The present invention relates to a control method and a control device suitable for position control of an industrial robot or the like that includes a motor and a speed reducer.
For example, a welding robot is a six-axis vertical articulated industrial robot, in which the tip of an arm is provided with a welding tool formed by a welding torch or the like. A joint unit, which is a driving unit of the welding robot, includes a motor serving as a driving source, and a speed reducer configured to transmit a driving force of the motor to the arm. The motor in the joint unit includes a position detector, such as an encoder, that detects the rotational position of the motor.
To the welding robot having the joint unit, a position command signal indicating a rotational position of the motor is given from the outside. Then, the rotation of the motor is controlled such that motor position information detected by the position detector matches a commanded position indicated by the position command signal. The rotation of the motor under such control is transmitted through the speed reducer to the arm, so that the welding torch or the like at the tip of the arm moves to a desired position.
As is well known, a speed reducer formed by combining a plurality of gears has backlash, which contributes to a positional deviation of an arm. An attempt has been made to eliminate the positional deviation of the arm. Specifically, the attempt involves obtaining the amount of backlash in the speed reducer in advance, adding a correction signal for compensating for the amount of backlash to a position command signal so as to generate a position command correction signal, and giving the position command correction signal to the welding robot to eliminate the positional deviation of the arm.
As means of eliminating the positional deviation of the arm, there are techniques disclosed in Patent Literatures (PTLs) 1 and 2 listed below.
PTL 1 discloses a robot control device that includes a position control unit and a backlash correcting unit. The position control unit is a servo mechanism configured to compare a command position signal with a position signal which is an output signal of position detecting means, and perform control such that a tip of an arm is located at a predetermined position specified by the command position signal. After each arm is moved to a predetermined position and a motor rotates by more than or equal to a predetermined amount of backlash in a speed reducer in the same direction as that in positioning for associating the position signal of the position detecting means with the position of the arm, if reversal of the rotation direction of the motor is detected, the backlash correcting unit performs backlash correction which involves adding the amount of correction corresponding to the amount of backlash to the command position signal, and thus eliminates the effect of backlash.
This control device is described as being capable of always performing appropriate backlash correction, and causing the hand tip position of the robot to accurately follow the commanded position.
PTL 2 discloses a numerical control device that includes control direction detecting means for monitoring a position command value for a control object, and detecting a control direction for controlling the control object; correction command value updating means for updating a backlash correction command value depending on the time elapsed after the control direction detected by the control direction detecting means is reversed; and control means for adding the backlash correction command value updated by the correction command value updating means to the position command value, and controlling the rotation of a motor that drives the control object on the basis of the result of the addition.
This numerical control device is described as being capable of compensating for backlash and accurately compensating for elastic deformation that occurs when the direction of movement of the control object is reversed.
PTL 1: Japanese Registered Utility Model No. 2564722
PTL 2: Japanese Unexamined Patent Application Publication No. 2004-2;34205
However, even with the robot control device disclosed in PTL 1, it may be difficult to always perform appropriate backlash correction.
For example, in the case where the arm of the robot is swung from side to side with respect to a weld line in weaving, even when backlash correction (backlash compensation) is performed in accordance with a conventional procedure illustrated in
A conventional backlash correction will now be described on the basis of
When the arm is swung from side to side in weaving, in other words, when a position command signal θr(t) indicating a rotational position of the motor is a periodic signal like a sine wave, the reciprocating motion (in particular, reciprocating reversal) of the arm is delayed in phase from the position command signal θr(t) due to the effect of backlash in the speed reducer. As a result, before the direction of motion of the arm is actually reversed, a control direction indicated by the position command signal θr(t) is reversed. A direction indicated by a stepped backlash quantity signal θB(t) for compensating for the amount of backlash is reversed at peak positions of the position command signal θr(t), that is, at the same time as the time when the control direction of the position command signal θr(t) is reversed. Therefore, a final position command signal θFr(t) is generated by adding, to the position command signal θr(t) whose control direction is reversed before the position where the reciprocating motion of the arm should be reversed, the backlash quantity signal θB(t) whose direction is also reversed before the position where the reciprocating motion of the arm should be reversed. The waveform of the final position command signal θFr(t) shown in
When the final position command signal θFr(t) is input to the robot to control the arm, the control direction indicated by the final position command signal θFr(t) is reversed before the position where the reciprocating motion of the arm should be reversed. Therefore, the amplitude of the reciprocating motion of the arm (i.e., a rotation angle θA(t) of the arm) indicated by a solid line is smaller than the amplitude of the original position command signal θr(t) indicated by a broken line. This means that the effect of backlash on the reciprocating motion of the arm cannot be eliminated.
That is, as compared to the case where the speed reducer has no backlash and a position command signal is thus directly input to the robot without addition of a correction signal for compensating for the amount of backlash to the position command signal, the behavioral range (amplitude of reciprocation) of the arm in PTL 1 is smaller.
The numerical control device disclosed in PTL 2 has a transfer function filter. The transfer function filter is obtained by modeling a transfer function from friction acting on the arm to a deviation between the position of the arm and the position of the motor. This filter converts a rectangular-wave backlash quantity signal to a smooth signal.
However, as in PTL 1, if the position command signal is a periodic signal like a sine wave, the reciprocating motion of the arm is delayed in phase from the position command signal. Therefore, before the reciprocating motion of the arm is actually reversed, the position command signal is reversed and the backlash quantity signal is also reversed. Even though the backlash quantity signal is smoothed out by the filter, the amplitude of the reciprocating motion of the arm is smaller than that in the case where the speed reducer has no backlash, as in PTL 1.
In view of the problems described above, the present invention aims to provide a control method and a control device that can make, when a position command signal indicating a position of a control object such as an industrial robot is a periodic signal like a sine wave, the behavioral range (amplitude of reciprocation) of the control object the same as that in the case were a speed reducer has no backlash, or the same as the amplitude of the position command signal.
To achieve the object described above, the present invention adopts the following technical means.
A control method according to the present invention is a control method that performs position control of a control object while compensating for backlash in the control object, the control object being configured to move periodically. The control method includes a final position command signal generating step of generating a final position command signal by shifting a backlash quantity signal that compensates for the backlash and adding the backlash quantity signal to a position command signal indicating a position of the control object; and a position control step of performing position control of the control object on the basis of the final position command signal generated in the final position command signal generating step.
Preferably, the final position command signal generating step may include a position command signal generating step of generating the position command signal; a control direction detecting step of detecting, on the basis of the position command signal generated in the position command signal generating step, a control direction for controlling the control object; a backlash quantity calculating step of generating, in accordance with the control direction detected in the control direction detecting step, a backlash quantity signal for compensating for the amount of backlash in the control object; a delay time calculating step of generating a backlash correction signal by delaying, by a predetermined delay time with respect to the position command signal, the backlash quantity signal generated in the backlash quantity calculating step; and a signal adding step of generating a final position command signal by adding the backlash correction signal generated in the delay time calculating step to the position command signal. The position control step may control the position of the control object on the basis of the final position command signal generated in the signal adding step.
Preferably a length of time less than or equal to half a period of the position command signal formed by a periodic signal may be set as the predetermined delay time used in the delay time calculating step.
Preferably, an actual output of the control object driven on the basis of the position command signal formed by a periodic signal may be determined in advance, a phase difference between the position command signal and the actual output may be determined, and the determined phase difference may be set as the predetermined delay time used in the delay time calculating step.
Preferably, a control model obtained by modeling the control object may be prepared; and a model output obtained when the position command signal formed by a periodic signal is input to the control model may be determined, a phase difference between the position command signal and the model output may be determined, and the determined phase difference may be set as the predetermined delay time used in the delay time calculating step.
Preferably, an actual output of the control object driven on the basis of the position command signal formed by a step signal may be determined in advance, a time constant based on a response time required for the actual output to reach the position indicated by the position command signal may be determined, and the time constant may be set as the predetermined delay time used in the delay time calculating step.
A control device according to the present invention is a control device that performs position control of a control object while compensating for backlash in the control object, the control object being configured to move periodically. The control device includes a controller configured to generate a final position command signal by shifting a backlash quantity signal that compensates for the backlash and adding the backlash quantity signal to a position command signal indicating a position of the control object, the controller being configured to perform position control of the control object on the basis of the generated final position command signal.
Preferably, the controller may include a position command signal generating unit configured to generate the position command signal; a control direction detecting unit configured to detect, on the basis of the position command signal generated by the position command signal generating unit, a control direction for controlling the control object; a backlash quantity calculating unit configured to generate, in accordance with the control direction detected by the control direction detecting unit, a backlash quantity signal for compensating for the amount of backlash in the control object; a delay time calculating unit configured to generate a backlash correction signal by delaying, by a predetermined delay time with respect to the position command signal, the backlash quantity signal generated by the backlash quantity calculating unit; a signal adding unit configured to generate a final position command signal by adding the backlash correction signal generated by the delay time calculating unit to the position command signal; and a position control unit configured to control the position of the control object on the basis of the final position command signal generated by the signal adding unit.
When a position command signal indicating a position of a control object, such as an industrial robot, is a periodic signal like a sine wave, the control method and the control device according to the present invention can make the behavioral range (amplitude of reciprocation) of the control object the same as that in the case where a speed reducer has no backlash, or the same as the amplitude of the position command signal.
Each embodiment of the present invention will now be described on the basis of the drawings. In the following description, the same components are given the same reference numerals. Names and functions of the same components are also the same. Therefore, a detailed description of the same components will not be repeated.
[First Embodiment]
A control method and a control device for controlling an arm according to a first embodiment of the present invention will be described with reference to the drawings.
An overall configuration of a robot system 1 will be described, to which the control method and the control device of the present embodiment are applied.
As illustrated in
The welding robot 2 is a six-axis vertical articulated industrial robot having a tip provided with a welding tool 4 formed, for example, by a welding torch. The welding robot 2 may be mounted on a slider (not shown) configured to move the welding robot 2.
As illustrated in
The encoder 8 is a device attached to the motor 6. The encoder 8 detects a rotation angle of the motor 6, and outputs the detected rotation angle as a rotation angle signal to the control device 3.
The speed reducer 7 attached to the motor 6 has backlash because it is formed by a plurality of gears. Therefore, when the rotation direction of the motor 6 is reversed to cause the speed reducer 7 moving in the forward direction to move backward, the backlash causes a time difference to occur, at the moment of the reversal, between the time when the motor 6 starts to rotate backward and the time when the speed reducer 7 starts (outputs) a backward motion. That is, the presence of backlash causes an error phenomenon in which, when the rotation direction of the motor 6 is reversed, the rotation of the motor 6 does not match the motion (output) of the speed reducer 7.
To compensate for the error (i.e., to eliminate the error phenomenon) caused by the backlash, the control device 3 of the present invention includes a backlash quantity calculating unit 9 and a delay time calculating unit 10, which will be described in detail later on.
The control device 3 included in the robot system 1 controls the operation of the welding robot 2 in accordance with a teach program taught in advance. The teach program may be generated by using a teach pendant connected to the control device 3, or may be generated offline by using a teach data generating device (not shown). In either case, the teach program is generated in advance before the welding robot 2 actually performs a welding operation. The teach program generated by using the teach data generating device may be passed, through a medium or the like that magnetically or electrically stores data, to the control device 3, or may be transferred to the control device 3 by data communication.
The control device 3 has a controller 15 that includes a position command signal generating unit 11, a control direction detecting unit 12, the backlash quantity calculating unit 9, the delay time calculating unit 10, a signal adding unit 13, and a position control unit 14.
Each component of the control device 3 will be described with reference to
To control a rotation angle position of the arm 5, the position command signal generating unit 11 generates and outputs a position command signal θr(t) for specifying a rotation angle position of the motor 6 corresponding to the rotation angle position of the arm 5.
As illustrated in
The control direction detecting unit 12 detects the rotation control direction for controlling the motor 6 from the position command signal output from the position command signal generating unit 11, and outputs a stepped control direction signal having a positive or negative value of 1 in accordance with the control direction.
The value of the control direction signal changes from positive to negative or negative to positive at a peak position of the position command signal θr(t). That is, the waveform of the control direction signal changes in a stepped manner from a value of 1 to a value of −1 or from a value of −1 to a value of 1 at a peak position of the position command signal θr(t).
When the control direction is not reversed, the control direction detecting unit 12 continues to output a control direction signal with the same value. In the initial state, the control direction detecting unit 12 outputs a control direction signal with a value of 0.
The backlash quantity calculating unit 9 multiplies the control direction signal output from the control direction detecting unit 12 by a predetermined backlash compensation gain B to generate and output a backlash quantity signal θB(t). The backlash quantity signal θB(t) is a signal obtained by multiplying a stepped control direction signal having a positive or negative value of 1 by the backlash compensation gain B. Therefore, the backlash quantity signal θB(t) has a stepped waveform like the control direction signal.
The backlash quantity signal θB(t) shown in
The value of the backlash compensation gain B is set such that the value of the backlash quantity signal θB(t) has a magnitude corresponding to the amount of backlash in the speed reducer 7.
The delay time calculating unit 10 generates a backlash correction signal θBL(t) by delaying, by a given time L (delay time L), the backlash quantity signal θB(t) output from the backlash quantity calculating unit 9, and outputs the backlash correction signal θBL(t).
The backlash correction signal θBL(t) shown in
Note that the backlash quantity calculating unit 9 and the delay time calculating unit 10 are collectively referred to as a backlash correction signal calculating section.
The signal adding unit 13 adds the backlash correction signal θBL(t) output from the delay time calculating unit 10 to the position command signal θr(t) output from the position command signal generating unit 11 to generate and output a final position command signal θFr(t).
The position control unit 14 calculates a command voltage of the motor 6 and controls the rotational position of the motor 6 such that the rotation angle signal of the motor 6 detected by the encoder 8 follows the final position command signal θFr(t) output from the signal adding unit 13. Under the control of the position control unit 14, the motor 6 operates to drive the arm 5 through the speed reducer 7.
In the present embodiment, where the backlash correction signal θBL(t) which is delayed by the delay time L is used, it is possible to eliminate the effect of backlash on the reciprocating motion of the arm 5 which cannot be eliminated by the procedure of the conventional backlash compensation illustrated in
The necessity for adopting the backlash correction signal θBL(t) delayed by the delay time L will be described from another perspective by using, as an example, the case where weaving is performed by the robot system 1 having the configuration described above.
As described above, weaving involves swinging the arm 5 having the welding tool 4 at the tip thereof from side to side with respect to a weld line. In other words, the position control unit 14 causes the arm 5 to reciprocate by controlling the rotational position of the motor 6 in accordance with the position command signal θr(t) which is a periodic signal like a sine wave or the final position command signal θFr(t).
As shown in
θM(t): rotation angle of motor
θA(t): rotation angle of arm
vA(t): rotation angle speed of arm
C: reduction ratio
Δθ: amount of backlash in speed reducer
As compared to the output of the speed reducer 7 indicated by the broken line, the solid waveform representing the actual rotation angle θA(t) of the arm 5 is smaller in amplitude by the amount of backlash Δθ in the speed reducer 7. Also, due to the presence of backlash, the phase of the waveform of the actual rotation angle θA(t) is delayed from the phase of the rotation angle em(t) of the motor 6 indicated by the dot-and-dash line.
For the rotation angle θA(t) of the arm 5 delayed in phase from the position command signal θr(t) and the rotation angle θM(t) of the motor 6, it is necessary to make compensation (backlash compensation) for the loss of amplitude caused by backlash.
In the present embodiment, as described above, the loss of amplitude of the rotation angle θA(t) of the arm 5 caused by backlash is compensated for by adding the backlash correction signal θBL(t) shown in
Generation of the backlash correction signal θBL(t) will be described with reference to
The position command signal generating unit 11 of the control device 3 generates and outputs the position command signal θr(t) indicating the rotation angle position of the arm for carrying out weaving. The weaving requires the arm 5 to smoothly reciprocate with constant amplitude. Therefore, the position command signal generating unit 11 outputs the sinusoidal position command signal θr(t) such as that shown in
From the position command signal θr(t) output from the position command signal generating unit 11 in step S1, the control direction detecting unit 12 detects a direction (control direction) for controlling the rotation of the arm 5, and outputs a stepped control direction signal θ±(t) in accordance with the detected control direction. The control direction signal θ±(t) is a stepped signal having a positive or negative value of 1, such as that shown in
On the basis of the control direction signal θ±(t) output from the control direction detecting unit 12 in step S2, the backlash quantity calculating unit 9 generates the backlash quantity signal ΘB(t) in accordance with the following procedure and outputs the backlash quantity signal ΘB(t) (backlash quantity calculating step). The delay time calculating unit 10 delays the backlash quantity signal θB(t) by the delay time L to generate the backlash correction signal θBL(t) in accordance with the following procedure, and outputs the backlash correction signal θBL(t) (delay time calculating step) (step S3 in
First, by using the reduction ratio (C in expression (1)) of the speed reducer 7 and the amount of backlash in the speed reducer 7 (Δθ in expression (1)) measured in advance, the backlash quantity calculating unit 9 calculates the backlash compensation gain B in accordance with expression (3).
[Expression 3]
B=Δ0/C (3)
Next, as shown in expression (4), the backlash quantity calculating unit 9 multiplies the control direction signal θ±(t) output in step S2 by the backlash compensation gain B to generate the backlash quantity signal θB(t).
[Expression 4]
θB(t)=B·θ±(t) (4)
If the backlash compensation gain B is a value less than 1, the generated backlash quantity signal θB(t) is a stepped signal having an amplitude smaller than that of the control direction signal θ±(t), as shown in
Next, by delaying the obtained backlash quantity signal θB(t) by the delay time L without changing the waveform and the amplitude, the delay time calculating unit 10 generates and outputs the backlash correction signal θBL(t) shown in
[Expression 5]
θBL(t)=θB(t−L) (5)
The backlash correction signal θBL(t), which is a technical feature of the present embodiment, can be obtained by the processes described above. With reference to
The signal adding unit 13 adds the backlash correction signal ΘBL(t) output from the delay time calculating unit 10 in step S3 to the position command signal θr(t) output from the position command signal generating unit 11 in step S1, so as to generate and output the final position command signal θFr(t) defined by expression (6) (step S4 in
The series of steps S1 to S4 described above is referred to as a final position command signal generating step.
[Expression 6]
θFr(t)=θBL(t)+θr(t) (6)
As shown in
The position control unit 14 calculates the command voltage of the motor 6 and controls the rotational position of the motor 6 such that the rotation angle signal of the motor 6 detected by the encoder 8 follows the final position command signal θFr(t) output from the signal adding unit 13. Under the control of the position control unit 14, the motor 6 operates to control the angle of the arm 3 through the speed reducer 7 (step S5 in
By the processing in steps S1 to S5 described above, weaving can be performed by the robot system 1 unaffected by backlash.
A method for setting the delay time L according to the present embodiment will now be described with reference to
In the present embodiment, the delay time calculating unit 10 sets the delay time L (seconds) to be longer than or equal to the length of time from when the control direction detected by the control direction detecting unit 12 is reversed to when the behavior of the arm 5 is actually reversed.
By setting the delay time L (seconds) as described above, the amplitude of the arm 5 becomes the same as that in the case without backlash. That is, the amplitude of the arm 5 indicated by a solid line becomes the same as the amplitude obtained in the case without backlash and indicated by a broken line (i,e, the position represented by the original position command signal θr(t)) (see
If the delay time L is set to be shorter than the length of time from when the control direction is reversed to when the behavior of the arm 5 is actually reversed, the amplitude of the arm 5 indicated by a solid line is smaller than the amplitude obtained in the case without backlash and indicated by a broken line (see
In the present embodiment, based on the idea described above, a set value of the delay time L is set to be larger than 0. Thus, the reversal position (amplitude) of the behavior of the arm 5 is brought closer to the reversal position (amplitude) in the case without backlash.
For example, if the delay time L is set to be longer than or equal to the length of time from when the control direction indicated by the position command signal θr(t) is reversed to when the next reversal takes place, that is, if the delay time L set by the setting method described above is too large, the behavior of the arm 5 in the next reversal may be affected.
Also, when the position command signal θr(t) is a periodic signal, if the delay time L is set to be longer than or equal to half the period of the position command signal θr(t), the behavior of the arm 5 in the next reversal may be affected. In such a case, if the delay time L is set to be shorter than or equal to half the period of the position command signal θr(t), the effect of the present embodiment described above can be achieved.
The method for determining the delay time L according to the first embodiment is as described above.
[Second Embodiment]
A second embodiment of the present invention will now be described.
A configuration of the robot system 1 according to the present embodiment is substantially the same as that in the first embodiment described above. A difference from the first embodiment is how the delay time calculating unit 10 sets the delay time L. A method for setting the delay time L according to the second embodiment will be described with reference to
The present embodiment will describe a method for accurately setting the delay time L in accordance with the following procedure when the position command signal θr(t) generated by the position command signal generating unit 11 is a periodic signal with a frequency ω (rad/s).
(Step 1)
First, as a signal (final position command signal θFr(t)) input to the position control unit 14, a periodic signal (e.g., sinusoidal signal) with a frequency ω (rad/s), the periodic signal not including the backlash correction signal θBL(t), is adopted and the rotation angle θA(t) of the arm 5 is measured (by actual measurement). If there is no means for actually measuring the rotation angle θA(t) of the arm 5, C·θM(t) obtained by multiplying the rotation angle θM(t) of the motor 6 measured by the encoder 8 by the reduction ratio C of the speed reducer 7 is used as the rotation angle θM(t) of the arm 5 here.
(Step 2)
As shown in
For example, for the final position command signal θFr(t) and the rotation angle θA(t) of the arm 5 in
With reference to
[Third Embodiment]
A third embodiment of the present invention will now be described.
A configuration of the robot system 1 according to the present embodiment is substantially the same as those in the first and second embodiments described above. A difference from the first and second embodiments is how the delay time calculating unit 10 sets the delay time L. A method for setting the delay time L according to the present embodiment will be described with reference to
In the present embodiment, the delay time L is determined on the basis of the rotation angle θA(t) of the arm 5 actually measured when a step signal is input to the position control unit 14. This setting method which involves using a step signal is effective even when the position command signal θr(t) generated by the position command signal generating unit 11 is not a periodic signal. A procedure for setting the delay time L will be sequentially described below.
(Step 1)
First, as a signal (final position command signal θFr(t)) input to the position control unit 14, a signal (step signal) whose value remains constant after a time point 0 (seconds) is adopted and the rotation angle θA(t) of the arm 5 is measured (actual measurement). If there is no means for actually measuring the rotation angle θA(t) of the arm 5, C·θM(t) obtained by multiplying the rotation angle θM(t) of the motor 6 measured by the encoder 8 by the reduction ratio C of the speed reducer 7 is used as the rotation angle θA(t) of the arm 5 here.
(Step 2)
On the basis of the graph of
With reference to
By setting the delay time L using the time constant described above, the delay time L becomes suitable for the system of the robot system 1. Therefore, after being reversed, the behavior of the arm 5 quickly becomes closer to that in the case without backlash.
[Fourth Embodiment]
A fourth embodiment of the present invention will now be described.
A configuration of the robot system 1 according to the present embodiment is substantially the same as those in the first to third embodiments described above. A difference from the first to third embodiments is how the delay time calculating unit 10 sets the delay time L. A method for setting the delay time L according to the present embodiment will be described with reference to
The methods of the second and third embodiments involve actually inputting a step signal or a sinusoidal signal into the robot system 1 and actually measuring the rotation angle θA(t) of the arm 5. In the method of the present embodiment, the delay time L is set on the basis of a model of the welding robot 2. The following describes a procedure for setting the delay time L using the model of the welding robot 2.
First, a process from the final position command signal θFr(t), which is a signal input to the position control unit 14, to the rotation angle θA(t) of the arm 5 is modeled in the form of a block diagram of
In
K(s) represents the position control unit 14 and is, for example, PI control expressed by expression (7).
[Expression 7]
kP+kI/s (7)
s: Laplace operator
kP: proportional gain
kI: integral gain
A transfer function from the final position command signal θFr(t) to the rotation angle θA(t) of the arm 5 can be expressed by expression (8) below.
J: moment of inertia of arm obtained when moments of inertia of motor and speed reducer are regarded as all being present in arm
LM: internal inductance of motor
C: reduction ratio of speed reducer
RM: internal resistance of motor
Kr: torque constant
Ke: back-electromotive force constant
F(t): frictional force acting on arm
s: Laplace operator representing integral
kP: proportional gain
kI: integral gain
Here, a transfer function from the final position command signal θFr(t) to the rotation angle θA(t) of the arm 5 in the expression described above will be expressed as G(s).
For this model, as in the third embodiment described above, a simulation is performed in which a step signal is input to determine the output, and thus to determine the delay time L.
When the position command signal θr(t) generated by the position command signal generating unit 11 is a sinusoidal signal with a frequency ω (rad/s), a phase delay argG(jω) corresponding to the frequency ω(rad/s) in the range from the final position command signal θFr(t) to the rotation angle θA(t) of the arm 5 is determined, where represents an imaginary unit, G(jω) is obtained by substituting jω for s of G(s), and argG(jω) represents an argument of G(jω). Then, −argG(jω))/ω) is used as the delay time
The delay time L is thus determined from the model of the welding robot 2. Therefore, unlike the second and third embodiments described above, the delay time L can be set without actually performing a measurement experiment with an actual device.
Even when the delay time L set in the present embodiment is used to generate the backlash correction signal θBL(t), the same effect as those of the embodiments described above can be achieved.
The embodiments disclosed herein should be considered illustrative, not restrictive, in all respects. In particular, for matters not specifically disclosed in the embodiments herein (e.g., operating conditions, measuring conditions, various parameters, and dimensions, weights, and volumes of components), values that do not depart from the scope typically implemented by those skilled in the art and that can be readily anticipated by those skilled in the art are adopted.
1: robot system
2: welding robot
3: control device
4: welding tool
5: arm
6: motor
7: speed reducer
8: encoder
9: backlash quantity calculating unit
10: delay time calculating unit
11: position command signal generating unit
12: control direction detecting unit
13: signal adding unit
14: position control unit
15: controller
Number | Date | Country | Kind |
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2011-190637 | Sep 2011 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2012/069645 | 8/2/2012 | WO | 00 | 2/28/2014 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/031465 | 3/7/2013 | WO | A |
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