MACHINE TOOL AND CONTROL DEVICE FOR MACHINE TOOL
20220314332 ยท 2022-10-06
Assignee
Inventors
Cpc classification
B23Q17/0961
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A machine tool and a controller for the machine tool that accurately detect a defect in a cutting-off process due to breakage of a cutting-off bit and the like is provided. The machine tool includes: a spindle 110 for holding one end side of a workpiece W; an opposed chuck 131 that is opposed to the spindle 110 and is movable with holding another end side of the workpiece W; and a spindle moving motor 122 for moving the spindle 110. The machine tool or the controller is provided with a load detector 172 for detecting a load of the spindle moving motor 122, and workpiece separation detector 173 for detecting a defect in a cutting-off process from the load in performing a taking out operation.
Claims
1. A machine tool comprising: a spindle holding one end side of a workpiece; an opposed chuck opposed to the spindle and movable in a direction away from the spindle while holding another end side of the workpiece; a spindle moving motor for moving the spindle; and a controller configured to perform a cutting-off process of cutting the workpiece to separate a machined portion of the workpiece and an unmachined portion of the workpiece while holding the workpiece by the spindle and the opposed chuck, and to perform a taking out process of moving the machined portion and the unmachined portion away from one another while the spindle is stopped, wherein the controller includes, a load detector detecting a load of the spindle moving motor, and a workpiece separation detector detecting a defect in the cutting-off process based on the detected load during the taking out process.
2. The machine tool according to claim 1, wherein the load detector detects a current value of the spindle moving motor as a load.
3. The machine tool according to claim 2, wherein the workpiece separation detector detects a defect in the cutting-off process from an increase in the detected current value.
4. The machine tool according to claim 1, wherein the opposed chuck is attached to a rear spindle which is rotatable and opposed to the spindle.
5. The machine tool according to claim 4, wherein controller stops the movement of the opposed chuck when the workpiece separation detector detects that there is a defect in the a cutting-off process.
6. A controller for controlling a machine tool, the machine tool including: a spindle holding one end side of a workpiece; an opposed chuck that-is-opposed to the spindle and is movable in a direction away from the spindle while holding another end side of the workpiece; and a spindle moving motor for moving the spindle, wherein the controller is configured to perform a cutting-off process of cutting the workpiece to separate a machined portion of the workpiece and an unmachined portion of the workpiece while holding the workpiece by the spindle and the opposed chuck, and to perform a taking out process of moving the machined portion and the unmachined portion away from one another while the spindle is stopped, and wherein the controller includes, a load detector detecting a load of the spindle moving motor, and a workpiece separation detector detecting a defect in the cutting-off process based on the d load during the taking out process.
7. A machine tool comprising: a spindle holding one end side of a workpiece; an opposed chuck opposed to the spindle and movable in a direction away from the spindle while holding another end side of the workpiece; a spindle moving motor for moving the spindle; and a controller configured to perform a cutting-off process of cutting the workpiece to separate a machined portion of the workpiece and an unmachined portion of the workpiece while holding the workpiece by the spindle and the opposed chuck, and to perform a taking out process of moving the machined portion and the unmachined portion away from one another while the spindle is stopped, wherein the controller is further configured to: detect a load of the spindle moving motor, and detect a defect in the cutting-off process based on the detected load during the taking out process.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DESCRIPTION OF EMBODIMENTS
[0027] The specific embodiment of the present invention may be arbitrary as long as a machine tool comprises: a spindle for holding one end side of a workpiece; an opposed chuck that is opposed to the spindle and is movable with holding another end side of the workpiece; and a spindle moving motor for moving the spindle, and after a cutting-off process, in which a machined portion of the workpiece and an unmachined portion of the workpiece are separated from each other in a state where the workpiece is held by the spindle and the opposed chuck, is terminated, the machine tool takes out the machined portion of the workpiece by moving the opposed chuck in a state where the spindle is stopped, wherein the machine tool is provided with a load detector detecting a load of the spindle moving motor, and a workpiece separation detector detecting a defect in a cutting-off process from the load in performing the taking out, and a defect in the cutting-off process due to the breakage of the cutting-off bit and the like is accurately detected.
Example
[0028] Hereinafter, with reference to
[0029] First, with reference to
[0030]
[0031] As shown in
[0032] Further, the machine tool 100 is provided with a tool post 150 including a cutting tool T such as a tool bit for cutting the workpiece W or a cutting-off tool for cutting-off the workpiece W, a bed 160 on which the spindle 110 and the rear spindle 130 are placed, and a control device (a controller) 170 for electronically controlling each component of the machine tool 100.
[0033] The spindle 110 has a chuck 111 for griping one end side of the workpiece W, a spindle main body 112 with the tip end to which the chuck 111 is attached, and a spindle headstock 113 for supporting the rear end side of the spindle main body 112.
[0034] The spindle main body 112 can be rotated by rotationally driving a not-shown spindle rotation motor (for example, a conventionally known built-in motor).
[0035] The spindle headstock 113 is mounted so as to be movable in the Z-axis direction (long axis direction L of the workpiece W) by the spindle mover 120.
[0036] The spindle mover 120 has a spindle moving mechanism 121 on which the spindle headstock 113 is mounted and which is mounted on the bed 160, and a spindle moving motor 122 for driving the spindle moving mechanism 121.
[0037] The spindle moving motor 122 is, for example, a linear servo motor.
[0038] The rear spindle 130 has an opposed chuck 131 for griping another end side of the workpiece W, a rear spindle main body 132 with the tip end to which the opposed chuck 131 is attached, and a rear spindle headstock 133 for supporting the rear end side of the rear spindle main body 132.
[0039] The rear spindle main body 132 can be rotated by rotationally driving a not-shown rear spindle rotation motor (for example, a conventionally known built-in motor).
[0040] The rear spindle headstock 133 is mounted so as to be movable in the Z-axis direction (long axis direction L of the workpiece W) by the rear spindle mover 140.
[0041] Therefore, the rear spindle 130 is movable in the Z-axis direction.
[0042] The rear spindle mover 140 has a rear spindle moving mechanism 141 on which the rear spindle headstock 133 is mounted and which is mounted on the bed 160, and a rear spindle moving motor 142 for driving the rear spindle moving mechanism 141.
[0043] The rear spindle moving motor 142 is, for example, a linear servomotor, and since the opposed chuck 131 is moved by driving the rear spindle moving motor 142, the rear spindle moving motor 142 functions as an opposed chuck mover moving the opposed chuck 131.
[0044] The tool post 150 can be moved by a not shown tool post mover in the X-axis direction (direction orthogonal to the Y-axis direction and Z-axis direction), Y-axis direction (direction orthogonal to the Z-axis direction and X-axis direction), and Z-axis direction.
[0045] The controller 170 has movement control means (a movement controller) 171 for controlling the spindle moving motor 122 and the rear spindle moving motor 142, load detecting means (a load detector) 172 for detecting the load of the spindle moving motor 122, and workpiece separation detecting means (a workpiece separation detector) 173 for detecting from the load detected by the load detector 172 whether or not a machined portion of the workpiece W is separated from an unmachined portion of the workpiece W.
[0046] In the present example, the load detector 172 detects a current value of the spindle moving motor 122 as a load.
[0047] In the present example, the workpiece separation detector 173 detects whether or not the machined portion of the workpiece W is separated from the unmachined portion of the workpiece W (that is, a defect in the cutting-off process) from an increase in the current value of the spindle moving motor 122 detected by the load detector 172.
[0048] Next, with reference to
[0049]
[0050] As shown in
[0051] In this state, as shown in
[0052] In a state where the spindle 110 and the opposed chuck 131 hold the workpiece W, in order to separate the unmachined portion Wy and the machined portion Wf of the workpiece W from each other, the cutting-off process is performed with a cutting-off tool Tg as shown in
[0053] Then, after the predetermined cutting-off process is terminated, the spindle 110 is stopped, and as shown in
[0054] Next, in order to take out the machined portion Wf of the workpiece W, the rear spindle 130 is moved backward from the spindle 110 (step S120).
[0055] Next, a current value I of the spindle moving motor 122 is measured by the load detector 172. (Step S130)
[0056] Then, it is determined whether or not this current value I is larger than a predetermined current value Ic (for example, the current value applied in order to stop the spindle moving motor 122) (step S140).
[0057] If the current value I is equal to or less than the predetermined current value Ic, the spindle moving motor 122 is not driven, that is to say, the spindle 110 is stopped. Then, the workpiece separation detector 173 detects that it is in a separated state in which the machined portion Wf of the workpiece W is separated from the unmachined portion Wy of the workpiece W, and the flow goes to the end.
[0058] If the current value I is larger than the predetermined current value Ic, the workpiece separation detector 173 detects that it is in an unseparated state in which the machined portion Wf of the workpiece W is not separated from the unmachined portion Wy of the workpiece W.
[0059] This is because, as shown in
[0060] If the workpiece separation detector 173 detects that the workpiece W is in the unseparated state, the movement controller 171 stops the backward movement of the rear spindle 130 by the rear spindle moving motor 142 (step S150).
[0061] Then, the alert is notified to the operator (step S160).
[0062] According to the machine tool 100 and the controller 170 described above, a state, in which the machined portion Wf of the workpiece W is not separated from the unmachined portion Wy of the workpiece W, is more easily detected than in the case where the current value applied to the rear spindle motor 142 is used to detect whether or not the machined portion Wf of the workpiece W is separated from the unmachined portion Wy of the workpiece. Therefore, it is possible to accurately detect that the workpiece W is not separated by the cutting-off process.
[0063] Although an example of the present invention has been described above, the present invention is not limited to the above example.
[0064] For example, in the present example, the rear spindle headstock 133 is mounted so as to be movable in the Z-axis direction (long axis direction of the workpiece W) by the rear spindle mover 140, but the moving direction of the rear spindle headstock 133 is not limited to this direction.
[0065] For example, as long as the controller 170 can control the machine tool 100, the controller 170 may be incorporated in the machine tool 100 or may be separated from the machine tool 100.
REFERENCE SIGNS LIST
[0066] 100 machine tool [0067] 110 spindle [0068] 111 chuck [0069] 112 spindle main body [0070] 113 spindle headstock [0071] 120 spindle moving means (spindle mover) [0072] 121 spindle moving mechanism [0073] 122 spindle moving motor [0074] 130 rear spindle [0075] 131 opposed chuck [0076] 132 rear spindle main body [0077] 133 rear spindle headstock [0078] 140 rear spindle moving means (rear spindle mover) [0079] 141 rear spindle moving mechanism [0080] 142 rear spindle moving motor (opposed chuck moving means) [0081] 150 tool post [0082] 160 bed [0083] 170 control device (controller) [0084] 171 movement control means (movement controller) [0085] 172 load detecting means (load detector) [0086] 173 workpiece separation detecting means (workpiece separation detector) [0087] W workpiece [0088] Wf machined portion [0089] Wy unmachined portion [0090] T cutting tool [0091] Tg cutting-off tool [0092] L long axis direction of workpiece [0093] I current value of spindle moving motor [0094] Ic predetermined current value