JPH06190609A - Diamond tool - Google Patents
Diamond toolInfo
- Publication number
- JPH06190609A JPH06190609A JP34379792A JP34379792A JPH06190609A JP H06190609 A JPH06190609 A JP H06190609A JP 34379792 A JP34379792 A JP 34379792A JP 34379792 A JP34379792 A JP 34379792A JP H06190609 A JPH06190609 A JP H06190609A
- Authority
- JP
- Japan
- Prior art keywords
- tool
- diamond
- crystal
- front flank
- face
- Prior art date
- Legal status (The legal status 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 status listed.)
- Pending
Links
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23B—TURNING; BORING
- B23B2226/00—Materials of tools or workpieces not comprising a metal
- B23B2226/31—Diamond
Landscapes
- Cutting Tools, Boring Holders, And Turrets (AREA)
Abstract
Description
【0001】[0001]
【産業上の利用分野】本発明はダイヤモンド工具に係
り、特にAl合金,Cu合金等の非鉄金属材料の高精度
切削に用いられる単結晶ダイヤモンド工具に関するもの
である。BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a diamond tool, and more particularly to a single crystal diamond tool used for high precision cutting of non-ferrous metal materials such as Al alloy and Cu alloy.
【0002】[0002]
【従来の技術】従来のダイヤモンド工具は、特公昭58
−37082に記載のものが知られている。これは、前
逃げ面の結晶方位を(110)面と(100)面の間に
あるように構成していた。2. Description of the Related Art A conventional diamond tool is Japanese Patent Publication Sho 58.
The one described in 37082 is known. This was configured so that the crystal orientation of the front flank was between the (110) plane and the (100) plane.
【0003】[0003]
【発明が解決しようとする課題】しかし、上記従来技術
は、バニシング効果を作用させるために、前逃げ面が適
度に摩耗するような結晶方位で工具を構成しており、工
具寿命が短いという問題があった。However, in the above-mentioned prior art, in order to exert the burnishing effect, the tool is configured with a crystal orientation such that the front flank surface is appropriately worn, and the tool life is short. was there.
【0004】[0004]
【課題を解決するための手段】上記問題点を解決するた
めの本発明にかかるダイヤモンド工具の構成は、すくい
面と前逃げ面を[110]晶帯あるいは結晶学的にこれ
と等価な晶帯上に配置し、前逃げ面を(011)面と
(100)面あるいは、結晶学的にこれと等価な面の間
にあるように構成したものである。さらに、単結晶ダイ
ヤモンド工具のすくい面と前逃げ面を[110]晶帯あ
るいは、結晶学的にこれと等価な晶帯上に配置し、前逃
げ面を(011)面と(100)面あるいは、結晶学的
にこれと等価な面の中間にあるように構成した物であ
る。In order to solve the above problems, a diamond tool according to the present invention has a rake face and a front flank face in a [110] crystal band or a crystallographically equivalent crystal band. It is arranged on the upper side, and the front flank is arranged so as to be between the (011) plane and the (100) plane or a plane crystallographically equivalent thereto. Furthermore, the rake face and the front flank of the single crystal diamond tool are arranged on the [110] crystal band or a crystallographically equivalent crystal band, and the front flank is (011) face and (100) face or , Which is configured to be in the middle of the plane equivalent to this crystallographically.
【0005】[0005]
【作用】単結晶ダイヤモンド工具のすくい面と前逃げ面
を[110]晶帯あるいは、結晶学的にこれと等価な晶
帯上に配置し、前逃げ面を(011)面と(100)面
あるいは、結晶学的にこれと等価な面の間にあるように
構成することにより、ダイヤモンド工具の対摩耗性が向
上し、工具寿命が長いダイヤモンド工具を得ることがで
きる。The rake face and the front flank of the single crystal diamond tool are arranged on the [110] crystal band or a crystallographically equivalent crystal band, and the front flanks are the (011) face and the (100) face. Alternatively, a diamond tool having a long tool life can be obtained by improving the wear resistance of the diamond tool by arranging it so as to be between crystallographically equivalent planes.
【0006】[0006]
【実施例】以下、本発明の一実施例を図を用いて説明す
る。An embodiment of the present invention will be described below with reference to the drawings.
【0007】図1はダイヤモンド原石の結晶方位、図2
は従来技術のダイヤモンド工具の結晶方位を示したもの
である。FIG. 1 is a crystal orientation of a rough diamond, and FIG.
Shows the crystallographic orientation of a prior art diamond tool.
【0008】単結晶ダイヤモンド工具では、ダイヤモン
ドの結晶方位と工具寿命に強い相関がある。工具1は、
前逃げ面2とすくい面3をダイヤモンド4の[001]
晶帯5の上に配置し、前逃げ面の結晶方位を(110)
面と(100)面の間に有るように構成したものであ
る。すなわち、ダイヤモンド工具で鏡面切削が行えるの
は、前逃げ面が適度に摩耗し、その摩耗面によってバニ
シング加工するためであり、工具を適度に摩耗させるよ
うにしたものである。このため、工具1の横逃げ面6の
耐摩耗性は高くなるが、前逃げ面2は、摩耗しやすい結
晶方位となり、工具寿命は短く、Al−Mg合金を切削
した場合の切削距離で200km程度である。In a single crystal diamond tool, there is a strong correlation between the crystal orientation of diamond and the tool life. Tool 1 is
The front flank 2 and the rake face 3 are [001] of the diamond 4.
Place it on the crystal zone 5 and set the crystal orientation of the front flank to (110)
It is configured to be between the plane and the (100) plane. That is, the reason why the diamond tool can perform mirror cutting is that the front flank is appropriately worn and burnishing is performed by the worn surface, and the tool is appropriately worn. Therefore, the wear resistance of the lateral flank 6 of the tool 1 is high, but the front flank 2 has a crystal orientation that easily wears, the tool life is short, and the cutting distance when cutting an Al-Mg alloy is 200 km. It is a degree.
【0009】しかし、工具が摩耗していない切削初期か
ら鏡面切削が行える工具(切れ刃形状が円弧の工具な
ど)では、切削初期に工具を摩耗させる必要がない。そ
こで、発明者らは、工具寿命を向上させるため、単結晶
ダイヤモンドの結晶方位と工具寿命の相関について実験
した。その結果、単結晶ダイヤモンド工具のすくい面と
前逃げ面をダイヤモンド原石の[110]晶帯あるい
は、結晶学的にこれと等価な晶帯上に配置し、前逃げ面
を(011)面と(100)面あるいは、結晶学的にこ
れと等価な面のちょうど中間にあるように構成すればよ
いという知見を得た。However, in the case of a tool that can be mirror-finished from the beginning of cutting when the tool is not worn (such as a tool whose cutting edge shape is an arc), it is not necessary to wear the tool at the beginning of cutting. Therefore, the inventors conducted an experiment on the correlation between the crystal orientation of single crystal diamond and the tool life in order to improve the tool life. As a result, the rake face and the front flank of the single crystal diamond tool are arranged on the [110] crystal band of the rough diamond or the crystallographically equivalent crystal band, and the front flank is defined as the (011) face ( It has been found that the structure should be located just in the middle of the (100) plane or the crystallographically equivalent plane.
【0010】図3はダイヤモンド原石の結晶方位、図4
は本発明のダイヤモンド工具の結晶方位を示したもので
ある。FIG. 3 is a crystal orientation of a rough diamond, and FIG.
Shows the crystal orientation of the diamond tool of the present invention.
【0011】工具11は、前逃げ面12とすくい面13
をダイヤモンド10の[110]晶帯15あるいは、結
晶学的にこれと等価な晶帯の上に配置し、前逃げ面の結
晶方位を(011)面と(100)面の間あるいは、結
晶学的にこれと等価な面にあるように構成したものであ
る。The tool 11 includes a front flank 12 and a rake face 13.
Is arranged on the [110] crystal zone 15 of the diamond 10 or a crystallographically equivalent crystal zone, and the crystal orientation of the front flank is between the (011) plane and the (100) plane, or It is configured so that it is equivalent to this.
【0012】図5は、本発明の工具を用いて、前逃げ面
の結晶方位を変化させ、Al−Mg合金を切削したとき
の工具寿命すなわち、所要の面粗さが確保できる切削距
離を示したものである。FIG. 5 shows the tool life when the crystal orientation of the front flank is changed by using the tool of the present invention and the Al--Mg alloy is cut, that is, the cutting distance at which the required surface roughness can be secured. It is a thing.
【0013】これより、前逃げ面とすくい面をダイヤモ
ンドの[110]晶帯あるいは、結晶学的にこれと等価
な晶帯の上に配置し、前逃げ面の結晶方位を(011)
面と(100)面の間あるいは、結晶学的にこれと等価
な面にあるように構成すれば工具寿命を切削距離で80
0km〜1000kmと従来の4〜5倍にできることが
わかる。Therefore, the front flank and the rake face are arranged on the [110] crystal band of diamond or a crystallographically equivalent crystal band, and the crystal orientation of the front flank is (011).
If the tool is configured so that it is between the plane and the (100) plane, or on a plane equivalent to this crystallographically, the tool life will be 80 at the cutting distance.
It can be seen that the distance can be increased from 0 km to 1000 km, which is 4 to 5 times the conventional value.
【0014】[0014]
【発明の効果】以上説明したように、本発明によれば、
単結晶ダイヤモンド工具のすくい面と前逃げ面を[11
0]晶帯あるいは結晶学的にこれと等価な晶帯上に配置
し、前逃げ面を(011)面と(100)面あるいは、
結晶学的にこれと等価な面の間にあるように構成してあ
るので、ダイヤモンド工具の耐摩耗性が向上し、工具寿
命が長いダイヤモンド工具を得ることができる。As described above, according to the present invention,
Set the rake face and front flank of the single crystal diamond tool to [11
0] crystal band or a crystallographically equivalent crystal band, and the front flanks are the (011) plane and the (100) plane, or
Since it is configured so as to be between crystallographically equivalent planes, the wear resistance of the diamond tool is improved and a diamond tool having a long tool life can be obtained.
【図1】ダイヤモンド原石の結晶方位を示した図であ
る。FIG. 1 is a diagram showing a crystal orientation of a rough diamond.
【図2】従来技術のダイヤモンド工具の結晶方位を示し
た図である。FIG. 2 is a diagram showing a crystal orientation of a conventional diamond tool.
【図3】ダイヤモンド原石の結晶方位を示した図であ
る。FIG. 3 is a view showing a crystal orientation of a rough diamond.
【図4】本発明のダイヤモンド工具の結晶方位を示した
図である。FIG. 4 is a diagram showing a crystal orientation of a diamond tool of the present invention.
【図5】単結晶ダイヤモンドの結晶方位と工具寿命の関
係を示す図である。FIG. 5 is a diagram showing the relationship between the crystal orientation of single crystal diamond and the tool life.
1…ダイヤモンド工具、2…前逃げ面、3…すくい面、
4…単結晶ダイヤモンド、5…[001]晶帯、6…横
逃げ面、7…主切れ刃稜、8…横切れ刃稜、9…横切れ
刃稜、10…単結晶ダイヤモンド、11…ダイヤモンド
工具、12…前逃げ面、13…すくい面、14…横逃げ
面、15…[110]晶帯、16…主切れ刃稜、17,
18…横切れ刃稜。1 ... Diamond tool, 2 ... Front flank, 3 ... Rake surface,
4 ... Single crystal diamond, 5 ... [001] crystal band, 6 ... Side flank, 7 ... Main cutting edge, 8 ... Side cutting edge, 9 ... Side cutting edge, 10 ... Single crystal diamond, 11 ... Diamond tool, 12 ... Front flank, 13 ... Rake surface, 14 ... Side flank, 15 ... [110] crystal zone, 16 ... Main cutting edge,
18 ... Horizontal cutting edge.
Claims (2)
げ面を[110]晶帯あるいは結晶学的にこれと等価な
晶帯上に配置し、前逃げ面を(011)面と(100)
面あるいは、結晶学的にこれと等価な面の間にあるよう
に構成したことを特徴とするダイヤモンド工具。1. A rake face and a front flank of a single crystal diamond tool are arranged on a [110] crystal band or a crystallographically equivalent crystal band, and the front flank is a (011) face and a (100) face.
A diamond tool characterized in that it is arranged between a plane or a plane equivalent to this crystallographically.
げ面を[110]晶帯あるいは結晶学的にこれと等価な
晶帯上に配置し、前逃げ面を(011)面と(100)
面あるいは、結晶学的にこれと等価な面のちょうど中間
にあるように構成したことを特徴とするダイヤモンド工
具。2. A rake face and a front flank of a single crystal diamond tool are arranged on a [110] crystal band or a crystallographically equivalent crystal band, and the front flank is a (011) face and a (100) face.
A diamond tool characterized in that it is arranged so as to be exactly in the middle of a plane or a plane equivalent to this crystallographically.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP34379792A JPH06190609A (en) | 1992-12-24 | 1992-12-24 | Diamond tool |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP34379792A JPH06190609A (en) | 1992-12-24 | 1992-12-24 | Diamond tool |
Publications (1)
Publication Number | Publication Date |
---|---|
JPH06190609A true JPH06190609A (en) | 1994-07-12 |
Family
ID=18364317
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP34379792A Pending JPH06190609A (en) | 1992-12-24 | 1992-12-24 | Diamond tool |
Country Status (1)
Country | Link |
---|---|
JP (1) | JPH06190609A (en) |
Cited By (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2004223700A (en) * | 2002-11-29 | 2004-08-12 | Konica Minolta Holdings Inc | Processing method of transfer optical surface, processing machine, die for optical element molding and diamond tool |
WO2008102696A1 (en) * | 2007-02-19 | 2008-08-28 | Ittechno Kabushikikaisha | Cutting tool made of single crystal of silicon carbide |
JP2009291864A (en) * | 2008-06-04 | 2009-12-17 | Micro Diamond Corp | Diamond cutting tool |
WO2018174139A1 (en) * | 2017-03-22 | 2018-09-27 | 三菱マテリアル株式会社 | Diamond coated cemented carbide cutting tool |
WO2020031871A1 (en) * | 2018-08-06 | 2020-02-13 | 住友電工ハードメタル株式会社 | Lathing tool |
-
1992
- 1992-12-24 JP JP34379792A patent/JPH06190609A/en active Pending
Cited By (10)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2004223700A (en) * | 2002-11-29 | 2004-08-12 | Konica Minolta Holdings Inc | Processing method of transfer optical surface, processing machine, die for optical element molding and diamond tool |
JP4556383B2 (en) * | 2002-11-29 | 2010-10-06 | コニカミノルタホールディングス株式会社 | Processing method of transfer optical surface |
WO2008102696A1 (en) * | 2007-02-19 | 2008-08-28 | Ittechno Kabushikikaisha | Cutting tool made of single crystal of silicon carbide |
JP2009291864A (en) * | 2008-06-04 | 2009-12-17 | Micro Diamond Corp | Diamond cutting tool |
WO2018174139A1 (en) * | 2017-03-22 | 2018-09-27 | 三菱マテリアル株式会社 | Diamond coated cemented carbide cutting tool |
US10745802B2 (en) | 2017-03-22 | 2020-08-18 | Mitsubishi Materials Corporation | Diamond-coated cemented carbide cutting tool |
WO2020031871A1 (en) * | 2018-08-06 | 2020-02-13 | 住友電工ハードメタル株式会社 | Lathing tool |
CN112533713A (en) * | 2018-08-06 | 2021-03-19 | 住友电工硬质合金株式会社 | Turning tool |
US11938547B2 (en) | 2018-08-06 | 2024-03-26 | Sumitomo Electric Hardmetal Corp. | Turning tool |
CN112533713B (en) * | 2018-08-06 | 2024-04-05 | 住友电工硬质合金株式会社 | Turning tool |
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