JP2020069623A - Processing device and method for gear-cutting tool - Google Patents

Processing device and method for gear-cutting tool Download PDF

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JP2020069623A
JP2020069623A JP2018207427A JP2018207427A JP2020069623A JP 2020069623 A JP2020069623 A JP 2020069623A JP 2018207427 A JP2018207427 A JP 2018207427A JP 2018207427 A JP2018207427 A JP 2018207427A JP 2020069623 A JP2020069623 A JP 2020069623A
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cutting tool
gear cutting
grinding
grinding wheel
central axis
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英紀 柴田
Hidenori Shibata
英紀 柴田
克仁 吉永
Katsuhito Yoshinaga
克仁 吉永
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JTEKT Corp
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Abstract

To provide a device and a method for easily and efficiently processing a gear cutting tool for skiving.SOLUTION: A processing device 10 for a gear cutting tool 2 is formed into an external gear shape, has an abrasive wheel 1 having an external tooth as a grinding part and carries out the grinding operation for the gear cutting tool 2 having plural teeth 2a on a peripheral face and used for skiving. The circumferential cross-sectional shapes of the abrasive wheel 1 in the grinding part are formed into those for at least grinding before and after finishing. The processing device 10 comprises: a rotation control part rotating the abrasive wheel 1 around the center axis X1 thereof and also rotating the gear cutting tool 2 around the center axis X2 thereof with the center axis X1 of the abrasive wheel 1 and the center axis X2 of the gear cutting tool 2 intersecting and inclined at a crossing angle; and a movement control part relatively moving the abrasive wheel 1 in a center axis X2 direction to continuously carry out tooth grinding before and after finishing at the grinding part.SELECTED DRAWING: Figure 1A

Description

本発明は、歯切り工具の加工装置及び加工方法に関するものである。   The present invention relates to a machining device and a machining method for a gear cutting tool.

切削対象を切削して歯車を創成するための歯切り工具は、歯車の形状に基づいた形状に形成されている。そして、歯切り工具の刃先が摩耗した場合は、ドレッシングを行っている。例えば、特許文献1には、内歯車型の砥石車(歯切り工具)を外歯車型のドレッサでドレッシングを行う方法が記載されている。また、特許文献2には、ピニオンカッタ(歯切り工具)のドレッシング方法が記載されている。   A gear cutting tool for cutting a cutting object to create a gear is formed in a shape based on the shape of the gear. When the cutting edge of the gear cutting tool is worn, dressing is performed. For example, Patent Document 1 describes a method of dressing an internal gear type grinding wheel (a gear cutting tool) with an external gear type dresser. Further, Patent Document 2 describes a dressing method for a pinion cutter (a gear cutting tool).

ところで、近年、コストの面から高速切削可能な歯車加工が望まれており、特許文献3に記載のようなスカイビング加工が知られている。スカイビング加工とは、歯切り工具の中心軸線と切削対象の中心軸線とを傾斜させた状態(歯車加工における交差角を有する状態)とし、歯切り工具及び切削対象をそれぞれの中心軸線周りに同期回転させながら、歯切り工具を切削対象の中心軸線方向に相対移動する加工である。スカイビング加工用の歯切り工具は、外歯車型が一般的である。そして、外歯車型の歯切り工具の刃先が摩耗した場合は、円盤型の砥石車でドレッシングを行っている。   By the way, in recent years, gear cutting capable of high-speed cutting has been desired from the viewpoint of cost, and skiving processing as described in Patent Document 3 is known. Skiving is a state in which the center axis of the gear cutting tool and the center axis of the cutting target are tilted (a state where there is a crossing angle in gear cutting), and the gear cutting tool and the cutting target are synchronized around each center axis. This is a process of relatively moving the gear cutting tool in the direction of the central axis of the object to be cut while rotating. An external gear type is generally used as a gear cutting tool for skiving. When the cutting edge of the external gear type gear cutting tool is worn, dressing is performed with a disc type grinding wheel.

特開平8−252768号公報JP-A-8-252768 特許第4763611号公報Japanese Patent No. 4763611 特開2012−171020号公報JP 2012-171020 A

加工対象が外歯車の場合は、スカイビング加工用の歯切り工具としては、外歯車型よりも加工負荷が小さくて摩耗し難い内歯車型が望ましい。しかし、内歯車型の歯切り工具の刃先が摩耗した場合、円盤型の砥石車でドレッシングを行うと、円盤型の砥石車が、歯切り工具を支持する支持部材(チャック等)と干渉するおそれがある。そして、この歯切り工具のドレッシングにおいては、寸法精度を確保するため、仕上げ前工程と仕上げ工程を行う必要があり、タクトタイムが長くなる傾向にある。この問題は、内歯車型の歯切り工具のドレッシング(歯切り工具の加工)を行うときのみならず、内歯車型の歯切り工具の製作(歯切り工具の加工)を行うときも同様にある。また、外歯車型の歯切り工具においても同様にある。   When the object to be processed is an external gear, an internal gear type, which has a smaller processing load and is less likely to wear than an external gear type, is desirable as a gear cutting tool for skiving. However, if the cutting edge of the internal gear type gear cutting tool is worn, dressing with a disk type grinding wheel may cause the disk type grinding wheel to interfere with the support member (chuck etc.) that supports the gear cutting tool. There is. Further, in the dressing of this gear cutting tool, it is necessary to perform a pre-finishing process and a finishing process in order to ensure dimensional accuracy, and the takt time tends to be long. This problem exists not only when dressing an internal gear type gear cutting tool (machining a gear cutting tool) but also when manufacturing an internal gear type gear cutting tool (machining a gear cutting tool). .. The same applies to the external gear type gear cutting tool.

本発明の目的は、スカイビング加工用の歯切り工具の加工を容易に且つ効率良く行うことができる歯切り工具の加工装置及び加工方法を提供することである。   An object of the present invention is to provide a machining device and a machining method for a gear cutting tool that can easily and efficiently process a gear cutting tool for skiving.

本発明に係る歯切り工具の加工装置は、外歯車形状に形成され、外歯を研削部とした砥石車を有し、周面に複数の刃を有するスカイビング加工に用いられる歯切り工具を研削対象として、前記砥石車で前記歯切り工具の研削を行う歯切り工具の加工装置であって、前記砥石車は、前記研削部における前記砥石車の周方向の断面形状が少なくとも仕上げ前研削用及び仕上げ研削用に形成され、前記砥石車の中心軸線と前記歯切り工具の中心軸線とを直交させた状態から交差角だけ傾斜させた状態で、前記砥石車を前記砥石車の中心軸線周りに回転させると共に、前記歯切り工具を前記歯切り工具の中心軸線周りに回転させる回転制御部と、前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させ、前記研削部で前記刃の仕上げ前研削及び仕上げ研削を連続的に行う移動制御部と、を備える   A machining device for a gear cutting tool according to the present invention is a gear cutting tool that is formed in an external gear shape and has a grinding wheel with external teeth as a grinding portion, and that is used for skiving processing having a plurality of blades on a peripheral surface. As a grinding target, there is provided a processing device for a gear cutting tool that grinds the gear cutting tool with the grinding wheel, wherein the grinding wheel has at least a cross-sectional shape in the circumferential direction of the grinding wheel in the grinding section for pre-finish grinding. And formed for finish grinding, in a state in which the central axis of the grinding wheel and the central axis of the gear cutting tool are orthogonal to each other in a state of being inclined by a crossing angle, the grinding wheel around the central axis of the grinding wheel While rotating, the rotation control unit for rotating the gear cutting tool around the central axis of the gear cutting tool, and the grinding wheel is relatively moved in the central axis direction of the gear cutting tool, the blade in the grinding unit. Before finishing and grinding Comprises a movement control unit for performing finish grinding continuously, the

本発明に係る歯切り工具の加工方法は、外歯車形状に形成され、外歯を研削部とした砥石車を有し、周面に複数の刃を有するスカイビング加工に用いられる歯切り工具を研削対象として、前記砥石車で前記歯切り工具の研削を行う歯切り工具の加工方法であって、前記砥石車は、前記研削部における前記砥石車の周方向の断面形状が少なくとも仕上げ前研削用及び仕上げ研削用に形成され、前記砥石車の中心軸線と前記歯切り工具の中心軸線とを直交させた状態から交差角だけ傾斜させた状態で、前記砥石車を前記砥石車の中心軸線周りに回転させると共に、前記歯切り工具を前記歯切り工具の中心軸線周りに回転させる回転制御工程と、前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させ、前記研削部で前記刃の仕上げ前研削及び仕上げ研削を連続的に行う移動制御工程と、を備える。   A method of processing a gear cutting tool according to the present invention is a gear cutting tool formed in an external gear shape, having a grinding wheel with external teeth as a grinding portion, and used for skiving having a plurality of blades on a peripheral surface. As a grinding target, there is provided a method of processing a gear cutting tool for grinding the gear cutting tool with the grinding wheel, wherein the grinding wheel has at least a cross-sectional shape in the circumferential direction of the grinding wheel in the grinding section for pre-finish grinding. And formed for finish grinding, in a state in which the central axis of the grinding wheel and the central axis of the gear cutting tool are orthogonal to each other in a state of being inclined by a crossing angle, the grinding wheel around the central axis of the grinding wheel While rotating, the rotation control step of rotating the gear cutting tool around the central axis of the gear cutting tool, and relatively moving the grinding wheel in the central axis direction of the gear cutting tool, the blade in the grinding unit. Pre-finish grinding Fine finish grinding includes a movement controlling step performed continuously, the.

本発明に係る歯切り工具の加工装置及び加工方法によれば、砥石車の中心軸線と歯切り工具の中心軸線とは、交差角だけ傾斜した状態にあるので、砥石車と歯切り工具を支持する支持部材等との干渉を防止できる。そして、研削部の断面形状は、仕上げ前用及び仕上げ用に形成されているので、連続で仕上げ前研削及び仕上げ研削を行うことができ、タクトタイムの短縮化を図れる。よって、スカイビング加工用の歯切り工具の加工を容易に且つ効率良く行うことができる。   According to the machining device and the machining method for a gear cutting tool according to the present invention, the center axis of the grinding wheel and the center axis of the gear cutting tool are in a state of being inclined by a crossing angle, so that the grinding wheel and the gear cutting tool are supported. It is possible to prevent interference with a supporting member or the like that operates. Since the cross-sectional shape of the grinding portion is formed for pre-finishing and for finishing, pre-finishing grinding and finish grinding can be continuously performed, and the tact time can be shortened. Therefore, the gear cutting tool for skiving can be processed easily and efficiently.

歯切り工具の加工装置の概略であり、歯切り工具を砥石車で研削する状態を示す斜視図である。It is an outline of a processing device of a gear cutting tool, and is a perspective view showing a state of grinding a gear cutting tool with a grinding wheel. 図1Aの加工装置をIB方向から見た図である。It is the figure which looked at the processing apparatus of Drawing 1A from the IB direction. 図1Aの加工装置の制御装置の詳細を示す図である。It is a figure which shows the detail of the control apparatus of the processing apparatus of FIG. 1A. 歯切り工具の加工方法の前半を説明するためのフローチャートである。It is a flow chart for explaining the first half of the processing method of a gear cutting tool. 歯切り工具の加工方法の後半を説明するためのフローチャートである。It is a flow chart for explaining the second half of the processing method of a gear cutting tool. 歯切り工具を研削するための砥石車を示す斜視図である。It is a perspective view which shows the grinding wheel for grinding a gear cutting tool. 図4Aの砥石車の研削部を中心軸線方向に見た図である。It is the figure which looked at the grinding part of the grindstone of Drawing 4A in the direction of the central axis. 図4Bの砥石車をIVC方向から見た図である。It is the figure which looked at the grinding wheel of FIG. 4B from the IVC direction. 図4Bの砥石車をIVD方向から見た図である。It is the figure which looked at the grinding wheel of FIG. 4B from the IVD direction. 歯車を切削するための歯切り工具を示す斜視図である。It is a perspective view showing a gear cutting tool for cutting a gear. 図5Aの歯切り工具の刃を周方向に見た図である。It is the figure which looked at the blade of the gear cutting tool of Drawing 5A in the peripheral direction. 図5Aの歯切り工具の刃を径方向に見た図である。It is the figure which looked at the blade of the gear cutting tool of Drawing 5A in the diameter direction. 歯切り工具の切削対象としての歯車の斜視図である。It is a perspective view of the gearwheel as a cutting target of a gear cutting tool. 図1Aの加工装置で歯車を歯切り工具で切削する状態を示す斜視図である。It is a perspective view which shows the state which cuts a gear with a gear cutting tool with the processing apparatus of FIG. 1A. 歯切り工具の加工方法を説明するための砥石車の研削部と歯切り工具の刃との関係を示す図である。It is a figure which shows the relationship between the grinding part of the grinding wheel and the blade of a gear cutting tool for explaining the processing method of a gear cutting tool. 砥石車の研削部の別例を図4Cに対応させて示す図である。It is a figure which shows another example of the grinding part of a grinding wheel corresponding to FIG. 4C.

(1.歯切り工具の加工装置の構成)
図1A及び図1Bを参照して、歯車3(図6参照)を切削するための歯切り工具2の加工(ドレッシングや製作等)を砥石車1で行う加工装置10(研削盤)について説明する。本実施形態においては、加工装置10は、例えば、マシニングセンタを例に挙げる。特に、歯切り工具2を支持する主軸の他に、直交3軸及び回転2軸を有する5軸マシニングセンタが適用される。
(1. Configuration of gear cutting tool processing device)
With reference to FIGS. 1A and 1B, a processing device 10 (grinding machine) that performs processing (dressing, manufacturing, etc.) of a gear cutting tool 2 for cutting a gear 3 (see FIG. 6) in a grinding wheel 1 will be described. .. In the present embodiment, the processing device 10 is, for example, a machining center. In particular, a 5-axis machining center having three orthogonal axes and two rotation axes in addition to the main spindle that supports the gear cutting tool 2 is applied.

加工装置10は、図示しないベッド上において直交3軸方向へ移動可能な主軸ユニット11と、主軸ユニット11の先端に取り付けられる砥石車1とを備える。従って、砥石車1は、砥石車1の中心軸線X1の周り(θ1)に回転可能となり、ベッドに対して直交3軸方向へ移動可能である。   The processing apparatus 10 includes a spindle unit 11 that is movable in three orthogonal directions on a bed (not shown), and a grinding wheel 1 attached to the tip of the spindle unit 11. Therefore, the grinding wheel 1 can rotate around the central axis X1 (θ1) of the grinding wheel 1 and can move in three orthogonal directions with respect to the bed.

さらに、加工装置10は、切削対象としての歯切り工具2を支持する回転テーブル12を備える。回転テーブル12は、歯切り工具2の中心軸線X2の周り(θ22)に歯切り工具2をチャック13を介して回転可能に支持する。回転テーブル12は、ベッドに対して、回転テーブル12の回転軸とは異なる1軸周りに揺動可能(チルト(傾斜)可能)に設けられる。つまり、回転テーブル12は、チルト(傾斜)可能なように歯切り工具2を支持する。   Further, the processing device 10 includes a rotary table 12 that supports the gear cutting tool 2 as a cutting target. The rotary table 12 rotatably supports the gear cutting tool 2 via the chuck 13 around the central axis X2 (θ22) of the gear cutting tool 2. The rotary table 12 is provided so as to be swingable (tiltable) around one axis different from the rotary axis of the rotary table 12 with respect to the bed. That is, the rotary table 12 supports the gear cutting tool 2 so as to be tiltable.

さらに、加工装置10は、制御装置20を備える。図2に示すように、制御装置20は、回転制御部21及び移動制御部22を備える。回転制御部21は、主軸ユニット11に備えられる砥石車1を中心軸線X1周り(θ1)に回転させる図略の回転駆動モータ及び回転テーブル12に備えられる歯切り工具2を中心軸線X2周り(θ22)に回転させる図略の回転駆動モータを駆動制御する。また、回転テーブル12をチルト(傾斜)させる図略の回転駆動モータを駆動制御する。   Further, the processing device 10 includes a control device 20. As shown in FIG. 2, the control device 20 includes a rotation control unit 21 and a movement control unit 22. The rotation control unit 21 rotates the grinding wheel 1 provided in the main spindle unit 11 around the central axis X1 (θ1) and rotates the gear cutting tool 2 provided in the rotary table 12 around the central axis X2 (θ22). ) The rotation drive motor (not shown) is controlled to rotate. Further, it drives and controls a rotary drive motor (not shown) for tilting the rotary table 12.

移動制御部22は、主軸ユニット11を歯切り工具2の中心軸線X2方向(M31)、歯切り工具2の径方向(M32)、及び、歯切り工具2の回転接線方向(並進方向)(M33)にそれぞれ移動させる図略のボールねじ機構及び駆動モータを駆動制御する。   The movement control unit 22 sets the spindle unit 11 to the central axis X2 direction (M31) of the gear cutting tool 2, the radial direction (M32) of the gear cutting tool 2, and the rotational tangential direction (translational direction) of the gear cutting tool 2 (M33). ) Drive control of a ball screw mechanism and a drive motor which are not shown.

このような構成の加工装置10は、スカイビング加工と同様の動作で歯切り工具2の加工(ドレッシングや製作等)を砥石車1で行う。すなわち、図1に示すように、主軸ユニット11及び回転テーブル12を位置決めすることにより、砥石車1の中心軸線X1と歯切り工具2の中心軸線X2とが交差角ηを有する状態に位置決めする。この交差角ηは、歯切り工具2のねじれ角β(図5B参照)に合わせて調整される。本例では、ねじれ角βと交差角ηは同一である。   The processing apparatus 10 having such a configuration performs processing (dressing, manufacturing, etc.) of the gear cutting tool 2 with the grinding wheel 1 by the same operation as skiving processing. That is, as shown in FIG. 1, by positioning the spindle unit 11 and the rotary table 12, the central axis X1 of the grinding wheel 1 and the central axis X2 of the gear cutting tool 2 are positioned so as to have an intersection angle η. The intersection angle η is adjusted according to the twist angle β of the gear cutting tool 2 (see FIG. 5B). In this example, the twist angle β and the crossing angle η are the same.

この状態で、砥石車1を中心軸線X1周り(θ1)に回転するとともに、砥石車1の回転に同期して、歯切り工具2を中心軸線X2周り(θ22)に回転する。そして、砥石車1を歯切り工具2の中心軸線X2方向に相対的に移動させる。このようにして、歯切り工具2が形成される。   In this state, the grinding wheel 1 is rotated around the central axis X1 (θ1), and the gear cutting tool 2 is rotated around the central axis X2 (θ22) in synchronization with the rotation of the grinding wheel 1. Then, the grinding wheel 1 is relatively moved in the direction of the central axis X2 of the gear cutting tool 2. In this way, the gear cutting tool 2 is formed.

(2.砥石車、歯切り工具及び歯車の形状の概要)
ここで、図を参照して、砥石車1、歯切り工具2及び歯車3の形状の概要について説明する。図4Aに示すように、砥石車1は、外歯車形状に形成され、外歯を研削部1aとしている。すなわち、砥石車1は、中心軸線X1周りの周面に複数の研削部1aを備える。砥石車1の研削部1aは、歯切り工具2を研削対象として、歯切り工具2の刃2a(図5A参照)を研削する。
(2. Outline of grinding wheel, gear cutting tool and gear shape)
Here, the outline of the shapes of the grinding wheel 1, the gear cutting tool 2, and the gear 3 will be described with reference to the drawings. As shown in FIG. 4A, the grinding wheel 1 is formed in the shape of an external gear and has the external teeth as the grinding portion 1a. That is, the grinding wheel 1 includes a plurality of grinding portions 1a on the peripheral surface around the central axis X1. The grinding part 1a of the grinding wheel 1 grinds the blade 2a (see FIG. 5A) of the gear cutting tool 2 with the gear cutting tool 2 as a grinding target.

図4Bに示すように、研削部1aを砥石車1の一端面1A(主軸ユニット11側とは反対側の端面)側から中心軸線X1方向に見たとき、研削部1aは、歯切り工具2の刃溝の形状に応じた形状に形成されるが、本例では、インボリュート曲線形状と同一形状に形成される。研削部1aは、頂面1aa、左側面1ab及び右側面1acを有する。   As shown in FIG. 4B, when the grinding portion 1a is viewed in the direction of the central axis X1 from the one end surface 1A (end surface opposite to the spindle unit 11 side) side of the grinding wheel 1, the grinding portion 1a includes the gear cutting tool 2 Although it is formed in a shape corresponding to the shape of the blade groove of, in this example, it is formed in the same shape as the involute curve shape. The grinding portion 1a has a top surface 1aa, a left side surface 1ab and a right side surface 1ac.

そして、図4Cに示すように、研削部1aを図4BのIVC方向(砥石車1の径方向)に見たとき、研削部1aの頂面1aaは、略矩形状に形成され、研削部1aの左側面1ab及び右側面1ac間は、中心軸線X1方向の中央が砥石車1の周方向両側に膨らんだ樽形状に形成される。   Then, as shown in FIG. 4C, when the grinding portion 1a is viewed in the IVC direction of FIG. 4B (the radial direction of the grinding wheel 1), the top surface 1aa of the grinding portion 1a is formed in a substantially rectangular shape, and the grinding portion 1a is formed. Between the left side surface 1ab and the right side surface 1ac is formed in a barrel shape in which the center in the direction of the central axis X1 swells to both sides in the circumferential direction of the grinding wheel 1.

具体的には、研削部1aの左側面1ab及び右側面1ac間における砥石車1の周方向の肉厚は、砥石車1の一端面1Aから中心軸線X1方向に向かって中央付近まで直線状に増加し、当該中央付近で円弧状に増減した後、当該中央付近から中心軸線X1方向に向かって砥石車1の他端面1Bまで直線状に減少する。   Specifically, the circumferential wall thickness of the grinding wheel 1 between the left side surface 1ab and the right side surface 1ac of the grinding portion 1a is linear from the one end surface 1A of the grinding wheel 1 toward the central axis X1 direction to the vicinity of the center. After increasing and increasing / decreasing in an arc shape near the center, it linearly decreases from the vicinity of the center in the direction of the central axis X1 to the other end surface 1B of the grinding wheel 1.

すなわち、図4B,4Cに示すように、研削部1aの左側面1ab及び右側面1ac間における砥石車1の他端面1B(主軸ユニット11側の端面)側の肉厚は、研削部1aの左側面1ab及び右側面1ac間における砥石車1の一端面1A側の肉厚と同じであり、最小の肉厚taとなる。また、研削部1aの左側面1ab及び右側面1ac間における砥石車1の一端面1Aと他端面1Bの中央の肉厚は、最大の肉厚tbとなる。   That is, as shown in FIGS. 4B and 4C, the wall thickness on the other end surface 1B (end surface on the spindle unit 11 side) side of the grinding wheel 1 between the left side surface 1ab and the right side surface 1ac of the grinding section 1a is the left side of the grinding section 1a. It is the same as the wall thickness on the one end face 1A side of the grinding wheel 1 between the face 1ab and the right face 1ac, and becomes the minimum wall thickness ta. Further, the center wall thickness of the one end surface 1A and the other end surface 1B of the grinding wheel 1 between the left side surface 1ab and the right side surface 1ac of the grinding portion 1a becomes the maximum wall thickness tb.

そして、研削部1aの左側面1ab及び右側面1ac間における砥石車1の一端面1A側及び他端面1B側の一点鎖線で示す最小の肉厚ta部分の断面形状Saは、歯切り工具2の刃2aを研削するときの仕上げ前研削用に形成される。そして、研削部1aの左側面1ab及び右側面1ac間における砥石車1の一端面1Aと他端面1Bの中央の二点鎖線で示す最大の肉厚tb部分の断面形状Sbは、歯切り工具2の刃2aを研削するときの仕上げ研削用に形成される。   The cross-sectional shape Sa of the minimum wall thickness ta portion indicated by the alternate long and short dash line on the one end surface 1A side and the other end surface 1B side of the grinding wheel 1 between the left side surface 1ab and the right side surface 1ac of the grinding portion 1a is the same as that of the gear cutting tool 2. It is formed for pre-finishing grinding when grinding the blade 2a. The cross-sectional shape Sb of the maximum wall thickness tb indicated by the two-dot chain line at the center between the one end surface 1A and the other end surface 1B of the grinding wheel 1 between the left side surface 1ab and the right side surface 1ac of the grinding portion 1a is the gear cutting tool 2 It is formed for finish grinding when grinding the blade 2a.

つまり、歯切り工具2の刃2aは、砥石車1の研削部1aにおける砥石車1の一端面1A側の断面形状Saで仕上げ前研削が開始され、中央の断面形状Sbで最終的な刃形に仕上げ研削される。なお、他端面1B側の断面形状Saで仕上げ前研削を開始し、中央の断面形状Sbで最終的な刃形に仕上げ研削するようにしてもよい。これにより、歯切り工具2の刃2aの研削は、砥石車1の歯切り工具2に対する前進時及び後退時において可能となるので、研削効率を向上できる。   That is, the blade 2a of the gear cutting tool 2 starts pre-finishing grinding with the sectional shape Sa on the one end face 1A side of the grinding wheel 1 in the grinding portion 1a of the grinding wheel 1 and finishes the final blade shape with the central sectional shape Sb. Is finished and ground. The pre-finishing grinding may be started with the sectional shape Sa on the other end surface 1B side, and the final blade shape may be ground with the central sectional shape Sb. As a result, the blade 2a of the gear cutting tool 2 can be ground when the grinding wheel 1 moves forward and backward with respect to the gear cutting tool 2, so that the grinding efficiency can be improved.

上述の研削部1aの左側面1ab及び右側面1ac間における砥石車1の一端面1Aと他端面1Bの中央付近で円弧状に肉厚を増減させる理由は、角部で研削すると砥粒の脱落が生じて加工精度が悪化するが、面で研削すると砥粒の脱落を抑制して加工精度を維持できるためである。   The reason for increasing or decreasing the wall thickness in an arc shape in the vicinity of the center of the one end surface 1A and the other end surface 1B of the grinding wheel 1 between the left side surface 1ab and the right side surface 1ac of the grinding portion 1a is that the abrasive grains fall off when grinding at the corners. This is because the machining accuracy is deteriorated due to the occurrence of the phenomenon, but when the grinding is performed on the surface, the removal of the abrasive grains can be suppressed and the processing accuracy can be maintained.

なお、図4Bに示す研削部1aを中心軸線X1方向に見た形状は、転位係数を変化させることで得られるが、相似形に変化させて得るようにしてもよい。そして、図4Cに示すように、この研削部1aの中心軸線X1方向の側面輪郭を延長した直線Labと中心軸線X1に平行な直線L1とのなす角δを、側逃げ角という。なお、研削部1aの左側面1ab及び右側面1acには、側逃げ角δを設けなくてもよい。   The shape of the ground portion 1a shown in FIG. 4B viewed in the direction of the central axis X1 can be obtained by changing the dislocation coefficient, but it may be changed to a similar shape. Then, as shown in FIG. 4C, an angle δ formed by a straight line Lab extending from a side surface contour of the grinding portion 1a in the direction of the central axis X1 and a straight line L1 parallel to the central axis X1 is referred to as a side clearance angle. The side clearance angle δ may not be provided on the left side surface 1ab and the right side surface 1ac of the grinding portion 1a.

そして、図4Dに示すように、研削部1aを砥石車1の周方向に見たとき、研削部1aの頂面1aaは、砥石車1の径方向外側に向かって凸の円弧状に形成される。具体的には、研削部1aの頂面1aaは、砥石車1の一端面1Aから中心軸線X1方向に向かって中央付近まで、頂面1aaから溝面1adまでの丈が増加する。そして、研削部1a頂面1aaは、当該中央付近から中心軸線X1方向に向かって砥石車1の他端面1Bまで、頂面1aaから溝面1adまでの丈が減少する。   Then, as shown in FIG. 4D, when the grinding portion 1a is viewed in the circumferential direction of the grinding wheel 1, the top surface 1aa of the grinding portion 1a is formed in a circular arc shape that is convex outward in the radial direction of the grinding wheel 1. It Specifically, the top surface 1aa of the grinding portion 1a increases in height from the one end surface 1A of the grinding wheel 1 toward the center in the direction of the central axis X1 and from the top surface 1aa to the groove surface 1ad. The height of the ground surface 1aa of the grinding portion 1a decreases from the vicinity of the center toward the other end surface 1B of the grinding wheel 1 in the direction of the central axis X1 and from the top surface 1aa to the groove surface 1ad.

すなわち、研削部1aの頂面1aaにおける砥石車1の他端面1B側の頂面1aaから溝面1adまでの丈は、砥石車1の一端面1A側の研削部1aの頂面1aaから溝面1adまでの丈と同じであり、最小の丈haとなる。また、研削部1aの頂面1aaにおける中央の頂面1aaから溝面1adまでの丈は、最大の丈hbとなる。   That is, the length from the top surface 1aa of the grinding wheel 1 on the other end surface 1B side to the groove surface 1ad on the top surface 1aa of the grinding portion 1a is determined from the top surface 1aa of the grinding portion 1a on the one end surface 1A side of the grinding wheel 1 to the groove surface. It is the same as the length up to 1ad and has the minimum length ha. Further, the height from the central top surface 1aa to the groove surface 1ad in the top surface 1aa of the grinding portion 1a is the maximum height hb.

このように研削部1aの頂面1aaの中心軸線X1方向の両側を垂れさせている理由は、研削部1aが歯切り工具2の刃溝に入ってから出るまでの間に両者が干渉しないようにするためである。この研削部1aの中心軸線X1方向の頂面輪郭における一端面1A側の端点Qでの接線Lacと中心軸線X1に平行な直線L11とのなす角εを、前逃げ角という。なお、研削部1aの頂面1aaには、前逃げ角εを設けなくてもよい。   The reason why the top surface 1aa of the grinding portion 1a is hung on both sides in the direction of the central axis X1 is that the grinding portion 1a does not interfere with the grinding tool 1a from entering the blade groove of the gear cutting tool 2 to exiting. This is because The angle ε formed by the tangent line Lac at the end point Q on the one end face 1A side in the top surface contour of the grinding portion 1a in the direction of the central axis X1 and the straight line L11 parallel to the central axis X1 is called the front clearance angle. The front clearance angle ε may not be provided on the top surface 1aa of the grinding portion 1a.

図5Aに示すように、砥石車1の研削対象である歯切り工具2の形状は、円環状の部材の中心軸線X2周りの内周面に複数の刃2aを備える。歯切り工具2は、中心軸線X2方向の端面にすくい面2bを備える。すくい面2bは、歯切り工具2の中心軸線X2を中心としたテーパ状としてもよいし、1つの刃2a毎に異なる方向を向く面状に形成してもよい。   As shown in FIG. 5A, the shape of the gear cutting tool 2 to be ground by the grinding wheel 1 has a plurality of blades 2a on the inner peripheral surface around the central axis X2 of the annular member. The gear cutting tool 2 includes a rake face 2b on the end face in the direction of the central axis X2. The rake face 2b may be tapered with the center axis X2 of the gear cutting tool 2 as the center, or may be formed in a face shape that faces different directions for each blade 2a.

そして、図5Bに示すように、刃2aを歯切り工具2の周方向に見たとき、複数の刃2aの頂面2aaは、頂面2aaと中心軸線X2に平行な直線L2とのなす前逃げ角αを有する前逃げ面となっている。この場合、刃2aの一方端面2bから刃すじ2f(図5C参照)方向に行くに従って、刃先面における歯切り工具2の中心軸線X2からの距離が徐々に大きくなっている。   Then, as shown in FIG. 5B, when the blades 2a are viewed in the circumferential direction of the gear cutting tool 2, the top surfaces 2aa of the plurality of blades 2a are formed by the top surfaces 2aa and a straight line L2 parallel to the central axis X2. It is a front flank having a clearance angle α. In this case, the distance from the central axis X2 of the gear cutting tool 2 on the cutting edge surface gradually increases as it goes from the one end surface 2b of the cutting edge 2a toward the cutting edge 2f (see FIG. 5C).

また、図5Cに示すように、刃2aを歯切り工具2の径方向に見たとき、複数の刃2aは、刃すじ2f方向(刃溝方向に等しい)が中心軸線X2と平行な直線L21に対してねじれ角βを有している。ただし、刃2aのねじれ角βは、歯車3の歯3aのねじれ角と、切削加工における歯車3と歯切り工具2との交差角ηに応じて適宜異なる。そこで、刃2aは、ねじれ角βを有しない場合も存在する。本例では、ねじれ角βと交差角ηは同一である。複数の刃2aの右側面2ab及び左側面2acは、右側面2ab及び左側面2acと中心軸線X2に平行な直線L21とのなす側逃げ角γをそれぞれ有する側逃げ面となっている。   Further, as shown in FIG. 5C, when the blades 2a are viewed in the radial direction of the gear cutting tool 2, the plurality of blades 2a have a straight line L21 whose blade line 2f direction (equal to the blade groove direction) is parallel to the central axis X2. Has a helix angle β with respect to. However, the helix angle β of the blade 2a differs depending on the helix angle of the teeth 3a of the gear 3 and the intersection angle η between the gear 3 and the gear cutting tool 2 in the cutting process. Therefore, the blade 2a may not have the helix angle β. In this example, the twist angle β and the crossing angle η are the same. The right side surface 2ab and the left side surface 2ac of the plurality of blades 2a are side clearance surfaces each having a side clearance angle γ formed by the right side surface 2ab and the left side surface 2ac and a straight line L21 parallel to the central axis X2.

図6に示すように、歯切り工具2の切削対象である歯車3の形状は、中心軸線X3周りの周面に複数の歯3aを備える。本実施形態においては、歯車3は、平歯車を例に挙げるが、はすば歯車など種々の歯車を適用することができる。   As shown in FIG. 6, the gear 3 to be cut by the gear cutting tool 2 has a plurality of teeth 3a on the peripheral surface around the central axis X3. In this embodiment, the gear 3 is a spur gear as an example, but various gears such as a helical gear can be applied.

歯車3の加工(歯3aの創成)は、図1に示す加工装置10によりスカイビング加工で行うことが可能であるので、簡単に説明する。図1に対応させて示す図7に示すように、主軸ユニット11は、歯切り工具2の中心軸線X2の周り(θ21)に歯切り工具2をチャック14を介して回転可能且つベッドに対して直交3軸方向へ移動可能に支持する。回転テーブル12は、歯車3の中心軸線X3の周り(θ3)に歯車3を回転可能且つチルト(傾斜)可能に支持する。   Since the machining of the gear 3 (creation of the teeth 3a) can be performed by skiving by the machining device 10 shown in FIG. 1, it will be briefly described. As shown in FIG. 7 corresponding to FIG. 1, the spindle unit 11 is capable of rotating the gear cutting tool 2 through the chuck 14 around the central axis X2 of the gear cutting tool 2 (θ21) and with respect to the bed. It is supported so as to be movable in three orthogonal directions. The turntable 12 supports the gear 3 rotatably and tiltably around the central axis X3 of the gear 3 (θ3).

そして、主軸ユニット11及び回転テーブル12が位置決めされることにより、歯切り工具2の中心軸線X2と歯車3の中心軸線X3とが交差角を有する状態に位置決めされる。この状態で、歯切り工具2が中心軸線X2周り(θ21)に回転されると共に、歯車3が中心軸線X3周り(θ3)に同期回転される。そして、歯切り工具2が歯車3の中心軸線X3方向に相対的に移動される。このようにして、歯車3が形成される。   Then, by positioning the spindle unit 11 and the rotary table 12, the central axis X2 of the gear cutting tool 2 and the central axis X3 of the gear 3 are positioned so as to have an intersecting angle. In this state, the gear cutting tool 2 is rotated around the central axis X2 (θ21), and the gear 3 is synchronously rotated around the central axis X3 (θ3). Then, the gear cutting tool 2 is relatively moved in the direction of the central axis X3 of the gear 3. In this way, the gear 3 is formed.

(3.歯切り工具の加工装置の制御装置の動作)
次に、歯切り工具2の加工装置10の制御装置20の動作(加工方法)について図3A,3B及び図8を参照しながら説明する。なお、図4Aに示す砥石車1は、工具交換装置により主軸ユニット11の先端に取り付けられるものとする。また、図5Aに示す歯切り工具2は、回転テーブル12に支持されているものとする。そして、歯切り工具2の加工装置10では、歯切り工具2を砥石車1でドレッシングするものとする。
(3. Operation of control device of machining device for gear cutting tool)
Next, the operation (processing method) of the control device 20 of the processing device 10 for the gear cutting tool 2 will be described with reference to FIGS. 3A, 3B and 8. The grinding wheel 1 shown in FIG. 4A is attached to the tip of the spindle unit 11 by a tool changing device. Further, the gear cutting tool 2 shown in FIG. 5A is assumed to be supported by the rotary table 12. Then, in the processing device 10 of the gear cutting tool 2, the gear cutting tool 2 is dressed by the grinding wheel 1.

制御装置20は、砥石車1を歯切り工具2のすくい面2b側に移動させ、砥石車1の中心軸線X1と歯切り工具2の中心軸線X2とが交差角ηを有する状態となるように位置決めする(図3AのステップS1)。この状態で、砥石車1を中心軸線X1周り(θ1)に回転させるとともに、歯切り工具2を中心軸線X2周り(θ22)に回転させる(図3AのステップS2、回転制御工程)。そして、先ず、歯切り工具2の刃2aの頂面2aaの加工を行う。   The control device 20 moves the grinding wheel 1 to the rake face 2b side of the gear cutting tool 2 so that the central axis X1 of the grinding wheel 1 and the central axis X2 of the gear cutting tool 2 have a crossing angle η. Positioning is performed (step S1 in FIG. 3A). In this state, the grinding wheel 1 is rotated around the central axis X1 (θ1) and the gear cutting tool 2 is rotated around the central axis X2 (θ22) (step S2 in FIG. 3A, rotation control step). Then, first, the top surface 2aa of the blade 2a of the gear cutting tool 2 is processed.

すなわち、制御装置20は、砥石車1を歯切り工具2の中心軸線X2方向に移動させる際に、前逃げ角αを形成するために、砥石車1を歯切り工具2の径方向に移動量を徐変して移動させる。そして、図8に示すように、砥石車1の隣り合う研削部1a間の溝面1adで、歯切り工具2の刃2aの頂面2aaに対し仕上げ前研削及び仕上げ研削を連続的に行う(図3AのステップS3、移動制御工程)。砥石車1を歯切り工具2の径方向に徐変して移動するときの移動量は、歯切り工具2の刃2aの頂面2aaに形成する前逃げ角αに基づいて設定する。   That is, the control device 20 moves the grinding wheel 1 in the radial direction of the gear cutting tool 2 in order to form the front clearance angle α when moving the grinding wheel 1 in the direction of the central axis X2 of the gear cutting tool 2. Change gradually and move. Then, as shown in FIG. 8, in the groove surface 1ad between the adjacent grinding portions 1a of the grinding wheel 1, pre-finishing grinding and finish grinding are continuously performed on the top surface 2aa of the blade 2a of the gear cutting tool 2 ( Step S3 of FIG. 3A, movement control step). The amount of movement when gradually changing the grinding wheel 1 in the radial direction of the gear cutting tool 2 is set based on the front clearance angle α formed on the top surface 2aa of the blade 2a of the gear cutting tool 2.

そして、制御装置20は、歯切り工具2の全ての刃2aの頂面2aaの研削が完了したか否かを判断し(図3AのステップS4)、歯切り工具2の全ての刃2aの頂面2aaの研削が完了していないときはステップS3に戻って上述の処理を繰り返す。一方、ステップS4において、歯切り工具2の全ての刃2aの頂面2aaの研削が完了したときは、次に、歯切り工具2の刃2aの右側面2abの加工を行う。   Then, the control device 20 determines whether or not the grinding of the top surfaces 2aa of all the blades 2a of the gear cutting tool 2 is completed (step S4 in FIG. 3A), and the tops of all the blades 2a of the gear cutting tool 2 are determined. When the grinding of the surface 2aa has not been completed, the process returns to step S3 and the above-described processing is repeated. On the other hand, in step S4, when the grinding of the top surfaces 2aa of all the blades 2a of the gear cutting tool 2 is completed, next, the right side surface 2ab of the blade 2a of the gear cutting tool 2 is processed.

すなわち、制御装置20は、砥石車1を歯切り工具2の中心軸線X2方向に移動させる際に、歯切り工具2の刃2aの右側面2abに対し側逃げ角γを形成するために、交差角ηの角度を変更して移動させる。そして、図8に示すように、砥石車1の研削部1aの左側面1abで、歯切り工具2の刃2aの右側面2abに対し仕上げ前研削及び仕上げ研削を連続的に行う(図3AのステップS5、移動制御工程)。変更する交差角ηの角度は、歯切り工具2の刃2aの右側面2abに形成する側逃げ角γに基づいて設定する。   That is, when the grinding wheel 1 is moved in the direction of the central axis X2 of the gear cutting tool 2, the control device 20 intersects the right side surface 2ab of the blade 2a of the gear cutting tool 2 to form a side clearance angle γ. Change the angle η and move it. Then, as shown in FIG. 8, on the left side surface 1ab of the grinding portion 1a of the grinding wheel 1, pre-finishing grinding and finish grinding are continuously performed on the right side surface 2ab of the blade 2a of the gear cutting tool 2 (see FIG. 3A). Step S5, movement control step). The angle of the intersecting angle η to be changed is set based on the side clearance angle γ formed on the right side surface 2ab of the blade 2a of the gear cutting tool 2.

そして、制御装置20は、歯切り工具2の全ての刃2aの右側面2abの研削が完了したか否かを判断し(図3AのステップS6)、歯切り工具2の全ての刃2aの右側面2abの研削が完了していないときはステップS5に戻って上述の処理を繰り返す。一方、ステップS6において、歯切り工具2の全ての刃2aの右側面2abの研削が完了したときは、次に、歯切り工具2の刃2aの溝面の加工を行う。   Then, the control device 20 determines whether or not the grinding of the right side surface 2ab of all the blades 2a of the gear cutting tool 2 is completed (step S6 in FIG. 3A), and the right side of all the blades 2a of the gear cutting tool 2 is determined. When the grinding of the surface 2ab has not been completed, the process returns to step S5 and the above-described processing is repeated. On the other hand, in step S6, when the grinding of the right side surface 2ab of all the blades 2a of the gear cutting tool 2 is completed, the groove surface of the blade 2a of the gear cutting tool 2 is processed next.

すなわち、制御装置20は、砥石車1を歯切り工具2の中心軸線X2方向に移動させる際に、交差角ηの角度を元に戻して移動させる。そして、図8に示すように、砥石車1の研削部1aの頂面1aaで、歯切り工具2の刃2aの溝面2adに対し仕上げ前研削及び仕上げ研削を連続的に行う(図3BのステップS7、移動制御工程)。   That is, when the grinding wheel 1 is moved in the direction of the central axis X2 of the gear cutting tool 2, the control device 20 restores the angle of the intersection angle η and moves the grinding wheel 1. Then, as shown in FIG. 8, pre-finishing grinding and finish grinding are continuously performed on the groove surface 2ad of the blade 2a of the gear cutting tool 2 at the top surface 1aa of the grinding portion 1a of the grinding wheel 1 (see FIG. 3B). Step S7, movement control step).

そして、制御装置20は、歯切り工具2の全ての刃2aの溝面の研削が完了したか否かを判断し(図3BのステップS8)、歯切り工具2の全ての刃2aの溝面の研削が完了していないときはステップS7に戻って上述の処理を繰り返す。一方、ステップS8において、歯切り工具2の全ての刃2aの溝面の研削が完了したときは、次に、歯切り工具2の刃2aの左側面2acの加工を行う。   Then, the control device 20 determines whether or not the grinding of the groove surfaces of all the blades 2a of the gear cutting tool 2 is completed (step S8 in FIG. 3B), and the groove surfaces of all the blades 2a of the gear cutting tool 2 are determined. If the grinding is not completed, the process returns to step S7 and the above-described processing is repeated. On the other hand, when the grinding of the groove surfaces of all the blades 2a of the gear cutting tool 2 is completed in step S8, next, the left side surface 2ac of the blade 2a of the gear cutting tool 2 is processed.

すなわち、制御装置20は、砥石車1を歯切り工具2の中心軸線X2方向に移動させる際に、歯切り工具2の刃2aの左側面2acに対し側逃げ角γを形成するために、交差角ηの角度を変更して移動させる。そして、図8に示すように、砥石車1の研削部1aの右側面1acで、歯切り工具2の刃2aの左側面2acに対し仕上げ前研削及び仕上げ研削を連続的に行う(図3BのステップS9、移動制御工程)。変更する交差角ηの角度は、歯切り工具2の刃2aの左側面2acに形成する側逃げ角βに基づいて設定する。   That is, when the grinding wheel 1 is moved in the central axis X2 direction of the gear cutting tool 2, the control device 20 forms a side clearance angle γ with the left side surface 2ac of the blade 2a of the gear cutting tool 2 in order to form a side clearance angle γ. Change the angle η and move it. Then, as shown in FIG. 8, pre-finishing grinding and finish grinding are continuously performed on the right side surface 1ac of the grinding portion 1a of the grinding wheel 1 on the left side surface 2ac of the blade 2a of the gear cutting tool 2 (see FIG. 3B). Step S9, movement control step). The angle of the intersecting angle η to be changed is set based on the side clearance angle β formed on the left side surface 2ac of the blade 2a of the gear cutting tool 2.

そして、制御装置20は、歯切り工具2の全ての刃2aの左側面2acの研削が完了したか否かを判断し(図3BのステップS10)、歯切り工具2の全ての刃2aの左側面2acの研削が完了していないときはステップS9に戻って上述の処理を繰り返す。一方、ステップS10において、歯切り工具2の全ての刃2aの左側面2acの研削が完了したときは、砥石車1の退避位置へ移動して停止し(図3BのステップS11)、砥石車1及び歯切り工具2の回転を停止して(図3BのステップS12)、全ての処理を終了する。   Then, the control device 20 determines whether or not the grinding of the left side surfaces 2ac of all the blades 2a of the gear cutting tool 2 is completed (step S10 in FIG. 3B), and the left side of all the blades 2a of the gear cutting tool 2 is determined. When the grinding of the surface 2ac is not completed, the process returns to step S9 and the above-described processing is repeated. On the other hand, in step S10, when the grinding of the left side surface 2ac of all the blades 2a of the gear cutting tool 2 is completed, the grinding wheel 1 is moved to the retracted position and stopped (step S11 in FIG. 3B), and the grinding wheel 1 is moved. And the rotation of the gear cutting tool 2 is stopped (step S12 of FIG. 3B), and all the processes are ended.

上述の制御装置20の動作では、交差角ηの角度を変更することで、歯切り工具2の刃2aの右側面2ab及び左側面2acの加工を行うようにした。しかし、制御装置20は、砥石車1を歯切り工具2の中心軸線X2方向に相対的に移動させる際に、砥石車1を歯切り工具2の回転接線方向である並進方向M33に移動量を徐変して移動させる。そして、歯切り工具2の刃2aの右側面2ab及び左歯面2acに対し側逃げ角γをそれぞれ形成するために、砥石車1の研削部1aの右側面1acで、歯切り工具2の刃2aの左側面2acに対し仕上げ前研削及び仕上げ研削を連続的に行うようにしてもよい。   In the operation of the control device 20 described above, the right side surface 2ab and the left side surface 2ac of the blade 2a of the gear cutting tool 2 are processed by changing the angle of the intersection angle η. However, when the grinding wheel 1 is relatively moved in the direction of the central axis X2 of the gear cutting tool 2, the control device 20 moves the grinding wheel 1 in the translational direction M33 which is the rotational tangential direction of the gear cutting tool 2. Move gradually. Then, in order to form the side clearance angle γ with respect to the right side surface 2ab and the left tooth surface 2ac of the blade 2a of the gear cutting tool 2, respectively, the blade of the gear cutting tool 2 is formed on the right side surface 1ac of the grinding portion 1a of the grinding wheel 1. The pre-finishing grinding and the finishing grinding may be continuously performed on the left side surface 2ac of 2a.

(4.その他)
上述した実施形態では、砥石車1の研削部1aの左側面1ab及び右側面1ac間は、中央が砥石車1の周方向両側に膨らんだ樽形状に形成した。これにより、砥石車1は、歯切り工具2の中心軸線X2方向に往復移動して歯切り工具2の加工を行うことができる。しかし、図4Cに対応させて示す図9(同一構成部は同一番号を付す)のように、砥石車1の研削部1aの左側面1ab及び右側面1ac間を、他端面1B側で砥石車1の周方向両側に最も膨らんだ形状に形成してもよい。この場合、砥石車1は、歯切り工具2の中心軸線X2方向に一方向のみに移動して歯切り工具2の加工を行う。
(4. Other)
In the above-described embodiment, between the left side surface 1ab and the right side surface 1ac of the grinding portion 1a of the grinding wheel 1, the center is formed in a barrel shape swelling on both sides in the circumferential direction of the grinding wheel 1. Accordingly, the grinding wheel 1 can reciprocate in the direction of the central axis X2 of the gear cutting tool 2 to process the gear cutting tool 2. However, as shown in FIG. 9 corresponding to FIG. 4C (the same constituent parts are given the same numbers), the grinding wheel 1 on the other end surface 1B side is between the left side surface 1ab and the right side surface 1ac of the grinding part 1a of the grinding wheel 1. It may be formed in the most bulged shape on both sides in the circumferential direction. In this case, the grinding wheel 1 moves in only one direction in the central axis X2 direction of the gear cutting tool 2 to process the gear cutting tool 2.

また、歯切り工具2の刃2aの右側面2ab及び左側面2acには、側逃げ角γを設けている。これにより、砥石車1は、歯切り工具2の刃2aの右側面2ab及び左側面2acを片側ずつ加工している。しかし、歯切り工具2の刃2aの右側面2ab及び左側面2acには、側逃げ角γを設けなくてもよく(側逃げ角γが0度)、この場合、砥石車1は、歯切り工具2の刃2aの右側面2ab及び左側面2acを同時に加工可能となる。   A side clearance angle γ is provided on the right side surface 2ab and the left side surface 2ac of the blade 2a of the gear cutting tool 2. As a result, the grinding wheel 1 processes the right side surface 2ab and the left side surface 2ac of the blade 2a of the gear cutting tool 2 one by one. However, the side clearance angle γ may not be provided on the right side surface 2ab and the left side surface 2ac of the blade 2a of the gear cutting tool 2 (the side clearance angle γ is 0 degree). In this case, the grinding wheel 1 The right side surface 2ab and the left side surface 2ac of the blade 2a of the tool 2 can be machined simultaneously.

また、主軸ユニット11が、回転テーブル12に対し移動可能に構成した。しかし、主軸ユニット11と回転テーブル12とは、相対移動すればよく、回転テーブル12が、主軸ユニット11に対し移動可能な構成としてもよい。   Further, the spindle unit 11 is configured to be movable with respect to the rotary table 12. However, the main spindle unit 11 and the rotary table 12 may be relatively moved, and the rotary table 12 may be movable with respect to the main spindle unit 11.

1:砥石車、 1a:研削部、 1aa:頂面、 1ab:左側面、 1ac:右側面、 1ad:溝面、 2:歯切り工具、 2a:刃、 3:歯車、 3a:歯、 10:歯切り工具の加工装置、 20:制御装置、 21:回転制御部、 22:移動制御部、 Sa,Sb:断面形状   1: Grinding wheel, 1a: Grinding part, 1aa: Top surface, 1ab: Left side surface, 1ac: Right side surface, 1ad: Groove surface, 2: Gear cutting tool, 2a: Blade, 3: Gear, 3a: Teeth, 10: Processing device for gear cutting tool, 20: control device, 21: rotation control unit, 22: movement control unit, Sa, Sb: cross-sectional shape

Claims (8)

外歯車形状に形成され、外歯を研削部とした砥石車を有し、周面に複数の刃を有するスカイビング加工に用いられる歯切り工具を研削対象として、前記砥石車で前記歯切り工具の研削を行う歯切り工具の加工装置であって、
前記砥石車は、前記研削部における前記砥石車の周方向の断面形状が少なくとも仕上げ前研削用及び仕上げ研削用に形成され、
前記砥石車の中心軸線と前記歯切り工具の中心軸線とを直交させた状態から交差角だけ傾斜させた状態で、前記砥石車を前記砥石車の中心軸線周りに回転させると共に、前記歯切り工具を前記歯切り工具の中心軸線周りに回転させる回転制御部と、
前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させ、前記研削部で前記刃の仕上げ前研削及び仕上げ研削を連続的に行う移動制御部と、
を備える、歯切り工具の加工装置。
The gear cutting tool is formed in the shape of an external gear and has a grinding wheel with external teeth as a grinding portion, and a gear cutting tool used for skiving having a plurality of blades on the peripheral surface is a grinding target, and the gear cutting tool is used by the grinding wheel. A machining device for a gear cutting tool that grinds
The grinding wheel, the circumferential sectional shape of the grinding wheel in the grinding portion is formed for at least pre-finishing grinding and finish grinding,
With the central axis of the grinding wheel and the central axis of the gear cutting tool being orthogonal to each other, the grinding wheel is rotated around the central axis of the grinding wheel while being inclined by a crossing angle, and the gear cutting tool is A rotation controller for rotating the gear around the central axis of the gear cutting tool,
A movement control unit that relatively moves the grinding wheel in the central axis direction of the gear cutting tool, and continuously performs pre-finishing grinding and finish grinding of the blade in the grinding unit,
A machining device for a gear cutting tool.
前記研削部は、前記研削部を中心軸線から径方向に見たとき、前記研削部の左右側面間が前記砥石車の周方向両側に膨らんだ樽形状に形成され、前記研削部の左右側面間における前記砥石車の周方向の最小肉厚部分の断面形状が前記仕上げ前研削用に形成され、前記研削部の左右側面間における前記砥石車の周方向の最大肉厚部分の断面形状が前記仕上げ研削用に形成される、請求項1に記載の歯切り工具の加工装置。   When the grinding portion is viewed in the radial direction from the central axis, the left and right side surfaces of the grinding portion are formed in a barrel shape that swells to both sides in the circumferential direction of the grinding wheel, and between the left and right side surfaces of the grinding portion. The cross-sectional shape of the minimum wall thickness portion in the circumferential direction of the grinding wheel is formed for the pre-finishing grinding, and the cross-sectional shape of the maximum wall thickness portion in the circumferential direction of the grinding wheel between the left and right side surfaces of the grinding portion is the finish. The processing device for a gear cutting tool according to claim 1, which is formed for grinding. 前記研削部における前記砥石車の中心軸線方向に延びる左右側面には、前記砥石車の中心軸線方向の側面輪郭を延長した直線と前記砥石車の中心軸線に平行な直線とのなす側逃げ角がそれぞれ設けられる、請求項1又は2に記載の歯切り工具の加工装置。   On the left and right side surfaces extending in the central axis direction of the grinding wheel in the grinding portion, there is a side clearance angle formed by a straight line extending a side surface profile in the central axis direction of the grinding wheel and a straight line parallel to the central axis of the grinding wheel. The machining device for a gear cutting tool according to claim 1, which is provided respectively. 前記研削部の頂面には、前記砥石車の中心軸線方向の頂面輪郭における前記砥石車の端面側の端点での接線と前記砥石車の中心軸線に平行な直線とのなす前逃げ角が設けられる、請求項1−3の何れか一項に記載の歯切り工具の加工装置。   The top surface of the grinding portion has a front clearance angle formed by a tangent line at an end point on the end surface side of the grinding wheel and a straight line parallel to the center axis of the grinding wheel in the top surface contour in the central axis direction of the grinding wheel. The machining device for a gear cutting tool according to claim 1, wherein the machining device is provided. 外歯車形状に形成され、外歯を研削部とした砥石車を有し、周面に複数の刃を有するスカイビング加工に用いられる歯切り工具を研削対象として、前記砥石車で前記歯切り工具の研削を行う歯切り工具の加工方法であって、
前記砥石車は、前記研削部における前記砥石車の周方向の断面形状が少なくとも仕上げ前研削用及び仕上げ研削用に形成され、
前記砥石車の中心軸線と前記歯切り工具の中心軸線とを直交させた状態から交差角だけ傾斜させた状態で、前記砥石車を前記砥石車の中心軸線周りに回転させると共に、前記歯切り工具を前記歯切り工具の中心軸線周りに回転させる回転制御工程と、
前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させ、前記研削部で前記刃の仕上げ前研削及び仕上げ研削を連続的に行う移動制御工程と、
を備える、歯切り工具の加工方法。
The gear cutting tool is formed in the shape of an external gear and has a grinding wheel with external teeth as a grinding portion, and a gear cutting tool used for skiving having a plurality of blades on the peripheral surface is a grinding target, and the gear cutting tool is used by the grinding wheel. A method of processing a gear cutting tool for grinding
The grinding wheel, the circumferential sectional shape of the grinding wheel in the grinding portion is formed for at least pre-finishing grinding and finish grinding,
With the central axis of the grinding wheel and the central axis of the gear cutting tool being orthogonal to each other, the grinding wheel is rotated around the central axis of the grinding wheel while being inclined by a crossing angle, and the gear cutting tool is A rotation control step of rotating the gear about the central axis of the gear cutting tool,
A movement control step of relatively moving the grinding wheel in the central axis direction of the gear cutting tool, and continuously performing pre-finishing grinding and finish grinding of the blade in the grinding section;
And a method for processing a gear cutting tool.
前記移動制御工程は、前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させる際に、前記交差角を変更して移動させ、前記歯切り工具における前記歯切り工具の中心軸線方向に延びる左右側面に、前記左右側面と前記歯切り工具の中心軸線に平行な直線とのなす側逃げ角をそれぞれ設ける、請求項5に記載の歯切り工具の加工方法。   In the movement control step, when relatively moving the grinding wheel in the central axis direction of the gear cutting tool, the crossing angle is changed to move the central axis direction of the gear cutting tool in the gear cutting tool. The method for machining a gear cutting tool according to claim 5, wherein side clearance angles formed by the right and left side surfaces and a straight line parallel to the central axis of the gear cutting tool are provided on the left and right side surfaces extending in the direction. 前記移動制御工程は、前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させる際に、前記砥石車を前記歯切り工具の回転接線方向である並進方向に移動量を徐変して移動させ、前記歯切り工具における前記歯切り工具の中心軸線方向に延びる左右側面に、前記左右側面と前記歯切り工具の中心軸線に平行な直線とのなす側逃げ角をそれぞれ設ける、請求項5に記載の歯切り工具の加工方法。   The movement control step gradually changes the amount of movement of the grinding wheel in a translational direction which is a rotational tangential direction of the gear cutting tool when the grinding wheel is relatively moved in the central axis direction of the gear cutting tool. The side clearance angles formed by the left and right side surfaces and a straight line parallel to the central axis of the gear cutting tool are provided on the left and right side surfaces of the gear cutting tool that extend in the central axis direction of the gear cutting tool, respectively. 5. The method for processing a gear cutting tool according to item 5. 前記移動制御工程は、前記砥石車を前記歯切り工具の中心軸線方向に相対的に移動させる際に、前記砥石車を前記歯切り工具の径方向に移動量を徐変して移動させ、前記歯切り工具の刃の頂面に、前記頂面と前記歯切り工具の中心軸線に平行な直線とのなす前逃げ角を設ける、請求項5−7の何れか一項に記載の歯切り工具の加工方法。   In the movement control step, when relatively moving the grinding wheel in the central axis direction of the gear cutting tool, the grinding wheel is gradually moved in the radial direction of the gear cutting tool to move, The gear cutting tool according to any one of claims 5 to 7, wherein a front clearance angle formed by the top surface and a straight line parallel to the central axis of the gear cutting tool is provided on the top surface of the blade of the gear cutting tool. Processing method.
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CN114986378A (en) * 2022-06-02 2022-09-02 广东技术师范大学 Grinding device and grinding method for grinding internal teeth of gear ring

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Publication number Priority date Publication date Assignee Title
CN114986378A (en) * 2022-06-02 2022-09-02 广东技术师范大学 Grinding device and grinding method for grinding internal teeth of gear ring

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