Motor-driven compressor with switching element
09964111 ยท 2018-05-08
Assignee
Inventors
- Junya Yano (Kariya, JP)
- Tsuyoshi Yamaguchi (Kariya, JP)
- Tatsuya Koide (Kariya, JP)
- Ken Suitou (Kariya, JP)
- Yoshiki Nagata (Kariya, JP)
Cpc classification
F04C2240/81
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/808
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D15/0263
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A motor-driven compressor includes an electric motor driven by a motor driver, which includes a switching element that converts DC voltage from a battery to AC voltage. A control unit controls the switching operation of the switching element. A temperature detector detects the temperature of the switching element. The control unit suspends the switching operation of the switching element when the temperature detected by the temperature detector rises to a temperature threshold. The temperature threshold includes a first temperature threshold, corresponding to a withstand temperature of the switching element, and a second temperature threshold, which is higher than the first temperature threshold. The control unit switches the temperature threshold from the first temperature threshold to the second temperature threshold when the control unit activates a field weakening control that reduces counter electromotive force generated by the electric motor.
Claims
1. A motor-driven compressor comprising: an electric motor that drives a compression unit; a motor driver that drives the electric motor, wherein the motor driver includes a switching element that converts DC voltage from a battery to AC voltage; a control unit that controls the switching operation of the switching element; and a temperature detector that detects the temperature of the switching element, wherein: the control unit is configured to execute a suspension control that suspends the switching operation of the switching element when the temperature detected by the temperature detector rises to a predetermined temperature threshold, and a field weakening control that reduces counter electromotive force generated by the electric motor; the predetermined temperature threshold includes a first temperature threshold set to be equal to an output value of the temperature detector indicating a withstand temperature of the switching element when the DC voltage of the battery is the highest voltage in an applicable voltage range of the battery, wherein the applicable voltage range of the battery includes a low voltage range, which includes the lowest voltage in the applicable voltage range of the battery, and a high voltage range, which includes the highest voltage in the applicable voltage range of the battery, wherein the low voltage range and high voltage range do not overlap, and a second temperature threshold that is higher than the first temperature threshold; and the control unit is configured to execute a first switching control that switches from the first temperature threshold to the second temperature threshold based upon the execution of the field weakening control and the battery voltage being in the low voltage range.
2. The motor-driven compressor according to claim 1, wherein the control unit executes a second switching control that switches from the second temperature threshold to the first temperature threshold when deactivating the field weakening control.
3. The motor drive compressor according to claim 2, wherein the control unit executes the second switching control after a predetermined time elapses from a time point when the field weakening control is deactivated.
4. The motor-driven compressor according to claim 2, wherein the control unit executes the second switching control to gradually decrease the predetermined temperature threshold from the second temperature threshold to the first temperature threshold from a time point when the field weakening control is deactivated.
5. The motor-driven compressor according to claim 2, wherein the control unit decreases the predetermined temperature threshold at a controlled rate from the second temperature threshold from a time point when the field weakening control is deactivated so that the predetermined temperature threshold becomes equal to the first temperature threshold at a time point when a predetermined time elapses from a time point when the field weakening control is deactivated.
6. The motor-driven compressor according to claim 1, wherein the control unit executes the first switching control at a time point when the field weakening control is started.
7. The motor-driven compressor according to claim 1, wherein the control unit is configured to activate the field weakening control when the DC voltage is at or near the lowest voltage in the applicable voltage range of the battery, and maintain the predetermined temperature threshold at the second temperature threshold until the control unit deactivates the field weakening control.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention, together with objects and advantages thereof, may best be understood by reference to the following description of the presently preferred embodiments together with the accompanying drawings in which:
(2)
(3)
(4)
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DESCRIPTION OF THE EMBODIMENTS
(8) One embodiment of a motor-driven compressor will now be described with reference to
(9) Referring to
(10) The motor driver 20 may be located, for example, outside the housing 11. In the illustrated example, the motor driver 20 is accommodated in a void defined by a cover 16, which is fixed to an end wall of the housing 11, and the end wall of the housing 11. In the present embodiment, the compression unit 12, the electric motor 13, and the motor driver 20 are arranged in this order in the direction in which the axis L of the rotation shaft 15 extends (axial direction).
(11) As shown in
(12) The base of each of the switching elements 21 and 22 is signal-connected to a control unit 30, which may be a computer including a processor and a memory. The control unit 30 controls the switching operation of each of the switching elements 21 and 22. The collector of each upper arm switching element 21 is connected to the battery 25. The emitter of each upper arm switching element 21 is connected to a coil 13c of the electric motor 13. The emitter of each lower arm switching element 22 is connected to the battery 25. The collector of each lower arm switching element 22 is connected to a coil 13c of the electric motor 13.
(13) The motor driver 20 controls the drive voltage of the electric motor 13 through pulse-width modulation. For example, the motor driver 20 generates a PWM signal from a carrier wave, which may be a high-frequency triangular wave signal, and a voltage designation signal, which designates the voltage that is to be generated. The motor driver 20 provides the PWM signal to each of the switching elements 21 and 22. Each of the switching elements 21 and 22 performs a switching operation in accordance with the PWM signal to convert DC voltage, which is applied to each of the switching elements 21 and 22 from the battery 25, to AC drive voltage. The AC drive voltage obtained in this manner is applied to the electric motor 13 to control and drive the electric motor 13.
(14) The control unit 30 is electrically connected to a temperature detector 31, which detects the temperature of the switching elements 21 and 22. For example, the temperature detector 31 may be a thermistor located proximate to the switching elements 21 and 22. The output of the temperature detector 31 (detected temperature or output value) is provided to the control unit 30.
(15) The temperature detected by the temperature detector 31 may differ from the actual temperature of the switching elements 21 and 22. Further, the control unit 30 stores a set of temperature estimation values, which may be referred to as a set of reference values. The set of temperature estimation values is obtained in advance based on the withstand temperature of the switching elements 21 and 22 and the relationship of the DC voltage of the battery 25 and the temperature detected by the temperature detector 31. For example, the set of temperature estimation values may be determined by converting the actual withstand temperature to the output value of the temperature detector 31 at various DC voltages. In some implementations, the temperature estimation values are associated with different DC voltages of a battery 25, and each temperature estimation value may be equal to or correspond to the temperature detector output value indicating the withstand temperature of the switching elements 21 and 22 at the corresponding DC voltage.
(16) In
(17) Under the assumption that the drive torque of the motor-driven compressor 10 is fixed, a higher DC voltage of the battery 25 increases the switching loss of the switching elements 21 and 22 and increases the rising rate of the temperature of the switching elements 21 and 22. Thus, the temperature estimation values are set to be lower as the DC voltage of the battery 25 increases.
(18) When the temperature detected by the temperature detector 31 rises and reaches a predetermined temperature threshold T, the control unit 30 executes a suspension control to suspend the switching operation of the switching elements 21 and 22. The temperature threshold T may be a temperature that is lower than or equal to the temperature estimation value.
(19) In a set of temperature estimation values (L1), the temperature threshold T may include a first temperature threshold T1, which is equal to the temperature estimation value when the DC voltage is the highest voltage Vmax (e.g., 400 V) in the applicable voltage range of the battery 25 normally used by the motor-driven compressor 10, and a second temperature threshold T2, which is set at a higher temperature than the first temperature threshold T1. In the set of temperature estimation values (L1), the second temperature threshold T2 is a temperature lower than the temperature estimation value when the DC voltage is the lowest voltage Vmin (e.g., 100V) in the applicable voltage range of the battery 25. For example, when taking measurement errors into consideration, the second temperature threshold T2 may be lower by a safety margin than the temperature estimation value corresponding to a second voltage value V2 (e.g., 250 V), which is higher than a first voltage value V1 in the applicable voltage range of the battery 25, or the temperature estimation value corresponding to the voltage Vmin.
(20) The control unit 30 executes a field weakening control to reduce the counter electromotive force generated by the rotation of the electric motor 13. The field weakening control will now be described.
(21) In the electric motor 13, counter electromotive force is generated by a magnetic flux, which is generated by rotation of the electric motor 13. The rotation speed of the electric motor 13 needs to be increased for the drive torque of the motor-driven compressor 10 to be fixed and high when the DC voltage is a low voltage (e.g., 100 V to 200 V) in the applicable voltage range of the battery 25. An increase in the rotation speed of the electric motor 13 increases the counter electromotive force. When the counter electromotive force becomes equal to the drive voltage applied to the electric motor 13, the rotation speed of the electric motor 13 cannot be increased.
(22) The control unit 30 reduces the counter electromotive force by supplying the electric motor 13 with current for weakening the magnetic flux generated by the rotation of the electric motor 13. Thus, in the motor-driven compressor 10, the drive torque of the motor-driven compressor 10 may be set to a fixed and high torque even when the DC voltage is a low voltage in the applicable voltage range of the battery 25.
(23) When the control unit 30 activates the field weakening control, the control unit 30 performs a first switching control to switch the temperature threshold T from the first temperature threshold T1 to the second temperature threshold T2. Further, when the control unit 30 deactivates the field weakening control, the control unit 30 performs a second switching control to switch the temperature threshold T from the second temperature threshold T2 to the first temperature threshold T1. In one example of
(24) Referring to
(25) The operation of the embodiment will now be described.
(26) For example, when the DC voltage applied to the switching elements is a low voltage in the applicable voltage range of the battery 25, the control unit 30 executes the field weakening control so that the drive torque of the motor-driven compressor 10 is fixed and high. In the field weakening control, the electric motor 13 is supplied with current from the motor driver 20 to weaken the magnetic flux generated by the rotation of the electric motor 13. The output of the current from the motor driver 20 to the electric motor 13 raises the temperature of the temperature detector 31.
(27) The solid line L2 in
(28) In this example, the temperature detected by the temperature detector 31 when the DC voltage is a low voltage (e.g., 100 V to 200 V) in the applicable voltage range of the battery 25 is higher than the temperature detected by the temperature detector 31 when the DC voltage is a median voltage (e.g., 200 V to 300 V) in the applicable voltage range of the battery 25. Further, the temperature detected by the temperature detector 31 when the DC voltage is a high voltage (e.g., 300 V to 400 V) in the applicable voltage range of the battery 25 is higher than the temperature detected by the temperature detector 31 when the DC voltage is a median voltage in the applicable voltage range of the battery 25.
(29) Referring to
(30) The control unit 30 executes the first switching control to avoid such an undesirable situation. That is, the temperature threshold T is switched from the first temperature threshold T1 to the second temperature threshold T2 at time point P1 to limit execution of the suspension control by the control unit 30 when a sufficient margin exists between the temperature of the switching elements 21 and 22 and the withstand temperature. As a result, when the DC voltage is a low voltage in the applicable voltage range of the battery 25, suspension of the operation of the motor-driven compressor 10 is limited when a sufficient margin exists between the temperature of the switching elements 21 and 22 and the withstand temperature.
(31) Referring to
(32) For example, at time point P2 when the field weakening control is deactivated, the temperature detected by the temperature detector 31 may exceed the first temperature threshold T1. If the control unit 30 were to execute the second switching control at time point P2, the control unit 30 would execute the suspension control and suspend the switching operation of the switching elements 21 and 22.
(33) The control unit 30 avoids such an undesirable situation by executing the second switching control after the predetermined time Tx elapses from time point P2, which is when the field weakening control is deactivated.
(34) Further, for example, if the temperature threshold T remains at the second temperature threshold T2 when the DC voltage is the highest voltage Vmax in the applicable voltage range of the battery 25, the control unit 30 may not execute the suspension control even though the temperature detected by the temperature detector 31 rises to the withstand temperature (temperature estimation value).
(35) The control unit 30 avoids such an undesirable situation by executing the second switching control when the field weakening control is deactivated. More specifically, the control unit 30 executes the suspension control if the temperature detected by the temperature detector 31 rises to the temperature estimation value, namely, the first temperature threshold T1, when the DC voltage is the highest voltage Vmax in the applicable voltage range of the battery 25. This suspends the switching operation of the switching elements 21 and 22.
(36) The above embodiment has the following advantages.
(37) (1) The control unit 30 executes the first switching control, which switches the threshold T from the first temperature threshold T1 to the second temperature threshold T2, when activating the field weakening control. Thus, in comparison to when, for example, the temperature threshold T remains at the first temperature threshold T1, execution of the suspension control by the control unit 30 is limited when a sufficient margin exists between the temperature of the switching elements 21 and 22 and the withstand temperature. As a result, if the DC voltage is a low voltage in the applicable voltage range of the battery 25, suspension of the operation of the motor-driven compressor 10 is limited when a sufficient margin exists between the temperature of the switching elements 21 and 22 and the withstand temperature.
(38) (2) For example, if the temperature threshold T remains at the second temperature threshold T2 when the DC voltage is the highest voltage Vmax in the applicable voltage range of the battery 25, the control unit 30 may not execute the suspension control even when the temperature detected by the temperature detector 31 rises to the withstand temperature (temperature estimation value). Thus, when activating the field weakening control, the control unit 30 executes the second switching control to switch the temperature threshold T from the second temperature threshold T2 to the first temperature threshold T1. As a result, if the temperature detected by the temperature detector 31 rises to the temperature estimation value, namely, the first temperature threshold T1, when the DC voltage is the highest voltage Vmax in the applicable voltage range of the battery 25, the control unit 30 executes the suspension control. This avoids an undesirable situation in which the control unit 30 does not execute the suspension control when the temperature detected by the temperature detector 31 rises to the withstand temperature.
(39) (3) For example, at time point P2, which is when the control unit 31 deactivates the field weakening control, the temperature detected by the temperature detector 31 may exceed the first temperature threshold T1. In this case, if the control unit 30 executes the second switching control at time point P2, which is when the control unit 31 deactivates the field weakening control, the control unit 30 would execute the suspension control. Thus, the control unit 30 executes the second switching control after the predetermined time Tx elapses from time point P2, which is when the control unit 31 deactivates the field weakening control. This avoids an undesirable situation in which the control unit 30 executes the suspension control due to the temperature detected by the temperature detector 31 being higher than the first threshold T1 at time point P2.
(40) (4) It is preferred that the temperature threshold T be switched between only two values, namely, the first temperature threshold T1 and the second temperature threshold T2, in view of the number of processes of a control program, the memory capacity needed for the control unit 30 to store the control program, the computation load, and the reduction of the power consumed for computation. Nevertheless, multiple temperature thresholds T may be set in the control unit 30 in correspondence with different DC voltages of the battery 25.
(41) It should be apparent to those skilled in the art that the present invention may be embodied in many other specific forms without departing from the scope of the invention. Particularly, it should be understood that the present invention may be embodied in the following forms.
(42) Referring to
(43) The control unit 30 may execute the second switching control at time point P2, which is when the field weakening control is deactivated.
(44) The control unit 30 may execute the first switching control after a predetermined time elapses from time point P1, which is when the field weakening control is started.
(45) The temperature detector 31 may be, for example, a thermocouple or a radiation thermometer.
(46) When the cover 16 is fixed to the circumferential wall of the housing 11, the motor driver 20 may be accommodated in the void defined by the circumferential wall of the housing 11 and the cover 16.
(47) The compression unit 12 may be, for example, of a piston type, a vane type, or the like.
(48) The motor-driven compressor 10 does not have to be used with a vehicle air conditioner and may be used with a different type of air conditioner.
(49) The above description is intended to be illustrative and not restrictive. For example, the above-described examples (or one or more aspects thereof) may be used in combination with each other. Other embodiments can be used, such as by one of ordinary skill in the art upon reviewing the above description. Also, in the above description of the embodiments, various features may be grouped together to streamline the disclosure. This should not be interpreted as intending that an unclaimed disclosed feature is essential to any claim. Rather, inventive subject matter may lie in less than all features of a particular disclosed embodiment. Thus, the following claims are hereby incorporated into the Detailed Description, with each claim standing on its own as a separate embodiment. The scope of the invention should be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.