Fixture device and fixture unit

By designing the fixture device and support mechanism for maintaining the cantilever state, the problem of frequent loading and unloading of special fixture devices and machine tool stopping during the processing of multiple types of workpieces is solved, and efficient workpiece processing is achieved.

CN119816396BActive Publication Date: 2025-07-29SURUGA PROD PLATFROM CO LTD
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Patent Information

Application Number
CN202380063613.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2023-02-09
Filing Date
2023-02-13
Publication Date
2025-07-29
Estimated Expiration
2043-02-13

AI Technical Summary

Technical Problem

When using special fixtures to process a small number of workpieces, frequent loading and unloading processes and machine tool stop time lead to a reduction in processing efficiency.

Method used

A fixture device and fixture unit are designed to maintain the workpiece in a cantilever state, and through the main shaft direction support mechanism and the secondary shaft direction support mechanism, the workpiece is flexible to be displaced and supported in the machine tool, reducing the machine tool stop time.

Benefits of technology

It improves the machining efficiency of workpieces, can cope with various processing conditions, reduces machine tool stop time, and is suitable for a variety of machine tool types.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The jig device (100) for a workpiece (W) in a machine tool includes: a holding mechanism (110) that holds the workpiece in a cantilever state; and a main spindle direction support mechanism (120) that has at least one main spindle direction support member (121) and a main spindle direction drive part (125). The main spindle direction support member (121) is arranged opposite to the workpiece held by the holding mechanism in a cantilever state from the opposite side of the main spindle (200) in the main spindle direction of the machine tool. The main spindle direction drive part (125) drives the main spindle direction support member in the main spindle direction between a main spindle direction support position in contact with the workpiece and a main spindle direction retracted position away from the workpiece. The main spindle direction support mechanism is configured to be able to change the contact position where the main spindle direction support member contacts the workpiece in an orthogonal plane orthogonal to the main spindle direction.
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Description

Technical Field

[0001] The present invention relates to a jig device for a workpiece held in a cantilever state and a jig unit for the jig device. Background Art

[0002] In Patent Document 1, a lower jig device for a six-sided machining center is described. The lower jig device includes a fixed lower jig that supports a workpiece using a workpiece support surface and a liftable lower jig that is provided so as to be able to move up and down. Moreover, when the liftable lower jig moves up, the workpiece support surface of the liftable lower jig and the workpiece support surface of the fixed lower jig become coplanar. Moreover, when the liftable lower jig moves down, the workpiece support surface of the liftable lower jig becomes lower than the workpiece support surface of the fixed lower jig.

[0003] Prior Art Documents

[0004] Patent Documents

[0005] Patent Document 1: Japanese Unexamined Patent Application Publication No. 2014-18944 Summary of the Invention

[0006] Problems to be Solved by the Invention

[0007] When machining a workpiece using a machine tool for machining a workpiece as a workpiece, such as a machine tool called a machining center, the workpiece is held by a jig device. Moreover, when machining a large number of mass-produced workpieces, a general jig device is used. On the other hand, when machining a small number of multi-variety workpieces produced each time, a dedicated jig device is used for each workpiece. In such a case where a dedicated jig device is used, when changing the machining surface, a process of stopping the machine tool and removing the workpiece from the jig device is generated. In addition to this removal process, a process of mounting the removed workpiece on another jig device is also generated. As a result, the machining time becomes long due to the number of workpiece loading and unloading processes and the machine tool stop time. As a result, the machining efficiency of the workpiece is reduced.

[0008] Solutions to the Problems

[0009] One type of jig device is a jig device for a workpiece in a machine tool. Among them, the jig device includes: a holding mechanism that holds the workpiece in a cantilever state; and a spindle-direction support mechanism that has at least one spindle-direction support member and a spindle-direction drive component. The spindle-direction support member is disposed opposite to the workpiece held in a cantilever state by the holding mechanism from the opposite side of the spindle in the spindle direction of the machine tool, and the spindle-direction drive component drives the spindle-direction support member in the spindle direction between a spindle-direction support position in contact with the workpiece and a spindle-direction retracted position away from the workpiece. The spindle-direction support mechanism is configured to be able to change the contact position where the spindle-direction support member contacts the workpiece in an orthogonal plane orthogonal to the spindle direction.

[0010] In addition, another type of jig unit is a jig unit for a jig device of a workpiece held in a cantilever state in a machine tool. Among them, the jig unit includes a spindle-direction support mechanism that has at least one spindle-direction support member and a spindle-direction drive component. The spindle-direction support member is disposed opposite to the workpiece held in a cantilever state from the opposite side of the spindle in the spindle direction of the machine tool, and the spindle-direction drive component drives the spindle-direction support member in the spindle direction between a spindle-direction support position in contact with the workpiece and a spindle-direction retracted position away from the workpiece. The spindle-direction support mechanism is configured to be able to change the contact position where the spindle-direction support member contacts the workpiece in an orthogonal plane orthogonal to the spindle direction.

[0011] Effects of the Invention

[0012] Accordingly, it is possible to provide a jig device that can cope with various machining conditions applied to the workpiece and improve the machining efficiency of the workpiece. Description of the Drawings

[0013] Figure 1 is a schematic perspective view of the jig device.

[0014] Figure 2 is a schematic side view of the main support member in the support position.

[0015] Figure 3 is a schematic perspective view of the sub-support mechanism in the standby position.

[0016] Figure 4 is a schematic perspective view of the jig device.

[0017] Figure 5 is a schematic perspective view of the jig device of the modified mode.

[0018] Figure 6Figure A is a schematic explanatory view showing the situation before pulling in. Figure 6 Figure B is a schematic explanatory view showing the situation after pulling in. Detailed implementation mode

[0019] Hereinafter, an exemplary implementation mode for implementing the present invention will be described in detail with reference to the accompanying drawings. However, the dimensions, materials, shapes, and relative positions of the constituent elements described in the following implementation modes can be arbitrarily set and can be changed according to the configuration of the device or method to which the present invention is applied or various conditions. In addition, unless otherwise specifically stated, the scope of the present invention is not limited to the implementation modes specifically described below. Furthermore, in this specification, the side of the machine tool where the spindle is arranged corresponds to "upper", and the opposite side corresponds to "lower".

[0020] Example

[0021] Refer to Figure 1 , a jig device 100 for a workpiece W held in a cantilever state above a worktable 210 of a machine tool (not shown), that is, above the worktable 210, will be described. In addition, Figure 1 is a schematic perspective view of the jig device 100 viewed obliquely from above. As an example, the jig device 100 of the present implementation mode is provided inside the machine tool, and holds and supports the workpiece W to be processed in a cantilever state.

[0022] For example, the machine tool performs hole opening processing, milling processing, chamfering processing, etc. on the workpiece W. As a specific example, the processing machine is a three-axis processing machine that processes three surfaces of the workpiece W when the workpiece W is a cuboid, or a five-axis processing machine that processes five surfaces of the workpiece W. Moreover, the processing machine is a vertical processing machine, a horizontal processing machine, or a gantry processing machine. However, in the following description, an example of a vertical three-axis processing machine will be mainly described.

[0023] The jig device 100 is provided between the worktable 210 of the machine tool and Figure 1 the spindle 200 of the machine tool indicated by a dashed line. In addition, the worktable 210 can also move in a state where the jig device 100 is provided. For example, the worktable 210 can move up and down in a direction parallel to the spindle direction of the machine tool (hereinafter also referred to as the Z direction), and can also rotate around a rotation axis parallel to the Z direction. Moreover, the worktable 210 can move parallel in a direction orthogonal to the spindle direction (hereinafter, also referred to as the X direction or the Y direction), and can also rotate around a rotation axis parallel to the X direction or the Y direction.

[0024] The jig device 100 includes a holding mechanism 110 that holds the workpiece W in a cantilever state, and a jig unit U. Moreover, the jig unit U includes a main support mechanism 120 as an example of a main axis direction support mechanism having a main axis direction support member and a main axis direction support mechanism described later. Moreover, the jig unit U includes a sub support mechanism 130 as an example of a second axis direction support mechanism having a second axis direction support member described later.

[0025] The holding mechanism 110 holds the end portion of the workpiece W in the first axis direction orthogonal to the main axis direction (hereinafter, also referred to as the holding end portion) in a cantilever state. That is, when the holding mechanism 110 holds the holding end portion of the workpiece W in the X direction, which is defined as the first axis direction orthogonal to the main axis direction, the other end portion of the workpiece W in the X direction becomes a free end portion. On the other hand, when the holding mechanism 110 holds the holding end portion of the workpiece W in the Y direction, which is defined as the first axis direction orthogonal to the main axis direction, the other end portion of the workpiece W in the Y direction becomes a free end portion.

[0026] In addition, when the holding mechanism 110 holds the holding end portion of the workpiece W in the X direction, the second axis direction support member of the sub support mechanism 130 faces the workpiece W in the Y direction, which is defined as the second axis direction orthogonal to the main axis direction and the X direction. On the other hand, when the holding mechanism 110 holds the holding end portion of the workpiece W in the Y direction, the second axis direction support member faces the workpiece W in the X direction, which is defined as the second axis direction orthogonal to the main axis direction and the Y direction. However, in the following description, mainly an example in which the holding mechanism 110 holds the holding end portion of the workpiece W in the X direction, which is the first axis direction, will be described.

[0027] [Holding mechanism 110]

[0028] A chuck 111, which is a holding member for clamping the workpiece W, is mounted on the holding mechanism 110. As an example, the chuck 111 can be detached from and attached to the holding mechanism 110. For example, the chuck 111 has a pair of movable claw portions. Moreover, the holding mechanism 110 holds the workpiece W by clamping the holding end portion of the workpiece W with the pair of claw portions. Alternatively, the chuck 111 may have three or more claw portions. Moreover, the holding member may be a suction device that sucks and holds the holding end portion of the workpiece W.

[0029] The chuck 111 automatically clamps the workpiece W in the case of so-called external changeover in which the processed workpiece W and the unprocessed workpiece W are replaced without stopping the machine tool. For example, the processed workpiece W is sent out of the machine tool by a robot arm. After that, the unprocessed workpiece W is sent into the machine tool by the robot arm. Then, the chuck 111 automatically clamps the sent-in unprocessed workpiece W.

[0030] In addition, the holding mechanism 110 has a rotation mechanism 112 that rotates the workpiece W about a rotation axis orthogonal to the spindle direction. The rotation mechanism 112 is, for example, called an indexing table or a rotary table. Specifically, as a rotation axis orthogonal to the spindle direction, the rotation mechanism 112 rotates the chuck 111 within a range of 360 degrees about the rotation axis X1 parallel to the X direction. Thus, the rotation mechanism 112 can rotate the workpiece W held by the chuck 111 about the rotation axis X1.

[0031] By rotating the workpiece W by the rotation mechanism 112, the machine tool can machine four sides of the workpiece W. For example, when the workpiece W is a rectangular parallelepiped, the machine tool can machine a total of four sides, namely, two sides arranged in the Z direction as the spindle direction and two sides arranged in the Y direction orthogonal to the Z direction. In addition, the holding mechanism 110 incorporates a rotation drive component (not shown) that drives the rotation mechanism 112. As an example, the rotation drive component includes a drive device that outputs a rotational motion and a rotation transmission mechanism connected to the output shaft of the drive device.

[0032] In addition, the holding mechanism 110 may have a first rotation mechanism and a second rotation mechanism. The first rotation mechanism rotates the workpiece W about a first rotation axis orthogonal to the spindle direction. Moreover, the second rotation mechanism rotates the workpiece W about a second rotation axis orthogonal to the spindle direction and the first rotation axis. For example, the rotation mechanism 112 as the first rotation mechanism rotates the workpiece W about the rotation axis X1 parallel to the X direction, which is the first rotation axis orthogonal to the spindle direction, i.e., the Z direction. Moreover, a second rotation mechanism (not shown) rotates the workpiece W about the rotation axis Y2 parallel to the Y direction, which is the second rotation axis orthogonal to the Z direction and the rotation axis X1.

[0033] Specifically, the second rotation mechanism rotates the holding mechanism 110 by 90 degrees about the rotation axis Y2. Thus, the free end of the workpiece W held by the chuck 111 faces the spindle 200. That is, the free end of the workpiece W faces the Figure 1 upper side in []. Therefore, the machine tool can machine a total of five sides, namely, two sides arranged in the Z direction, two sides arranged in the Y direction, and one side on the free end side. The one side on the free end side faced the side opposite to the holding mechanism 110 before rotating about the rotation axis Y2. In addition, the holding mechanism 110 incorporates a rotation drive component (not shown) that drives the second rotation mechanism.

[0034] As an example, the second rotating mechanism rotates the holding mechanism 110 about the rotation axis Y2 separately from the main support mechanism 120. That is, the second rotating mechanism rotates the holding mechanism 110 without rotating the main support mechanism 120. In this case, the workpiece W is not supported by the main support mechanism 120, and the load during machining in the rotated spindle direction is applied to the holding mechanism 110 that holds the workpiece W in a cantilever state. Therefore, the workpiece W is in a state of being supported by the holding mechanism 110, and deformation of the workpiece W due to the load during machining can be suppressed.

[0035] [Spindle direction support mechanism]

[0036] As Figure 2 shown, the main support mechanism 120 has at least one main support member 121 as an example of a spindle direction support member. The main support member 121 is arranged relative to the workpiece W held by the holding mechanism 110 so as to face the workpiece W from the opposite side of the spindle 200 in the spindle direction of the machine tool. That is, the main support member 121 is located below the chuck 111 of the holding mechanism 110 and is closer to the spindle 200 side relative to the holding mechanism 110.

[0037] In Figure 1 the example, the main support mechanism 120 has twenty-five main support members 121 arranged in a matrix of five columns in the X direction and five columns in the Y direction. Alternatively, the main support member 121 may be one, or may be twenty-four or less or twenty-six or more. In addition, the main support members 121 may be arranged in other forms such as a staggered lattice pattern, or may be arranged irregularly.

[0038] In addition, the main support mechanism 120 has a main drive unit 125 ( Figure 1 ) as an example of a spindle direction drive component that drives the main support member 121. In the spindle direction, the main drive unit 125 drives the main support member 121 between the spindle direction support position where the main support member 121 contacts the workpiece W and the spindle direction retracted position where the main support member 121 moves away from the workpiece W. Specifically, in the Z direction as the spindle direction, the main drive unit 125 causes the main support member 121A located at Figure 2 the spindle direction retracted position shown to protrude upward toward the spindle direction support position. Moreover, in the Z direction, the main drive unit 125 causes the main support member 121B that protrudes to Figure 2 the spindle direction support position shown to retract downward toward the spindle direction retracted position.

[0039] Refer to Figure 2 for an explanation of the drive of the main support member 121. In addition, Figure 2is a schematic side view of the main support member 121, with a part of the main support member 121 located at the spindle direction support position. In Figure 2 five main support members 121 are shown. In addition, the top end of the main support member 121 is flat, and its top end surface contacts the workpiece W. Alternatively, the top end of the main support member 121 may have other shapes such as spherical or hemispherical.

[0040] Each main support member 121 is a substantially cylindrical member that displaces from the spindle direction retracted position toward the spindle direction support position. Moreover, the main support member 121 rises toward the workpiece W under the action of the power supplied by the self-driving unit 125. For example, the main support member 121 is driven by electric power, air pressure, hydraulic pressure, or the spring force of a compression spring. As an example, the main support member 121 is a pin or rod of a linear actuator such as a solenoid actuator, a feed screw, a cylinder, or a hydraulic cylinder.

[0041] As Figure 2 shown, the rising of the main support member 121 stops when it contacts the workpiece W. After that, the rising and falling of the main support member 121 are restricted. Thus, the workpiece W held in a cantilever state by the chuck 111 is supported by the main support member 121. After that, when the machining is finished, the main support member 121 descends. Then, the descending main support member 121 stops at the spindle direction retracted position.

[0042] The main support mechanism 120 is configured to be able to change the contact position where the main support member 121 contacts the workpiece W in the orthogonal plane orthogonal to the spindle direction. That is, the main driving unit 125 of the main support mechanism 120 is configured to selectively drive the main support member 121 protruding to the contact position where it contacts the workpiece W in the XY plane, which is the orthogonal plane orthogonal to the Z direction as the spindle direction.

[0043] Specifically, the main support mechanism 120 has a plurality of main support members 121 arranged at different positions in the orthogonal plane orthogonal to the spindle direction. Moreover, the plurality of main support members 121 are divided in such a way that each driving unit driven by the main driving unit 125 includes at least one main support member 121. As an example, twenty-five driving units each including one main support member 121 are set in the main support mechanism 120. However, the driving unit can be set to include any number of main support members 121. For example, the driving unit can be set to include five main support members 121 arranged in a row.

[0044] Moreover, the main drive unit 125 drives each main support member 121 for each drive unit. For example, in the case where twenty-five drive units are set, the main drive unit 125 selectively drives each main support member 121. Additionally, in the case where five drive units are set in such a manner that each includes five main support members 121 arranged in a row, the main drive unit 125 selectively drives every five main support members 121.

[0045] For example, the main drive unit 125 is controlled by a control device (e.g., a processor), which is an example of a computer, provided in the machine tool. Moreover, the main drive unit 125 causes the main support member 121 at a position corresponding to the shape of the workpiece W recognized by the control device to protrude. In Figure 2 the example, the main drive unit 125 causes three main support members 121 located at positions corresponding to the shape of the workpiece W to protrude.

[0046] As an example, the control device acquires pin determination information (e.g., pin number) for determining the protruding main support member 121. This pin determination information can be acquired from a memory, which is a storage device provided in the machine tool, or an external storage device provided outside the machine tool. Alternatively, the control device may also acquire pin determination information manually input by the operator. Then, the control device uses the pin determination information corresponding to the workpiece W to be machined to determine and select the protruding main support member 121.

[0047] Then, the control device causes the selected main support member 121 to protrude at a predetermined protruding moment by using the main drive unit 125. In addition, the protruding moment is, for example, the moment when the chuck 111 finishes holding the workpiece W, or the moment when the rotation of the chuck 111 holding the workpiece W based on the rotation mechanism 112 is completed. Moreover, the control device causes the selected main support member 121 to retract at a predetermined retracting moment by using the main drive unit 125. In addition, the retracting moment is, for example, the moment when the machining of one surface of the workpiece W is completed.

[0048] Alternatively, the control device may also use a detection device such as a sensor or a photographing device to identify the shape of the workpiece W. In this case, the control device determines the main support member 121 located at a position corresponding to the identified shape of the workpiece W. Then, the control device causes the determined main support member 121 to protrude at a predetermined protruding moment by using the main drive unit 125. Additionally, the control device causes the determined main support member 121 to retract at a predetermined retracting moment by using the main drive unit 125.

[0049] In this way, the main support mechanism 120 selects the protruding main support member 121. Thus, in the XY plane, the main support member 121 located at the position in contact with the workpiece W selectively protrudes. Therefore, the main support mechanism 120 can change the contact position where the main support member 121 contacts the workpiece W in the XY plane according to the shape of the workpiece W. As a result, the same jig device 100 can support workpieces W machined into various shapes.

[0050] In addition, when machining is performed near the free end away from the holding end, a downward load centered on the fixed position is applied to the workpiece W in a cantilever state. Therefore, the main support member 121 near the free end is raised, and the free end is supported from below. Thereby, deformation of the workpiece W during machining can be suppressed.

[0051] In addition, the jig device 100 includes a first moving mechanism (not shown) that moves the main support mechanism 120 on the worktable 210. This first moving mechanism moves the main support mechanism 120 in the X direction orthogonal to the Z direction as the main axis direction. As an example, the first moving mechanism includes a slider that performs linear movement. Moreover, the stage 220 on which the main support mechanism 120 is placed is fixed to the slider, and the two move together. And the jig device 100 includes a second moving mechanism (not shown) that moves the main support mechanism 120 in the Y direction orthogonal to the Z direction.

[0052] Alternatively, the moving mechanism for moving the stage 220 may also be an air-floating type moving mechanism that supplies air from below the main support mechanism 120 to move the floating stage 220. In addition, the jig device 100 may include a rotational moving mechanism that rotates the stage 220 about a rotation axis parallel to the main axis direction as the moving mechanism for moving the stage 220. For example, the jig device 100 may include a rotating table on which the stage 220 is placed as the rotational moving mechanism.

[0053] Alternatively, the main support mechanism 120 may also have one or a small number of main support members 121. In this case, the main support mechanism 120 moves in the X direction and the Y direction orthogonal to the Z direction as the main axis direction. Thereby, the main support mechanism 120 can change the contact position where the main support member 121 contacts the workpiece W in the XY plane according to the shape of the workpiece W. For example, the movement of the main support mechanism 120 in the X direction and the Y direction is controlled by the control device of the machine tool. And when the main support member 121 moves to be located below the workpiece W, the main drive unit 125 drives the main support member 121.

[0054] In addition, when machining the workpiece W, a cover (not shown) for waterproofing or dustproofing is provided on the spindle side of the main support mechanism 120. Thus, the periphery of the main support member 121 is covered by the cover. Therefore, it is possible to prevent liquids such as water or dust such as chips from accumulating around the main support member 121.

[0055] In addition, through holes are formed in the cover at positions corresponding to the main support member 121. That is, the number of through holes corresponding to the number of main support members 121 is formed in the cover. Moreover, the tip of the main support member 121 protrudes from the through hole. Therefore, the main support member 121 driven by the main drive unit 125 protrudes through the through hole. As a result, the portion above the main support member 121 located at the spindle direction support position protrudes from the through hole.

[0056] [Second axis direction support mechanism]

[0057] As Figure 1 shown, the jig device 100 includes a sub-support mechanism 130 disposed on the side opposite to the holding mechanism 110 with respect to the main support mechanism 120. Moreover, as Figure 3 shown, the sub-support mechanism 130 has a sub-support member 131 as an example of a second axis direction support member. When a first axis direction orthogonal to the spindle direction and a second axis direction orthogonal to the spindle direction and the first axis direction are defined, the sub-support member 131 faces the workpiece W in the second axis direction. In addition, Figure 3 shows the sub-support mechanism 130 in the standby position as viewed from the viewing direction A of Figure 1 .

[0058] Here, the first axis direction refers to the direction from the end portion (holding end portion) on the side of the workpiece W held by the holding mechanism 110 toward the free end portion. For example, in the Figure 3 example, in the Y direction orthogonal to the Z direction as the spindle direction, the sub-support member 131 faces the workpiece W (not shown). That is, in the Figure 3 example, the holding mechanism 110 holds one end portion of the workpiece W in the X direction.

[0059] In addition, when the direction extending from the holding end portion of the workpiece W held by the holding mechanism 110 toward the free end portion is the X direction, the second axis direction is the Y direction. And the sub-support member 131 supports the workpiece W in the Y direction. On the other hand, when the direction extending from the holding end portion of the workpiece W held by the holding mechanism 110 toward the free end portion is the Y direction, the second axis direction is the X direction. And the sub-support member 131 supports the workpiece W in the X direction. That is, the sub-support mechanism 130 supports the workpiece W by supporting the load applied to the sub-support mechanism 130 via the held workpiece W.

[0060] In addition, the sub-support mechanism 130 includes a sub-driving unit 135 as an example of a second axial direction driving component for driving the sub-support member 131. In the second axial direction, the sub-driving unit 135 drives the sub-support member 131 between a second axial direction support position where the sub-support member 131 contacts the workpiece W and a second axial direction retracted position where the sub-support member 131 is separated from the workpiece W. Specifically, in the Y direction which is the second axial direction, the sub-driving unit 135 causes the sub-support member 131 located at Figure 3 the second axial direction retracted position shown to protrude toward the second axial direction support position. Moreover, in the Y direction, the sub-driving unit 135 causes the sub-support member 131 that has protruded to the second axial direction support position to retract toward the second axial direction retracted position.

[0061] Specifically, with reference to Figure 3 and Figure 4 , the driving of the sub-support member 131 will be described. In addition, Figure 3 is a schematic perspective view of the sub-support member 131 located at the second axial direction retracted position. In addition, Figure 4 is a schematic perspective view of the jig device 100 with the sub-support member 131 located at the second axial direction support position. In Figure 3 and Figure 4 , one of a pair of sub-support members 131 arranged in a manner of sandwiching the workpiece W is shown. The tip of this sub-support member 131 is flat, and its tip surface contacts the workpiece W. Alternatively, the tip of the sub-support member 131 may have other shapes such as spherical or hemispherical.

[0062] Each sub-support member 131 is a substantially cylindrical member that displaces from the second axial direction retracted position toward the second axial direction support position. Moreover, the sub-support member 131 is driven by the power supplied from the sub-driving unit 135. For example, the sub-support member 131 is driven by electric power, air pressure, hydraulic pressure, or the spring force of a compression spring, etc. As an example, the sub-support member 131 is a pin or rod of a linear actuator such as a solenoid actuator, a feed screw, a cylinder, or a hydraulic cylinder.

[0063] Moreover, the protrusion of the sub-support member 131 stops when it contacts the workpiece W. After that, the protrusion and retraction of the sub-support member 131 are restricted. Thereby, the load applied to the workpiece W held in a cantilever state by the chuck 111 in the Y direction is supported by the sub-support member 131. After that, when the machining is completed, the sub-support member 131 retracts. Moreover, the retracted sub-support member 131 stops at the second axial direction retracted position.

[0064] The sub-support mechanism 130 is configured to be able to change the position of the sub-support member 131 in a parallel plane parallel to the spindle direction and the first axis direction. Specifically, the sub-support mechanism 130 has a parallel rotation mechanism 136 that rotates the sub-support member 131 about a parallel rotation axis Y3 parallel to the second axis direction, so as to be able to change the position of the sub-support member 131 in the parallel plane. In Figure 3 In the example, the parallel rotation mechanism 136 of the sub-support mechanism 130 rotates the sub-support member 131 in the ZX plane, which is a parallel plane parallel to the Z direction as the spindle direction and the X direction as the first axis direction.

[0065] That is, in Figure 3 the parallel rotation axis Y3 indicated by the one-dot chain line is parallel to the Y direction as the second axis direction. Moreover, the parallel rotation mechanism 136 rotates the sub-support member 131 about the parallel rotation axis Y3. For this purpose, the parallel rotation mechanism 136 includes a drive device that outputs a rotational motion, a transmission mechanism such as gears that transmits the rotation output from the drive device, and a rotating shaft. This rotating shaft is inserted into a shaft hole (not shown) of the sub-support arm 138. Moreover, the sub-support arm 138 provided with the sub-support member 131 rotates together with the rotating shaft inserted into the shaft hole.

[0066] Thereby, the sub-support member 131 rotates in the ZX plane along Figure 3 the rotation direction B. Moreover, along the rotation locus of the sub-support member 131, the position of the sub-support member 131 and the contact position between the sub-support member 131 and the workpiece W change. In addition, the parallel rotation mechanism 136 can adjust the position of the sub-support member 131 in the ZX plane by adjusting the rotation angle.

[0067] In addition, the jig device 100 includes a first moving mechanism that moves the sub-support mechanism 130. Moreover, the first moving mechanism moves the sub-support mechanism 130 on the workbench 210. Specifically, the first moving mechanism moves the sub-support mechanism 130 together with the main support mechanism 120 in the X direction as the second axis direction orthogonal to the Z direction. That is, the sub-support mechanism 130 is fixed to the stage 220 shared with the main support mechanism 120.

[0068] Moreover, the jig device 100 includes a second moving mechanism (not shown) that moves the sub-support mechanism 130 in the Y direction orthogonal to the Z direction. Moreover, the second moving mechanism moves the sub-support mechanism 130 together with the main support mechanism 120 in the Y direction. Alternatively, the sub-support mechanism 130 may be configured to move in at least one of the X direction and the Y direction separately from the main support mechanism 120. That is, the jig device 100 may also include an independent moving mechanism that only moves the sub-support mechanism 130 in at least one of the X direction and the Y direction.

[0069] For example, the sub-driving unit 135 and the parallel rotation mechanism 136 are controlled by the control device of the machine tool. Moreover, the parallel rotation mechanism 136 rotates the sub-support member 131 to a position corresponding to the shape of the workpiece W recognized by the control device. As an example, the parallel rotation mechanism 136 rotates the sub-support member 131 located at the Figure 3 standby position shown by 90 degrees, and rotates and moves the sub-support member 131 to the Figure 4 operating position shown. After that, the sub-driving unit 135 makes the sub-support member 131 protrude according to the control of the control device.

[0070] The sub-support mechanism 130 has at least two sub-support members 131 in a manner of sandwiching the workpiece W from both sides in the second axis direction. Specifically, as shown in Figure 3 , the tip of the sub-support arm 138 branches into two strands. Moreover, sub-support members 131 are respectively arranged at the two tips. Thereby, the workpiece W can be supported from both sides in the second axis direction (for example, the Y direction). In addition, the number of the sub-support members 131 is not limited to two, and three or more sub-support members 131 can also be arranged in a manner of sandwiching the workpiece W from both sides in the second axis direction.

[0071] When machining the workpiece W in a cantilever state, sometimes a load is applied to the workpiece W in the second axis direction (for example, the X direction or the Y direction) orthogonal to the main axis direction (for example, the Z direction) and in the second axis direction orthogonal to the direction extending from the holding end of the workpiece W toward the free end. For example, when machining the plate-shaped workpiece W with the narrower end face facing upward, the wider side faces are arranged in the second axis direction. At this time, the second axis direction becomes the direction corresponding to the thinner wall thickness. Therefore, if a load is applied in the second axis direction, the workpiece W will be deformed. For example, when cutting the above-mentioned end face with a end mill, a load is applied in the tangential direction of the end mill, and as a result, a load is applied to the workpiece W in the second axis direction. Regarding this point, according to the jig device 100 provided with the sub-support mechanism 130, even if a load is applied in the second axis direction, the workpiece W can be supported and the deformation of the workpiece W can be suppressed.

[0072] Alternatively, the sub-support member 131 can also be arranged to support the workpiece W from one side in the second axis direction. That is, the sub-support member 131 can also be arranged only at a position opposite to one side of the workpiece W. In this case, the workpiece W can also be supported from one side. That is, when machining the workpiece W in a cantilever state, in the second axis direction, sometimes a load is mainly applied from one side of the workpiece W toward the other side. In this case, the sub-support member 131 can also be arranged only at a position opposite to the other side of the workpiece W.

[0073] The jig device 100 of the present embodiment described above can improve the processing efficiency of the workpiece W corresponding to various processing conditions applied to the workpiece W. For example, when changing the processing surface, the workpiece W can be switched inside the machine tool without stopping the machine tool. Thereby, the stop time of the machine tool can be reduced, and the processing efficiency of the workpiece W can be improved. In addition, the jig device 100 of the present embodiment can be set in a variety of machine tools. For example, the jig device 100 can be loaded and unloaded relative to machine tools such as a five-axis machining center or a three-axis machining center. In addition, as an example, the drive device of the main support member 121 or the sub-support member 131 described above is a hydraulic motor, an electric motor, an ultrasonic motor, or the like.

[0074] The present invention has been described with reference to the respective embodiments above, but the present invention is not limited to the above embodiments. Inventions modified within the scope not violating the present invention and inventions equivalent to the present invention are also included in the present invention. In addition, the respective embodiments, respective modification modes, and technical means included in the respective embodiments or respective modification modes can be appropriately combined within the scope not violating the present invention.

[0075] For example, the workpiece W can be processed while being supported by the main support mechanism 120, and then the chuck 111 can be rotated 90 degrees. Thereby, for example, after processing the upper surface on the spindle 200 side of the workpiece W, the side surface of the workpiece W (i.e., the surface orthogonal to the upper surface and the lower surface) can be processed while being supported by the main support mechanism 120 and the sub-support mechanism 130. Therefore, the workpiece W can be processed into a complex shape without stopping the machine tool.

[0076] Specifically, as shown in the schematic perspective view of the jig device 100, that is Figure 4 shown, the side surface of the workpiece W can be processed while being supported by the main support mechanism 120 and the sub-support mechanism 130. That is, first, as Figure 2 shown, while the workpiece W is supported by the main support mechanism 120, the upper surface of the workpiece W is processed. After that, the chuck 111 of the holding mechanism 110 is rotated 90 degrees around a rotation axis parallel to the X direction. Thereby, the side surface of the workpiece W located Figure 2 in the inner side or the front side in the figure faces the spindle 200. Therefore, the side surface of the workpiece W can be processed without stopping the machine tool.

[0077] As other examples, the jig device 100 may be arranged in a suspended state on the upper side in the gravitational direction, and the spindle 200 of the machine tool may be arranged on the lower side in the gravitational direction. In this case, the powder generated by machining, such as chips, falls toward the spindle 200. Therefore, the accumulation of powder at the machining position can be suppressed. In addition, the jig device 100 may be installed in a posture rotated 90 degrees with respect to the worktable 210. In this case, the spindle direction is orthogonal to the gravitational direction. Thus, the jig device 100 can be installed in a five-axis machining center or a horizontal machining center to machine the workpiece W.

[0078] In addition, the main support mechanism 120 may also be configured to rotate integrally with the sub-support mechanism 130 about a rotation axis parallel to the X direction or the Y direction. That is, the main support mechanism 120 may also be provided with a rotation device that rotates the main support mechanism 120 and the sub-support mechanism 130 about this rotation axis. For example, the rotation device rotates the stage 220 on which the main support mechanism 120 and the sub-support mechanism 130 are placed about a rotation axis parallel to the X direction or the Y direction. As an example, the rotation device rotates the stage 220 90 degrees about a rotation axis parallel to the X direction. In this case, the spindle direction is orthogonal to the gravitational direction. Thus, the jig device 100 can be installed in a five-axis machining center or a horizontal machining center to machine the workpiece W.

[0079] Moreover, the main support mechanism 120 may also be configured to rotate separately from the sub-support mechanism 130 about a rotation axis parallel to the X direction or the Y direction. That is, the main support mechanism 120 may also be provided with a rotation device that rotates only the main support mechanism 120 about this rotation axis without rotating the sub-support mechanism 130 about this rotation axis. Similarly, the sub-support mechanism 130 may also be configured to rotate separately from the main support mechanism 120 about a rotation axis parallel to the X direction or the Y direction. That is, the sub-support mechanism 130 may also be provided with a rotation device that rotates only the sub-support mechanism 130 about this rotation axis without rotating the main support mechanism 120 about this rotation axis.

[0080] In addition, one of the main support mechanism 120 and the sub-support mechanism 130 may be omitted. For example, the jig device 100 may only include the main support mechanism 120. Moreover, the jig device 100 may only include the sub-support mechanism 130. As an example, in the jig device 100 that only includes the sub-support mechanism 130, the workpiece W fixed on the stage 220 can be machined. In this case, the workpiece W can also be supported from the Y direction or the Z direction orthogonal to the spindle direction.

[0081] [Modification method]

[0082] Refer to Figure 5 and Figure 6, the jig device 300 for the deformation method will be described. Figure 5 It is a schematic perspective view of the jig device 300 observed from obliquely above. Additionally, Figure 6 It is a schematic explanatory diagram for explaining the hole clamping device 140. Furthermore, in the description of the deformation method, the differences from the above-described embodiment will be mainly described, and the same reference numerals will be assigned to the already described constituent elements, and their descriptions will be omitted. Unless otherwise specified, the constituent elements assigned the same reference numerals perform substantially the same operations and functions, and their effects are also substantially the same.

[0083] In addition, in Figure 5 , for ease of explanation, the illustration of the sub-support mechanism 130 ( Figure 1 ) which is an example of the second-axis direction support mechanism is omitted. However, the jig device 300 includes a sub-support mechanism 130 not shown in the figure. As an example, the sub-support mechanism 130 is disposed at a position sandwiching the hole clamping device 140 with the main support mechanism 120 which is an example of the main-axis direction support mechanism. In other words, the sub-support mechanism 130 is disposed on the side opposite to the main support mechanism 120 with respect to the hole clamping device 140.

[0084] As Figure 5 shows, the jig device 300 includes a holding mechanism 110 that holds the workpiece W3 in a cantilever state, and a jig unit U3. Moreover, the jig unit U3 includes a hole clamping device 140 which is an example of a constraint mechanism that constrains a part of the workpiece W3 to restrict the displacement of the workpiece W3 in the direction parallel to the spindle direction of the machine tool (hereinafter, also referred to as the Z direction). And the jig unit U3 includes a main support mechanism 120 and a sub-support mechanism 130 not shown in the figure. Alternatively, the jig unit U3 may not include at least one of the main support mechanism 120 and the sub-support mechanism 130.

[0085] Additionally, the hole clamping device 140 is disposed at a position sandwiching the main support mechanism 120 with the holding mechanism 110. In other words, the hole clamping device 140 is disposed on the side opposite to the holding mechanism 110 with respect to the main support mechanism 120. Moreover, the hole clamping device 140 constrains the protruding portion PP that protrudes from the main body of the workpiece W3 as a part of the workpiece W3. The protruding portion PP extends from the main body of the workpiece W3 to be processed and is the remaining portion that is not to be processed.

[0086] In Figure 5In the example, the protruding portion PP is the free end of the workpiece W3. That is, when the holding mechanism 110 holds the holding end of the workpiece W3 in the X direction, the other end of the workpiece W3 in the X direction is the protruding portion PP. However, the protruding portion PP may not be a free end. For example, it may also be a side edge portion extending in the X direction in the workpiece W3. In addition, the outer shape of the protruding portion PP is arbitrary. As an example, it may also have a polygonal shape, a circular shape, an elliptical shape, or other shapes. Moreover, a part of the workpiece W3 constrained by the hole clamping device 140 may also be the remaining part continuous with the main body of the workpiece W3 (such as a side edge portion).

[0087] With such a hole clamping device 140, during machining, displacement of the workpiece W3 in the Z direction can be suppressed, that is, position deviation or vibration of the workpiece W3 in the spindle direction can be suppressed. Therefore, during machining, separation of the workpiece W3 from the main support mechanism 120 can be prevented, that is, displacement of the workpiece W3 toward the spindle 200 can be prevented. For example, sometimes the holding mechanism 110 holds the workpiece W3 with the X direction or the Y direction parallel to the gravity direction. Specifically, sometimes the spindle direction is orthogonal to the gravity direction, and the hole clamping device 140 is located below or above the main support mechanism 120.

[0088] For the workpiece W3 in this state, a force from the machining device is applied in the Z direction horizontal to the gravity direction. Moreover, gravity is not applied in the Z direction from the workpiece W3 toward the main support mechanism 120. Therefore, gravity for pressing the workpiece W3 is not applied to the main support mechanism 120, and displacement of the workpiece W3 in the direction away from the main support mechanism 120 cannot be suppressed. However, according to the hole clamping device 140, even in this case, by constraining the protruding portion PP, separation of the workpiece W3 from the main support mechanism 120 can be suppressed.

[0089] Alternatively, the jig unit U3 may also have other constraint mechanisms instead of or in addition to the hole clamping device 140. As an example, the other constraint mechanism is an adsorption device that adsorbs and constrains a part of the workpiece W3, a hook that hooks on a part of the workpiece W3, or a holding device that grasps a part of the workpiece W3, etc. In this case, the part constrained by the other constraint mechanism may also be a part of the machining target part of the workpiece W3 or the remaining part of the workpiece W3, etc. In addition, the other constraint mechanism may also be a mechanism that constrains the workpiece W3 from the spindle 200 side. However, by constraining the workpiece W3 from the side opposite to the spindle 200, interference with the support of the workpiece W3 by the sub-support mechanism 130 can be avoided.

[0090] Moreover, the jig unit U3 is provided with a moving device 149 that moves the hole clamping device 140 forward and backward in the Z direction. When the hole clamping device 140 restrains the workpiece W3, the moving device 149 moves the hole clamping device 140 in a manner approaching the workpiece W3. In addition, after releasing the restraint based on the hole clamping device 140, the moving device 149 moves the hole clamping device 140 away from the workpiece W3. Alternatively, the moving device 149 may also move the workpiece support portion 141 of the hole clamping device 140 forward and backward in the Z direction.

[0091] [Constraint mechanism]

[0092] Refer to Figure 6 A of Figure 6 and B of Figure 6 to describe the hole clamping device 140. In addition, Figure 6 both A of Figure 6 and B of Figure 6 are cross-sections extending in the wall thickness direction of the workpiece W3 and are schematic views of cross-sections passing through the central axis (not shown) of the hole H. Moreover,

[0093] The hole clamping device 140 performs the following operation: pushing inward inside the hole H formed in the protrusion PP to pull the workpiece W3 toward the hole clamping device 140. For this purpose, as shown in Figure 6 A of Figure 6 and B of Figure 6 the hole clamping device 140 has a workpiece support portion 141 and a rod 142 that moves forward and backward relative to the workpiece support portion 141. In addition, in the examples of Figure 6 A of

[0094] and B of Figure 6 the hole H is a through hole, but the hole H may also be a non-through hole (i.e., a blind hole). Moreover, for the workpiece W3, as the portion restrained by the hole clamping device 140, it may also have a hole formed in the portion to be processed instead of the protrusion PP.

[0095] In Figure 6 the state before pulling as shown in A, the pushing member 144 retracts to the inside of the cap 143. After that, the rod 142 moves towardFigure 6 in the direction indicated by arrow A1 of B (i.e., Figure 6 the downward direction in B). Then, the pushing member 144 moves along the conical surface at the top of the rod 142 from the cap 143 toward the outside in the direction indicated by arrow A2 (i.e., Figure 6 the left - right direction in B). Then, the pushing member 144 abuts against and bites into the inner surface of the hole H. Then, the hole clamping device 140 pulls the workpiece W3 in the direction indicated by arrow A3 (i.e., Figure 6 the downward direction in B) by air pressure or the like. Thus, the workpiece W3 is pressed against the support surface of the workpiece support portion 141, and the workpiece W3 is constrained by the hole clamping device 140.

[0096] Moreover, when releasing the constraint on the workpiece W3, the hole clamping device 140 moves the rod 142 in the direction opposite to the direction indicated by arrow A1 (i.e., Figure 6 the upward direction in B) by supplying air pressure. Thus, the force applied to the pushing member 144 by the top of the rod 142 is released. Then, the pushing member 144 is urged by an elastic member (not shown) (such as a spring or an elastic ring, etc.) and moves back to its original position inside the cap 143. That is, the pushing member 144 retracts in the direction opposite to the direction indicated by arrow A2. Thus, the constraint of the hole clamping device 140 on the workpiece W3 is released.

[0097] As described above, the jig device 300 and the jig unit U3 include a constraint mechanism for constraining a part of the workpiece W3. Thus, during the machining of the workpiece W3, it is possible to suppress the deflection and displacement of the workpiece W3 in the Z - direction. Therefore, during the machining of the workpiece W3, it is possible to prevent the workpiece W3 from separating from the self - supporting mechanism 120.

[0098] In addition, the constraint mechanism such as the hole clamping device 140 only needs to restrict the movement of the workpiece W3 in the direction away from the main support mechanism 120. Therefore, the constraint mechanism may not pull the workpiece W3 toward the constraint mechanism or the main support mechanism 120. For example, the constraint mechanism may also constrain the workpiece W3 only by holding it in a way that grasps a part of the workpiece W3. Moreover, the hole clamping device 140 may not pull the workpiece W3, but only restrict its movement in the direction away from the hole clamping device 140.

[0099] Part or all of the above - described embodiments may be described as in the following supplementary notes, but are not limited to the following.

[0100] (Supplementary Note 1)

[0101] A jig device, which is a jig device for a workpiece in a machine tool, wherein,

[0102] the jig device includes:

[0103] A holding mechanism that holds the workpiece in a cantilever state; and

[0104] A main axis direction support mechanism having at least one main axis direction support member and a main axis direction drive member. The main axis direction support member is disposed opposite to the workpiece held in a cantilever state by the holding mechanism from the opposite side of the main axis in the main axis direction of the machine tool, and the main axis direction drive member drives the main axis direction support member in the main axis direction between a main axis direction support position in contact with the workpiece and a main axis direction retracted position away from the workpiece.

[0105] The main axis direction support mechanism is configured to be able to change a contact position where the main axis direction support member contacts the workpiece in an orthogonal plane orthogonal to the main axis direction.

[0106] (Supplementary Note 2)

[0107] The jig device according to Supplementary Note 1, wherein

[0108] The main axis direction support mechanism has a plurality of the main axis direction support members disposed at different positions in the orthogonal plane,

[0109] The plurality of the main axis direction support members are divided in such a way that each driving unit driven by the main axis direction drive member includes at least one of the main axis direction support members,

[0110] The main axis direction drive member drives each main axis direction support member for each of the driving units.

[0111] (Supplementary Note 3)

[0112] The jig device according to Supplementary Note 1 or 2, wherein

[0113] The holding mechanism has a rotation mechanism that rotates the workpiece around one rotation axis orthogonal to the main axis direction.

[0114] (Supplementary Note 4)

[0115] The jig device according to Supplementary Note 1 or 2, wherein

[0116] The holding mechanism has: a first rotation mechanism that rotates the workpiece around a first rotation axis orthogonal to the main axis direction; and a second rotation mechanism that rotates the workpiece around a second rotation axis orthogonal to the main axis direction and the first rotation axis.

[0117] (Supplementary Note 5)

[0118] The jig device according to any one of Supplementary Notes 1 to 4, wherein

[0119] The jig device further includes a second-axis-direction support mechanism having a second-axis-direction support member. When a first axis direction orthogonal to the main axis direction and a second axis direction orthogonal to both the main axis direction and the first axis direction are defined, the second-axis-direction support member faces the workpiece in the second axis direction.

[0120] The holding mechanism holds one end portion of the workpiece in the first axis direction.

[0121] The second-axis-direction support mechanism includes a second-axis-direction driving member that drives the second-axis-direction support member between a second-axis-direction support position in contact with the workpiece and a second-axis-direction retracted position away from the workpiece in the second axis direction.

[0122] (Supplementary Note 6)

[0123] The jig device according to Supplementary Note 5, wherein

[0124] The second-axis-direction support mechanism is configured to be able to change the position of the second-axis-direction support member in a parallel plane parallel to the main axis direction and the first axis direction.

[0125] (Supplementary Note 7)

[0126] The jig device according to Supplementary Note 5 or 6, wherein

[0127] The second-axis-direction support mechanism has at least two second-axis-direction support members to sandwich the workpiece from both sides in the second axis direction.

[0128] (Supplementary Note 8)

[0129] The jig device according to any one of Supplementary Notes 1 to 7, wherein

[0130] The jig device further includes a restraint mechanism that restrains a part of the workpiece in a manner that restricts displacement of the workpiece in the main axis direction.

[0131] The restraint mechanism is disposed at a position sandwiching the main-axis-direction support mechanism with the holding mechanism.

[0132] (Supplementary Note 9)

[0133] A jig unit for a jig device for a workpiece held in a cantilever state in a machine tool, wherein

[0134] The jig unit includes a spindle direction support mechanism. The spindle direction support mechanism has at least one spindle direction support member and a spindle direction drive component. The spindle direction support member is disposed opposite to the workpiece on the side opposite to the spindle in the spindle direction of the machine tool with respect to the workpiece held in a cantilever state. The spindle direction drive component drives the spindle direction support member in the spindle direction between a spindle direction support position in contact with the workpiece and a spindle direction retracted position away from the workpiece.

[0135] The spindle direction support mechanism is configured to be able to change the contact position where the spindle direction support member contacts the workpiece in an orthogonal plane orthogonal to the spindle direction.

[0136] (Appendix 10)

[0137] A jig device, which is a jig device for a workpiece in a machine tool, wherein,

[0138] The jig device includes:

[0139] A holding mechanism that holds the workpiece in a cantilever state; and

[0140] A second axis direction support mechanism that has a second axis direction support member. When a first axis direction orthogonal to the spindle direction and a second axis direction orthogonal to both the spindle direction and the first axis direction are defined, the second axis direction support member faces the workpiece in the second axis direction.

[0141] The holding mechanism holds one end of the workpiece on the first axis direction side.

[0142] The second axis direction support mechanism has a second axis direction drive component that drives the second axis direction support member in the second axis direction between a second axis direction support position in contact with the workpiece and a second axis direction retracted position away from the workpiece.

[0143] (Appendix 11)

[0144] The jig device according to Appendix 10, wherein,

[0145] The second axis direction support mechanism is configured to be able to change the position of the second axis direction support member in a parallel plane parallel to the spindle direction and the first axis direction.

[0146] (Appendix 12)

[0147] The jig device according to Appendix 11, wherein,

[0148] The second-axis direction support mechanism has a parallel rotation mechanism that rotates the second-axis direction support member about a parallel rotation axis parallel to the second-axis direction, so as to be able to change the position of the second-axis direction support member in the parallel plane.

[0149] (Supplementary Note 13)

[0150] The jig device according to Supplementary Note 10 or 11, wherein

[0151] The second-axis direction support mechanism has at least two of the second-axis direction support members to sandwich the workpiece from both sides in the second-axis direction.

[0152] (Supplementary Note 14)

[0153] The jig device according to any one of Supplementary Notes 10 to 13, wherein

[0154] The holding mechanism has a rotation mechanism that rotates the workpiece about a rotation axis orthogonal to the main spindle direction.

[0155] (Supplementary Note 15)

[0156] The jig device according to any one of Supplementary Notes 10 to 13, wherein

[0157] The holding mechanism has: a first rotation mechanism that rotates the workpiece about a first rotation axis orthogonal to the main spindle direction; and a second rotation mechanism that rotates the workpiece about a second rotation axis orthogonal to the main spindle direction and the first rotation axis.

[0158] (Supplementary Note 16)

[0159] A jig unit for a jig device for a workpiece held in a cantilever state in a machine tool, wherein

[0160] The jig unit includes a second-axis direction support mechanism having a second-axis direction support member that faces the workpiece in the second-axis direction when a first axis direction orthogonal to the main spindle direction and a second axis direction orthogonal to the main spindle direction and the first axis direction are defined.

[0161] The second-axis direction support mechanism has a second-axis direction drive member that drives the second-axis direction support member between a second-axis direction support position in contact with the workpiece and a second-axis direction retracted position away from the workpiece in the second-axis direction.

[0162] This application claims priority from Japanese Patent Application No. 2022-140675 filed on September 5, 2022, Japanese Patent Application No. 2022-140666 filed on September 5, 2022, and Japanese Patent Application No. 2023-18112 filed on February 9, 2023, the entire contents of which are incorporated herein by reference as part of this application.

[0163] Description of Reference Numerals

[0164] 100, jig device; 110, holding mechanism; 112, rotating mechanism (first rotating mechanism); 120, main support mechanism (main axis direction support mechanism); 121, main support member (main axis direction support member); 125, main drive unit (main axis direction drive component); 130, sub-support mechanism (second axis direction support mechanism); 131, sub-support member (second axis direction support member); 135, sub-drive unit (second axis direction drive component); 136, parallel rotation mechanism; 140, hole clamping device (constraint mechanism); 200, main shaft; 210, workbench; 300, jig device; U, jig unit; W, workpiece; W3, workpiece; X1, rotation axis (first rotation axis); Y2, rotation axis (second rotation axis); Y3, parallel rotation axis.

Claims

1. A jig device, which is a jig device for a workpiece in a machine tool, wherein, the jig device includes: a holding mechanism that holds the workpiece in a cantilever state; and a main axis direction support mechanism having a plurality of main axis direction support members and a main axis direction drive member. The main axis direction support members are arranged opposite to the workpiece from the opposite side of the main axis in the main axis direction of the machine tool with respect to the workpiece held in a cantilever state by the holding mechanism. The main axis direction drive member drives the main axis direction support members between a main axis direction support position in contact with the workpiece and a main axis direction retracted position away from the workpiece in the main axis direction, the main axis direction drive member drives, according to the control of the control device of the machine tool, a part of the plurality of main axis direction support members located at positions corresponding to the shape of the workpiece among the main axis direction support members located at the main axis direction retracted position to the main axis direction support position, the jig device further includes a second axis direction support mechanism having a second axis direction support member. When a first axis direction orthogonal to the main axis direction and a second axis direction orthogonal to both the main axis direction and the first axis direction are defined, the second axis direction support member faces the workpiece in the second axis direction, the holding mechanism holds one end of the workpiece in the first axis direction, the second axis direction support mechanism has a second axis direction drive member that drives the second axis direction support member between a second axis direction support position in contact with the workpiece and a second axis direction retracted position away from the workpiece in the second axis direction, and the second axis direction support mechanism is configured to be able to change the position of the second axis direction support member in a parallel plane parallel to the main axis direction and the first axis direction.

2. The jig device according to claim 1, wherein, the plurality of main axis direction support members are arranged at different positions in an orthogonal plane orthogonal to the main axis direction, and the plurality of main axis direction support members are divided such that each driving unit driven by the main axis direction drive member includes at least one main axis direction support member, the main axis direction drive member drives each main axis direction support member for each of the driving units.

3. The jig device according to claim 1 or 2, wherein, the second axis direction support mechanism moves, according to the control of the control device, the second axis direction support member located at the second axis direction retracted position to an operating position in the parallel plane, the second axis direction drive member drives, according to the control of the control device, the second axis direction support member located at the operating position to the second axis direction support position.

4. A jig device, which is a jig device for a workpiece in a machine tool, wherein, the jig device includes: a holding mechanism that holds the workpiece in a cantilever state; and A spindle-direction support mechanism having at least one spindle-direction support member and a spindle-direction drive member, the spindle-direction support member being disposed opposite to the workpiece held in a cantilever state by the holding mechanism, on the side opposite to the spindle of the machine tool in the spindle direction, and the spindle-direction drive member driving the spindle-direction support member in the spindle direction between a spindle-direction support position in contact with the workpiece and a spindle-direction retracted position away from the workpiece. The holding mechanism has: a first rotation mechanism that rotates the workpiece about a first rotation axis orthogonal to the spindle direction; and a second rotation mechanism that rotates the workpiece about a second rotation axis orthogonal to the spindle direction and the first rotation axis.

5. A jig device, which is a jig device for a workpiece in a machine tool, wherein This jig device includes: A holding mechanism that holds the workpiece in a cantilever state; A spindle-direction support mechanism having at least one spindle-direction support member and a spindle-direction drive member, the spindle-direction support member being disposed opposite to the workpiece held in a cantilever state by the holding mechanism, on the side opposite to the spindle of the machine tool in the spindle direction, and the spindle-direction drive member driving the spindle-direction support member in the spindle direction between a spindle-direction support position in contact with the workpiece and a spindle-direction retracted position away from the workpiece; And A constraint mechanism that constrains a part of the workpiece in such a manner as to restrict displacement of the workpiece in the spindle direction when machining the workpiece while the workpiece is held by the holding mechanism. The constraint mechanism is disposed at a position sandwiching the spindle-direction support mechanism with the holding mechanism.

6. A jig unit, which is a jig unit for a jig device for a workpiece held in a cantilever state in a machine tool, wherein This jig unit includes a spindle-direction support mechanism having a plurality of spindle-direction support members and a spindle-direction drive member, the spindle-direction support members being disposed opposite to the workpiece held in a cantilever state, on the side opposite to the spindle of the machine tool in the spindle direction, and the spindle-direction drive member driving the spindle-direction support members in the spindle direction between a spindle-direction support position in contact with the workpiece and a spindle-direction retracted position away from the workpiece. The spindle-direction drive member drives, according to the control of the control device of the machine tool, a part of the plurality of spindle-direction support members located at positions corresponding to the shape of the workpiece among the spindle-direction support members located at the spindle-direction retracted position, toward the spindle-direction support position. This jig device further includes a second-axis-direction support mechanism having a second-axis-direction support member, and when a first axis direction orthogonal to the spindle direction and a second axis direction orthogonal to the spindle direction and the first axis direction are defined, the second-axis-direction support member faces the workpiece in the second axis direction. An end portion on one side in the first axis direction of the workpiece is held. The second axis direction support mechanism has a second axis direction drive member that drives the second axis direction support member between a second axis direction support position in contact with the workpiece and a second axis direction retracted position away from the workpiece in the second axis direction, and the second axis direction support mechanism is configured to be able to change the position of the second axis direction support member in a parallel plane parallel to the main axis direction and the first axis direction.

Citation Information

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