Motor drive device
10075120 ยท 2018-09-11
Assignee
Inventors
Cpc classification
International classification
Abstract
A motor drive device includes: reverse converter that converts DC power from a forward converter into AC power; a DC link capacitor provided in a DC link; a first current detection part that detects current flowing between the forward converter and capacitor; a second current detection part that detects current flowing between the capacitor and reverse converter; a voltage detection part that detects a voltage of the capacitor; and a capacitance decline detection part that obtains a change value in electric charge of the capacitor from a n integrated value by integrated a predetermined time of a difference in current values detected by the current detection parts, obtains a capacitance value of the capacitor based on the obtained change amount in electric charge and change amount in voltage of the capacitor for the predetermined time, and detects a capacitance decline in the capacitor based on the obtained capacitance value.
Claims
1. A motor drive device comprising: at least one reverse converter that converts DC power from a forward converter, which converts AC power into the DC power, into AC power; a DC link capacitor provided to each of the reverse converters in a DC link between the forward converter and the reverse converter; a first current detection part that detects current flowing between the forward converter and the DC link capacitor in the DC link; a second current detection part that detects current flowing between the DC link capacitor and the reverse converter in the DC link; a voltage detection part that detects a voltage of the DC link capacitor; and a capacitance decline detection part that obtains, from an integrated value by integrating a difference between a current value detected by the first current detection part and a current value detected by the second current detection part over a predetermined time, a change amount in electric charge of the DC link capacitor for the predetermined time; obtains a change amount in voltage of the DC link capacitor for the predetermined time based on a voltage value detected by the voltage detection part; obtains a capacitance value of the DC link capacitor based on the change amount in electric charge and the change amount in voltage obtained; and performs detection of a capacitance decline in the DC link capacitor based on the capacitance value obtained.
2. The motor drive device according to claim 1, further comprising a storage part that stores in advance a threshold for detecting the capacitance decline in the DC link capacitor, wherein the capacitance decline detection part detects that the capacitance of the DC link capacitor has declined in a case of the capacitance value obtained being less than the threshold.
3. The motor drive device according to claim 2, wherein the storage part is rewritable and rewrites the threshold according to an external device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION OF THE INVENTION
(9) Hereinafter, an example of an embodiment of the present invention will be explained by referencing the drawings. It should be noted that the same reference symbols shall be attached to identical or corresponding portions in the respective drawings.
(10)
(11) The converter section 10 includes a forward converter 11. The forward converter 11 converts the AC power from the AC power source 2 into DC power. The forward converter 11, for example, is configured by a power semiconductor device and a diode rectifying converter or PWM converter having a bridge circuit of a diode connected reversely parallel to the power semiconductor device.
(12) The inverter section 20 includes a reverse converter 21, DC link capacitor 22, first current detection part 23, second current detection part 25, voltage detection part 25, storage part 26, and capacitance decline detection part 27.
(13) The reverse converter 21 converts the DC power from the forward converter 11 into AC power, and supplies this AC power to the motor 3. The reverse converter 21, for example, is configured from a power semiconductor device and a bridge circuit having a diode connected reversely parallel to this. The reverse converter 21 converts the DC voltage into an AC voltage of a desired waveform and frequency, by on-off controlling (e.g., PWM controlling) these power semiconductor devices according to the commands from a control unit (not illustrated).
(14) In addition, the reverse converter 21 converts the AC power regenerated from the motor 3 into DC power, and supplies this DC power to a DC link 30 between the reverse converter 21 and forward converter 11.
(15) The DC link capacitor 22 is provided to the DC link 30 between the forward converter 11 and reverse converter 21. The DC link capacitor 22 stores the DC power from the forward converter 11 and the DC power (regeneration power) from the reverse converter 21. In addition, the DC link capacitor smooths the DC voltage converted by the forward converter 11 or reverse converter 21.
(16) The first current detection part 23 is provided between the forward converter 11 and DC link capacitor 22 of the DC link 30, and detects the current flowing through this portion. The second current detection part 24 is provided between the DC link capacitor 22 and reverse converter 21 of the DC link 30, and detects the current flowing through this portion. As the first current detection part 23 and second current detection part 24, it is possible to use existing current detection circuits, for example.
(17) The voltage detection part 25 is provided in parallel with the DC link capacitor 22, and detects the voltage between both terminals of the DC link capacitor 22. As the voltage detection part 25, it is possible to use an existing voltage detection circuit, for example.
(18) The storage part 26 stores in advance a threshold for detecting the capacitance decline of the DC link capacitor 22. The threshold is a value arrived at by multiplying a predetermined proportion (e.g., 60%) by the initial capacitance value (e.g., capacitance value during non-use) of the DC link capacitor 22, for example. The storage part 26 is re-writable memory such as EEPROM, for example. The storage part 26 thereby enables rewriting of the threshold according to an external device such as a computer, for example. In addition, the storage part 26 stores predetermined software (programs) for realizing various functions of the capacitance decline detection part 27.
(19) The capacitance decline detection part 27 obtains a change amount in the electric charge of the DC link capacitor 22 at a predetermined time, based on the current value detected by the first current detection part 23 and the current value detected by the second current detection part 24. More specifically, the capacitance decline detection part 27 obtains the change amount in electric charge of the DC link capacitor 22, from the integrated value by integrating the difference between the current value detected by the first current detection part 23 and the current value detected by the second current detection part 24 over a predetermined time. In addition, the capacitance decline detection part 27 obtains the change amount in the voltage of the DC link capacitor 22 at a predetermined time, based on the voltage value detected by the voltage detection part 25.
(20) The capacitance decline detection part 27 obtains the capacitance value for the DC link capacitor 22 based on the change amount in electric charge and change amount in voltage thus obtained. The capacitance decline detection part 27 performs detection of the capacitance decline of the DC link capacitor 22 based on the obtained capacitance value. More specifically, the capacitance decline detection part 27 detects that the capacitance of the DC link capacitor 22 has declined in the case of the obtained capacitance value being less than the threshold in the storage part 26.
(21) The capacitance decline detection part 27 is configured by an arithmetic processor such as a DSP (Digital Signal Processor) or FPGA (Field-Programmable Gate Array), for example. The functions of the capacitance decline detection part 27 are realized by executing predetermined software (programs) stored in the storage part 26. The functions of the capacitance decline detection part 27 may be realized by cooperation between hardware and software, or may be realized by only hardware (electronic circuits).
(22) Next, detection operations for capacitance decline of the DC link capacitor 22 by the motor drive device 1 will be explained by referencing
(23) (During Motor Acceleration)
(24) First, as shown in
(25) At this time, the first current detection part 23 detects the current of current value I1, i.e. inflow current to DC link 30. In addition, the second current detection part 24 detects the current of current value I1 +I2, i.e. outflow current from DC link 30. In addition, the voltage detection part 25 detects the voltage of the DC link capacitor 22.
(26) The capacitance decline detection part 27 successively calculates a difference current value I2 between the current value I1 detected by the first current detection part 23 and the current value I1 +I2 detected by the second current detection part 24, and obtains a time-integrated value I2dt for the difference current value I2 calculated for a predetermined time. Herein, the difference current value I2 is a current value supplied from the DC link capacitor 22 to the reverse converter 21; therefore, the time-integrated value I2dt is the electric charge released from the DC link capacitor 22, i.e. a change amount (decrease amount) Q in electric charge of the DC link capacitor 22.
(27) In addition, the capacitance decline detection part 27 obtains a change amount (drop amount) V in the voltage for a predetermined time from the voltage detected by the voltage detection part 25.
(28) Next, the capacitance decline detection part 27 obtains the capacitance value C of the DC link capacitor 22 based on the following Formula (2), from the obtained change amount in electric charge Q and change amount in voltage V, i.e. obtained time-integrated value I2dt and change amount in voltage V.
(29)
(30) Next, the capacitance decline detection part 27 compares the obtained capacitance value C and threshold in the storage part 26, and detects that the capacitance of the DC link capacitor 22 has declined in the case of the obtained capacitance value C being less than the threshold. It should be noted that, in the case of the obtained capacitance value C being at least the threshold, it is determined that the capacitance of the DC link capacitor 22 has not declined.
(31) (During Motor Deceleration)
(32) Next, as shown in
(33) At this time, the first current detection part 23 detects current of current value I1, i.e. outflow current from the DC link 30. In addition, the second current detection part 24 detects current of current value I1 +I2, i.e. inflow current to the DC link 30.
(34) The capacitance decline detection part 27, successively calculates a difference current value I2 between the current value I1 detected by the first current detection part 23 and the current value I1 +I2 detected by the second current detection part 24, and obtains a time-integrated value I2dt for the difference current value I2 calculated for a predetermined time, similarly to as mentioned above. Herein, the difference current value I2 is current charging the DC link capacitor 22; therefore, the time-integrated value I2dt is the electric charge stored in the DC link capacitor 22, i.e. the change amount (increase amount) in electric charge of the DC link capacitor 22.
(35) In addition, the capacitance decline detection part 27 obtains the change amount (rise amount) V in voltage for a predetermined time from the voltage detected by the voltage detection part 25.
(36) Next, the capacitance decline detection part 27, similarly to as mentioned above, obtains the capacitance value C of the DC link capacitor 22 based on the above Formula (2), from the obtained change amount in electric charge Q and change amount in voltage V, i.e. obtained time-integrated value I2dt and change amount in voltage V.
(37) Next, the capacitance decline detection part 27, similarly to as mentioned above, compares the obtained capacitance value C and threshold in the storage part 26, and detects that the capacitance of the DC link capacitor 22 has declined in the case of the obtained capacitance value C being less than the threshold. It should be noted that, in the case of the obtained capacitance value C being at least the threshold, it is determined that the capacitance of the DC link capacitor 22 has not declined.
(38) As explained above, according to the motor drive device 1 of the present embodiment, the time-integrated value for the difference current value between the inflow current to the DC link capacitor 22 and outflow current from the DC link capacitor 22 (i.e. time-integrated value for difference current value between inflow current to DC link 30 and outflow current from DC link 30), i.e. change amount in electric charge of the DC link capacitor 22, is obtained by the first current detection part 23, second current detection part 24 and capacitance decline detection part 27, and the change amount in voltage of the DC link capacitor 22 is obtained by the voltage detection part 25 and capacitance decline detection part 27. Then, the capacitance decline detection part 27 obtains the capacitance value for the DC link capacitor 22 based on this change amount in electric change and change amount in voltage, and performs detection of a capacitance decline in the DC link capacitor 22 based on this capacitance value. It is thereby possible to detect a capacitance decline in the DC link capacitor 22 even other than during the initial charging operation.
(39) In addition, according to the motor drive device 1 of the present embodiment, it is not necessary to interrupt the supply of AC power from the AC power source 2 after charging the DC link capacitor 22 as in Patent Document 1. Therefore, it is possible to perform detection of a capacitance decline in the DC link capacitor 22 even during normal operation.
(40) Incidentally, in the case of there being a plurality of drive shafts (feed shaft and spindle) in a machine tool, a plurality of the motors 3 will also be provided in order to drive the respective drive shafts (refer to
(41) In this way, even in a case of connecting a plurality of the inverter sections 20 which include one of each of a reverse converter 21 and DC link capacitor 22 (providing a DC link capacitor 22 to every reverse converter 21 so that the reverse converter 21 and DC link capacitor 22 are in a 1-to-1 relationship) to a converter section 10 including the forward converter 11, according to the motor drive device 1 of the present embodiment, it will be possible to detect a capacitance decline in the individual DC link capacitors 22 of the plurality of inverter sections 22, by including the first current detection part 23, second current detection part 24, voltage detection part 25 and capacitance decline detection part 27 in the respective inverter sections 20.
(42) In addition, in the motor drive device 1 of the present embodiment, since the threshold is rewritable by an external device, the motor drive device 1 can change the threshold to an appropriate value even after once setting the value.
(43) Although an embodiment of the present invention has been explained above, the present invention is not to be limited to the aforementioned embodiment. In addition, the effects described in the present embodiment are merely listing the most preferred effects produced from the present invention, and the effects according to the present invention are not to be limited to those described in the present embodiment.
(44) For example, in the aforementioned embodiment, the voltage detection part 25 is provided to each of the inverter sections 20; however, as shown in
(45) In addition, in the aforementioned embodiment, although the current is directly detected by the second current detection part 24, it is not limited thereto. In place of current detection by the second current detection part 24, the detection target current (i.e. input current of the reverse converter 21) may be calculated based on the motor output value of the motor 3 (i.e. corresponding to output consumed power of reverse converter 21), voltage of the DC link capacitor 22 (i.e. input voltage of reverse converter 21), and power factor of the output power of the reverse converter 21.
(46) In addition, in the aforementioned embodiment, although the capacitance decline detection part 27 detects the capacitance decline in the DC link capacitor 22 by comparing the obtained capacitance value and a threshold that was stored in advance, the present invention is not to be limited thereto. For example, the capacitance decline detection part 27 may detect a capacitance decline in the DC link capacitor 22 when the obtained capacitance value changes (decreases).
EXPLANATION OF REFERENCE NUMERALS
(47) 1, 1X motor drive device
(48) 2 AC power source
(49) 3 motor
(50) 10, 10X converter section
(51) 11 forward converter
(52) 13, 14 current detection part
(53) 15 voltage detection part
(54) 16 storage part
(55) 17 capacitance decline detection part
(56) 20, 20X inverter section
(57) 21 reverse converter
(58) 22 DC link capacitor
(59) 23 first current detection part
(60) 24 second current detection part
(61) 25 voltage detection part
(62) 26 storage part
(63) 27 capacitance decline detection part