Metal working equipment

The machine tool design addresses the challenges of efficient machining, space management, and accuracy by integrating a rotating table, linear motion devices, and multi-joint robots, resulting in a compact and precise machining solution.

JP2025086317AActive Publication Date: 2025-06-06YAMAZAKI MAZAK KK
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Patent Information

Application Number
JP2024098063
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-18
Publication Date
2025-06-06
Estimated Expiration
2043-11-27

AI Technical Summary

Technical Problem

Existing machine tools with multiple machining heads face challenges in achieving efficient machining, managing installation space, and maintaining machining accuracy.

Method used

A machine tool design incorporating a workpiece support device with a rotating table, a first processing device with linear motion devices for three-dimensional movement of a processing head, and two robots with multi-joint arms for changing the position and orientation of rotating tools, all while maintaining a compact installation footprint.

Benefits of technology

The machine tool achieves efficient machining, suppresses the expansion of installation space, and maintains high machining accuracy by utilizing a combination of linear motion devices and multi-joint robots to process workpieces with precision.

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Abstract

To provide a machine tool which can implement improvement of efficiency of machining, suppression of enlargement of an installation space, and maintaining of machining accuracy.SOLUTION: The machine tool includes: a workpiece support device having a table supporting a workpiece; a first machining device having a machining head capable of supporting a first rotary tool machining the workpiece and a plurality of linear motion devices three-dimensionally moving the machining head; a first robot machining the workpiece using a second rotary tool; a second robot machining the workpiece using a third rotary tool; walls defining a machining chamber; and a door for opening and closing a workpiece passage opening formed in the walls. The workpiece support device includes a first drive device that turns the table around the first axis. In a plan view, the workpiece support device is disposed between the first machining device and the workpiece passage opening, and the workpiece passage opening, the first robot, the first processing device, and the second robot are disposed around the workpiece support device.SELECTED DRAWING: Figure 19
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Description

[Technical field]

[0001] The present invention relates to a machine tool. [Background technology]

[0002] 2. Description of the Related Art In order to improve production efficiency, it is known to use a machine tool having multiple machining heads.

[0003] As a related technique, a machining center is disclosed in Patent Document 1. The machining center described in Patent Document 1 has a first processing head and a second processing head.

[0004] Furthermore, a machining system is disclosed in Patent Document 2. The machining system described in Patent Document 2 includes a platform formed by connecting a plurality of track modules, and a plurality of machining units that move on the track of the platform. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] JP 2000-296429 A [Patent Document 2] JP 2023-134393 A Summary of the Invention [Problem to be solved by the invention]

[0006] An object of the present invention is to provide a machine tool that can achieve efficient machining, suppress the expansion of installation space, and maintain machining accuracy. [Means for solving the problem]

[0007] In some embodiments, the machine tool includes a workpiece support device having a table for supporting a workpiece, a first processing device having a processing head capable of supporting a first rotating tool for processing the workpiece supported by the table and a plurality of linear motion devices for three-dimensionally moving the processing head, a first robot having a multi-joint arm for changing the position and orientation of a second rotating tool and processing the workpiece supported by the table using the second rotating tool, a second robot having a second multi-joint arm for changing the position and orientation of a third rotating tool and processing the workpiece supported by the table using the third rotating tool, a wall defining a processing chamber, and a door for opening and closing a workpiece passage opening formed in the wall. The workpiece support device has a first drive device for rotating the table around a first axis. In a plan view, the workpiece support device is disposed between the first processing device and the workpiece passage opening. In a plan view, the workpiece passage opening, the first robot, the first processing device, and the second robot are disposed around the workpiece support device. Effect of the Invention

[0008] According to the present invention, it is possible to provide a machine tool that can realize efficient machining, suppress an increase in installation space, and maintain machining accuracy. [Brief description of the drawings]

[0009] [Figure 1] FIG. 1 is a schematic perspective view showing a machine tool according to a first embodiment. [Diagram 2] FIG. 2 is a schematic perspective view showing a machine tool in the first embodiment. [Diagram 3] FIG. 3 is a schematic perspective view illustrating a machine tool in the first embodiment. [Figure 4] FIG. 4 is a schematic plan view illustrating the machine tool in the first embodiment. [Diagram 5] FIG. 5 is a schematic plan view showing a machine tool in the first embodiment. [Figure 6]FIG. 6 is a schematic plan view illustrating the machine tool in the first embodiment. [Figure 7] FIG. 7 is a schematic plan view illustrating the machine tool in the first embodiment. [Figure 8] FIG. 8 is a schematic plan view illustrating a machine tool in a first modified example of the first embodiment. [Figure 9] FIG. 9 is a schematic side view showing a part of the processing head. [Figure 10] FIG. 10 is a schematic perspective view illustrating an example of the first robot and the support base. [Figure 11] FIG. 11 is a schematic perspective view showing an enlarged example of a tool support device attached to a multi-joint arm. [Figure 12] FIG. 12 is a schematic plan view illustrating the machine tool in the first embodiment. [Figure 13] FIG. 13 is a schematic plan view illustrating a machine tool in a second modified example of the first embodiment. [Figure 14] FIG. 14 is a flowchart showing an example of a workpiece machining method in the first embodiment. [Figure 15] FIG. 15 is a flowchart showing another example of the workpiece machining method in the first embodiment. [Figure 16] FIG. 16 is a schematic plan view illustrating the machine tool in the first embodiment. [Figure 17] FIG. 17 is a schematic perspective view illustrating a machine tool according to the second embodiment. [Figure 18] FIG. 18 is a schematic side view showing a machining head in a modified example. [Figure 19] FIG. 19 is a schematic plan view illustrating a machine tool according to the second embodiment. [Figure 20] FIG. 20 is a schematic perspective view illustrating an example of the second robot and the support base. [Figure 21] FIG. 21 is a schematic perspective view showing an enlarged example of a second tool support device attached to a second articulated arm. [Figure 22] FIG. 22 is a schematic plan view illustrating a machine tool system according to the second embodiment. [Diagram 23] FIG. 23 is a schematic plan view illustrating a machine tool in the second embodiment. [Figure 24] FIG. 24 is a diagram illustrating a schematic state in which at least one tool changer is capable of changing a first rotating tool supported by a machining head to another first rotating tool. [Diagram 25] FIG. 25 is a diagram illustrating a state in which at least one tool changer is capable of replacing a second rotating tool supported by the tool support device of the first robot with another second rotating tool. [Figure 26] FIG. 26 is a diagram illustrating a state in which at least one tool changer is capable of replacing a third rotating tool supported by a second tool support device of a second robot with another third rotating tool. [Figure 27] FIG. 27 is a schematic perspective view illustrating a machine tool according to the second embodiment. [Figure 28] FIG. 28 is a schematic perspective view illustrating a machine tool according to the second embodiment. [Figure 29] FIG. 29 is a diagram illustrating a schematic diagram of a state in which a control device is capable of controlling a plurality of control target devices. [Diagram 30] FIG. 30 is an enlarged schematic perspective view showing a state in which one step of the workpiece machining method is being performed. [Diagram 31] FIG. 31 is an enlarged schematic perspective view showing a state in which one step of the workpiece machining method is being performed. [Diagram 32] FIG. 32 is an enlarged schematic perspective view showing a state in which one step of the workpiece machining method is being performed. [Diagram 33] FIG. 33 is a schematic perspective view showing, in an enlarged scale, a state in which one step of the workpiece machining method is being performed. [Diagram 34] FIG. 34 is an enlarged schematic perspective view showing a state in which one step of the workpiece machining method is being performed. [Diagram 35]FIG. 35 is an enlarged schematic perspective view showing a state in which one step of the workpiece machining method is being performed. [Diagram 36] FIG. 36 is an enlarged schematic perspective view showing a state in which one step of the workpiece machining method is being performed. [Figure 37] FIG. 37 is a flowchart showing an example of a workpiece machining method in the second embodiment. [Figure 38] FIG. 38 is a flowchart showing another example of the workpiece machining method in the second embodiment. [Figure 39] FIG. 39 is a schematic front view showing an enlarged portion of the movable wall. [Diagram 40] FIG. 40 is a schematic plan view illustrating an example of the arrangement relationship between the first processing device and the first robot. [Diagram 41] FIG. 41 is a schematic plan view showing an example of the arrangement relationship between the first processing device and the first robot. [Diagram 42] FIG. 42 is a schematic plan view showing an example of the arrangement relationship between the first processing device, the first robot, and the second robot. [Diagram 43] FIG. 43 is a schematic plan view showing an example of the arrangement relationship between the first processing device, the first robot, and the second robot. [Diagram 44] FIG. 44 is a schematic plan view illustrating an example of the arrangement relationship between the first processing device and the first robot. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Hereinafter, a machine tool 1 and a workpiece machining method according to an embodiment will be described with reference to the drawings. In the following description of the embodiment, parts and members having the same functions are given the same reference numerals, and repeated description of parts and members given the same reference numerals will be omitted.

[0011] (Definition of terms) In the example shown in Fig. 1, the processing head 30 of the first processing device 3 can support a rotating tool. In this specification, the rotating tools supported by the processing head 30 are collectively referred to as a first rotating tool. Moreover, a plurality of rotating tools sequentially supported by the processing head 30 are referred to as a first group of rotating tools.

[0012] 1, the articulated arm 50 of the first robot 5 can support a rotating tool. In this specification, the rotating tools supported by the articulated arm 50 are collectively referred to as a second rotating tool. Moreover, the multiple rotating tools supported in sequence by the articulated arm 50 are referred to as a second group of rotating tools.

[0013] 17, the second articulated arm 60 of the second robot 6 can support a rotating tool. In this specification, the rotating tools supported by the second articulated arm 60 are collectively referred to as a third rotating tool. Moreover, the multiple rotating tools supported in sequence by the second articulated arm 60 are referred to as a third group of rotating tools.

[0014] In this specification, even if the word "substantially" is not specified, "parallel" includes substantially parallel. It is difficult to achieve strict mathematical parallelism due to tolerances, manufacturing errors, wear, play between members, etc. Therefore, in this specification, all the terms "parallel" without the description of "substantially" can be read as "substantially parallel."

[0015] In this specification, even if the word "substantially" is not specified, "vertical" includes substantially vertical. It is difficult to achieve a strict mathematical vertical due to tolerances, manufacturing errors, wear, play between members, etc. Therefore, in this specification, all the terms "vertical" without the description of "substantially" can be read as "substantially vertical."

[0016] (Direction definition) In this specification, the direction from the first processing device 3 toward the workpiece supporting device 2 in a plan view (more specifically, the direction from the first processing device 3 toward the table device 20 in a plan view) is defined as a first direction DR1. As illustrated in Fig. 17, in this specification, the direction from the first support stand 25a toward the second support stand 25b is defined as a second direction DR2. In the example illustrated in Fig. 17, the second direction DR2 is perpendicular to the first direction DR1.

[0017] (First embodiment) A machine tool 1A and a workpiece machining method according to the first embodiment will be described with reference to Figs. 1 to 16. Figs. 1 to 3 are schematic perspective views showing the machine tool 1A according to the first embodiment. Figs. 4 to 7 are schematic plan views showing the machine tool 1A according to the first embodiment. Fig. 8 is a schematic plan view showing the machine tool 1A according to a first modified example of the first embodiment. Fig. 9 is a schematic side view showing a part of the machining head 30. Fig. 10 is a schematic perspective view showing an example of the first robot 5 and the support base 13a. Fig. 11 is a schematic perspective view showing an enlarged example of the tool support device 53 attached to the articulated arm 50. Fig. 12 is a schematic plan view showing the machine tool 1A according to the first embodiment. Fig. 13 is a schematic plan view showing the machine tool 1A according to a second modified example of the first embodiment. Fig. 14 is a flowchart showing an example of the workpiece machining method according to the first embodiment. Fig. 15 is a flowchart showing another example of the workpiece machining method according to the first embodiment. FIG. 16 is a schematic plan view illustrating a machine tool 1A in the first embodiment.

[0018] As illustrated in FIG. 1, a machine tool 1A in the first embodiment includes a workpiece supporting device 2, a first processing device 3, and a first robot 5. The workpiece supporting device 2 is a workpiece supporting device.

[0019] As illustrated in Fig. 2, the workpiece supporting device 2 has a table 21 that supports the workpiece W. More specifically, the workpiece supporting device 2 has the table 21 that directly or indirectly supports the workpiece W. In the example illustrated in Fig. 2, the table 21 supports the workpiece W via a jig J. Alternatively, the table 21 may support the workpiece W directly.

[0020] The first processing device 3 has a processing head 30 and a plurality of linear motion devices 4. The processing head 30 is capable of supporting a first rotating tool T1 for processing a workpiece W supported by a table 21.

[0021] The multiple linear motion devices 4 three-dimensionally move the processing head 30. More specifically, the multiple linear motion devices 4 move the processing head 30 in directions parallel to each of three different axes.

[0022] 2, the first robot 5 uses a second rotating tool T2 to machine a workpiece W supported by a table 21. The first robot 5 has an articulated arm 50 that changes the position and orientation of the second rotating tool T2. The first robot 5 can also be said to be an articulated robot.

[0023] 2 and 3, the workpiece supporting device 2 has a first driving device 23 (e.g., a motor) that rotates the table 21 about the first axis AX1. It is preferable that the first driving device 23 can rotate the table 21 360 degrees about the first axis AX1.

[0024] In the machine tool 1A in the first embodiment, the workpiece W supported by the table 21 can be machined using a plurality of tools including the first rotating tool T1 supported by the first processing device 3 and the second rotating tool T2 supported by the first robot 5. This improves the efficiency of machining the workpiece W.

[0025] Furthermore, in the machine tool 1A in the first embodiment, both the first processing device 3 and the first robot 5 are disposed at positions where they can process the workpiece W supported by the table 21. This prevents the installation space for the machine tool 1A from increasing.

[0026] In the first embodiment, the first processing device 3 has a plurality of linear motion devices 4 that move the processing head 30 three-dimensionally. Therefore, the first processing device 3 can execute processing with higher accuracy compared to the first robot 5 having the articulated arm 50. For example, the first processing device 3 can be in charge of processing that requires high accuracy, and processing that requires relatively low accuracy can be shared between both the first processing device 3 and the first robot 5.

[0027] 2 and 3, in the first embodiment, the workpiece supporting device 2 has a first driving device 23 that rotates the table 21 around a first axis AX1. Therefore, using a first rotating tool T1 supported by the machining head 30, it is possible to machine both a first main surface Wa of the workpiece W (more specifically, the front surface of the workpiece W) and a second main surface Wb of the workpiece W (more specifically, the back surface of the workpiece W).

[0028] As illustrated in FIG. 2, it is assumed that the workpiece W has a first main surface Wa, a second main surface Wb, a first side surface Wc (e.g., a left side surface), and a second side surface Wd (e.g., a right side surface). In the example illustrated in FIG. 2, when the first processing device 3 processes the first main surface Wa of the workpiece W, the first robot 5 can process the first side surface Wc of the workpiece W (see FIG. 40, if necessary). After the table 21 is turned from the state shown in FIG. 2 to the state shown in FIG. 3, the first processing device 3 can process the second main surface Wb located on the opposite side of the first main surface Wa. After the table 21 is turned from the state shown in FIG. 2 to the state shown in FIG. 3, the first robot 5 can process the second side surface Wd located on the opposite side of the first side surface Wc. In the example described in Figures 2 and 3 (or the example described in Figures 40 and 41), the machine tool 1A is capable of sequentially simultaneously machining a workpiece W supported on the table 21 by the first processing device 3 and the first robot 5, rotating the table 21 supporting the workpiece W about the first axis AX1 by a predetermined angle (the predetermined angle is, for example, 45 degrees, 90 degrees, 180 degrees, etc.), and again simultaneously machining the workpiece W supported on the table 21 by the first processing device 3 and the first robot 5.

[0029] (Optional configuration) Next, optional additional configurations that can be adopted in the first embodiment (or the second embodiment described later) will be described with reference to FIGS.

[0030] (Work W) In the first or second embodiment, the workpiece W machined by the machine tool 1 is, for example, a metal workpiece. When the workpiece W is a metal workpiece, the term "machine tool" in this specification can be read as "metal processing device." The workpiece W machined by the machine tool 1 may be an aluminum workpiece. The workpiece W machined by the machine tool 1 may be an aluminum cast part.

[0031] The workpiece W machined by the machine tool 1 may be an automobile part or other workpiece. The workpiece W may be a part of the body frame of an automobile. The workpiece W machined by the machine tool 1 may be a small workpiece or a large workpiece. As illustrated in FIG. 2, when the workpiece W is a large workpiece, the height of the workpiece W (more specifically, the distance from the bottom surface to the top surface We of the workpiece W) may be, for example, 1000 mm or more, or 1500 mm or more. When the workpiece W is a large workpiece, the width of the workpiece W (more specifically, the maximum value of the distance between the first side surface Wc of the workpiece W and the second side surface Wd of the workpiece W) may be, for example, 1000 mm or more, or 1500 mm or more. When the workpiece W is a large workpiece, the depth of the workpiece W (more specifically, the maximum value of the distance between the first main surface Wa and the second main surface Wb) may be, for example, 300 mm or more, or 500 mm or more.

[0032] (Work support device 2) In the example shown in FIG. 1, the workpiece supporting device 2 includes a table 21, a block 22 that supports the table 21 rotatably about a first axis AX1, and a first drive device 23 that rotates the table 21 about the first axis AX1. Each of the table 21 and the block 22 may be formed of a single component, or may be formed of an assembly of multiple components. In the example shown in FIG. 1, the first axis AX1 is substantially perpendicular to a horizontal plane. Alternatively, the first axis AX1 may be inclined with respect to the horizontal plane. Furthermore, alternatively, the first axis AX1 may be substantially parallel to the horizontal plane.

[0033] 1, the table 21 and the first drive device 23 are included in the table device 20. In other words, the machine tool 1A (more specifically, the workpiece support device 2) has the table device 20, which has the table 21 and the first drive device 23 that rotates the table 21 about the first axis AX1. Additionally, the table device 20 may include a block 22 that supports the table 21 so that the table 21 is rotatable.

[0034] As illustrated in FIG. 1, the machine tool 1A may have a guide rail 24 that supports the table device 20 so as to be movable in a first direction DR1.

[0035] 1, the machine tool 1A has a third drive device 18 (e.g., a motor) that moves a table device 20 including a table 21 and a first drive device 23 in a direction parallel to a first direction DR1. The third drive device 18 moves the table device 20 along a guide rail 24.

[0036] In the example shown in Fig. 4, the table device 20 is movable in a direction parallel to the first direction DR1 at least between a receiving position P1 and an advancing position P2. The receiving position P1 is a position where the table device 20 (more specifically, the table 21) receives the workpiece W brought in from outside the machine tool 1A. The advancing position P2 is a position where the workpiece W supported by the table 21 can be machined using the first machining device 3. The receiving position P1 is located on the first direction DR1 side of the advancing position P2.

[0037] In the example shown in Fig. 5, the table device 20 is movable in a direction parallel to the first direction DR1 at least between an advance position P2 and a retract position P3. The advance position P2 is a position where the workpiece W supported by the table 21 can be processed using the first processing device 3. The retract position P3 is a position where the workpiece W supported by the table 21 can be rotated around the first axis AX1 without interfering with the first processing device 3 (or a movable wall 11b described later) (see Fig. 6). The retract position P3 is located closer to the first direction DR1 than the advance position P2.

[0038] When the table device 20 is movable to the retracted position P3, the table 21 can be rotated about the first axis AX1 with a large workpiece W supported on the table 21.

[0039] Alternatively or additionally, as illustrated in FIG. 8, the machine tool 1A may include a fourth drive device 19d (e.g., a motor) that moves the first processing device 3 in a direction parallel to the first direction DR1. The fourth drive device 19d moves the entire first processing device 3 or a structure including the column 38c that supports the processing head 30 in a direction parallel to the first direction DR1. The machine tool 1A may include a guide rail 19r that extends in a direction parallel to the first direction DR1. The guide rail 19r guides the movement of the entire first processing device 3 or a structure including the column 38c that supports the processing head 30.

[0040] 8, the first processing device 3 is movable in a direction parallel to the first direction DR1 between an advance position P4 and a retreat position P5. The advance position P4 is a position where the first processing device 3 can be used to process the workpiece W supported by the table 21. The retreat position P5 is a position where the workpiece W supported by the table 21 can be rotated about the first axis AX1 without interfering with the first processing device 3 (or a movable wall 11b described later).

[0041] When the first processing device 3 is movable to the retracted position P5, the table 21 can be rotated about the first axis AX1 in a state in which the large workpiece W is supported on the table 21.

[0042] (Processing head 30) As illustrated in FIG. 9 , the processing head 30 includes a spindle 31 , a support 32 , and a bearing 33 .

[0043] The spindle 31 is capable of holding a first rotating tool T1. The spindle 31 is capable of rotating about a first rotation axis AD1.

[0044] The support 32 supports the spindle 31 via a bearing 33 so as to be rotatable about a first rotation axis AD1.

[0045] The first processing device 3 (more specifically, the processing head 30) has a first rotation drive device 34. The first rotation drive device 34 rotates the first rotating tool T1 about a first rotation axis AD1. More specifically, the first rotation drive device 34 rotates the spindle 31 about the first rotation axis AD1, thereby rotating the first rotating tool T1 held by the spindle 31 about the first rotation axis AD1.

[0046] 1, the first rotation axis AD1 is not parallel to the vertical direction, more specifically, the first rotation axis AD1 is substantially perpendicular to the vertical direction. In this case, chips generated by the first rotating tool T1 rotating around the first rotation axis AD1 coming into contact with the workpiece W are likely to be discharged downward.

[0047] 1, the first axis AX1 (in other words, the rotation axis of the table 21) is disposed substantially perpendicular to the direction parallel to the first rotation axis AD1. In this case, by rotating the table 21 supporting the workpiece W about the first axis, the surface to be machined of the workpiece W can be directed toward the first rotating tool T1. More specifically, by rotating the table 21 to each index position about the first axis AX1, each surface to be machined of the workpiece W parallel to the first axis AX1 can be directly faced to the first rotation axis AD1.

[0048] The table 21 may be tiltable so that the first axis AX1 is substantially perpendicular to the direction parallel to the first rotation axis AD1 (see FIG. 17, if necessary). In this case, too, each surface to be machined of the workpiece W, which is parallel to the first axis AX1, can be directly faced to the first rotation axis AD1 by rotating the table 21 to each index position about the first axis AX1. In addition, when the table 21 is tiltable about a second axis AX2 different from the first axis AX1 (see FIG. 17, if necessary), any surface to be machined of the workpiece W can be directly faced to the first rotation axis AD1 by combining the rotation of the table 21 about the first axis AX1 and the tilt of the table 21 about the second axis AX2.

[0049] (First Robot 5) 10, the first robot 5 has a multi-joint arm 50, which has at least six rotation axes (RX1, RX2, RX3, RX4, RX5, RX6). More specifically, the multi-joint arm 50 has a first portion 51a that can rotate around a first rotation axis RX1 with respect to the support base 13a, a second portion 51b that can tilt around a first tilt axis RX2 with respect to the first portion 51a, a third portion 51c that can tilt around a second tilt axis RX3 with respect to the second portion 51b, a fourth portion 51d that can rotate around a second rotation axis RX4 with respect to the third portion 51c, a fifth portion 51e that can tilt around a third tilt axis RX5 with respect to the fourth portion 51d, and a sixth portion 51f that can rotate around a third rotation axis RX6 with respect to the fifth portion 51e. In the example shown in FIG. 10, the articulated arm 50 has at least three tilt axes and at least three rotation axes.

[0050] In the example shown in Fig. 10, the wrist 52 is disposed at the tip of the articulated arm 50. In other words, the first robot 5 has the wrist 52 disposed at the tip of the articulated arm 50. In the example shown in Fig. 10, the wrist 52 is configured by the sixth portion 51f described above. The first robot 5 can freely change the position and orientation of the wrist 52.

[0051] The first robot 5 has a plurality of arm driving devices (eg, a plurality of motors MT) that move a plurality of joints of the articulated arm 50.

[0052] 10, the first robot 5 has a tool support device 53 attached to the articulated arm 50 (more specifically, to the wrist 52). The tool support device 53 is capable of supporting a second rotating tool T2.

[0053] The tool support device 53 has a second rotation drive device 54 (more specifically, a motor) that rotates the second rotating tool T2 about the second rotation axis AD2.

[0054] 11, the tool support device 53 has a fixed part 56 attached to the articulated arm 50 (more specifically, the wrist 52) ​​and a movable part 57 that is linearly movable relative to the fixed part 56 in a direction parallel to the second rotation axis AD2. The fixed part 56 may have a linear guide 56r that guides the movement of the movable part 57 in the direction parallel to the second rotation axis AD2. The second rotating tool T2 is attached to a spindle arranged on the movable part 57.

[0055] In the example shown in Fig. 11, the tool support device 53 has a tool moving device (hereinafter referred to as "tool linear motion device 55") that moves the second rotating tool T2 in a direction parallel to the second rotation axis AD2. The tool linear motion device 55 has a motor, an electric cylinder, or the like as a drive source. In the example shown in Fig. 11, the tool linear motion device 55 has a linear guide 56r that guides the movement of the movable part 57 of the tool support device 53 relative to the fixed part 56 of the tool support device 53. The tool linear motion device 55 may include a ball screw, a rack and pinion, or the like.

[0056] When the tool support device 53 has the second rotation drive device 54 and the tool linear motion device 55, the second rotating tool T2 can be moved in a direction parallel to the second rotation axis AD2 while rotating the second rotating tool T2 around the second rotation axis AD2. Therefore, after the second rotating tool T2 comes into contact with the workpiece W, the hole HL can be formed in the workpiece W using the second rotating tool T2 without changing the position of the wrist 52. Therefore, the accuracy of the machining for forming the hole in the workpiece W is maintained. In other words, although a decrease in machining accuracy due to the presence of multiple joints in the first robot 5 is unavoidable, an excessive decrease in machining accuracy is prevented because the machining for forming the hole in the workpiece W is performed with the multiple joints fixed in angle.

[0057] In the example shown in FIG. 1, the machine tool 1A has a support base 13a that supports the first robot 5. In the example shown in FIG. 1, the height of an upper surface 131a of the support base 13a is higher than the height of the upper surface of the table 21. Also, the height of the upper surface 131a of the support base 13a is higher than the height of the uppermost end of the table device 20. In the example shown in FIG. 1, the support base 13a is immovable relative to the base 10 of the machine tool 1A. Alternatively, the support base 13a may be movable relative to the base 10 of the machine tool 1A. In other words, the entire first robot 5 may be movable relative to the base 10.

[0058] (Machining room CB, coolant supply device 91) In the example shown in Fig. 12, the machine tool 1A includes a machining chamber CB defined by a wall 11, and a coolant liquid supply device 91. In Fig. 12, the machining chamber CB is hatched with dots to make it easier to see the machining chamber CB.

[0059] 12, the machine tool 1A has a wall 11 that defines a machining chamber CB, in which a machining head 30 and an articulated arm 50 of a first robot 5 are disposed. In the example shown in Fig. 12, a part of the wall 11 (more specifically, a movable wall 11b that is a part of the wall 11) is a partition wall that separates the machining chamber CB from a second chamber CD in which all or most of a plurality of linear motion devices 4 that move the machining head 30 three-dimensionally are disposed.

[0060] 12, the wall 11 defining the processing chamber CB has a fixed wall 11a and a movable wall 11b. The movable wall 11b moves in accordance with the movement of the processing head 30.

[0061] As illustrated in Figure 39, the movable wall 11b may include a first movable wall 11b-1 that expands and contracts in response to movement of the processing head 30 in a direction parallel to the vertical direction, and a second movable wall 11b-2 that expands and contracts in response to movement of the processing head 30 in a direction parallel to the horizontal plane.

[0062] The coolant supplying device 91 supplies coolant toward the workpiece W supported by the table 21. The coolant supplying device 91 preferably has an injection nozzle 91n that injects coolant. In the example shown in FIG. 12, the injection nozzle 91n is disposed in the machining head 30. Alternatively, or additionally, the first robot 5 may have the injection nozzle 91n. Also, the injection nozzle 91n may be disposed on a ceiling part or the like of the machine tool 1A.

[0063] When the machine tool 1A has the coolant supplying device 91, excessive temperature rise of the tool caused by frictional heat is suppressed, and the lubrication characteristics between the workpiece W and the rotating tool are improved. Furthermore, chips are prevented from accumulating on the workpiece W. When the coolant can be supplied to the workpiece W, it is also possible to perform heavy cutting of the metal workpiece W using the first machining device 3.

[0064] In general, the articulated arm of a robot is not disposed in a machining chamber where coolant splashes. In contrast, in the example shown in Fig. 12, the articulated arm 50 of the first robot 5 is disposed in a machining chamber CB where coolant splashes. If the articulated arm 50 is incompatible with the coolant, a part of the articulated arm 50 (for example, a joint portion of the articulated arm 50) or substantially the entire articulated arm 50 may be covered with a flexible cover.

[0065] 12, the workpiece passing opening OP is closed by the door 12. This prevents the coolant liquid supplied toward the workpiece W from leaking out of the machine tool 1A through the workpiece passing opening OP.

[0066] (Work passage OP, door 12) In the example shown in Fig. 4, a workpiece passing opening OP through which the workpiece W passes is formed in a wall 11 that defines the machining chamber CB. In the example shown in Fig. 4, the workpiece passing opening OP is formed in a fixed wall 11a.

[0067] In the example shown in Fig. 4, the machine tool 1A includes a wall 11 that defines a machining chamber CB, and a door 12 that opens and closes a workpiece passage opening OP formed in the wall 11. When the door 12 is in the open position, the workpiece W can be carried into the machining chamber CB from outside the machine tool 1A. Also, when the door 12 is in the open position, the workpiece W can be carried out from the table 21 of the workpiece support device 2 to outside the machine tool 1A. The door 12 may be a single-wing door, a double-wing door, or another type of door.

[0068] 4, in a plan view, the workpiece supporting device 2 (more specifically, the table device 20) is disposed between the first processing device 3 and the workpiece passage opening OP. Therefore, the first processing device 3 does not get in the way when the workpiece W is carried in or out. For example, when the workpiece W is carried in or out, the workpiece W is prevented from colliding with the first processing device 3, and damage to the first processing device 3 due to the collision is prevented.

[0069] 12, in a plan view, the work passage opening OP, the first robot 5, and the first processing device 3 are arranged in this order in a counterclockwise direction around the work supporting device 2 (more specifically, the table device 20). Alternatively, in a plan view, the work passage opening OP, the first robot 5, and the first processing device 3 may be arranged in this order in a clockwise direction around the work supporting device 2 (more specifically, the table device 20). When the work passage opening OP, the first robot 5, and the first processing device 3 are arranged around the work supporting device 2 with the work supporting device 2 at the center, the size of the machine tool 1A in a plan view can be made compact.

[0070] 12, the first processing device 3 and the first robot 5 are located in areas that are approximately 90 degrees apart from each other in a plan view, centered on the workpiece support device 2. In this case, when the first main surface Wa or the second main surface Wb of the workpiece W is processed using the first processing device 3, it is easy to process the side surface of the workpiece W using the first robot 5.

[0071] 12, the wall 11 defining the machining chamber CB has a first wall 11-1 (for example, the first wall 11-1 which is the above-mentioned movable wall 11b), a second wall 11-2 facing the first wall 11-1, a third wall 11-3 connecting one side of the first wall 11-1 and one side of the second wall 11-2, and a fourth wall 11-4 facing the third wall 11-3. The machining head 30 of the first machining device 3 is disposed near the first wall 11-1, a workpiece passage opening OP is formed in the second wall 11-2, and the first robot 5 is disposed near the third wall 11-3.

[0072] Alternatively, as illustrated in Fig. 13, the first processing device 3 and the first robot 5 may be arranged to sandwich the workpiece supporting device 2 in a plan view. In other words, the workpiece supporting device 2 may be arranged between the first processing device 3 and the first robot 5 in a plan view. In the example described in Fig. 13, the table device 20 may be movable in a direction toward the workpiece passage opening OP.

[0073] (Control device 7) In the example shown in FIG. 4, the machine tool 1A has a control device 7. The control device 7 may be configured by one computer or may be configured by multiple computers. For example, the machine tool 1A may have a first computer that controls the first processing device 3 and the workpiece supporting device 2, and a second computer that controls the first robot 5. In this case, the first computer and the second computer communicate with each other, and the first computer and the second computer work together to function as the control device 7 of the machine tool 1A.

[0074] The control device 7 controls the workpiece supporting device 2, the first processing device 3, and the first robot 5. Additionally, the control device 7 may control a third driving device 18 that moves the table device 20 in a direction parallel to the first direction DR1, and / or a fourth driving device 19d that moves the first processing device 3 in a direction parallel to the first direction DR1 (see FIG. 8, if necessary).

[0075] In the example shown in Fig. 4, the control device 7 has a memory 72 that stores a machining program and data, and a processor 70 that executes the machining program stored in the memory 72. When the machining program is executed by the processor 70, the control device 7 generates a plurality of control commands (e.g., a rotation command E1, a movement command E3, a first rotation command E4, a first operation command E5, a second rotation command E6, a tool movement command E7, a table movement command E11, a machining device movement command E12, etc., which will be described later). In addition, the control device 7 transmits the generated plurality of control commands to a plurality of control target devices (e.g., the workpiece support device 2, the first machining device 3, the first robot 5, the third driving device 18, the fourth driving device 19d shown in Fig. 8, etc.).

[0076] (Sharing of Machining between the First Processing Device 3 and the First Robot 5) In the example shown in FIG. 2, the first machining device 3 can perform surface machining (e.g., milling) on ​​the workpiece W using a first rotating tool T1-1 supported by the machining head 30. The first machining device 3 is capable of high-precision machining and can therefore be suitably responsible for surface machining of the workpiece W. The first rotating tool T1-1 shown in FIG. 2 may be a milling tool. When the surface machining of the workpiece W is performed only by the first machining device 3, the accuracy of all surface machining is maintained at a high level of accuracy. In other words, it is preferable that the control device 7 executing the machining program have the first machining device 3 be responsible for all surface machining of the workpiece W.

[0077] 3, each of the first processing device 3 and the first robot 5 can perform processing to form a hole HL in the workpiece W. In this specification, the processing to form a hole in the workpiece W includes both the processing to make a hole in the workpiece W (in other words, drilling) and the processing to form a screw in the hole in the workpiece W (in other words, tapping).

[0078] In the example shown in FIG. 3, the first processing device 3 can form a hole in the workpiece W using a first rotating tool T1-2 supported by the processing head 30. In the example shown in FIG. 3, the first rotating tool T1-2 is, for example, a drill or a tapping tool. In addition, the first robot 5 can form a hole in the workpiece W using a second rotating tool T2-2 supported by the articulated arm 50. In the example shown in FIG. 3, the second rotating tool T2-2 is, for example, a drill or a tapping tool.

[0079] Assume that there is a large number of holes to be formed in the workpiece W. In the example shown in FIG. 3, the processing for forming a plurality of holes HL in the workpiece W is shared and performed by both the first processing device 3 and the first robot 5. Thus, a large number of holes can be formed in the workpiece W efficiently and in a shorter time. In other words, it is preferable that the control device 7 executing the processing program assigns a part of the processing for forming a plurality of holes in the workpiece W to the first processing device 3, and assigns the other part of the processing for forming a plurality of holes in the workpiece W to the first robot 5.

[0080] (Workpiece processing method) Next, a description will be given of a workpiece machining method in the first embodiment. The workpiece machining method in the first embodiment may be performed using the machine tool 1A in the first embodiment, or may be performed using another machine tool 1A.

[0081] In a first step ST1, the workpiece W is attached directly or indirectly to the table 21 of the workpiece supporting device 2. The first step ST1 is an attachment process. In the example described in FIG. 4, in the first step ST1, the workpiece W is attached to the table 21 of the workpiece supporting device 2 via a jig J. The jig J may have a chuck J1 (e.g., a hydraulic chuck or an electric chuck) that fixes the workpiece W to the jig J. In the example described in FIG. 4, the jig J is fixed to the table 21, and the workpiece W is fixed to the jig J.

[0082] In the second step ST2, it is determined whether or not it is necessary to change the posture of the workpiece W (see FIG. 14). The second step ST2 is a first determination step. The first determination step is performed by the control device 7. More specifically, the control device 7 determines whether or not it is necessary to change the posture of the workpiece W based on the machining program stored in the memory 72.

[0083] In the first judgment process (second step ST2), if the control device 7 determines that it is necessary to change the posture of the workpiece W, rotation of the workpiece W around the first axis AX1 (more specifically, rotating the table 21 supporting the workpiece W around the first axis AX1).

[0084] For example, in the first judgment step (second step ST2), when the control device 7 determines that it is necessary to rotate at least the workpiece W about the first axis AX1, the table 21 supporting the workpiece W is rotated about the first axis AX1 (rotation step: third step ST3). The rotation step (in other words, rotating the table 21 supporting the workpiece W about the first axis AX1) is performed using the first drive device 23 of the workpiece support device 2. In other words, in the rotation step (third step ST3), the first drive device 23 rotates the table 21 supporting the workpiece W about the first axis AX1.

[0085] 15, the turning step (third step ST3) may be executed in combination with a moving step of moving the table device 20. More specifically, when the control device 7 determines that both linear movement of the workpiece W and turning of the workpiece W are necessary, the table device 20 is moved linearly and the table 21 is turned around the first axis AX1.

[0086] For example, if it is determined that both linear movement of the workpiece W and rotation of the workpiece W are required, after the first step ST1 (mounting process) is performed, the table device 20 is moved linearly from the receiving position P1 to the advancing position P2, and the orientation of the workpiece W is changed from the orientation of the workpiece W at the receiving position P1 to an orientation of the workpiece W suitable for the initial stage of workpiece processing.

[0087] On the other hand, if it is determined that only linear movement of the workpiece W is necessary, after the first step ST1 (mounting process) is performed, the table device 20 is moved linearly from the receiving position P1 to the advancing position P2, and the rotation angle of the table 21 around the first axis AX1 is maintained.

[0088] If the control device 7 determines that changing the posture of the workpiece W is not necessary (second step ST2: No), or if changing the posture of the workpiece W has been completed (completion of third step ST3), proceed to the fourth step ST4 and the fifth step ST5.

[0089] In a fourth step ST4, the workpiece W supported by the table 21 is machined using a first group of rotating tools (T1-1, T1-2) supported in sequence by the machining head 30. The fourth step ST4 is a first machining process.

[0090] 2 and 3, the first group of rotating tools includes a first rotating tool T1-1 (e.g., a milling tool) and another first rotating tool T1-2 (e.g., a drill or a tapping tool). The first rotating tool T1-1 supported by the machining head 30 is replaced with the other first rotating tool T1-1 by using, for example, a first tool changer 80a (see FIG. 24, if necessary).

[0091] 2 and 3, the first machining step (fourth step ST4) includes moving the machining head 30 using the multiple linear motion devices 4 while any one of the first group of rotating tools is in contact with the workpiece W supported by the table 21. When the machining of the workpiece W is performed by moving the machining head 30 using the multiple linear motion devices 4, the machining of the workpiece W can be performed with high precision.

[0092] Furthermore, when the workpiece W is being machined using the first group of rotating tools (in other words, when any of the first group of rotating tools is in contact with the workpiece W), it is preferable that the angular position of the table 21 around the first axis AX1 is fixed.

[0093] In a fifth step ST5, the workpiece W supported by the table 21 is machined using a second group of rotating tools (T2-1, T2-2) supported in sequence by the articulated arm 50. The fifth step ST5 is a second machining process. When the workpiece W is machined using the second group of rotating tools (in other words, when any of the second group of rotating tools is in contact with the workpiece W), it is preferable that the angular position of the table 21 around the first axis AX1 is fixed.

[0094] 2 and 3, the second group of rotating tools includes a second rotating tool T2-1 (e.g., a first drill) and another second rotating tool T2-2 (e.g., a second drill or a tapping tool). The second rotating tool T2-1 supported by the articulated arm 50 is replaced with the other second rotating tool T2-2 by using, for example, the first tool changing device or a second tool changing device different from the first tool changing device.

[0095] 11, the second machining step (fifth step ST5) may include a step in which a tool support device 53 attached to an articulated arm 50 moves a second rotating tool T2, which rotates around a second rotation axis AD2, in a direction parallel to the second rotation axis AD2 using a tool linear motion device 55. When the second rotating tool T2 is moved using the tool linear motion device 55, the second rotating tool T2 can be moved with high precision.

[0096] A part of the first processing step (fourth step ST4) and a part of the second processing step (fifth step ST5) may be performed simultaneously. A part of the first processing step (fourth step ST4) may be performed when the second processing step is not being performed. Also, a part of the second processing step (fifth step ST5) may be performed when the first processing step is not being performed.

[0097] In a sixth step ST6, it is determined whether or not the machining of the workpiece W has been completed. The sixth step ST6 is a second determination step. The second determination step is performed by the control device 7. More specifically, the control device 7 determines whether or not the machining of the workpiece W has been completed based on the machining program stored in the memory 72.

[0098] In the second judgment step (sixth step ST6), if the control device 7 judges that the machining of the workpiece W is not completed (sixth step ST6: No), the process returns to the second step ST2.

[0099] For example, after a part of the first machining step (fourth step ST4) and a part of the second machining step (fifth step ST5) are executed, in the second step ST2, the control device 7 judges whether or not it is necessary to change the posture of the workpiece W (more specifically, it judges whether or not it is necessary to rotate the workpiece W about the first axis AX1). More specifically, the control device 7 judges whether or not it is necessary to rotate the workpiece W about the first axis AX1 based on the machining program stored in the memory 72.

[0100] In the first judgment process (second step ST2), if the control device 7 determines that it is necessary to rotate the workpiece W around the first axis AX1 (second step ST2: Yes), in the third step ST3, the workpiece W is rotated around the first axis AX1 (rotation process).

[0101] The turning step includes turning the table 21 supporting the workpiece W about the first axis AX1. In the example shown in Fig. 2 and Fig. 3, the step of turning the table 21 supporting the workpiece W about the first axis AX1 is performed using the first driving device 23 of the workpiece supporting device 2. In other words, in the third step ST3, the first driving device 23 turns the table 21 supporting the workpiece W about the first axis AX1.

[0102] Incidentally, immediately before the table 21 supporting the workpiece W turns about the first axis AX1, one of the table 21 and the first processing device 3 may be moved linearly in a direction away from the other of the table 21 and the first processing device 3, and immediately after the table 21 supporting the workpiece W turns about the first axis AX1, one of the table 21 and the first processing device 3 may be moved linearly in a direction approaching the other of the table 21 and the first processing device 3. By moving one of the table 21 and the first processing device 3 in a direction away from the other of the table 21 and the first processing device 3, the table 21 and the workpiece W are prevented from interfering with the first processing device 3 when the table 21 turns.

[0103] For example, in the first judgment step (second step ST2), when the control device 7 judges that at least linear movement of the workpiece W and rotation of the workpiece W about the first axis AX1 are necessary, (1) the table device 20 is moved from the advance position P2 to the retreat position P3 (see FIG. 5), (2) the table 21 supporting the workpiece W is rotated about the first axis AX1 while the table device 20 is located at the retreat position P3 (see FIG. 6), and (3) the table device 20 is returned from the retreat position P3 to the advance position P2 (see FIG. 7), as illustrated in FIG. 5 to FIG. 7. Note that, when the workpiece W to be machined is a small workpiece, only the rotation step (third step ST3) is executed, and movement of the table device 20 is not necessary.

[0104] After the posture of the workpiece is changed (more specifically, after the turning step is performed), the first machining step (fourth step ST4) and the fifth machining step (fifth step ST5) are performed again.

[0105] After the first machining step (fourth step ST4) and the second machining step (fifth step ST5) are performed, in a sixth step ST6, it is determined whether or not machining of the workpiece W has been completed.

[0106] In the second judgment step (sixth step ST6), if the control device 7 judges that the processing of the workpiece W is completed (sixth step ST6: Yes), the workpiece W is moved to a removal position P6 (seventh step ST7) as illustrated in Fig. 16. The seventh step ST7 is a step of moving the workpiece to the removal position.

[0107] 16, the workpiece moving step (seventh step ST7) to the removal position includes moving the table device 20 from the advance position P2 to the removal position P6. The removal position P6 may be the same position as the receiving position P1 (see FIG. 4) or may be a position different from the receiving position P1.

[0108] The step of moving the workpiece W to the removal position (seventh step ST7) may include changing the orientation of the workpiece W. In the example shown in Fig. 16, the step of moving the workpiece W to the removal position (seventh step ST7) includes rotating the workpiece W about the first axis AX1. In the example shown in Fig. 16, the table 21 supporting the workpiece W is rotated about the first axis AX1 at a position between the advance position P2 and the removal position P6 (more specifically, at the retreat position P3).

[0109] In an eighth step ST8, the workpiece W is removed from the table 21. The eighth step ST8 is a removal step. The removal step (eighth step ST8) may include moving the door 12 from the closed position to the open position, and moving the workpiece W from the processing chamber CB to the outside of the processing chamber CB so as to cross the workpiece passage opening OP.

[0110] In the workpiece machining method of the first embodiment, as illustrated in Figures 2, 5 and 6, a part of the first machining step (fourth step ST4) and a part of the second machining step (fifth step ST5) are performed simultaneously, and then the table 21 supporting the workpiece W is rotated around the first axis AX1. In other words, a part of the step of machining the workpiece W supported by the table 21 using the first group of rotating tools sequentially supported by the machining head 30 and a part of the step of machining the workpiece W supported by the table 21 using the second group of rotating tools sequentially supported by the articulated arm 50 are performed simultaneously before the execution of one rotating step (in other words, a step of rotating the table 21 supporting the workpiece W).

[0111] In the workpiece machining method of the first embodiment, as illustrated in Fig. 6, Fig. 7, and Fig. 3, after the table 21 supporting the workpiece W is rotated around the first axis AX1, a part of the first machining step (fourth step ST4) and a part of the second machining step (fifth step ST5) are simultaneously executed. In other words, a part of the step of machining the workpiece W supported by the table 21 using the first group of rotating tools sequentially supported by the machining head 30 and a part of the step of machining the workpiece W supported by the table 21 using the second group of rotating tools sequentially supported by the articulated arm 50 are simultaneously executed after execution of the above-mentioned one rotating step (in other words, a step of rotating the table 21 supporting the workpiece W).

[0112] By simultaneously executing a part of the first machining process and a part of the second machining process before and after one turning process, the workpiece W is machined efficiently and in a shorter time.

[0113] When a machining cycle is defined as rotating the table 21 supporting the workpiece W about the first axis AX1, and then machining the workpiece W supported by the table 21 using a first group of rotating tools supported in sequence by the machining head 30, the workpiece machining method in the first embodiment may include repeatedly executing the machining cycle "N" times or more, where "N" is, for example, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, . . .

[0114] In some of the above-mentioned multiple machining cycles, a part of a process of machining the workpiece W supported by the table 21 using a first group of rotating tools supported in sequence by the machining head 30 and a part of a process of machining the workpiece W supported by the table 21 using a second group of rotating tools supported in sequence by the articulated arm 50 may be executed simultaneously.

[0115] A workpiece W having a complex shape can be easily machined by performing the above-mentioned machining cycle multiple times for one workpiece W. In addition, in some of the above-mentioned multiple machining cycles, a part of the machining using the machining head 30 and a part of the machining using the articulated arm 50 are simultaneously performed, thereby improving the machining efficiency of the workpiece W.

[0116] 2, a first group of rotating tools sequentially supported by the machining head 30 includes a surface machining tool (e.g., a milling tool), and a second group of rotating tools sequentially supported by the articulated arm 50 includes a hole forming tool (e.g., a drill or a tapping tool). In the workpiece machining method of the first embodiment, surface machining of the workpiece W by the surface machining tool (e.g., a milling tool) supported by the machining head 30 and machining to form a hole in the workpiece W by the hole forming tool (e.g., a drill or a tapping tool) supported by the articulated arm 50 may be performed simultaneously.

[0117] Second embodiment A machine tool 1B and a workpiece machining method according to the second embodiment will be described with reference to Figs. 17 to 38. Fig. 17 is a schematic perspective view showing the machine tool 1B according to the second embodiment. Fig. 18 is a schematic side view showing the machining head 30 according to a modified example. Fig. 19 is a schematic plan view showing the machine tool 1B according to the second embodiment. Fig. 20 is a schematic perspective view showing an example of the second robot 6 and the support base 13b. Fig. 21 is a schematic perspective view showing an enlarged example of the second tool support device 63 attached to the second articulated arm 60. Fig. 22 is a schematic plan view showing the machine tool system 100 according to the second embodiment. Fig. 23 is a schematic plan view showing the machine tool 1B according to the second embodiment. Fig. 24 is a diagram showing a state in which at least one tool exchange device 8 can exchange the first rotating tool T1 supported by the machining head 30 for another first rotating tool. FIG. 25 is a diagram showing a state where at least one tool exchanger 8 can exchange the second rotating tool T2 supported by the tool support device 53 of the first robot with another second rotating tool. FIG. 26 is a diagram showing a state where at least one tool exchanger 8 can exchange the third rotating tool T3 supported by the second tool support device 63 of the second robot with another third rotating tool. FIGS. 27 and 28 are schematic perspective views showing a machine tool 1B in the second embodiment. FIG. 29 is a diagram showing a state where the control device 7 can control a plurality of control target devices. Each of FIGS. 30 to 36 is a schematic perspective view showing an enlarged state where one step of the workpiece machining method is being performed. FIG. 37 is a flowchart showing an example of the workpiece machining method in the second embodiment. FIG. 38 is a flowchart showing another example of the workpiece machining method in the second embodiment.

[0118] 17, in the second embodiment, the workpiece supporting device 2 has a second driving device 26 that tilts the table 21 about a second axis AX2. Alternatively, or additionally, the machine tool 1B in the second embodiment includes a second robot 6.

[0119] In the second embodiment, differences from the first embodiment will be mainly described. On the other hand, in the second embodiment, repeated descriptions of matters already described in the first embodiment will be omitted. Therefore, it goes without saying that matters already described in the first embodiment can be applied to the second embodiment even if they are not explicitly described in the second embodiment. Conversely, all matters described in the second embodiment can be applied to the first embodiment.

[0120] 17, a machine tool 1B in the second embodiment includes (1) a workpiece supporting device 2 having a table 21 that supports a workpiece, (2) a first processing device 3 having a processing head 30 capable of supporting a first rotating tool T1 that processes the workpiece supported by the table 21 and a plurality of linear motion devices 4 that move the processing head 30 three-dimensionally, and (3) a first robot 5 having a multi-joint arm 50 that changes the position and orientation of the second rotating tool T2 and that uses the second rotating tool T2 to process the workpiece supported by the table 21. In addition, the workpiece supporting device 2 has a first driving device 23 that rotates the table 21 about a first axis AX1.

[0121] Therefore, the machine tool 1B in the second embodiment has the same effects as the machine tool 1A in the first embodiment.

[0122] (Optional configuration) Next, optional additional configurations that can be adopted in the second embodiment (or the above-described first embodiment) will be described with reference to FIGS.

[0123] (Second driving device 26) In the example shown in FIG. 17, the workpiece supporting device 2 has a second driving device 26 (e.g., a motor) that tilts the table 21 about the second axis AX2. In the example shown in FIG. 17, the second driving device 26 tilts the block 22 about the second axis AX2, thereby tilting the table 21 supported by the block 22 about the second axis AX2. In the example shown in FIG. 17, the second axis AX2 is an axis different from the first axis AX1. More specifically, the second axis AX2 is perpendicular to the first axis AX1. The second axis AX2 may be substantially parallel to a horizontal plane.

[0124] When the workpiece support device 2 has a tilt axis (in other words, when the table 21 can tilt around the second axis AX2), the inclined surface WS of the workpiece W (see FIG. 33, if necessary) can be arranged perpendicular to the first rotation axis AD1 of the first rotating tool T1. Thus, high-precision machining using the machining head 30 can be applied to the inclined surface WS of the workpiece W. Thus, it is not necessary to assign precision machining of the inclined surface WS of the workpiece W to a machine tool other than the machine tool 1. By reducing the number of machine tools, the installation space for the machine tools in the business establishment can be reduced. The inclined surface WS of the workpiece W is, more specifically, a surface inclined with respect to the first axis AX or a surface inclined with respect to the upper surface of the table 21.

[0125] In the example described in Figures 31 to 33, the work support device 2 (more specifically, the second drive device 26) can tilt the table 21 about the second axis AX2 so that the position of the inclined surface WS of the workpiece W is changed from a position inclined with respect to the first rotation axis AD1 of the first rotating tool T1 (more specifically, a position in which the inclined surface WS of the workpiece W is inclined with respect to the horizontal plane, as illustrated in Figure 31) to a position in which the inclined surface WS of the workpiece W is substantially perpendicular to the first rotation axis AD1 of the first rotating tool T1 (more specifically, a position in which the inclined surface WS of the workpiece W is substantially perpendicular to the horizontal plane, as illustrated in Figure 33).

[0126] More specifically, the control device 7 executes the machining program stored in the memory 72 to transmit a tilt command E2 (see FIG. 29, if necessary) to the second driving device 26 so that the inclined surface WS of the workpiece W is changed from a posture inclined with respect to the first rotation axis AD1 of the first rotating tool T1 to a posture in which the inclined surface WS of the workpiece W is substantially perpendicular to the first rotation axis AD1 of the first rotating tool T1. The second driving device 26 receiving the tilt command E2 tilts the table 21 about the second axis AX2 so that the posture of the inclined surface WS of the workpiece W is changed to a posture in which the inclined surface WS of the workpiece W is substantially perpendicular to the first rotation axis AD1 of the first rotating tool T1.

[0127] In the example shown in Figure 33, the machine tool 1 is configured so that after the inclined surface WS of the workpiece W is changed to a position substantially perpendicular to the first rotation axis AD1, the inclined surface WS of the workpiece W can be machined by a first rotating tool T1 supported by the machining head 30.

[0128] More specifically, after the inclined surface WS of the workpiece W is changed to a position substantially perpendicular to the first rotation axis AD1, the control device 7 executes the machining program stored in the memory 72 to transmit a first movement command E3-1 (see FIG. 29, if necessary) to the first linear motion device 41, which is one of the linear motion devices 4, so that the hole forming tool T1-5 (e.g., a tapping tool or a hole drilling tool) rotating around the first rotation axis AD1 moves linearly along the first rotation axis AD1. The first linear motion device 41, which receives the first movement command E3-1, moves the hole forming tool T1-5 rotating around the first rotation axis AD1 linearly along the first rotation axis AD1 so that the hole HL is formed in the inclined surface WS of the workpiece W. In this way, the hole HL can be formed in the inclined surface WS of the workpiece W with high accuracy.

[0129] Alternatively, after the inclined surface WS of the workpiece W is changed to a position substantially perpendicular to the first rotation axis AD1, the control device 7 may execute a machining program stored in the memory 72 to transmit a movement command E3 (see FIG. 29, if necessary) to the multiple linear motion devices 4 so that the facing tool T1-6 (e.g., a milling tool) rotating about the first rotation axis AD1 faces the inclined surface WS. The multiple linear motion devices 4 receiving the movement command E3 move the facing tool rotating about the first rotation axis AD1 in a direction perpendicular to the first rotation axis AD1 so that the inclined surface WS of the workpiece W is face-faced. In this way, the face machining of the inclined surface WS of the workpiece W is performed with high accuracy.

[0130] When the workpiece support device 2 has a tilting axis (in other words, when the table 21 can tilt around the second axis AX2), the top surface We of the workpiece W can be tilted with respect to a horizontal plane, as illustrated in FIG. 28. In this case, it is not necessary to make the second rotating tool T2 supported by the multi-joint arm 50 (or the third rotating tool T3 supported by the second multi-joint arm 60) approach the top surface We of the workpiece W vertically downward. This makes it possible to reduce the size of the multi-joint arm 50 of the first robot 5 (or the size of the second multi-joint arm 60 of the second robot 6). This makes it possible to efficiently machine multiple surfaces of the workpiece W, including the top surface We, without increasing the size of the first robot 5 (or the second robot 6).

[0131] 17, it is preferable that the second drive device 26 is capable of steplessly tilting the table 21 about the second axis AX2. In other words, it is preferable that the machine tool 1 is capable of steplessly adjusting the tilt angle of the table 21. The second drive device 26 may be capable of maintaining the angle between the horizontal plane and the upper surface of the table 21 at any angle between 0 degrees and 90 degrees.

[0132] Since the articulated arm 50 can change the orientation of the second rotating tool T2 to any orientation, there is no need to tilt the workpiece W in machining using the first robot 5. On the other hand, the movement of the machining head 30 is, in principle, performed using a plurality of linear motion devices 4, so the orientation of the machining head 30 cannot be changed with respect to the workpiece W. Of course, as illustrated in FIG. 18, the machine tool 1B in the second embodiment (or the machine tool 1A in the first embodiment) may be provided with a tilt drive device 35 that tilts the machining head 30 around the tilt axis AT. However, there is a limit to the tilting around the tilt axis AT using the tilt drive device 35. In addition, at least two tilt axes are required to change the orientation of the machining head 30 to any orientation. The machine tool 1B in the second embodiment (or the machine tool 1A in the first embodiment) may have a tilting drive device that tilts the machining head 30 around each of the two tilting axes, but as the machining head 30 is provided with tilting axes, there is a risk that the accuracy of machining performed using the first machining device 3 will decrease.

[0133] (Work support device 2) In the example shown in FIG. 17, the workpiece support device 2 has a table device 20. The table device 20 has a table 21, a block 22 that supports the table 21 so as to be rotatable around a first axis AX1, a first drive device 23 that rotates the table 21 around the first axis AX1, and a support base 25 that supports the block 22 so as to be tiltable around a second axis AX2. The table device 20 may have a second drive device 26 that tilts the table 21 around the second axis AX2. In the example shown in FIG. 17, the first drive device 23 is mounted on the block 22, and the first drive device 23 can tilt together with the block 22 around the second axis AX2. In other words, the orientation of the first axis AX1 also changes with the tilt of the table 21 around the second axis AX2. Alternatively, the second drive unit 26 may be mounted on the block 22 that tiltably supports the table 21, and the second drive unit 26 may be configured to be rotatable around the first axis AX1 together with the block 22. In other words, the orientation of the second axis AX2 may be configured to change with the rotation of the table 21 around the first axis AX1.

[0134] In the example shown in FIG. 17, the support base 25 includes a first support base 25a that supports the first end 22a of the block 22 so that it can tilt around the second axis AX2, and a second support base 25b that supports the second end 22b of the block 22 so that it can tilt.

[0135] In the example shown in Fig. 17, the table 21 has a substantially circular shape with a part of the circle cut out in a plan view. The shape of the table 21 is not limited to the example shown in Fig. 17. The shape of the table 21 may be, for example, a polygonal shape.

[0136] In the example shown in FIG. 17, the block 22 has a first end 22a tiltably supported by a first support stand 25a, a second end 22b tiltably supported by a second support stand 25b, and a central portion 22c between the first end 22a and the second end 22b. The block 22 also has a concave shape in which the central portion 22c is recessed relative to the first end 22a and the second end 22b. In the example shown in FIG. 17, the table 21 is disposed directly above the central portion 22c when the upper surface of the table 21 is disposed parallel to the horizontal plane. In the example shown in FIG. 17, when the upper surface of the table 21 is disposed parallel to the horizontal plane, the height of the upper surface of the table 21 is lower than the height of the second axis AX2.

[0137] The block 22 supporting the table 21 has an elongated shape with the second direction DR2 as a longitudinal direction when viewed in a direction parallel to the first axis AX1. Note that the shape of the block 22 is not limited to the shape shown in FIG. 17 and may be any shape.

[0138] In addition to the table device 20, the workpiece supporting device 2 may have a guide rail 24 that guides the movement of the table device 20 in a direction parallel to the first direction DR1.

[0139] (Third driving device 18) The machine tool 1 may have a third drive device 18 that moves the table device 20 in a direction parallel to the first direction DR1. In the example shown in Fig. 17, the first direction DR1 is substantially parallel to the horizontal plane and substantially perpendicular to the second axis AX2.

[0140] The machine tool 1 may be provided with a fourth drive unit 19d (see FIG. 8, if necessary) that moves the first processing device 3 in a direction parallel to the first direction DR1 in addition to or instead of the third drive unit 18. The third drive unit 18 and the fourth drive unit 19d have been described in the first embodiment, so repeated description of their configurations will be omitted.

[0141] 19, the table device 20 is movable in a direction parallel to the first direction DR1 at least between the receiving position P1 and the advancing position P2. The receiving position P1 and the advancing position P2 have been described in the first embodiment, so a repeated description of these positions will be omitted.

[0142] 19, the table device 20 is movable in a direction parallel to the first direction DR1 at least between the advanced position P2 and the retracted position P3. The advanced position P2 and the retracted position P3 have been described in the first embodiment, so repeated description of these positions will be omitted.

[0143] In the example shown in FIG. 19, the receiving position P1 is set near the workpiece passage opening OP formed in the wall 11. The receiving position P1 is, for example, an end position in the first direction DR1 within the movable range of the table device 20. The advance position P2 is, for example, an end position in the opposite direction to the first direction DR1 or a position close to the end position in the opposite direction to the first direction DR1 within the movable range of the table device 20. In FIG. 19, one position is shown as the advance position P2, but there may be multiple advance positions P2. For example, the advance position P2 when the workpiece W supported by the table 21 in the tilted state is machined by the first processing device 3 may be set on the first direction DR1 side compared to the advance position P2 when the workpiece W supported by the table 21 in the non-tilted state is machined by the first processing device 3. In other words, the position of the table device 20 when the workpiece W supported on the table 21 in a tilted state is processed by the first processing device 3 may be set toward the first direction DR1 compared to the position of the table device 20 when the workpiece W supported on the table 21 in a non-tilted state is processed by the first processing device 3 (see the position of the table device 20 in each of Figures 27 and 28).

[0144] The retracted position P3 is, for example, a predetermined position between an end position in the first direction DR1 of the movable range of the table device 20 and an end position in the opposite direction to the first direction DR1 of the movable range of the table device 20. Alternatively, the retracted position P3 may be the same position as the receiving position P1.

[0145] (Processing head 30) The machining head 30 has already been described in the first embodiment, and therefore a repeated description of the machining head 30 will be omitted (for the machining head 30, see, for example, FIG. 9.) In the example shown in FIG. 19, in a plan view, the first rotation axis AD1 which is the rotation axis of the first rotating tool T1 (in other words, the rotation axis of the spindle 31 of the machining head 30) is substantially perpendicular to the second axis AX2.

[0146] (First Robot 5) The first robot 5 has already been described in the first embodiment, and therefore a repeated description of the first robot 5 will be omitted (for the first robot 5, see, for example, FIGS. 10 and 11).

[0147] (Second Robot 6) In the example shown in Fig. 17, the machine tool 1 includes a second robot 6. The second robot 6 uses a third rotating tool T3 to machine a workpiece supported by a table 21. The second robot 6 has a second articulated arm 60 that changes the position and orientation of the third rotating tool T3. The second robot 6 can also be said to be a second articulated robot.

[0148] 17, in a plan view, a workpiece support device 2 (e.g., a table device 20, or a guide rail 24 that movably supports the table device 20) is disposed between the first robot 5 and the second robot 6. When the workpiece support device 2 is disposed between the first robot 5 and the second robot 6, the first robot 5 and the second robot 6 can machine the workpiece W from both sides thereof simultaneously.

[0149] 20, the second robot 6 has a second multi-joint arm 60, which has at least six rotation axes (RT1, RT2, RT3, RT4, RT5, RT6). More specifically, the second multi-joint arm 60 has a first portion 61a that can rotate around a first rotation axis RT1 relative to the support base 13b, a second portion 61b that can tilt around a first tilt axis RT2 relative to the first portion 61a, a third portion 61c that can tilt around a second tilt axis RT3 relative to the second portion 61b, a fourth portion 61d that can rotate around a second rotation axis RT4 relative to the third portion 61c, a fifth portion 61e that can tilt around a third tilt axis RT5 relative to the fourth portion 61d, and a sixth portion 61f that can rotate around a third rotation axis RT6 relative to the fifth portion 61e. In the example shown in FIG. 20, the second articulated arm 60 has at least three tilt axes and at least three rotation axes.

[0150] In the example shown in Fig. 20, the second wrist 62 is disposed at the tip of the second articulated arm 60. In other words, the second robot 6 has the second wrist 62 disposed at the tip of the second articulated arm 60. In the example shown in Fig. 20, the second wrist 62 is configured by the sixth portion 61f described above. The second robot 6 can freely change the position and orientation of the second wrist 62.

[0151] The second robot 6 has a plurality of arm driving devices (eg, a plurality of motors MT) that move a plurality of joints of the second articulated arm 60.

[0152] 20, the second robot 6 has a second tool support device 63 attached to the second articulated arm 60 (more specifically, the second wrist 62). The second tool support device 63 is capable of supporting a third rotating tool T3.

[0153] The second tool support device 63 has a third rotation drive device 64 (more specifically, a motor) that rotates the third rotating tool T3 about the third rotation axis AD3.

[0154] 21, the second tool support device 63 has a fixed part 66 attached to the second articulated arm 60 (more specifically, the second wrist 62) and a movable part 67 that is linearly movable relative to the fixed part 66 in a direction parallel to the third rotation axis AD3. The fixed part 66 may have a linear guide 66r that guides the movement of the movable part 67 in the direction parallel to the third rotation axis AD3. The third rotating tool T3 is attached to a spindle arranged on the movable part 67.

[0155] In the example shown in Fig. 21, the second tool support device 63 has a tool moving device (hereinafter referred to as "second tool linear motion device 65") that moves the third rotating tool T3 in a direction parallel to the third rotation axis AD3. The second tool linear motion device 65 has a motor, an electric cylinder, or the like as a drive source. Also, in the example shown in Fig. 21, the second tool linear motion device 65 has a linear guide 66r that guides the movement of the movable part 67 of the second tool support device 63 relative to the fixed part 66 of the second tool support device 63. The second tool linear motion device 65 may include a ball screw, a rack and pinion, or the like.

[0156] When the second tool support device 63 has the third rotation drive device 64 and the second tool linear motion device 65, the third rotating tool T3 can be moved in a direction parallel to the third rotation axis AD3 while rotating the third rotating tool T3 around the third rotation axis AD3. Therefore, after the third rotating tool T3 comes into contact with the workpiece W, the hole HL can be formed in the workpiece W using the third rotating tool T3 without changing the position of the second wrist 62. Therefore, the accuracy of the machining for forming the hole in the workpiece W is maintained. In other words, although a decrease in machining accuracy due to the presence of multiple joints in the second robot 6 is unavoidable, an excessive decrease in machining accuracy is prevented because the machining for forming the hole in the workpiece W is performed with the multiple joints fixed in angle.

[0157] In the example shown in FIG. 17, the machine tool 1 has a support base 13b that supports the second robot 6. In the example shown in FIG. 17, the height of the upper surface 131b of the support base 13b is higher than the height of the upper surface of the table 21. Also, the height of the upper surface 131b of the support base 13b is higher than the height of the uppermost end of the table device 20. In the example shown in FIG. 17, the support base 13b is immovable relative to the base 10 of the machine tool 1. Alternatively, the support base 13b may be movable relative to the base 10 of the machine tool 1. In other words, the entire second robot 6 may be movable relative to the base 10.

[0158] (Third Robot 101) As illustrated in FIG. 22, the machine tool system 100 in the second embodiment includes a machine tool 1 (for example, the machine tool 1A in the first embodiment, or the machine tool 1B in the second embodiment) and a third robot 101 arranged outside the machine tool 1.

[0159] The third robot 101 carries in the workpiece W from outside the machine tool 1 into the machining chamber CB, and / or carries out the workpiece from the table 21 to outside the machining chamber CB (i.e., carries out the machined workpiece). In the example shown in FIG. 22, a wall 11 (more specifically, a fixed wall 11a) that defines the machining chamber CB is disposed between the third robot 101 and the first robot 5. Note that the number of robots for carrying in and out the workpiece is not limited to one. In other words, the machine tool system 100 may have another robot for carrying in and out the workpiece in addition to the third robot 101.

[0160] 22, the third robot 101 carries the workpiece W into the machining chamber CB of the machine tool 1 from outside the machine tool 1 through the workpiece passing opening OP. More specifically, the third robot 101 carries the workpiece W into the machining chamber CB of the machine tool 1 from outside the machine tool 1 through the workpiece passing opening OP, and the table device 20 (more specifically, the table 21) receives the workpiece W from the third robot 101. When the table device 20 is located at the receiving position P1, the table device 20 can smoothly receive the workpiece W from the third robot 101.

[0161] 22, the third robot 101 has a third multi-joint arm 102, and the third multi-joint arm 102 can cross a workpiece passage opening OP. The third robot 101 also has a gripper 103 capable of gripping a workpiece W. The gripper 103 is attached to, for example, a tip end of the third multi-joint arm 102.

[0162] (Processing room CB) In the example depicted in Fig. 23, the machine tool 1 includes a wall 11 that defines a machining chamber CB. In the example depicted in Fig. 23, a machining head 30, a multi-joint arm 50 of a first robot 5, and a second multi-joint arm 60 of a second robot 6 are arranged in the machining chamber CB. In the example depicted in Fig. 23, the wall 11 includes a first wall 11-1 and a second wall 11-2.

[0163] 23, the first wall 11-1 separates the machining chamber CB from a second chamber CD in which all or most of the linear motion devices 4 that three-dimensionally move the machining head 30 are disposed. The first wall 11-1 also includes a movable wall 11b.

[0164] A workpiece passage opening OP is formed in the second wall 11-2. In the example shown in Fig. 23, the second wall 11-2 is disposed opposite to the first wall 11-1.

[0165] In the example shown in FIG. 23, the wall 11 defining the processing chamber CB has a third wall 11-3 connecting one side of the first wall 11-1 and one side of the second wall 11-2, and a fourth wall 11-4 facing the third wall 11-3.

[0166] 23, the wall 11 defining the processing chamber CB includes a movable wall 11b that moves following the movement of the processing head 30. As illustrated in Fig. 39, the movable wall 11b may include a first movable wall 11b-1 that expands and contracts following the movement of the processing head 30 in a direction parallel to the vertical direction, and a second movable wall 11b-2 that expands and contracts following the movement of the processing head 30 in a direction parallel to the horizontal plane.

[0167] (Coolant supply device 91) 23, the machine tool 1 is provided with a coolant supplying device 91 that supplies coolant toward the workpiece W supported by the table 21. The coolant supplying device 91 has been described in the first embodiment, and therefore a repeated description of the coolant supplying device 91 will be omitted.

[0168] (Work passage OP, door 12) 23, a workpiece passage opening OP through which the workpiece W passes is formed in a wall 11 that defines the machining chamber CB. The machine tool 1 also includes a door 12 that opens and closes the workpiece passage opening OP formed in the wall 11.

[0169] 23, the workpiece supporting device 2 is disposed between the first processing device 3 and the workpiece passage opening OP in a plan view. Therefore, the first processing device 3 does not get in the way when the workpiece W is carried in or out.

[0170] 23, in a plan view, a work passage opening OP, a first robot 5, a first processing device 3, and a second robot 6 are arranged around a work support device 2 (more specifically, a table device 20). More specifically, in a plan view, the work passage opening OP, the first robot 5, the first processing device 3, and the second robot 6 are arranged around the work support device 2 with the work support device 2 at the center. In this case, the size of the machine tool 1 in a plan view can be made compact.

[0171] As illustrated in FIG. 23, a work passage opening OP, a first robot 5, a first processing device 3, and a second robot 6 may be arranged in this order around the work support device 2 in a counterclockwise (or clockwise) direction.

[0172] 23, the first processing device 3 and the first robot 5 are located in areas that differ from each other by approximately 90 degrees around the workpiece support device 2 in a plan view, and the first processing device 3 and the second robot 6 are located in areas that differ from each other by approximately 90 degrees around the workpiece support device 2 in a plan view. In this case, when the first main surface Wa or the second main surface Wb of the workpiece W is processed using the first processing device 3, the first robot 5 and the second robot 6 can easily process both side surfaces of the workpiece W.

[0173] In the example shown in Figure 23, the processing head 30 of the first processing device 3 is positioned near the first wall 11-1, the first robot 5 is positioned near the third wall 11-3, and the second robot 6 is positioned near the fourth wall 11-4.

[0174] Alternatively, in the example shown in Fig. 23, the position of the first processing device 3 and the position of the first robot 5 may be interchanged. Alternatively, in the example shown in Fig. 23, the position of the first processing device 3 and the position of the second robot 6 may be interchanged.

[0175] (Moving body of first processing device 3) 17, the first processing device 3 has a moving body that three-dimensionally moves the processing head 30. More specifically, the first processing device 3 has a first moving body 36, a second moving body 37, and a third moving body 38.

[0176] The first moving body 36 is movable together with the machining head 30 in a direction parallel to the Y axis. In the example shown in FIG. 17, the first moving body 36 supports the machining head 30 and is movable in a direction parallel to the Y axis. In the example shown in FIG. 17, the Y axis is, for example, substantially parallel to a first rotation axis AD1 which is a rotation axis of the first rotating tool T1. The Y axis may also be substantially parallel to a first direction DR1.

[0177] The second moving body 37 is movable in a direction parallel to the Z axis together with the machining head 30. In the example shown in Fig. 17, the second moving body 37 supports the machining head 30 via the first moving body 36 and is movable in a direction parallel to the Z axis. In the example shown in Fig. 17, the Z axis is substantially parallel to the vertical direction.

[0178] The third moving body 38 is movable together with the machining head 30 in a direction parallel to the X-axis. In the example shown in FIG. 17, the third moving body 38 supports the machining head 30 via the first moving body 36 and the second moving body 37, and is movable in a direction parallel to the X-axis. The third moving body 38 is, for example, a column 38c that movably supports the second moving body 37. In the example shown in FIG. 17, the X-axis is substantially parallel to the horizontal plane. Also, the X-axis is substantially perpendicular to the Y-axis.

[0179] In the example shown in FIG. 17, the machine tool 1 has a base 10, and the base 10 supports a third movable body 38 so as to be movable in a direction parallel to the X-axis.

[0180] (Multiple linear motion devices 4) In the example shown in FIG. 17, the machine tool 1 (more specifically, the first machining device 3) has a plurality of linear motion devices 4 that move the machining head 30 three-dimensionally. The plurality of linear motion devices 4 also include a first linear motion device 41, a second linear motion device 44, and a third linear motion device 47. The first linear motion device 41 moves the machining head 30 in a direction parallel to the Y-axis. The second linear motion device 44 moves the machining head 30 in a direction parallel to the Z-axis. The third linear motion device 47 moves the machining head 30 in a direction parallel to the X-axis.

[0181] The first linear motion device 41 has a drive device 42 (e.g., a motor) that moves the first moving body 36 in a direction parallel to the Y axis. The first linear motion device 41 preferably has a first linear guide 43 that guides the movement of the first moving body 36 in the direction parallel to the Y axis. In the example shown in FIG. 17, the first linear guide 43 is disposed on the second moving body 37.

[0182] The second linear motion device 44 has a drive device 45 (e.g., a motor) that moves the second moving body 37 in a direction parallel to the Z axis. The second linear motion device 44 preferably has a second linear guide 46 that guides the movement of the second moving body 37 in the direction parallel to the Z axis. In the example shown in FIG. 17, the second linear guide 46 is disposed on the third moving body 38.

[0183] The third linear motion device 47 has a drive device 48 (e.g., a motor) that moves the third moving body 38 in a direction parallel to the X-axis. The third linear motion device 47 preferably has a third linear guide 49 that guides the movement of the third moving body 38 in the direction parallel to the X-axis. In the example shown in FIG. 17, the third linear guide 49 movably supports the third moving body 38. In addition, the third linear guide 49 is disposed on the base 10 of the machine tool 1.

[0184] (Tool changer 8) The machine tool 1 preferably includes at least one tool changer 8. The at least one tool changer 8 is disposed at an arbitrary position of the machine tool 1. The at least one tool changer 8 is capable of changing the first rotating tool T1 held by the machining head 30 to another first rotating tool. The at least one tool changer 8 is capable of changing the second rotating tool T2 supported by the articulated arm 50 of the first robot 5 to another second rotating tool. In the case where the machine tool 1 has a second robot 6, the at least one tool changer 8 is capable of changing the third rotating tool T3 supported by the second articulated arm 60 of the second robot 6 to another third rotating tool.

[0185] 24, the at least one tool exchange device 8 includes a first tool exchange device 80a. The first tool exchange device 80a exchanges the first rotating tool T1-1 held by the machining head 30 with another first rotating tool T1-2. In the example shown in FIG. 24, the first tool exchange device 80a exchanges the first rotating tool T1-1 held by the machining head 30 with another first rotating tool T1-2 taken out from at least one tool stocker 93.

[0186] In the example shown in FIG. 24, the first tool changer 80a has a first gripping part 82a capable of gripping a first rotating tool T1-1, and a second gripping part 83a capable of gripping another first rotating tool T1-2.

[0187] As illustrated in FIG. 24, the first tool change device 80a may have a tool change arm 81a, an arm rotation device 84a that rotates the tool change arm 81a, and an arm moving device 85a that linearly moves the tool change arm 81a.

[0188] The machining head 30 may be configured to access the tool stocker 93 and directly replace the first rotating tool T1 held in the machining head 30 with another first rotating tool. In this case, a tool exchange device that exchanges tools for the machining head 30 is omitted.

[0189] In the example described in FIG. 25, at least one tool exchange device 8 includes a second tool exchange device 80b. The second tool exchange device 80b exchanges the second rotating tool T2-1 supported by the articulated arm 50 via the tool support device 53 with another second rotating tool T2-2. As illustrated in FIG. 25, the second tool exchange device 80b may exchange the second rotating tool T2-1 supported by the articulated arm 50 via the tool support device 53 with another second rotating tool T2-2 taken out from at least one tool stocker 93. In the example described in FIG. 25, each second rotating tool T2 is a tool that cannot be attached to the machining head 30 of the first machining device 3, and in the example described in FIG. 24, each first rotating tool T1 is a tool that cannot be attached to the tool support device 53 of the first robot 5.

[0190] Alternatively, the tool support device 53 may be configured to access the tool stocker 93 and directly replace the second rotating tool T2 supported by the tool support device 53 with another second rotating tool. In this case, a tool changer for changing tools for the tool support device 53 is omitted.

[0191] In the example described in FIG. 26, at least one tool exchange device 8 exchanges the third rotating tool T3-1 supported by the second articulated arm 60 via the second tool support device 63 with another third rotating tool T3-2. As illustrated in FIG. 26, at least one tool exchange device 8 may exchange the third rotating tool T3-1 supported by the second articulated arm 60 via the second tool support device 63 with another third rotating tool T3-2 taken out from at least one tool stocker 93. In the example described in FIG. 26, each third rotating tool T3 is a tool that cannot be attached to the machining head 30 of the first machining device 3, and in the example described in FIG. 24, each first rotating tool T1 is a tool that cannot be attached to the second tool support device 63 of the second robot 6.

[0192] Alternatively, the second tool support device 63 may be configured to access the tool stocker 93 and directly replace the third rotating tool T3 supported by the second tool support device 63 with another third rotating tool. In this case, a tool changer that changes tools for the second tool support device 63 is omitted.

[0193] (Machining of workpiece W supported by table 21 in non-tilting state) 17, in this specification, "table 21 is in a non-tilting state" refers to a state in which the first axis AX1 is substantially perpendicular to the horizontal plane. If table 21 is a table that does not rotate around the first axis AX1, in this specification, "table 21 is in a non-tilting state" refers to a state in which the top surface of the table is substantially parallel to the horizontal plane.

[0194] 27, the first processing device 3 and the first robot 5 can simultaneously process the workpiece W supported by the table 21 in a non-tilting state. In other words, when the table 21 supporting the workpiece W is in a non-tilting state, the first processing device 3 and the first robot 5 can simultaneously process the workpiece W supported by the table 21.

[0195] 27, the first processing device 3, the first robot 5, and the second robot 6 can simultaneously process the workpiece W supported by the table 21 in a non-tilting state. In other words, when the table 21 supporting the workpiece W is in a non-tilting state, the first processing device 3, the first robot 5, and the second robot 6 can simultaneously process the workpiece W supported by the table 21.

[0196] (Machining of workpiece W supported by tilted table 21) 28, in this specification, "table 21 is in a tilted state" refers to a state in which the first axis AX1 is not parallel to the vertical direction. If table 21 is a table that does not rotate around the first axis AX1, in this specification, "table 21 is in a tilted state" refers to a state in which the top surface of the table is inclined with respect to the horizontal plane.

[0197] 28, the first processing device 3 and the first robot 5 can simultaneously process the workpiece W supported by the tilted table 21. In other words, when the table 21 supporting the workpiece W is in a tilted state, the first processing device 3 and the first robot 5 can simultaneously process the workpiece W supported by the table 21.

[0198] 28, the first processing device 3, the first robot 5, and the second robot 6 can simultaneously process the workpiece W supported by the tilted table 21. In other words, when the table 21 supporting the workpiece W is in a tilted state, the first processing device 3, the first robot 5, and the second robot 6 can simultaneously process the workpiece W supported by the table 21.

[0199] 27 and 28, in both cases where the table 21 supporting the workpiece W is in a non-tilted state and where the table 21 supporting the workpiece W is in a tilted state, the first processing device 3, the first robot 5, and the second robot 6 can simultaneously process the workpiece W supported by the table 21. Therefore, the workpiece W having a complex shape can be efficiently processed.

[0200] (Control device 7) In the example shown in FIG. 19, the control device 7 controls the workpiece support device 2, the first processing device 3, and the first robot 5. When the machine tool 1 has the second robot 6, the control device 7 controls the second robot 6. When the machine tool 1 has at least one tool exchange device 8, the control device 7 controls the at least one tool exchange device 8. When the machine tool 1 has a third drive device 18 that moves the table device 20 in a direction parallel to the first direction DR1, the control device 7 controls the third drive device 18. When the machine tool 1 has a fourth drive device 19d (see FIG. 8) that moves the first processing device 3 in a direction parallel to the first direction DR1, the control device 7 controls the fourth drive device 19d. As in the first embodiment, the control device 7 may be configured by one computer or may be configured by multiple computers. For example, the machine tool 1 may have a first computer that controls the first processing device 3 and the workpiece supporting device 2, a second computer that controls the first robot 5, and a third computer that controls the second robot 6. Furthermore, these computers may work together to function as a control device 7 for the machine tool 1.

[0201] As illustrated in FIG. 29, the control device 7 includes a hardware processor 70 (hereinafter, simply referred to as the "processor 70"), a memory 72, a communication circuit 74, and an input device 76 (for example, a display 762 with a touch panel). The processor 70, the memory 72, the communication circuit 74, and the input device 76 are connected to each other via a bus 78. Data required for machining the workpiece W (for example, workpiece data 726 including shape data of the workpiece W and machining position data of the workpiece W) may be input to the control device 7 via the input device 76, or may be input to the control device 7 from another computer via the communication circuit 74. The input device 76 is not limited to the display 762 with a touch panel. For example, the control device 7 may include an input device 76 such as a button, a switch, a lever, a pointing device, a keyboard, or the like, and a display that displays the data input to the input device 76 or other information.

[0202] The control device 7 generates a plurality of control commands by executing the machining program 722 stored in the memory 72. Furthermore, the communication circuit 74 transmits the plurality of control commands generated by the control device 7 to a plurality of control target devices (e.g., the workpiece supporting device 2, the first machining device 3, the first robot 5, the second robot 6, at least one tool exchange device 8, the third driving device 18, the fourth driving device 19d shown in FIG. 8, etc.). In this way, the control device 7 can control a plurality of control target devices.

[0203] 29, the control device 7 may transmit a rotation command E1 to the first driving device 23 of the work supporting device 2. The first driving device 23 receiving the rotation command E1 from the control device 7 rotates the table 21 around the first axis AX1.

[0204] 29, the control device 7 may transmit a tilt command E2 to the second driving device 26 of the work supporting device 2. The second driving device 26 receiving the tilt command E2 from the control device 7 tilts the table 21 around the second axis AX2.

[0205] In the example shown in FIG. 29, the control device 7 may transmit a movement command E3 to a plurality of linear motion devices 4 of the first processing device 3. The plurality of linear motion devices 4 that receive the movement command E3 from the control device 7 move the processing head 30. More specifically, the control device 7 transmits a first movement command E3-1 to the first linear motion device 41, and the first linear motion device 41 that receives the first movement command E3-1 moves the processing head 30 in a direction parallel to the Y axis (for example, a direction parallel to the first rotation axis AD1). The control device 7 transmits a second movement command E3-2 to the second linear motion device 44, and the second linear motion device 44 that receives the second movement command E3-2 moves the processing head 30 in a direction parallel to the Z axis (for example, a direction parallel to the vertical direction). In addition, the control device 7 sends a third movement command E3-3 to the third linear motion device 47, and the third linear motion device 47, upon receiving the third movement command E3-3, moves the machining head 30 in a direction parallel to the X-axis (e.g., a direction perpendicular to both the Y-axis and the Z-axis).

[0206] 29, the control device 7 may transmit a first rotation command E4 to the first rotation drive device 34 of the first processing device 3. The first rotation drive device 34 receiving the first rotation command E4 from the control device 7 rotates the first rotating tool T1 around the first rotation axis AD1.

[0207] 29, the control device 7 may transmit a first operation command E5 to a plurality of arm driving devices 59 (e.g., a plurality of motors MT) of the first robot 5. The arm driving devices 59 receiving the first operation command E5 from the control device 7 operate a plurality of joints of the articulated arm 50.

[0208] 29, the control device 7 may transmit a second rotation command E6 to the second rotation drive device 54 of the tool support device 53. The second rotation drive device 54, which receives the second rotation command E6 from the control device 7, rotates the second rotating tool T2 around the second rotation axis AD2.

[0209] 29, the control device 7 may transmit a tool movement command E7 to the tool linear motion device 55 of the tool support device 53. The tool linear motion device 55 receiving the tool movement command E7 from the control device 7 moves the second rotating tool T2 in a direction parallel to the second rotation axis AD2.

[0210] 29, the control device 7 may transmit a second operation command E8 to a plurality of arm driving devices 69 (e.g., a plurality of motors MT) of the second robot 6. The arm driving devices 69 receiving the second operation command E8 from the control device 7 operate a plurality of joints of the second articulated arm 60.

[0211] 29, the control device 7 may transmit a third rotation command E9 to the third rotation drive device 64 of the second tool support device 63. The third rotation drive device 64 receiving the third rotation command E9 from the control device 7 rotates the third rotating tool T3 around the third rotation axis AD3.

[0212] 29, the control device 7 may transmit a second tool movement command E10 to the second tool linear motion device 65 of the second tool support device 63. The second tool linear motion device 65, which receives the second tool movement command E10 from the control device 7, moves the third rotating tool T3 in a direction parallel to the third rotation axis AD3.

[0213] In the example shown in FIG. 29, the control device 7 may transmit a table movement command E11 to the third drive device 18. The third drive device 18, which receives the table movement command E11 from the control device 7, moves the table device 20 in a direction parallel to the first direction DR1. Alternatively, or additionally, the control device 7 may transmit a processing device movement command E12 to the fourth drive device 19d. The fourth drive device 19d, which receives the processing device movement command E12 from the control device 7, moves the first processing device 3 in a direction parallel to the first direction DR1.

[0214] In the example shown in FIG. 29, the control device 7 may transmit a tool change command E13 to at least one tool change device 8. The at least one tool change device 8 receiving the tool change command E13 from the control device 7 may change the first rotating tool T1 held by the machining head 30 to another first rotating tool. The at least one tool change device 8 receiving the tool change command E13 from the control device 7 may change the second rotating tool T2 supported by the articulated arm 50 to another second rotating tool. The at least one tool change device 8 receiving the tool change command E13 from the control device 7 may change the third rotating tool T3 supported by the second articulated arm 60 to another third rotating tool.

[0215] For example, the control device 7 transmits a first tool change command E13-1 to the first tool change device 80a, and the first tool change device 80a receiving the first tool change command E13-1 replaces the first rotating tool T1 held by the machining head 30 with another first rotating tool. The control device 7 transmits a second tool change command E13-2 to the second tool change device 80b, and the second tool change device 80b receiving the second tool change command E13-2 replaces the second rotating tool T2 supported by the articulated arm 50 with another second rotating tool.

[0216] (First processing mode M1) The control device 7 can execute a first machining mode M1 including transmitting a movement command E3 to the multiple linear motion devices 4 and transmitting a first rotation command E4 to the first rotary drive device 34 so that the workpiece W supported on the table 21 is machined by the first rotating tool T1 supported on the machining head 30. In the first machining mode M1, the movement of the first rotating tool T1 rotating around the first rotation axis AD1 is performed using the multiple linear motion devices 4, so that the workpiece W can be machined with high precision.

[0217] When the first rotating tool T1 supported by the machining head 30 is a facing tool (e.g., a milling tool), the control device 7 executes sending movement commands E3 to the multiple linear motion devices 4 and sending a first rotation command E4 to the first rotation drive device 34 so that the facing tool rotating about the first rotation axis AD1 moves in a direction substantially perpendicular to the first rotation axis AD1 while in contact with the workpiece W supported by the table 21. In this way, the facing of the workpiece W is performed with high precision.

[0218] When the first rotating tool T1 supported by the machining head 30 is a hole-making tool (e.g., a drill), the control device 7 executes sending a first movement command E3-1 to the first linear motion device 41 and sending a first rotation command E4 to the first rotation drive device 34 so that the hole-making tool rotating around the first rotation axis AD1 moves in a direction substantially parallel to the first rotation axis AD1 while in contact with the workpiece W supported by the table 21. The first linear motion device 41 receiving the first movement command E3-1 linearly moves the hole-making tool in a direction substantially parallel to the first rotation axis AD1. In this way, the processing of drilling a hole in the workpiece W is performed with high precision.

[0219] When the first rotating tool T1 supported by the machining head 30 is a tapping tool, the control device 7 executes sending a first movement command E3-1 to the first linear motion device 41 and sending a first rotation command E4 to the first rotation drive device 34 so that the tapping tool rotates about the first rotation axis AD1 in a state in which the tapping tool is in contact with the workpiece W supported by the table 21 and moves in a direction substantially parallel to the first rotation axis AD1. The first linear motion device 41 that receives the first movement command E3-1 linearly moves the tapping tool in a direction substantially parallel to the first rotation axis AD1. In this way, a screw hole is formed in the workpiece W with high accuracy.

[0220] (Second machining mode M2) The control device 7 can execute a second machining mode M2 ​​including transmitting a first operation command E5 to the arm driving devices 59 of the first robot 5, transmitting a second rotation command E6 to the second rotation driving device 54 of the tool support device 53, and transmitting a tool movement command E7 to the tool linear motion device 55 of the tool support device 53 so that the workpiece W supported on the table 21 is machined by the second rotating tool T2 supported on the articulated arm 50. In the second machining mode M2, the position and orientation of the second rotating tool T2 are changed using the articulated arm 50 at a stage before the second rotating tool T2 comes into contact with the workpiece W. Therefore, the position and orientation of the second rotating tool T2 can be freely set in accordance with the shape, size, orientation, posture, etc. of the workpiece W.

[0221] When the second rotating tool T2 supported by the articulated arm 50 is a hole-making tool (e.g., a drill), the control device 7 executes sending a second rotation command E6 to the second rotation drive device 54 and sending a tool movement command E7 to the tool linear motion device 55 so that the hole-making tool rotating about the second rotation axis AD2 moves in a direction substantially parallel to the second rotation axis AD2 while in contact with the workpiece W supported by the table 21. The tool linear motion device 55 receiving the tool movement command E7 linearly moves the hole-making tool in a direction substantially parallel to the second rotation axis AD2. In this way, the processing of drilling a hole in the workpiece W is performed with high accuracy.

[0222] When the second rotating tool T2 supported by the articulated arm 50 is a tapping tool, the control device 7 executes sending a second rotation command E6 to the second rotation drive device 54 and sending a tool movement command E7 to the tool linear motion device 55 so that the tapping tool rotating about the second rotation axis AD2 moves in a direction substantially parallel to the second rotation axis AD2 while in a state in which the tapping tool is in contact with the workpiece W supported by the table 21. The tool linear motion device 55 receiving the tool movement command E7 linearly moves the tapping tool in a direction substantially parallel to the second rotation axis AD2. In this way, a screw hole is formed in the workpiece W with high accuracy.

[0223] (Third machining mode M3) The control device 7 can execute a third machining mode M3 including at least transmitting a second operation command E8 to the arm driving devices 69 of the second robot 6, transmitting a third rotation command E9 to the third rotation driving device 64 of the second tool support device 63, and transmitting a second tool movement command E10 to the second tool linear motion device 65 of the second tool support device 63 so that the workpiece W supported on the table 21 is machined by the third rotating tool T3 supported on the second articulated arm 60. In the third machining mode M3, the position and orientation of the third rotating tool T3 are changed using the second articulated arm 60 at a stage before the third rotating tool T3 comes into contact with the workpiece W. Therefore, the position and orientation of the third rotating tool T3 can be freely set in accordance with the shape, size, orientation, posture, and the like of the workpiece W.

[0224] When the third rotating tool T3 supported by the second articulated arm 60 is a drill (e.g., a drill), the control device 7 executes sending a third rotation command E9 to the third rotation drive device 64 and sending a second tool movement command E10 to the second tool linear motion device 65 so that the drilling tool rotating around the third rotation axis AD3 moves in a direction substantially parallel to the third rotation axis AD3 while in contact with the workpiece W supported by the table 21. The second tool linear motion device 65 receiving the second tool movement command E10 linearly moves the drilling tool in a direction substantially parallel to the third rotation axis AD3. In this way, the processing of drilling a hole in the workpiece W is performed with high accuracy.

[0225] When the third rotating tool T3 supported by the second articulated arm 60 is a tapping tool, the control device 7 executes sending a third rotation command E9 to the third rotation drive device 64 and sending a second tool movement command E10 to the second tool linear motion device 65 so that the tapping tool rotates about the third rotation axis AD3 in contact with the workpiece W supported by the table 21 and moves in a direction substantially parallel to the third rotation axis AD3. The second tool linear motion device 65, which receives the second tool movement command E10, moves the tapping tool linearly in a direction substantially parallel to the third rotation axis AD3. In this way, a screw hole is formed in the workpiece W with high accuracy.

[0226] (Rotation mode M4) The control device 7 can execute a rotation mode M4 including transmitting a rotation command E1 to the first driving device 23 of the workpiece supporting device 2 so that the workpiece W supported on the table 21 is rotated around the first axis AX1. The rotation mode M4 may include moving the table device 20 from the advance position P2 to the retreat position P3, rotating the table 21 supporting the workpiece W around the first axis AX1 while the table device 20 is in the retreat position P3, and returning the table device 20 from the retreat position P3 to the advance position P2. In this case, the control device 7 executes transmitting a table movement command E11 to the third driving device 18 and transmitting a rotation command E1 to the first driving device 23 of the workpiece supporting device 2 so that the table device 20 moves from the advance position P2 to the retreat position P3, the workpiece W rotates around the first axis AX1, and the table device 20 moves from the retreat position P3 to the advance position P2. When the workpiece W to be machined is a small workpiece, it is not necessary to move the table device 20 between the advance position P2 and the retreat position P3 when the turning mode M4 is executed.

[0227] When the table 21 is in a tilted state, the control device 7 may execute the turning mode M4 after the state of the table 21 is changed from the tilted state to a non-tilted state. Alternatively, when the table 21 in the tilted state is turned around the first axis AX1 and no interference occurs between the workpiece W and the surrounding structures, the table 21 in the tilted state may be turned around the first axis AX1 in the turning mode M4.

[0228] Since the control device 7 can execute the turning mode M4, the machine tool 1 can change the orientation of the workpiece W with respect to the first processing device 3. In this way, the first processing device 3 can easily process the first main surface Wa of the workpiece W (e.g., the front surface of the workpiece W), as well as the first side surface Wc of the workpiece W (e.g., the left side surface of the workpiece W), the second main surface Wb of the workpiece W (e.g., the back surface of the workpiece W), and the second side surface Wd of the workpiece W (e.g., the right side surface of the workpiece W).

[0229] (Tilt mode M5) The control device 7 is capable of executing a tilt mode M5 which includes transmitting a tilt command E2 to the second drive device 26 of the work supporting device 2 so that the work W supported on the table 21 is tilted around the second axis AX2.

[0230] Since the control device 7 can execute the tilt mode M5, the machine tool 1 can change the attitude of the workpiece W relative to the first processing device 3. In this way, the first processing device 3 can easily process a workpiece W having a complex shape (see FIG. 28). In addition, the first processing device 3 can also process the top surface We of the workpiece W while the workpiece W is in a tilted state.

[0231] In the example shown in FIG. 10, the first robot 5 has a wrist 52 disposed at the tip of the articulated arm 50. The control device 7 may transmit a command to the first robot 5 to correct the position and orientation of the wrist 52 in response to the second drive device 26 changing the orientation of the workpiece W about the second axis AX2. For example, the control device 7 transmits a first operation command E5 to the arm drive devices 59 of the first robot 5 so that the position and orientation of the wrist 52 are corrected in accordance with the tilting of the table 21 about the second axis AX2. The arm drive devices 59 that receive the first operation command E5 correct the position and orientation of the wrist 52 in accordance with the tilting of the table 21 about the second axis AX2.

[0232] The position and orientation of the wrist 52 are corrected in response to a change in the posture of the workpiece W, thereby preventing unintended interference between the workpiece W and the first robot 5. In addition, after the posture of the workpiece W is changed, the first robot 5 can quickly resume processing of the workpiece W.

[0233] Alternatively, or additionally, the control device 7 may send a command to the first robot 5 to correct the position and orientation of the wrist 52 in response to the first drive device 23 rotating the table 21 about the first axis AX1.

[0234] In the example shown in FIG. 20, the second robot 6 has a second wrist 62 disposed at the tip of the second articulated arm 60. The control device 7 may transmit a command to the first robot 5 to correct the position and orientation of the second wrist 62 in response to the second driving device 26 changing the posture of the workpiece W about the second axis AX2. For example, the control device 7 transmits a second operation command E8 to the arm driving devices 69 of the second robot 6 so that the position and orientation of the second wrist 62 are corrected in accordance with the tilting of the table 21 about the second axis AX2. The arm driving devices 69 that receive the second operation command E8 correct the position and orientation of the second wrist 62 in accordance with the tilting of the table 21 about the second axis AX2.

[0235] The position and orientation of the second wrist 62 are corrected in response to the change in the posture of the workpiece W, thereby preventing unintended interference between the workpiece W and the second robot 6. Furthermore, after the posture of the workpiece W is changed, the second robot 6 can quickly resume processing of the workpiece W.

[0236] Alternatively, or additionally, the control device 7 may send a command to the second robot 6 to correct the position and orientation of the second wrist 62 in response to the first drive device 23 rotating the table 21 around the first axis AX1.

[0237] (First tool change mode M6) The control device 7 is capable of executing a first tool change mode M6, which includes sending a first tool change command E13-1 to the first tool change device 80a so that the first rotating tool T1 held in the machining head 30 is replaced with another first rotating tool.

[0238] Because the control device 7 is capable of executing the first tool change mode M6, the first machining device 3 can perform multiple types of machining (e.g., surface machining, drilling, tapping, friction stir welding, etc.) on a single workpiece W.

[0239] (Second tool change mode M7) The control device 7 is capable of executing a second tool change mode M7, which includes sending a second tool change command E13-2 to the second tool change device 80b so that the second rotating tool T2 supported by the articulated arm 50 is replaced with another second rotating tool.

[0240] The control device 7 is capable of executing the second tool change mode M7, so that the first robot 5 can perform a plurality of types of machining (for example, drilling, tapping, etc.) on one workpiece W.

[0241] (Third tool change mode M8) The control device 7 is capable of executing a third tool change mode M8 which includes sending a third tool change command E13-3 to the second tool change device 80b or a tool change device other than the second tool change device 80b so that the third rotating tool T3 supported by the second articulated arm 60 is replaced with another third rotating tool.

[0242] The control device 7 is capable of executing the third tool change mode M8, so that the second robot 6 can perform a plurality of types of machining (for example, drilling, tapping, etc.) on one workpiece W.

[0243] When a machining cycle is defined as at least one of rotating the table 21 supporting the workpiece W about the first axis AX1 and tilting the table 21 supporting the workpiece W about the second axis AX2, and then machining the workpiece W supported by the table 21 using a first group of rotating tools supported in sequence by the machining head 30, the control device 7 is configured to repeatedly execute the machining cycle "N" times or more by executing the machining program 722 stored in the memory 72. Here, "N" is, for example, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, . . .

[0244] For example, the control device 7 may be configured to execute a plurality of machining cycles including a first machining cycle and a second machining cycle by executing the machining program 722 stored in the memory 72. The first machining cycle may include the control device 7 simultaneously executing a part of the first machining mode M1 described above and a part of the second machining mode M2 ​​described above. The first machining cycle may also include the control device 7 simultaneously executing a part of the first machining mode M1 described above, a part of the second machining mode M2 ​​described above, and a part of the third machining mode M3 described above. The second machining cycle may include the control device 7 simultaneously executing a part of the first machining mode M1 described above and a part of the second machining mode M2 ​​described above. The second machining cycle may also include the control device 7 simultaneously executing a part of the first machining mode M1 described above, a part of the second machining mode M2 ​​described above, and a part of the third machining mode M3 described above.

[0245] During the execution of the first machining cycle and / or the second machining cycle, the control device 7 may (1) machine the workpiece W with the first rotating tool T1 held in the machining head 30 by sending a first group of control commands to the first machining device 3; (2) replace the first rotating tool T1 held in the machining head 30 with another first rotating tool by sending a first tool change command E13-1 to at least one tool change device 8 (e.g., the first tool change device 80a); and (3) machine the workpiece W with the other first rotating tool held in the machining head 30 by sending a second group of control commands to the first machining device 3.

[0246] During the execution of the first machining cycle and / or the second machining cycle, the control device 7 may perform the following: (1) machining the workpiece W with the second rotating tool T2 supported by the multi-joint arm 50 by sending a third group of control commands to the first robot 5; (2) replacing the second rotating tool T2 supported by the multi-joint arm 50 with another second rotating tool by sending a second tool change command E13-2 to at least one tool change device 8 (e.g., the second tool change device 80b); and (3) machining the workpiece W with the other second rotating tool supported by the multi-joint arm 50 by sending a fourth group of control commands to the first robot 5.

[0247] During the execution of the first machining cycle and / or the second machining cycle, the control device 7 may perform the following: (1) machining the workpiece W with the third rotating tool T3 supported by the second multi-joint arm 60 by sending a fifth group of control commands to the second robot 6; (2) replacing the third rotating tool T3 supported by the second multi-joint arm 60 with another third rotating tool by sending a third tool change command E13-3 to at least one tool change device 8; and (3) machining the workpiece W using the other third rotating tool supported by the second multi-joint arm 60 by sending a sixth group of control commands to the second robot 6.

[0248] By the control device 7 executing a combination of the first machining mode M1, the second machining mode M2, at least one of the rotation mode M4 and the tilting mode M5, the first tool change mode M6, and the second tool change mode M7, it is possible to efficiently machine workpieces having complex shapes using multiple types of tools.

[0249] In addition, by the control device 7 executing a combination of the first machining mode M1, the second machining mode M2, the third machining mode M3, at least one of the rotation mode M4 and the tilting mode M5, the first tool change mode M6, the second tool change mode M7, and the third tool change mode M8, it is possible to more efficiently machine workpieces having complex shapes using multiple types of tools.

[0250] (Division of Machining Tasks among the First Processing Device 3, the First Robot 5, and the Second Robot 6) The control device 7 executing the machining program 722 stored in the memory 72 may send a control command to the first machining device 3 so that all of the surface machining of the workpiece W is performed by the first machining device 3. Furthermore, the control device 7 executing the machining program 722 stored in the memory 72 may send a control command to each of the first machining device 3, the first robot 5, and the second robot 6 so that a part of the machining to form the multiple holes HL in the workpiece W is performed by the first machining device 3, another part of the machining to form the multiple holes HL in the workpiece W is performed by the first robot 5, and still another part of the machining to form the multiple holes HL in the workpiece W is performed by the second robot 6.

[0251] (Workpiece processing method) Next, a workpiece machining method according to the second embodiment will be described. The workpiece machining method according to the second embodiment may be performed using the machine tool 1A according to the first embodiment, the machine tool 1B according to the second embodiment, or another machine tool.

[0252] In a first step ST101, the workpiece W is directly or indirectly attached to the table 21 of the workpiece supporting device 2. The first step ST101 is an attachment step. The attachment step (first step ST101) is similar to the attachment step (first step ST1) in the first embodiment, and therefore a repeated description of the attachment step (first step ST101) will be omitted.

[0253] In a second step ST102, it is determined whether or not it is necessary to change the posture of the workpiece W (see FIG. 37). The second step ST102 is a first determination step. The first determination step is performed by the control device 7. More specifically, the control device 7 determines whether or not it is necessary to change the posture of the workpiece W based on the machining program 722 stored in the memory 72.

[0254] In the first judgment process (second step ST102), if the control device 7 determines that it is necessary to change the posture of the workpiece W, at least one of rotating the workpiece W around the first axis AX1 and tilting the workpiece W around the second axis AX2 is performed (more specifically, at least one of rotating the table 21 supporting the workpiece W around the first axis AX1 and tilting the table 21 supporting the workpiece W around the second axis AX2).

[0255] For example, in the first judgment process (second step ST102), if the control device 7 determines that it is necessary to rotate the workpiece W at least around the first axis AX1, the table 21 supporting the workpiece W is rotated around the first axis AX1 (rotation process: third step ST103).

[0256] For example, when the control device 7 determines in the first judgment step (second step ST102) that it is necessary to tilt at least the workpiece W about the second axis AX2, the table 21 supporting the workpiece W is tilted about the second axis AX2 (tilting step: fourth step ST104). Hereinafter, the turning step (third step ST103) and the tilting step (fourth step ST104) are collectively referred to as a posture changing step.

[0257] The posture changing step may be executed in combination with a moving step of moving the table device 20 (see FIG. 38). More specifically, when the control device 7 determines that both linear movement of the workpiece W and changing of the posture of the workpiece W are necessary, the table device 20 is moved linearly and the table 21 is turned or tilted.

[0258] For example, if it is determined that both linear movement of the workpiece W and a change in the posture of the workpiece W are necessary, then after the first step ST101 (mounting process) is performed, the table device 20 is moved linearly from the receiving position P1 to the advancing position P2, and the posture of the workpiece W is changed from the posture of the workpiece W at the receiving position P1 to a posture of the workpiece W suitable for the initial stage of workpiece machining. On the other hand, if it is determined that only linear movement of the workpiece W is necessary, then after the first step ST101 (mounting process) is performed, the table device 20 is moved linearly from the receiving position P1 to the advancing position P2, and the posture of the workpiece W is maintained.

[0259] If the control device 7 determines that changing the posture of the workpiece W is not necessary (second step ST102: No), or if changing the posture of the workpiece W has been completed, proceed to the fifth step ST105, the sixth step ST106, and / or the seventh step ST107.

[0260] In a fifth step ST105, the workpiece W supported by the table 21 is machined using a first group of rotating tools (T1-3, T1-4, T1-5, T1-6) supported in sequence by the machining head 30. The fifth step ST105 is a first machining process. The number of locations of the workpiece W to be machined by the first group of rotating tools may be 10 or more, 20 or more, or 30 or more.

[0261] In the examples shown in Figs. 30, 31, and 34, the first group of rotating tools sequentially supported by the processing head 30 includes a hole drilling tool T1-3 (e.g., a drill), a tapping tool T1-4, and a surface machining tool T1-6 (e.g., a milling tool). The first group of rotating tools sequentially supported by the processing head 30 may include a friction stir welding tool T1-7 (see Fig. 24, if necessary). The first rotating tool T1 (e.g., a hole drilling tool T1-3, a tapping tool T1-4, or a hole forming tool T1-5) supported by the processing head 30 is replaced with another first rotating tool (e.g., a surface machining tool T1-6, or a friction stir welding tool T1-7) by using, for example, a first tool exchange device 80a (see Fig. 24). The first group of rotating tools may include a plurality of the same kind of tools having different tool diameters. For example, the first group of rotary tools may include a first drill having a first tool diameter and a second drill having a second tool diameter.

[0262] The first machining step (fifth step ST105) includes moving the machining head 30 using the multiple linear motion devices 4 while any one of the first group of rotating tools is in contact with the workpiece W supported by the table 21. When the machining of the workpiece W is performed by moving the machining head 30 using the multiple linear motion devices 4, the machining of the workpiece W can be performed with high precision.

[0263] When the workpiece W is being machined using the first group of rotating tools (in other words, when the workpiece W is in contact with any of the first group of rotating tools), it is preferable that the angular position of the table 21 around the first axis AX1 is fixed and the angular position of the table 21 around the second axis AX2 is fixed.

[0264] In a sixth step ST106, the workpiece W supported by the table 21 is machined using a second group of rotating tools (T2-3, T2-4, T2-5) supported in sequence by the articulated arm 50. The sixth step ST106 is a second machining process. The number of locations of the workpiece W to be machined by the second group of rotating tools may be 10 or more, 20 or more, or 30 or more.

[0265] In the example shown in FIG. 33 and FIG. 34, the second group of rotating tools sequentially supported by the tool support device 53 of the first robot 5 includes a hole-making tool T2-3 (e.g., a drill) and a tapping tool T2-4. The second rotating tool T2 (e.g., a hole-making tool T2-3) supported by the articulated arm 50 is replaced with another second rotating tool (e.g., a tapping tool T2-4) by using, for example, the second tool exchange device 80b (see FIG. 25). The second group of rotating tools may include a plurality of tools of the same type having different tool diameters. For example, the second group of rotating tools may include a third drill having a tool diameter of a third size and a fourth drill having a tool diameter of a fourth size.

[0266] 11, the second machining step (sixth step ST106) may include a step in which a tool support device 53 attached to an articulated arm 50 moves a second rotating tool T2, which rotates about a second rotation axis AD2, in a direction parallel to the second rotation axis AD2 using a tool linear motion device 55. When the second rotating tool T2 is moved using the tool linear motion device 55, the second rotating tool T2 can be moved with high accuracy.

[0267] When the workpiece W is being machined using the second group of rotating tools (in other words, when the workpiece W is in contact with any of the second group of rotating tools), it is preferable that the angular position of the table 21 around the first axis AX1 is fixed and the angular position of the table 21 around the second axis AX2 is fixed.

[0268] A part of the first processing step (fifth step ST105) and a part of the second processing step (sixth step ST106) may be performed simultaneously. A part of the first processing step (fifth step ST105) may be performed when the second processing step is not being performed. Also, a part of the second processing step (sixth step ST106) may be performed when the first processing step is not being performed.

[0269] In a seventh step ST107, the workpiece W supported by the table 21 is machined using a third group of rotating tools (T3-3, T3-4, T3-5) supported in sequence by the second articulated arm 60. The seventh step ST107 is a third machining step. The number of locations of the workpiece W to be machined by the third group of rotating tools may be 10 or more, 20 or more, or 30 or more. Note that if the machine tool 1 does not have the second robot 6, the third machining step (seventh step ST107) is omitted.

[0270] In the example shown in FIG. 30 and FIG. 31, the third group of rotating tools sequentially supported by the second tool support device 63 of the second robot 6 includes a drilling tool T3-3 (e.g., a drill) and a tapping tool T3-4. The third rotating tool T3 (e.g., a drilling tool T3-3) supported by the second articulated arm 60 is replaced with another third rotating tool (e.g., a tapping tool T3-4) by using the second tool exchange device 80b (see FIG. 25) or a tool exchange device different from the second tool exchange device 80b. The third group of rotating tools may include a plurality of tools of the same type having different tool diameters. For example, the third group of rotating tools may include a fifth drill having a tool diameter of a fifth size and a sixth drill having a tool diameter of a sixth size.

[0271] 21 , the third machining step (seventh step ST107) may include the second tool support device 63 attached to the second articulated arm 60 moving the third rotating tool T3, which rotates around the third rotation axis AD3, in a direction parallel to the third rotation axis AD3 by using the second tool linear motion device 65. When the movement of the third rotating tool T3 is performed by using the second tool linear motion device 65, the third rotating tool T3 can be moved with high precision.

[0272] When the workpiece W is being machined using the rotating tools of the third group (in other words, when the workpiece W is in contact with any of the rotating tools of the third group), it is preferable that the angular position of the table 21 around the first axis AX1 is fixed and the angular position of the table 21 around the second axis AX2 is fixed.

[0273] A part of the first processing step (fifth step ST105) and a part of the third processing step (seventh step ST107) may be performed simultaneously. A part of the first processing step (fifth step ST105) may be performed when the third processing step is not being performed. Also, a part of the third processing step (seventh step ST107) may be performed when the first processing step is not being performed.

[0274] A part of the first processing step (fifth step ST105), a part of the second processing step (sixth step ST106), and a part of the third processing step (seventh step ST107) may be performed simultaneously.

[0275] In an eighth step ST108, it is determined whether or not the machining of the workpiece W has been completed. The eighth step ST108 is a second determination step. The second determination step is performed by the control device 7. More specifically, the control device 7 determines whether or not the machining of the workpiece W has been completed based on the machining program 722 stored in the memory 72.

[0276] In the second judgment step (eighth step ST108), if the control device 7 judges that the machining of the workpiece W is not completed (eighth step ST108: No), the process returns to the second step ST102.

[0277] For example, after a part of the above-mentioned first machining process and a part of the above-mentioned second machining process are executed (or after a part of the above-mentioned first machining process, a part of the above-mentioned second machining process, and a part of the above-mentioned third machining process are executed), in the second step ST102, the control device 7 determines whether or not it is necessary to change the posture of the workpiece W. More specifically, the control device 7 determines whether or not it is necessary to change the posture of the workpiece W based on the machining program 722 stored in the memory 72.

[0278] For example, in the first judgment step (second step ST102), when the control device 7 determines that it is necessary to rotate at least the workpiece W about the first axis AX1, the table 21 supporting the workpiece W is rotated about the first axis AX1 (rotating step: third step ST103). The rotating step (in other words, rotating the table 21 supporting the workpiece W about the first axis AX1) is performed using the first driving device 23 of the workpiece supporting device 2. In other words, in the rotating step (third step ST103), the first driving device 23 rotates the table 21 supporting the workpiece W about the first axis AX1.

[0279] For example, in the first judgment step (second step ST102), when the control device 7 judges that it is necessary to tilt at least the workpiece W about the second axis AX2, the table 21 supporting the workpiece W is tilted about the second axis AX2 (tilting step: fourth step ST104). The tilting step (in other words, tilting the table 21 supporting the workpiece W about the second axis AX2) is performed by using the second driving device 26 of the workpiece supporting device 2. In other words, in the tilting step (fourth step ST104), the second driving device 26 tilts the table 21 supporting the workpiece W about the second axis AX2.

[0280] Both the turning process (third step ST103) and the tilting process (fourth step ST104) may be executed (see Figs. 34 and 35). More specifically, when the control device 7 determines that at least both the turning of the workpiece W around the first axis AX1 and the tilting of the workpiece W around the second axis AX2 are required, both the turning of the table 21 around the first axis AX1 and the tilting of the table 21 around the second axis AX2 are executed (turning and tilting process). In the turning and tilting process, either the turning of the table 21 or the tilting of the table 21 may be executed first. Also, in the turning and tilting process, a part of the turning of the table 21 and a part of the tilting of the table 21 may be executed simultaneously.

[0281] The turning step (third step ST103) may be performed in combination with a moving step of moving the table device 20. The tilting step (fourth step ST104) may be performed in combination with a moving step of moving the table device 20. In addition, the turning and tilting step (third step ST103 and fourth step ST104) may be performed in combination with a moving step of moving the table device 20.

[0282] More specifically, when the control device 7 determines in the first judgment step (second step ST102) that both linear movement of the workpiece W and changing of the attitude of the workpiece W are necessary, at least one of rotation of the workpiece W about the first axis AX1 and tilting of the workpiece W about the second axis AX2 is combined with linear movement of the table device 20 and is executed. The linear movement of the table device 20 is executed by using the third drive device 18.

[0283] For example, in the first judgment process (second step ST102), if the control device 7 determines that at least linear movement of the workpiece W and rotation of the workpiece W around the first axis AX1 are necessary, the following are executed: (1) the table device 20 is moved linearly in the first direction DR1 toward the retracted position P3 (see Figure 5); (2) while the table device 20 is located at the retracted position P3, the table 21 supporting the workpiece W is rotated around the first axis AX1 (see Figure 6); and (3) the table device 20 is moved linearly in the direction opposite to the first direction DR1 toward the advancing position P2.

[0284] For example, in the first judgment process (second step ST102), if the control device 7 determines that at least linear movement of the workpiece W and tilting of the workpiece W around the second axis AX2 are necessary, (1) the table device 20 is moved linearly in a direction parallel to the first direction DR1, and (2) the table 21 supporting the workpiece W is tilted around the second axis AX2.

[0285] Incidentally, immediately before the table 21 supporting the workpiece W turns about the first axis AX1, one of the table 21 and the first processing device 3 may be moved linearly in a direction away from the other of the table 21 and the first processing device 3, and immediately after the table 21 supporting the workpiece W turns about the first axis AX1, one of the table 21 and the first processing device 3 may be moved linearly in a direction approaching the other of the table 21 and the first processing device 3. By moving one of the table 21 and the first processing device 3 in a direction away from the other of the table 21 and the first processing device 3, the table 21 and the workpiece W are prevented from interfering with the first processing device 3 when the table 21 turns.

[0286] The above-mentioned turning step (third step ST103) may include turning the table 21 in the tilted state about the first axis AX1. Alternatively, the above-mentioned turning step (third step ST103) may include turning the table 21 in the non-tilted state about the first axis AX1 after the state of the table 21 is changed from the tilted state to the non-tilted state.

[0287] In the above-mentioned tilting process (fourth step ST104), the control device 7 may send a command to the first robot 5 to correct the position and orientation of the wrist 52 in response to the second drive device 26 changing the posture of the workpiece W around the second axis AX2.

[0288] In the above-mentioned tilting process (fourth step ST104), tilting the table 21 supporting the workpiece W around the second axis AX2 may be performed with the table device 20 located in the retracted position P3 (see Figure 19), or may be performed with the table device 20 located in the advanced position P2 (see Figure 19).

[0289] After the posture of the workpiece is changed, the first machining step (fifth step ST105), the second machining step (sixth step ST106), and / or the third machining step (seventh step ST107) are executed again.

[0290] In the eighth step ST108, it is determined again whether or not the processing of the workpiece W has been completed (second determination step). In the second determination step (eighth step ST108), if the control device 7 determines that the processing of the workpiece W has not been completed (eighth step ST108: No), the process returns to the second step ST102.

[0291] On the other hand, in the second judgment step (eighth step ST108), if the control device 7 judges that the processing of the workpiece W is completed (eighth step ST108: Yes), the workpiece W is moved to a removal position P6 (see FIG. 16, if necessary) (ninth step ST109). The ninth step ST109 is a step of moving the workpiece to the removal position.

[0292] The workpiece moving process to the removal position (ninth step ST109) includes moving the table device 20 from the advance position P2 to the removal position P6 (see FIG. 16, if necessary). The removal position P6 may be the same position as the receiving position P1 (see FIG. 19), or may be a position different from the receiving position P1.

[0293] The step of moving the workpiece W to the removal position (ninth step ST109) may include changing the posture of the workpiece W.

[0294] In a tenth step ST110, the workpiece W is removed from the table 21. The tenth step ST110 is a removal step. The removal step (tenth step ST110) may include moving the door 12 from the closed position to the open position, and moving the workpiece W from the processing chamber CB to the outside of the processing chamber CB so as to cross the workpiece passage opening OP.

[0295] In the workpiece machining method of the second embodiment, as illustrated in Fig. 30 and Fig. 32, after a part of the first machining step (fifth step ST105) and a part of the second machining step (sixth step ST106) are performed simultaneously, the table 21 supporting the workpiece W is tilted about the second axis AX2. In other words, a part of the step of machining the workpiece W supported by the table 21 using the first group of rotating tools sequentially supported by the machining head 30 and a part of the step of machining the workpiece W supported by the table 21 using the second group of rotating tools sequentially supported by the articulated arm 50 are performed simultaneously before the execution of one tilting step (in other words, a step of tilting the table 21 supporting the workpiece W about the second axis AX2).

[0296] 32 and 34, in the workpiece machining method of the second embodiment, after the table 21 supporting the workpiece W is tilted about the second axis AX2, a part of the first machining step (fifth step ST105) and a part of the second machining step (sixth step ST106) are simultaneously executed. In other words, a part of the step of machining the workpiece W supported by the table 21 using the first group of rotating tools sequentially supported by the machining head 30 and a part of the step of machining the workpiece W supported by the table 21 using the second group of rotating tools sequentially supported by the articulated arm 50 are simultaneously executed after execution of the above-mentioned one tilting step (in other words, a step of tilting the table 21 supporting the workpiece W about the second axis AX2).

[0297] By simultaneously executing a part of the first machining step (fifth step ST105) and a part of the second machining step (sixth step ST106) before and after one tilting step, the machining of the workpiece W is performed efficiently and in a shorter time. As illustrated in Fig. 30, Fig. 32, and Fig. 34, before and after one tilting step, a part of the first machining step (fifth step ST105), a part of the second machining step (sixth step ST106), and a part of the third machining step (seventh step ST107) may be simultaneously executed.

[0298] As illustrated in Figures 34 and 36, (1) a part of the first machining process (fifth step ST105), a part of the second machining process (sixth step ST106), and a part of the third machining process (seventh step ST107) may be executed simultaneously, (2) then the table 21 may be rotated around the first axis AX1 and tilted around the second axis AX2, and (3) further thereafter, a part of the first machining process (fifth step ST105), a part of the second machining process (sixth step ST106), and a part of the third machining process (seventh step ST107) may be executed simultaneously.

[0299] When a machining cycle is defined as at least one of rotating the table 21 supporting the workpiece W about the first axis AX1 and tilting the table 21 supporting the workpiece W about the second axis AX2, and then machining the workpiece W supported by the table 21 using a first group of rotating tools supported in sequence by the machining head 30, the workpiece machining method in the second embodiment may include repeatedly executing the machining cycle "N" times or more. Here, "N" is, for example, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, . . .

[0300] For example, the workpiece machining method in the second embodiment may be configured to execute a plurality of machining cycles including a first machining cycle and a second machining cycle.

[0301] The first machining cycle may include simultaneously machining the workpiece W supported by the table 21 with a first group of rotating tools sequentially supported by the machining head 30 and a second group of rotating tools sequentially supported by the articulated arm 50. Additionally, the first machining cycle may include simultaneously machining the workpiece W supported by the table 21 with a first group of rotating tools sequentially supported by the machining head 30, a second group of rotating tools sequentially supported by the articulated arm 50, and a third group of rotating tools sequentially supported by the second articulated arm 60.

[0302] The second machining cycle may include simultaneously machining the workpiece W supported by the table 21 with a first group of rotating tools sequentially supported by the machining head 30 and a second group of rotating tools sequentially supported by the articulated arm 50. Additionally, the second machining cycle may include simultaneously machining the workpiece W supported by the table 21 with a first group of rotating tools sequentially supported by the machining head 30, a second group of rotating tools sequentially supported by the articulated arm 50, and a third group of rotating tools sequentially supported by the second articulated arm 60.

[0303] At least one of the first machining cycle and the second machining cycle may include machining a workpiece W with a first rotating tool T1 held in the machining head 30, replacing the first rotating tool T1 held in the machining head 30 with another first rotating tool, and machining the workpiece W with the other first rotating tool held in the machining head 30.

[0304] At least one of the first machining cycle and the second machining cycle may include machining a workpiece W with a second rotating tool T2 supported by the multi-joint arm 50, replacing the second rotating tool T2 supported by the multi-joint arm 50 with another second rotating tool, and machining the workpiece W with the other second rotating tool supported by the multi-joint arm 50.

[0305] At least one of the first machining cycle and the second machining cycle may include machining a workpiece W with a third rotating tool T3 supported by the second multi-joint arm 60, replacing the third rotating tool T3 supported by the second multi-joint arm 60 with another third rotating tool, and machining the workpiece W with the other third rotating tool supported by the second multi-joint arm 60.

[0306] (Processing variations) 30, the machine tool 1 can simultaneously machine a first main surface Wa of the workpiece W by the first rotating tool T1 supported by the machining head 30, and machine a first side surface Wc of the workpiece W by the second rotating tool T2 supported by the articulated arm 50. More specifically, the control device 7 executes the machining program 722 stored in the memory 72, thereby transmitting a control command to the first machining device 3 and the first robot 5 so that the machining of the first main surface Wa of the workpiece W by the first rotating tool T1 and the machining of the first side surface Wc of the workpiece W by the second rotating tool T2 supported by the articulated arm 50 are simultaneously performed.

[0307] In the example shown in FIG. 33 and FIG. 34, when the table 21 is in a tilted state, the machine tool 1 can simultaneously perform machining of the workpiece W by the first rotating tool T1 supported by the machining head 30 and machining of the workpiece W by the second rotating tool T2 supported by the articulated arm 50. More specifically, the control device 7 executes the machining program 722 stored in the memory 72, so that the workpiece W supported by the tilted table 21 is simultaneously machined by the first rotating tool T1 supported by the machining head 30 and the second rotating tool T2 supported by the articulated arm 50. As illustrated in FIG. 33, when the table 21 is in a tilted state, the machine tool 1 may be capable of machining the inclined surface WS of the workpiece W by the first rotating tool T1 supported by the machining head 30 (for example, may be capable of performing machining to form a hole in the inclined surface WS of the workpiece W). As illustrated in FIG. 34, when the table 21 is in a tilted state, the machine tool 1 may be capable of machining the top surface We of the workpiece W using a first rotating tool T1 supported by the machining head 30 (for example, may be capable of surface machining the top surface We of the workpiece W).

[0308] 34 or 36, the machine tool 1 can simultaneously perform surface machining of the workpiece W with a first rotating tool T1 (more specifically, a surface machining tool T1-6) supported by the machining head 30, and machining to form a hole HL in the workpiece W with a second rotating tool T2 (e.g., a tapping tool T2-4 or a hole drilling tool T2-5) supported by the articulated arm 50. Additionally, machining to form a hole HL in the workpiece W with a third rotating tool T3 supported by the second articulated arm 60 may also be simultaneously performed.

[0309] More specifically, the control device 7 executes the machining program 722 stored in the memory 72, and sends control commands to the first machining device 3, the first robot 5 and the second robot 6 so that the workpiece W supported by the table 21 is simultaneously machined by the surface machining tool T1-6 supported by the machining head 30, the tapping tool T2-4 or the hole drilling tool T2-5 supported by the multi-joint arm 50, and the tapping tool T3-4 or the hole drilling tool T3-5 supported by the second multi-joint arm 60.

[0310] Alternatively, the control device 7 may execute a machining program 722 stored in the memory 72, and send control commands to the first machining device 3 and the first robot 5 so that the workpiece W supported by the table 21 is simultaneously machined by a friction stir welding tool T1-7 (see Figure 24) supported by the machining head 30 and a tapping tool T2-4 or a hole drilling tool T2-5 supported by the articulated arm 50.

[0311] In the example shown in Figure 34 or Figure 36, the machine tool 1 can simultaneously machine three different surfaces of the workpiece W using a first rotating tool T1 supported by the machining head 30, a second rotating tool T2 supported by the multi-joint arm 50, and a third rotating tool T3 supported by the second multi-joint arm 60.

[0312] More specifically, the control device 7 executes the machining program 722 stored in the memory 72, and sends control commands to the first machining device 3, the first robot 5, and the second robot 6 so that three different surfaces of the workpiece W supported by the table 21 are simultaneously machined by the first rotating tool T1 supported by the machining head 30, the second rotating tool T2 supported by the multi-joint arm 50, and the third rotating tool T3 supported by the second multi-joint arm 60.

[0313] The present invention is not limited to the above-mentioned embodiments or modifications, and it is clear that each embodiment or modification can be appropriately modified or changed within the scope of the technical idea of ​​the present invention. In addition, various techniques used in each embodiment or modification can be applied to other embodiments or other modifications as long as no technical contradiction occurs. Furthermore, any additional configuration in each embodiment or modification can be omitted as appropriate.

[0314] In the example shown in FIG. 40 and FIG. 41 (or in the example shown in FIG. 42 and FIG. 43), the workpiece supporting device 2 can index the table 21 to each of a plurality of different index angle positions (Q1, Q2) around the first axis AX1. For example, the workpiece supporting device 2 can index the table 21 to a first index angle position Q1 around the first axis AX1, and can index the table 21 to a second index angle position Q2 around the first axis AX1. In the example shown in FIG. 40 and FIG. 41 (or in the example shown in FIG. 42 and FIG. 43), the second index angle position Q2 is a position different from the first index angle position Q1 by 90 degrees around the first axis AX1. Alternatively, the second index angle position Q2 may be a position different from the first index angle position Q1 by any predetermined angle around the first axis AX1. Furthermore, the workpiece supporting device 2 may be capable of indexing the table 21 to each of a plurality of index angle positions that differ at least in increments of 90 degrees around the first axis AX1. The workpiece supporting device 2 may be capable of indexing the table 21 to each of a plurality of index angle positions that differ at least in increments of 45 degrees around the first axis AX1.

[0315] In the example described in Figures 40 and 41, the machine tool 1 is capable of (1) simultaneously machining the workpiece W supported by the table 21 using two rotating tools supported by the first processing device 3 and the first robot 5, respectively; (2) after the workpiece W has been machined using the two rotating tools, rotating the table 21 supporting the workpiece W a predetermined angle (e.g., 90 degrees or 180 degrees) about the first axis AX1; and (3) after the table 21 has been rotated by the predetermined angle about the first axis AX1, simultaneously machining the workpiece W supported by the table 21 using the two rotating tools, or two other rotating tools newly supported by the first processing device 3 and the first robot 5, respectively, through tool replacement.

[0316] In the example described in Figures 42 and 43, the machine tool 1 is capable of (1) simultaneously machining the workpiece W supported by the table 21 using three rotating tools supported by the first machining device 3, the first robot 5, and the second robot 6, respectively; (2) after the workpiece W has been machined using the three rotating tools, rotating the table 21 supporting the workpiece W a predetermined angle (e.g., 90 degrees or 180 degrees) about the first axis AX1; and (3) after the table 21 has been rotated by the predetermined angle about the first axis AX1, simultaneously machining the workpiece W supported by the table 21 using the three rotating tools, or three other rotating tools newly supported by the first machining device 3, the first robot 5, and the second robot 6, respectively, through tool replacement.

[0317] 42, the machine tool 1 can simultaneously machine a first main surface Wa of the workpiece W supported by the table 21, a first side surface Wc of the workpiece W, and a second side surface Wd of the workpiece W, using three rotating tools supported by the first processing device 3, the first robot 5, and the second robot 6, respectively. Also, in the example shown in FIG. 43, the machine tool 1 can simultaneously machine a first main surface Wa of the workpiece W supported by the table 21, a second main surface Wb of the workpiece W, and a side surface (e.g., the second side surface Wd) of the workpiece W, using three rotating tools supported by the first processing device 3, the first robot 5, and the second robot 6, respectively.

[0318] In the example shown in FIG. 40 and FIG. 41 (or in the example shown in FIG. 42 and FIG. 43), the first robot 5 and the first processing device 3 are disposed at two different angular positions around the workpiece support device 2 in a plan view. In this case, it is easy to simultaneously process the workpiece W by the first processing device 3 and the first robot 5 without causing the first processing device 3 and the first robot 5 to interfere with each other. This improves the processing efficiency and suppresses the expansion of the installation space of the machine tool 1. In the example shown in FIG. 40 and FIG. 41 (or in the example shown in FIG. 42 and FIG. 43), the processing head 30 and the articulated arm 50 can approach the workpiece W supported by the table 21 from angles that differ by approximately 90 degrees in a plan view. This further effectively suppresses interference between the first processing device 3 and the first robot 5.

[0319] In the examples shown in Figs. 40 and 41 (or in the examples shown in Figs. 42 and 43), the first robot 5, the first processing device 3, and the workpiece passage opening OP are arranged at three different angular positions around the workpiece support device 2 in a plan view. In this case, the workpiece W can be easily loaded and unloaded into the machining chamber CB. In addition, the expansion of the installation space of the machine tool 1 is suppressed. Furthermore, by looking inside the machine through the workpiece passage opening OP, the state of a plurality of tools including the first rotating tool T1 and the second rotating tool T2 can be easily confirmed. Note that it is preferable that the door 12 is provided with a window 121 through which the inside of the machining chamber CB can be viewed from outside the machining chamber CB. In this case, by looking inside the machine through the window 121, the state of a plurality of tools including the first rotating tool T1 and the second rotating tool T2 can be easily confirmed.

[0320] In the example shown in FIG. 42 and FIG. 43, the first robot 5, the second robot 6, the first processing device 3, and the workpiece passage opening OP are arranged at four different angular positions around the workpiece support device 2 in a plan view. In this case, it is easy to simultaneously process the workpiece W by the first processing device 3, the first robot 5, and the second robot 6 without causing the first processing device 3, the first robot 5, and the second robot 6 to interfere with each other. Therefore, the processing efficiency is further improved, and the expansion of the installation space of the machine tool 1 is suppressed. In the example shown in FIG. 42 and FIG. 43, the processing head 30 and the multi-joint arm 50 can approach the workpiece W supported by the table 21 from angles that differ by approximately 90 degrees in a plan view. In addition, the processing head 30 and the second multi-joint arm 60 can approach the workpiece W supported by the table 21 from angles that differ by approximately 90 degrees in a plan view. Therefore, interference between the first processing device 3, the first robot 5, and the second robot 6 is further effectively suppressed.

[0321] In addition, since the first robot 5, the second robot 6, the first processing device 3, and the workpiece passage opening OP are arranged at four different angular positions around the workpiece supporting device 2 in a plan view, the workpiece W can be easily loaded and unloaded from the processing chamber CB. Also, an increase in the installation space for the machine tool 1 is suppressed. Furthermore, by looking inside the machine through the workpiece passage opening OP or the window 121, the states of multiple tools including the first rotating tool T1, the second rotating tool T2, and the third rotating tool T3 can be easily confirmed.

[0322] 42 and 43, in a plan view, the workpiece support device 2 is disposed between the first robot 5 and the second robot 6. In this case, it becomes easy to simultaneously machine the workpiece W by the first robot 5 and the second robot 6 without causing interference between the first robot 5 and the second robot 6. This improves the machining efficiency and suppresses an increase in the installation space for the machine tool 1.

[0323] In the example shown in FIG. 44, the machine tool 1 has a linear guide LG (more specifically, a guide rail 24) that movably supports the table device 20. As illustrated in FIG. 44, the direction in which the table device 20 is guided by the linear guide LG is defined as a third direction DR3. Also, as illustrated in FIG. 44, an area formed by virtually extending an area occupied by the table device 20 in a direction parallel to the third direction DR3 is defined as a virtual area RG. In FIG. 44, in order to make the virtual area RG easy to understand, hatching with dots is added to the virtual area RG. In the example shown in FIG. 44, the first machining device 3 is disposed at a position overlapping the virtual area RG in a plan view. Also, the workpiece passage opening OP formed in the wall 11 that defines the machining chamber CB is disposed at a position overlapping the virtual area RG in a plan view. Also, the first robot 5 is disposed on one side of the virtual area RG in a plan view. Also, the second robot 6 is disposed on the other side of the virtual area RG in a plan view. In other words, in a plan view, the virtual area RG passes between the first robot 5 and the second robot 6. In the example shown in FIG. 44, the support base 13a that supports the first robot 5 is disposed outside the virtual area RG in a plan view. Moreover, the support base 13b that supports the second robot 6 is disposed outside the virtual area RG in a plan view. In the example shown in FIG. 44, the first robot 5 is disposed in a position facing the linear guide LG in a plan view. Moreover, the second robot 6 is disposed in a position facing the linear guide LG in a plan view.

[0324] 44, the area center of the table 21 when the table 21 is located closest to the first processing device 3 (more specifically, the area center of the upper surface of the table 21 when the table 21 is located closest to the first processing device 3) is defined as the first center C1. Note that the table 21 may be a table that is movable in a direction away from the first processing device 3, or may be a table that does not move in a direction away from the first processing device 3.

[0325] 44, the direction from the first center C1 toward the center C2 of the workpiece passing opening OP in a plan view (more specifically, the areal center of the workpiece passing opening OP in a plan view) is defined as the 12 o'clock direction DT12. The first processing device 3 is disposed at a position overlapping at least one of a half line DT5 extending from the first center C1 in the 5 o'clock direction, a half line DT6 extending from the first center C1 in the 6 o'clock direction, and a half line DT7 extending from the first center C1 in the 7 o'clock direction, for example, in a plan view. The first robot 5 is positioned, for example, in a planar view, at a position overlapping at least one of the following: a half line DT2 extending from the first center C1 in the 2 o'clock direction, a half line DT3 extending from the first center C1 in the 3 o'clock direction, a half line DT4 extending from the first center C1 in the 4 o'clock direction, a half line DT8 extending from the first center C1 in the 8 o'clock direction, a half line DT9 extending from the first center C1 in the 9 o'clock direction, and a half line DT10 extending from the first center C1 in the 10 o'clock direction. The first robot 5 may be positioned at a position overlapping, in a planar view, with at least one of the half line DT8 extending from the first center C1 in the 8 o'clock direction, the half line DT9 extending from the first center C1 in the 9 o'clock direction, and the half line DT10 extending from the first center C1 in the 10 o'clock direction, and the second robot 6 may be positioned at a position overlapping with at least one of the half line DT2 extending from the first center C1 in the 2 o'clock direction, the half line DT3 extending from the first center C1 in the 3 o'clock direction, and the half line DT4 extending from the first center C1 in the 4 o'clock direction.

[0326] 1 and 17, the first rotation axis AD1, which is the rotation axis of the first rotating tool T1 supported by the machining head 30, is substantially parallel to the horizontal plane. Alternatively, the first rotation axis AD1 may be substantially parallel to the vertical direction, or may be inclined with respect to both the horizontal plane and the vertical direction.

[0327] In the first and second embodiments, the example in which the table 21 is rotatable about the first axis AX1 has been described.

[0328] Alternatively, in each of the machine tool 1A in the first embodiment and the machine tool 1B in the second embodiment, the configuration in which the table 21 is rotatable about the first axis AX1 may be an optional additional configuration.

[0329] In other words, each of the machine tool 1A in the first embodiment and the machine tool 1B in the second embodiment includes (1) a workpiece supporting device 2 having a table 21 that supports a workpiece, (2) a first processing device 3 having a processing head 30 capable of supporting a first rotating tool T1 that processes a workpiece supported by the table 21 and a plurality of linear motion devices 4 that three-dimensionally move the processing head 30, and (3) a first robot 5 having a multi-joint arm 50 that changes the position and orientation of the second rotating tool T2 and processes the workpiece supported by the table 21 using the second rotating tool T2. On the other hand, among the multiple configurations described in the first embodiment or the second embodiment, configurations other than the above (1) to (3) may or may not be adopted in the machine tool 1A in the first embodiment or the machine tool 1B in the second embodiment.

[0330] Moreover, each of the workpiece machining method in the first embodiment and the workpiece machining method in the second embodiment includes: (1) a step of directly or indirectly attaching the workpiece W to the table 21 of the workpiece supporting device 2; (2) a step (first machining step) of machining the workpiece W supported by the table 21 using a first group of rotating tools sequentially supported by the machining head 30 of the first machining device 3; and (3) a step (second machining step) of machining the workpiece W supported by the table 21 using a second group of rotating tools sequentially supported by the articulated arm 50 of the first robot 5. On the other hand, among the multiple steps described in the first embodiment or the second embodiment, steps other than the above (1) to (3) may or may not be adopted in the workpiece machining method in the first embodiment or the workpiece machining method in the second embodiment. [Explanation of symbols]

[0331] 1, 1A, 1B...machine tool, 2...workpiece support device, 3...first processing device, 4...linear motion device, 5...first robot, 6...second robot, 7...control device, 8...tool change device, 10...base, 11...wall, 11-1...first wall, 11-2...second wall, 11-3...third wall, 11-4...fourth wall, 11a...fixed wall, 11b...movable wall, 11b-1...first movable wall, 11b-2...second movable wall, 12...door, 13a, 13b...support stand, 18...third drive device, 19d...fourth drive device, 19r...guide rail, 20...table device, 21...table, 22...block, 22a...first end, 22 b...second end, 22c...central portion, 23...first drive unit, 24...guide rail, 25...support base, 25a...first support base, 25b...second support base, 26...second drive unit, 30...machining head, 31...spindle, 32...support body, 33...bearing, 34...first rotation drive unit, 35...tilt drive unit, 36...first moving body, 37...second moving body, 38...third moving body, 38c...column, 41...first linear motion unit, 42...drive unit, 43...first linear guide, 44...second linear motion unit, 45...drive unit, 46...second linear guide, 47...third linear motion unit, 48...drive unit, 49...third linear guide d, 50... articulated arm, 51a... first part of articulated arm, 51b... second part of articulated arm, 51c... third part of articulated arm, 51d... fourth part of articulated arm, 51e... fifth part of articulated arm, 51f... sixth part of articulated arm, 52... wrist, 53... tool support device, 54... second rotary drive device, 55... tool linear motion device, 56... fixed part, 56r... linear guide, 57... movable part, 59... arm drive device, 60... second articulated arm, 61a... first part of second articulated arm, 61b... second part of second articulated arm, 61c... third part of second articulated arm, 61d...fourth part of the second articulated arm, 61e...fifth part of the second articulated arm, 61f...sixth part of the second articulated arm, 62...second wrist, 63...second tool support device, 64...third rotation drive device, 65...second tool linear motion device, 66...fixed part, 66r...linear guide, 67...movable part, 69...arm drive device, 70...hardware processor, 72...memory, 74...communication circuit, 76...input device, 78...bus, 80a...first tool exchange device, 80b...second tool exchange device, 81a...tool exchange arm, 82a...first gripper, 83a...second gripper, 84a...arm rotation device,85a...arm moving device, 91...coolant liquid supply device, 91n...injection nozzle, 93...tool stocker, 100...machine tool system, 101...third robot, 102...third articulated arm, 103...gripping body, 121...window, 131a, 131b...upper surface of support base, 722...machining program, 726...work data, 762...display with touch panel, CB...machining room, CD...second room, E1 …Turning command, E2…Tilt command, E3…Movement command, E3-1…1st movement command, E3-2…2nd movement command, E3-3…3rd movement command, E4…1st rotation command, E5…1st movement command, E6…2nd rotation finger command, E7...Tool movement command, E8...Second operation command, E9...Third rotation command, E10...Second tool movement command, E11...Table movement command, E12...Processing equipment movement command, E13...Tool exchange command, E13- 1...First tool change command, E13-2...Second tool change command, E13-3...Third tool change command, HL...Hole, J...Jig, J1...Chuck, LG...Linear guide, MT...Motor, OP...Work passage port, T1, T1-1, T1-2...First rotating tool, T1-3...Hole drilling tool, T1-4...Tapping tool, T1-5...Hole forming tool, T1-6...Face machining tool, T1-7...Friction stir welding tool, T2, T2-1, T2-2...second rotating tool, T2-3...hole drilling tool, T2-4...tapping tool, T2-5...hole drilling tool, T3, T3-1, T3-2...third rotating tool, T3-3...hole drilling tool, T3-4...tapping tool, T3-5...hole drilling tool, W...workpiece, WS...inclined surface of workpiece, Wa...first main surface of workpiece, Wb...second main surface of workpiece, Wc...first side surface of workpiece, Wd...second side surface of workpiece, We...top surface of workpiece,

Claims

1. A workpiece supporting device having a table for supporting a workpiece; a first processing device having a processing head capable of supporting a first rotary tool for processing the workpiece supported by the table, and a plurality of linear motion devices for three-dimensionally moving the processing head; a first robot having a multi-joint arm that changes a position and an orientation of a second rotary tool, and that processes the workpiece supported by the table using the second rotary tool; a second robot having a second articulated arm that changes a position and an orientation of a third rotary tool, and that processes the workpiece supported by the table using the third rotary tool; A wall defining a processing chamber; A door for opening and closing a work passage opening formed in the wall; Equipped with the workpiece supporting device has a first driving device that rotates the table around a first axis, In a plan view, the workpiece supporting device is disposed between the first processing device and the workpiece passing opening, In a plan view, the work passage opening, the first robot, the first processing device, and the second robot are disposed around the work support device. Machine tools.

2. The workpiece supporting device is disposed between the first robot and the second robot in a plan view. The machine tool according to claim 1.

3. The workpiece supporting device has a second driving device that tilts the table about a second axis different from the first axis.

3. The machine tool according to claim 1 or 2.

4. the first processing device has a first rotation drive device that rotates the first rotating tool around a first rotation axis, The first axis is disposed substantially perpendicular to a direction parallel to the first rotation axis, or the table can be tilted so that the first axis is substantially perpendicular to a direction parallel to the first rotation axis.

3. The machine tool according to claim 1 or 2.

5. a coolant supplying device for supplying a coolant toward the workpiece supported by the table; The processing head and the articulated arm are disposed in the processing chamber.

3. The machine tool according to claim 1 or 2.

6. The workpiece supporting device can index the table to each of a plurality of different index angle positions around the first axis, The first robot and the first processing device are disposed at two different angular positions around the workpiece support device in a plan view.

3. The machine tool according to claim 1 or 2.

7. The workpiece supporting device can index the table to each of a plurality of different index angle positions around the first axis, The first robot, the first processing device, and the work passage opening are disposed at three different angular positions around the work support device in a plan view.

3. The machine tool according to claim 1 or 2.

8. When a direction from the first processing device toward the work support device is defined as a first direction in a plan view, a third drive device is provided which moves the table device including the table and the first drive device in a direction parallel to the first direction.

3. The machine tool according to claim 1 or 2.

9. the table device is movable in a direction parallel to the first direction at least between an advanced position and a retracted position, the advance position is a position where the workpiece supported by the table can be processed by using the first processing device, The retracted position is a position where the work supported on the table can be rotated about the first axis without interfering with the first processing device. The machine tool according to claim 8.

10. When a direction from the first processing device toward the work support device is defined as a first direction in a plan view, a fourth drive device is provided to move the first processing device in a direction parallel to the first direction.

3. The machine tool according to claim 1 or 2.

11. the first processing device is movable in a direction parallel to the first direction between an advanced position and a retracted position; the advance position is a position where the workpiece supported by the table can be processed by using the first processing device, The retracted position is a position where the work supported on the table can be rotated about the first axis without interfering with the first processing device. The machine tool according to claim 10.

12. The surface machining of the workpiece is performed only by the first machining device, The processing for forming a plurality of holes in the workpiece is shared between the first processing device and the first robot.

3. The machine tool according to claim 1 or 2.

13. A control device for controlling the first robot is further provided. the first robot has a wrist disposed at a tip end of the articulated arm, The control device transmits a command to the first robot to correct a position and an orientation of the wrist in response to the second driving device changing the attitude of the workpiece around the second axis. The machine tool according to claim 3.

14. Further comprising a control device for controlling the second drive device, The control device is configured to execute a machining program stored in a memory, and thereby transmit a tilt command to the second drive device so that the inclined surface of the workpiece is changed from a position in which the inclined surface of the workpiece is inclined with respect to a first rotation axis, which is a rotation axis of the first rotating tool, to a position in which the inclined surface of the workpiece is substantially perpendicular to the first rotation axis. The machine tool according to claim 3.

15. the first robot has a tool support device attached to the articulated arm and capable of supporting the second rotary tool, The tool support device is a rotation drive device that rotates the second rotating tool about a rotation axis; a tool moving device that moves the second rotating tool in a direction parallel to the rotation axis; have 3. The machine tool according to claim 1 or 2.

16. a linear guide that movably supports a table device including the table and the first drive device, When a direction in which the table device is guided by the linear guide is defined as a third direction, and an area formed by virtually extending an area occupied by the table device in a direction parallel to the third direction is defined as a virtual area, the first processing device is disposed at a position overlapping with the virtual area in a plan view, The first robot is disposed on one side of the virtual area in a plan view.

3. The machine tool according to claim 1 or 2.

17. When the area center of the table when the table is located closest to the first processing device is defined as a first center, and the direction from the first center toward the center of the work passage opening in a plan view is defined as a 12 o'clock direction, the first processing device is disposed at a position overlapping at least one of a half line extending from the first center in a 5 o'clock direction, a half line extending from the first center in a 6 o'clock direction, and a half line extending from the first center in a 7 o'clock direction in a plan view, The first robot is disposed at a position overlapping at least one of a half line extending from the first center in a 2 o'clock direction, a half line extending from the first center in a 3 o'clock direction, a half line extending from the first center in a 4 o'clock direction, a half line extending from the first center in an 8 o'clock direction, a half line extending from the first center in a 9 o'clock direction, and a half line extending from the first center in a 10 o'clock direction in a plan view.

3. The machine tool according to claim 1 or 2.

Citation Information

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