに行っているが、これに限らず両方に形成することも可能である。 The milling cutters of Examples 1 and 2 are for end face processing in which the cutting tip is provided only on the outer peripheral end face of the cutting part, but the structure in which the cutting tip is provided also on the outer peripheral face of the cutting part. It may be. Moreover, in the said Example 1, 2, although the process for formation of a flow hole is performed only to the cutting part 15 and the cover member 51, it is also possible to form not only in this but in both.
 つぎに、実施例3について図10~図13に基づいて説明する。
 実施例3は、回転研削工具60に関するものである。回転研削工具60は、実施例2のフライス40と同様の外形の工具本体61とシャンク62とを一体で設けており、工具本体61とシャンク62の軸心を貫通する供給孔63を設けており、工具本体61の流通凹部71に上記実施例2と同様の蓋部材51が取り付けられている。工具本体61は、軸方向中間を境として端面側の研削部65と、シャンク62側の研削部65よりわずかに小径でシャンク62より大径の中央部66とに分けられて、両者の境界が段差部67になっている。研削部65は、軸方向他端側の先端面外周縁に円環状に切欠かれた取付座68を設けており、取付座68には後述する円環状の研削砥石78が嵌め合わされ接着剤等により固定される。
Next, Embodiment 3 will be described with reference to FIGS.
The third embodiment relates to the rotary grinding tool 60. The rotary grinding tool 60 is integrally provided with a tool body 61 and a shank 62 having the same outer shape as the milling cutter 40 of the second embodiment, and is provided with a supply hole 63 penetrating the axis of the tool body 61 and the shank 62. A lid member 51 similar to that of the second embodiment is attached to the flow recess 71 of the tool body 61. The tool body 61 is divided into a grinding part 65 on the end face side and a central part 66 having a slightly smaller diameter than the grinding part 65 on the shank 62 side and a larger diameter than the shank 62 with the middle in the axial direction as a boundary. A stepped portion 67 is formed. The grinding part 65 is provided with a mounting seat 68 that is cut out in an annular shape at the outer peripheral edge of the tip end surface on the other end side in the axial direction. Fixed.
 研削部65は、取付座68のわずか内側に軸心を中心に内側に曲面状に凹んだ流通凹部71を設けている。流通凹部71は外孔部72と、円錐状に凹んだ傾斜孔部73と、底孔部74とを設け、底孔部74内の外周側には周方向の4箇所に等間隔にねじ孔である固定孔75を設けている。研削部65の流通凹部71に嵌め合わされる蓋部材51は、実施例2に示したものと同一であるため、説明を省く。研削砥石78は、円環状で内径が取付座68の内径と同一で、外径が研削部65の外径よりわずかに大きく、厚さも取付座68の深さよりわずかに大きくなっており、取付座68に固定されることにより、研削部65の外周面及び先端面から突出して配設されている。 The grinding portion 65 is provided with a flow recess 71 that is recessed in a curved shape on the inside centered on the shaft center on the inner side of the mounting seat 68. The flow recess 71 is provided with an outer hole 72, an inclined hole 73 conically recessed, and a bottom hole 74. On the outer peripheral side of the bottom hole 74, screw holes are provided at equal intervals in four circumferential directions. A fixing hole 75 is provided. Since the lid member 51 fitted in the flow recess 71 of the grinding part 65 is the same as that shown in the second embodiment, the description thereof is omitted. The grinding wheel 78 has an annular shape, the inner diameter is the same as the inner diameter of the mounting seat 68, the outer diameter is slightly larger than the outer diameter of the grinding portion 65, and the thickness is slightly larger than the depth of the mounting seat 68. By being fixed to 68, the grinding part 65 is disposed so as to protrude from the outer peripheral surface and the front end surface.
 蓋部材51は、研削部65の流通凹部71に裏面53側から嵌め合わせ、取付孔55を固定孔75位置に合わせて傾斜部54を傾斜孔部73に重ね合わせて装着され、ビス36によって研削部65に固定される。蓋部材51の取り付けにより、蓋部材51の傾斜部54が流通凹部71の傾斜孔部73に密着し、裏面53と底孔部74との間が大きな隙間となっており、また表面52が傾斜面18内周縁とほぼ一致している。蓋部材51の流通溝56によって、流通凹部71の傾斜孔部73との間にわずかな隙間である流通孔76が形成され、流通孔76が研削部65の研削砥石78の先端内周側に連通する。これにより、供給孔63から研削砥石78の内周近傍への圧縮空気の噴射が円滑に行われるようになる。 The lid member 51 is fitted to the flow recess 71 of the grinding portion 65 from the back surface 53 side, is mounted with the mounting hole 55 aligned with the fixing hole 75 position and the inclined portion 54 superimposed on the inclined hole portion 73, and is ground by the screw 36. It is fixed to the part 65. By attaching the lid member 51, the inclined portion 54 of the lid member 51 is brought into close contact with the inclined hole portion 73 of the flow recess 71, and a large gap is formed between the back surface 53 and the bottom hole portion 74, and the front surface 52 is inclined. It substantially coincides with the inner peripheral edge of the surface 18. A flow hole 76, which is a slight gap, is formed between the flow groove 56 of the lid member 51 and the inclined hole portion 73 of the flow recess 71, and the flow hole 76 is formed on the tip inner peripheral side of the grinding wheel 78 of the grinding portion 65. Communicate. As a result, the compressed air is smoothly injected from the supply hole 63 to the vicinity of the inner periphery of the grinding wheel 78.
 上記構成の実施例3においても、回転研削工具60による被削物の研削の際に生じる研削砥石78及び研削部65の加熱状態を冷却することができ、また被削物から生じる研削スラッジを吹き飛ばすことができ、回転研削工具60の良好な動作が確保される。そして、実施例3においても、流通孔76を形成するための流通溝部56を蓋部材51のみに設けることができるため、プレス加工等により蓋部材と一体で流通孔を形成できるので加工の手間がさらに減少するため、流通孔加工のコストの大幅な低減が可能になる。なお、実施例3においても、流通孔については、実施例1と同様、研削部側にのみ設けることも可能であり、また研削部と蓋部材の両方に設けることもできる。 Also in the third embodiment having the above-described configuration, the heating state of the grinding wheel 78 and the grinding unit 65 generated when the workpiece is ground by the rotary grinding tool 60 can be cooled, and the grinding sludge generated from the workpiece is blown off. And good operation of the rotary grinding tool 60 is ensured. Also in the third embodiment, since the flow groove portion 56 for forming the flow hole 76 can be provided only in the cover member 51, the flow hole can be formed integrally with the cover member by pressing or the like, so that the processing work is troublesome. Furthermore, since it reduces, the cost of a flow hole processing can be reduced significantly. In Example 3, the flow holes can be provided only on the grinding part side as in Example 1, and can also be provided on both the grinding part and the lid member.
 上記実施例1、2、3に示すフライス、回転研削工具は、シャンクタイプであるが、シャンクを有しなく工具本体を直接回転軸に固定するタイプであってもよい。回転切削工具の場合、蓋部材を着脱可能にすることによって再研磨が容易にされるが、実施例3のような回転研削工具の場合、再生はドレッシングされるため蓋部材をロー付等で固着してもよい。また、工具本体とシャンクに設けた供給孔については、軸心位置に限らず、また1本に限らず複数本でもよい。その他、上記各実施例に示した回転切削工具については一例であり、本発明の趣旨を逸脱しない範囲で種々変更して実施することが可能である。 The milling and rotary grinding tools shown in Examples 1, 2, and 3 are of a shank type, but may be of a type that does not have a shank and directly fixes the tool body to the rotating shaft. In the case of a rotary cutting tool, re-polishing is facilitated by making the lid member detachable. However, in the case of the rotary grinding tool as in Example 3, since the regeneration is dressed, the lid member is fixed with brazing or the like. May be. Further, the supply holes provided in the tool main body and the shank are not limited to the axial center position, and are not limited to one and may be a plurality. In addition, the rotary cutting tools shown in the above embodiments are merely examples, and various modifications can be made without departing from the spirit of the present invention.
 本発明は、回転切削工具や回転研削工具の流体物が通過する流通孔を、工具本体に形成された流通凹部と蓋部材の間に、流通凹部と蓋部材の少なくとも一方に簡易な加工により形成することができ、従来に比べて流通孔形成の手間が削減されるため、工具コストを低減できるので、有用である。 According to the present invention, a flow hole through which a fluid of a rotary cutting tool or a rotary grinding tool passes is formed between a flow recess and a lid member formed in the tool body by simple processing in at least one of the flow recess and the lid member. Since the labor for forming the flow hole is reduced as compared with the conventional case, the tool cost can be reduced, which is useful.
10,40…フライス、11,41…工具本体、13…供給孔、15,42…切削部、19,43…流通凹部、21…外孔部、22,44…傾斜孔部、23…底孔部、25…傾斜溝部、25a,57…流通孔、29…切欠き部、31,51…蓋部材、34,54…傾斜部、35,55…取付孔、38…切削チップ、56…流通溝部、60…回転研削工具、61…工具本体、63…供給孔、65…研削部、71…流通凹部、72…外孔部、73…傾斜孔部、74…底孔部、76…流通孔、78…研削砥石。 DESCRIPTION OF SYMBOLS 10,40 ... Milling, 11, 41 ... Tool main body, 13 ... Supply hole, 15, 42 ... Cutting part, 19, 43 ... Flowing recessed part, 21 ... Outer hole part, 22, 44 ... Inclined hole part, 23 ... Bottom hole , 25 ... inclined groove, 25a, 57 ... flow hole, 29 ... notch, 31, 51 ... lid member, 34, 54 ... inclined part, 35, 55 ... mounting hole, 38 ... cutting tip, 56 ... flow groove , 60 ... Rotary grinding tool, 61 ... Tool body, 63 ... Supply hole, 65 ... Grinding part, 71 ... Distribution recess, 72 ... Outer hole part, 73 ... Inclined hole part, 74 ... Bottom hole part, 76 ... Distribution hole, 78: A grinding wheel.

Claims (5)

  1.  筒状の工具本体の外周における少なくとも端面側にて周方向に沿った複数箇所に切削チップが固定されており、前記工具本体にその軸方向に延びた流体流通用の供給孔を設けた回転切削工具であって、前記工具本体の端面にて同軸状に凹んで前記供給孔に連通する流通凹部と、該流通凹部に重ね合わせて固定される蓋部材とを設け、前記流通凹部と前記蓋部材との間に前記供給孔と前記工具本体外周の前記切削チップ近傍を連通させる複数の流通孔を設けたことを特徴とする回転切削工具。 Rotational cutting in which cutting tips are fixed at a plurality of locations along the circumferential direction at least on the end face side of the outer periphery of the cylindrical tool body, and fluid supply holes extending in the axial direction are provided in the tool body. A tool, which is provided with a flow recess recessed coaxially on the end surface of the tool body and communicating with the supply hole, and a lid member fixed to be overlapped with the flow recess, the flow recess and the cover member And a plurality of flow holes for communicating the vicinity of the cutting tip on the outer periphery of the tool body with the supply hole.
  2.  前記流通孔が、前記流通凹部と前記蓋部材のいずれか一方側に設けられたことを特徴とする請求項1に記載の回転切削工具。 The rotary cutting tool according to claim 1, wherein the flow hole is provided on one side of the flow recess and the lid member.
  3.  前記工具本体の前記切削チップ近傍位置に前記流通孔に連通する切欠き部を設けたことを特徴とする請求項1又は2に記載の回転切削工具。 The rotary cutting tool according to claim 1 or 2, wherein a notch portion communicating with the flow hole is provided at a position near the cutting tip of the tool body.
  4.  筒状の工具本体の外周における少なくとも端面側にて周方向に沿って研削砥石が固定され、前記工具本体にその軸方向に延びた流体流通用の供給孔を設けた回転研削工具であって、前記工具本体の端面にて同軸状に凹んで前記供給孔に連通する流通凹部と、該流通凹部に重ね合わせて固定される蓋部材とを設け、前記流通凹部と前記蓋部材との間に前記供給孔と前記研削砥石の近傍を連通させる複数の流通孔を設けたことを特徴とする回転研削工具。 A rotary grinding tool in which a grinding wheel is fixed along the circumferential direction on at least the end face side of the outer periphery of a cylindrical tool body, and a supply hole for fluid circulation extending in the axial direction is provided in the tool body, A flow recess recessed coaxially on the end surface of the tool body and communicating with the supply hole, and a lid member fixed to be overlapped with the flow recess are provided, and the flow recess and the lid member A rotary grinding tool characterized in that a plurality of flow holes are provided for communicating between the supply hole and the vicinity of the grinding wheel.
  5.  前記流通孔が、前記流通凹部と前記蓋部材のいずれか一方側に設けられたことを特徴とする請求項4に記載の回転研削工具。 The rotary grinding tool according to claim 4, wherein the flow hole is provided on one side of the flow recess and the lid member.
PCT/JP2013/007261 2012-12-14 2013-12-10 Rotating cutting tool and rotating grinding tool WO2014091748A1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
MX2015007738A MX2015007738A (en) 2012-12-14 2013-12-10 Rotating cutting tool and rotating grinding tool.

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2012-273201 2012-12-14
JP2012273201A JP6084455B2 (en) 2012-12-14 2012-12-14 Rotary cutting tool

Publications (1)

Publication Number Publication Date
WO2014091748A1 true WO2014091748A1 (en) 2014-06-19

Family

ID=50934056

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/JP2013/007261 WO2014091748A1 (en) 2012-12-14 2013-12-10 Rotating cutting tool and rotating grinding tool

Country Status (3)

Country Link
JP (1) JP6084455B2 (en)
MX (1) MX2015007738A (en)
WO (1) WO2014091748A1 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CZ306910B6 (en) * 2016-07-14 2017-09-06 Západočeská Univerzita V Plzni A cutter with cooling
WO2018202726A1 (en) * 2017-05-02 2018-11-08 Komet Deutschland Gmbh Cutting tool having coolant deflection

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112719386A (en) * 2020-12-22 2021-04-30 大连理工大学 Ultra-low temperature medium hollow transmission type inner-cooling milling cutter with high cooling efficiency

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003522038A (en) * 2000-02-11 2003-07-22 サンドビック アクティエボラーグ Machine tool
JP2004167617A (en) * 2002-11-19 2004-06-17 Okamoto Machine Tool Works Ltd Grinding head structure equipped with cup wheel type whetstone

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4322189A (en) * 1980-03-13 1982-03-30 Briese Leonard A Coolant control for milling tools
JPH0742569Y2 (en) * 1987-11-13 1995-10-04 三菱マテリアル株式会社 Face mill with chip removal mechanism
JP4821125B2 (en) * 2005-02-08 2011-11-24 株式会社タンガロイ Turning tool

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003522038A (en) * 2000-02-11 2003-07-22 サンドビック アクティエボラーグ Machine tool
JP2004167617A (en) * 2002-11-19 2004-06-17 Okamoto Machine Tool Works Ltd Grinding head structure equipped with cup wheel type whetstone

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CZ306910B6 (en) * 2016-07-14 2017-09-06 Západočeská Univerzita V Plzni A cutter with cooling
WO2018202726A1 (en) * 2017-05-02 2018-11-08 Komet Deutschland Gmbh Cutting tool having coolant deflection
JP2020518477A (en) * 2017-05-02 2020-06-25 コメット ドイチェラント ゲーエムベーハー Cutting tool with coolant deflection
JP7057377B2 (en) 2017-05-02 2022-04-19 コメット ドイチェラント ゲーエムベーハー Cutting tool with coolant deflection
US11484955B2 (en) 2017-05-02 2022-11-01 Komet Deutschland Gmbh Cutting tool having coolant deflection

Also Published As

Publication number Publication date
JP6084455B2 (en) 2017-02-22
MX2015007738A (en) 2016-03-03
JP2014117762A (en) 2014-06-30

Similar Documents

Publication Publication Date Title
US7367753B2 (en) Milling cutter
JP6526987B2 (en) Slot milling disc and rotatable mounting shaft for such slot milling disc
US20170252839A1 (en) Side Milling Cutter and Production Method
CN107442873A (en) A kind of ultrasonic vibration auxiliary screw milling screw method
JP4545906B2 (en) Tooth groove processing method
JP5520795B2 (en) Tool holder
US20040042858A1 (en) Cutting tool for rough and finish milling
KR102291712B1 (en) Cutting tools with coolant deflection
WO1995025612A1 (en) Cutting tool and shank
US20160023288A1 (en) Cutting tool with shower cap
KR20110093713A (en) A turning insert, a tool part, a method as well as a machine tool for chip-cutting metal machining
JP2010522096A (en) Method and assembly for rotating a cutting insert during a turning operation and insert used therefor
WO2014091748A1 (en) Rotating cutting tool and rotating grinding tool
JP2014030888A (en) Cutting tool
JP5980360B1 (en) Milling tools
JPH06134648A (en) Cutting method and device
WO2017126145A1 (en) Hob
JP2007015041A (en) Rotating tool and machine tool
JPH10193214A (en) Diamond end mill
JPH1110432A (en) Combined tool
KR20110027655A (en) Deep-hole boring drill head
WO2018021335A1 (en) Cutting tool and method for manufacturing cut workpieces
JP2015213972A (en) Cutting device
WO2017081884A1 (en) Milling tool, cutting method, and milling tool manufacturing method
JP2002066927A (en) Diamond tool for processing hard and fragile material and processing method using this

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 13863636

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: IDP00201503055

Country of ref document: ID

NENP Non-entry into the national phase

Ref country code: DE

WWE Wipo information: entry into national phase

Ref document number: MX/A/2015/007738

Country of ref document: MX

122 Ep: pct application non-entry in european phase

Ref document number: 13863636

Country of ref document: EP

Kind code of ref document: A1