Power conversion device, motor drive device and air conditioner
The power converter addresses the risk of reverse current flow in boosted converters by using a controlled switching mechanism based on DC and AC voltage conditions, ensuring reliable and safe operation.
Patent Information
- Application Number
- JP2023509907
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-03-29
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2041-03-29
AI Technical Summary
In boosted converters with synchronous rectification, there is a risk of reverse current flow to the AC power supply side, which can hinder the restoration of the AC power source and pose safety risks during power outages.
The power converter includes a reactor, a converter with anti-parallel connected MOSFETs, a capacitor for holding DC voltage, detection units for voltage and AC parameters, a control unit, and a control voltage generator. The operation of the switching elements is controlled such that if the DC voltage is higher than the control voltage and no AC power is detected, the switching elements are stopped from operating.
This configuration effectively prevents reverse flow to the AC power supply side, ensuring reliable operation and safety during power outages by controlling the switching elements based on DC and AC voltage conditions.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to a power conversion device that converts an AC voltage applied from an AC power supply into a DC voltage, a motor drive device including the power conversion device, and an air conditioner including the motor drive device. [Background technology]
[0002] The power conversion device described in Patent Document 1 below includes a converter configured with metal oxide semiconductor field effect transistors (MOSFETs) connected in parallel to both ends of full-bridge-connected diodes. In a power conversion device including this type of converter, the MOSFET is turned on when the diode connected in parallel to the MOSFET becomes conductive, and current is passed through the MOSFET channel to reduce losses. This technology is called "synchronous rectification."
[0003] Moreover, the converter described in Patent Document 1 is a boost converter, and is used in an air conditioner equipped with an outdoor fan. In the process of converting AC voltage to DC voltage, the boost converter controls the voltage value of the DC voltage held in the smoothing capacitor to a value higher than the voltage value of the AC voltage. In the boost converter, the power factor of the AC current, which is the current supplied to the converter from the AC power source, is improved, making it possible to suppress harmonics contained in the AC current. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2016-171680 A Summary of the Invention [Problem to be solved by the invention]
[0005] As described above, in a boost converter, the voltage of the smoothing capacitor is controlled to a value higher than the voltage value of the AC voltage. Therefore, when the AC power supply fails, the AC voltage applied to the power conversion device is cut off, and a current gradient occurs in the direction from the smoothing capacitor to the AC power supply. In this case, there is a risk of causing an obstacle to the work of restoring the AC power supply.
[0006] In recent air conditioners, brushless DC motors are being adopted for the fan motors that drive the outdoor fans in order to increase efficiency. Since the outdoor units of air conditioners are literally installed outdoors, the outdoor fans may rotate at high speeds in strong winds such as typhoons. When the outdoor fan rotates at high speeds, a back electromotive force is generated in the brushless DC motor connected to the outdoor fan according to the number of rotations, and this voltage is supplied to the inverter as a generated voltage and may be charged in the smoothing capacitor.
[0007] If the converter is a conventional diode bridge converter, the generated voltage is blocked by the diodes, preventing the generated voltage from being regenerated to the AC power supply. On the other hand, if the converter is a boost converter that performs synchronous rectification, the charge stored in the smoothing capacitor may flow out to the AC power supply side through the MOSFET when the converter performs synchronous rectification, i.e., there is a risk of reverse power flow to the AC power supply side.
[0008] The present disclosure has been made in consideration of the above, and has an object to provide a power conversion device including a boost converter that performs synchronous rectification, which can reliably prevent reverse power flow to the AC power supply side. [Means for solving the problem]
[0009] In order to solve the above-mentioned problems and achieve the object, a power conversion device according to the present disclosure is a power conversion device that converts an AC voltage applied from an AC power source into a DC voltage to an inverter that drives a permanent magnet synchronous motor. The power conversion device includes a reactor, a converter, a capacitor, first and second detection units, a control unit, and a control voltage generation unit. The converter includes a plurality of switching elements having anti-parallel connected diodes, the plurality of switching elements being bridge-connected, and is connected to the AC power source via the reactor. The capacitor is connected to the output end of the converter and holds a DC voltage. The first detection unit detects a voltage value of the DC voltage. The second detection unit detects a voltage value, a frequency, or a zero-cross point of the AC voltage. The control unit controls the operation of the converter. The control voltage generation unit generates a control voltage that operates the control unit. When the voltage value of the DC voltage is higher than the voltage value of the control voltage and a detection signal is not output from the second detection unit, the operation of the plurality of switching elements is stopped. Effect of the Invention
[0010] According to the power conversion device according to the present disclosure, in a power conversion device including a boost converter that performs synchronous rectification, it is possible to reliably prevent reverse power flow to the AC power supply side. [Brief description of the drawings]
[0011] [Figure 1] FIG. 1 is a diagram showing a configuration example of a motor drive device including a power conversion device according to a first embodiment; [Diagram 2] FIG. 2 is a schematic cross-sectional view showing a schematic structure of a MOSFET used in the converter according to the first embodiment; [Diagram 3] FIG. 1 is a diagram showing a first example of a current path flowing in a power conversion device according to a first embodiment. [Figure 4] FIG. 1 is a diagram showing a second example of a current path flowing in the power conversion device according to the first embodiment. [Diagram 5] FIG. 1 is a diagram showing an example of a path of a regenerative current that can flow in a power conversion device according to a first embodiment. [Figure 6]A flowchart used to explain the operation of the main parts of the power conversion device according to the first embodiment. [Figure 7] FIG. 1 is a block diagram showing an example of a hardware configuration for implementing the functions of a control unit according to a first embodiment; [Figure 8] FIG. 11 is a block diagram showing another example of a hardware configuration for implementing the functions of the control unit according to the first embodiment; [Figure 9] FIG. 13 is a diagram showing a configuration example of an air conditioner according to a second embodiment. [Figure 10] FIG. 1 is a diagram used to explain the operation of an air conditioner according to a second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS A power conversion device, a motor drive device, and an air conditioner according to embodiments of the present disclosure will be described in detail below with reference to the drawings.
[0013] Embodiment 1 Fig. 1 is a diagram showing an example of the configuration of a motor drive device 100 including a power conversion device 110 according to embodiment 1. As shown in Fig. 1, the motor drive device 100 according to embodiment 1 includes the power conversion device 110, a control unit 70, and a load 120. The motor drive device 100 is connected to an AC power source 10. The AC power source 10 refers to a power supply system that supplies AC power to the motor drive device 100.
[0014] 1, the power conversion device 110 includes a reactor 16, a converter 20, a capacitor 30 which is a smoothing capacitor, a voltage detection unit 80 which is a first detection unit, a voltage detection unit 83 which is a second detection unit, and a control voltage generation unit 90. The load 120 includes a first inverter 40, a second inverter 45, a first current detector 82, a second current detector 84, a first permanent magnet synchronous motor 50, and a second permanent magnet synchronous motor 55. Of the components of the load 120, the first and second inverters 40, 45 and the first and second current detectors 82, 84, excluding the first and second permanent magnet synchronous motors 50, 55, are components of the motor drive device 100. In addition, the load 120 may be configured to have only the first permanent magnet synchronous motor 50, the first inverter 40, and the first current detector 82, and not to have the second permanent magnet synchronous motor 55, the second inverter 45, and the second current detector 84.
[0015] The first inverter 40 drives a first permanent magnet synchronous motor 50, and the second inverter 45 drives a second permanent magnet synchronous motor 55. The power conversion device 110 is a power conversion device that converts an AC voltage applied from an AC power source 10 into a DC voltage to the first and second inverters 40, 45. The power conversion device 110 outputs the converted DC voltage to DC buses 25a, 25b. The DC buses 25a, 25b are electrical wiring that connect the converter 20 and the load 120. In this paper, the AC voltage output from the AC power source 10 may be referred to as a "power supply voltage."
[0016] The converter 20 includes a plurality of switching elements UCP, UCN, VCP, and VCN having antiparallel-connected diodes, and the switching elements UCP, UCN, VCP, and VCN are full-bridge-connected. The converter 20 is connected to the AC power source 10 via a reactor 16.
[0017] FIG. 1 illustrates an example in which the multiple switching elements UCP, UCN, VCP, and VCN are MOSFETs. A MOSFET is an example of a switching element equipped with an anti-parallel connected diode. Anti-parallel means that the anode of the diode is connected to the source of the MOSFET, and the cathode of the diode is connected to the drain of the MOSFET. The anti-parallel connected diode may be an externally connected diode or a parasitic diode that the MOSFET has inside. An example of an externally connected diode is a fast recovery diode. A parasitic diode is also called a body diode. If a parasitic diode is used, individual diodes are not required, so the number of components can be reduced, leading to cost reduction.
[0018] Also, a MOSFET is an example of a switching element that can pass a current in both directions between the drain and the source. Any switching element can be used as long as it is a switching element that can pass a current in both directions between a first terminal corresponding to the drain and a second terminal corresponding to the source, that is, a bidirectional element. For example, a MOSFET having a super junction (SJ) structure (SJ-MOSFET) or a MOSFET made of a wide band gap (WBG) semiconductor such as gallium nitride (GaN), silicon carbide (SiC), or diamond can be used. When a MOSFET made of an SJ-MOSFET or a WBG semiconductor is used as a switching element, the voltage resistance and allowable current density are high, so that the module can be made smaller. WBG semiconductors also have high heat resistance, so that the heat dissipation fins of the heat dissipation section can be made smaller.
[0019] 1, the switching elements UCP, UCN, VCP, and VCN are fully bridge-connected, but this configuration is adapted to the AC power supply 10, which is a single-phase power supply. If the AC power supply 10 is a three-phase power supply, the converter 20 is also adapted to a three-phase power supply. Specifically, six switching elements are connected in a three-phase bridge.
[0020] Capacitor 30 is connected to the output end of converter 20 via DC buses 25a, 25b, and holds the DC voltage output by converter 20. Voltage detection unit 80 detects the voltage value of the DC voltage. The voltage value of the DC voltage is generally detected by dividing the DC voltage using resistors connected in series and outputting it as a low-voltage analog signal. Voltage detection unit 83 detects the voltage value of the AC voltage. The voltage value of the AC voltage may be an instantaneous value of the AC voltage, an average value of the AC voltage, or an effective value of the AC voltage. The detection value V of the DC voltage detected by voltage detection unit 80 is dc and the detection value V of the AC voltage detected by the voltage detection unit 83 ac are both input to the control unit 70.
[0021] In FIG. 1, the voltage detection unit 80 detects a bus voltage, which is a voltage between the DC bus 25a and the DC bus 25b, but is not limited to this. The voltage detection unit 80 may detect a capacitor voltage, which is a voltage of the capacitor 30. Furthermore, the voltage detection unit 83 detects a voltage value of an AC voltage, but is not limited to this. The voltage detection unit 83 may detect a frequency of the AC voltage, or may detect a zero cross point of an AC voltage waveform. Furthermore, when the voltage detection unit 83 detects a detected value V ac The control unit 70 may be configured to output voltage information as the frequency information or the voltage phase information to the control unit 70, and generate frequency information or voltage phase information on the control unit 70 side.
[0022] In the load 120, the first inverter 40 includes a plurality of switching elements UP, UN, VP, VN, WP, and WN that are three-phase bridge-connected with anti-parallel-connected diodes. The second inverter 45 includes a plurality of switching elements UP', UN', VP', VN', WP', and WN' that are three-phase bridge-connected with anti-parallel-connected diodes. The first and second inverters 40 and 45 are configured to receive the DC voltage output by the power conversion device 110 through the shared DC buses 25a and 25b.
[0023] The first inverter 40 drives the first permanent magnet synchronous motor 50 by supplying AC power to the first permanent magnet synchronous motor 50. The second inverter 45 drives the second permanent magnet synchronous motor 55 by supplying AC power to the second permanent magnet synchronous motor 55.
[0024] In the first and second inverters 40, 45, the multiple switching elements UP, UN, VP, VN, WP, WN, UP', UN', VP', VN', WP', WN' are illustrated as MOSFETs, but switching elements other than MOSFETs may also be used.
[0025] The first current detector 82 detects the first motor current flowing between the first inverter 40 and the first permanent magnet synchronous motor 50. The second current detector 84 detects the second motor current flowing between the second inverter 45 and the second permanent magnet synchronous motor 55. An example of the first and second current detectors 82, 84 is a current transformer. Any detection means may be used as long as it can detect the first and second motor currents or physical quantities correlated with these currents. Furthermore, instead of a configuration for detecting the first and second motor currents, the first and second inverter currents, which are currents on the input side of the first and second inverters 40, 45, may be detected. The detection value i of the first motor current detected by the first current detector 82 u ,i v ,i w , and the second current detector 84 detects Second Motor current detection value i uf ,i vf ,i wf are both input to the control unit 70.
[0026] The control voltage generating unit 90 is a control power supply that generates a control voltage that operates the control unit 70. In general, the control voltage is a low-voltage DC voltage of 24 V or less. In addition, the power supply method generally employs a switching power supply method using a switching element and a transformer. Since the switching power supply method has a transformer, it is possible to generate a non-insulated voltage and an isolated voltage for the capacitor 30.
[0027] The control unit 70 receives information on the control voltage generated by the control voltage generating unit 90 and the detection value V dc and the detection value V of the voltage detection unit 83 ac Based on this, the power converter 110 generates a control signal CS1 for controlling the operation of the converter 20 and outputs it to the converter 20. The control signal CS1 is a pulse train signal that controls the conduction of the switching elements UCP, UCN, VCP, and VCN of the converter 20. The control signal CS1 controls the voltage value of the capacitor voltage, and controls the AC current to approach a sine wave. This improves the power factor of the AC current, and makes it possible to suppress harmonics contained in the AC current. In addition, the control signal CS1 performs the synchronous rectification described in the [Background Art] section. The synchronous rectification performed by the power conversion device 110 according to the first embodiment will be described later.
[0028] In addition, the control unit 70 detects the detection value V dc and the detection value i of the first current detector 82. u ,i v ,i w Based on this, a control signal CS2 is generated for controlling the switching elements UP, UN, VP, VN, WP, and WN included in the first inverter 40 so that the first permanent magnet synchronous motor 50 rotates at a desired rotation speed. The control signal CS2 is a pulse train signal for controlling the switching elements UP, UN, VP, VN, WP, and WN of the first inverter 40 by pulse width modulation (PWM).
[0029] Similarly, the control unit 70 detects the detection value V dc and the detection value i of the second current detector 84. uf ,i vf ,i wfBased on this, a control signal CS2' is generated for controlling the switching elements UP', UN', VP', VN', WP', and WN' provided in the second inverter 45 so that the second permanent magnet synchronous motor 55 rotates at a desired rotation speed. The control signal CS2' is a pulse train signal for PWM controlling the switching elements UP', UN', VP', VN', WP', and WN' of the second inverter 45.
[0030] Next, a basic operation of the power conversion device 110 according to the first embodiment will be described. First, the switching elements UCP and UCN operate complementarily so as not to be in the on state at the same time. That is, when one of the switching elements UCP and UCN is on, the other is off. Similarly, the switching elements VCP and VCN operate complementarily so as not to be in the on state at the same time. That is, when one of the switching elements VCP and VCN is on, the other is off. The control unit 70 controls the on or off state of the switching elements UCP, UCN, VCP, and VCN so that the AC current flowing through the AC power source 10 via the reactor 16 and the capacitor 30 does not become excessive.
[0031] Next, a description will be given of the relationship between the states of the switching elements UCP, UCN, VCP, and VCN in the first embodiment and the path of a current flowing through the power conversion device 110 according to the first embodiment. Prior to this description, the structure of the MOSFET will be described with reference to FIG.
[0032] Fig. 2 is a schematic cross-sectional view showing a schematic structure of a MOSFET used in converter 20 according to embodiment 1. Fig. 2 shows an n-type MOSFET as an example.
[0033] In the case of an n-type MOSFET, as shown in Fig. 2, a p-type semiconductor substrate 60 having a p-type region 61 is used. A source electrode 62, a drain electrode 63, and a gate electrode 64 are formed in the semiconductor substrate 60. A high concentration of impurities is ion-implanted into a portion in contact with the source electrode 62 and the drain electrode 63 to form an n-type region 65. In addition, an oxide insulating film 66 is formed in the p-type semiconductor substrate 60 between a portion where the n-type region 65 is not formed and the gate electrode 64. That is, the oxide insulating film 66 is interposed between the gate electrode 64 and the p-type region 61 in the semiconductor substrate 60.
[0034] When a positive voltage is applied to the gate electrode 64, electrons are attracted to the interface between the p-type region 61 and the oxide insulating film 66 in the semiconductor substrate 60, and the interface becomes negatively charged. Where the electrons gather, the electron density becomes higher than the hole density, and the interface becomes n-type. This n-type portion becomes a path for current and is called a channel. The example in Figure 2 is a case where an n-type channel 67 is formed. In the case of a p-type MOSFET, a p-type channel is formed.
[0035] When synchronous rectification is performed, the MOSFET is controlled to be on, so that more current flows through the n-type channel 67 than through the anti-parallel diode or the parasitic diode. In the case of the n-type MOSFET having the configuration of FIG. 2, the parasitic diode is formed in the p-type region 61.
[0036] FIG. 3 is a diagram showing a first example of a current path through the power conversion device 110 according to the first embodiment. FIG. 3 shows an example in which the power supply voltage polarity, which is the polarity of the power supply voltage, is positive. When the power supply voltage polarity is positive, the switching elements UCN and VCP are on, and the switching elements UCP and VCN are off. In this state, a current flows through the path of the AC power supply 10, the reactor 16, the switching element VCP, the capacitor 30, the switching element UCN, and the AC power supply 10. When each switching element is a MOSFET, in the first embodiment, a synchronous rectification operation is performed by a current flowing through the channel of each MOSFET, not through a parasitic diode of each MOSFET. In FIG. 3, the switching elements that are on are indicated by circles. The same applies to the subsequent figures.
[0037] Although not shown in the figure, when the power supply voltage polarity is negative, the switching elements UCP and VCN are on and the switching elements UCN and VCP are off. In this state, a current flows through the AC power supply 10, switching element UCP, capacitor 30, switching element VCN, reactor 16, and AC power supply 10. As in the case when the power supply voltage polarity is positive, a current does not flow through the parasitic diodes of the switching elements UCP and VCN, but rather through each channel, thereby performing a synchronous rectification operation.
[0038] Fig. 4 is a diagram showing a second example of a current path through the power conversion device 110 according to the first embodiment. Fig. 4 shows an example in which the power supply voltage polarity is positive, in which the switching elements UCP and VCP are on and the switching elements UCN and VCN are off. In this state, a current flows through the AC power supply 10, the reactor 16, the switching element VCP, the switching element UCP, and the AC power supply 10, forming a power supply short-circuit path that does not pass through the capacitor 30. In this way, in the first embodiment, a power supply short-circuit path is formed by current flowing through each channel, not through the parasitic diodes of the switching elements UCP and VCP.
[0039] Although not shown in the figure, when the power supply voltage polarity is negative, the switching elements UCN and VCN are on and the switching elements UCP and VCP are off. In this state, a current flows in the order of the AC power supply 10, the switching element UCN, the switching element VCN, the reactor 16, and the AC power supply 10, forming a power supply short-circuit path that does not pass through the capacitor 30. In this way, in the first embodiment, a power supply short-circuit path is formed by current flowing through each channel, not through the parasitic diodes of the switching elements UCN and VCN.
[0040] The control unit 70 controls the switching of the current paths described above to reduce harmonic currents and improve the power factor by controlling the power supply current waveform. In addition, during a power supply short-circuit operation, the energy stored in the reactor 16 is released to the capacitor 30, thereby boosting the voltage of the capacitor 30.
[0041] Here, various operations according to the purpose are possible by combining the operations of the switching elements UCP, UCN, VCP, and VCN. For example, the synchronous rectification operation of at least one of the switching elements UCP, UCN, VCP, and VCN may be stopped, that is, the channel of the MOSFET may not be made to conduct, but the parasitic diode may be made to conduct. Alternatively, the same operation may be realized by replacing one of the MOSFETs of the switching elements UCP, UCN, VCP, and VCN with a diode.
[0042] Next, an operation of regenerating the energy of the capacitor 30 to the AC power supply 10 will be described with reference to Fig. 5. Fig. 5 is a diagram showing an example of a path of a regenerative current that can flow in the power conversion device 110 according to the first embodiment. Note that Fig. 5 shows an example in which the polarity of the power supply voltage is positive.
[0043] When the power supply voltage polarity is positive, the switching elements UCN and VCP are in the ON state as shown in FIG. 5. In this case, the synchronous rectification operation would normally occur as described above. However, when the voltage of the capacitor 30 is higher than the voltage of the AC power supply 10, the AC power supply 10 does not charge the capacitor 30. In addition, since the switching elements UCN and VCP, which are MOSFETs, function as bidirectional switches, a regenerative current flows from the capacitor 30, which has a relatively high potential, to the AC power supply 10, which has a relatively low potential. This regenerative current is generated in the same way when the power supply voltage polarity is negative. For this reason, it is necessary to appropriately control the switching elements UCP, UCN, VCP, and VCN according to the polarity of the power supply voltage or power supply current.
[0044] As described above, when the voltage of the capacitor 30 is higher than the voltage of the AC power supply 10, a regenerative current may flow from the capacitor 30 to the AC power supply 10. For this reason, if a power outage occurs in the AC power supply 10 and a voltage is held in the capacitor 30, a regenerative current may flow depending on the operation of the switching elements UCP, UCN, VCP, and VCN.
[0045] Generally, in power devices having an inverter, a capacitor 30 with a large capacity of several thousands [μF] is often used, and there is a risk that a relatively excessive voltage is applied to the AC power source 10. When the AC power source 10 is normally supplied, such an excessive voltage is not accidentally touched. On the other hand, when the AC power source 10 is lost due to a power outage or the like, there is a risk that a worker who restores the power may come into contact with the excessive voltage. Therefore, it is necessary to take appropriate measures against this type of regenerative operation to ensure the safety of the workers.
[0046] To stop the regenerative operation, the switching elements UCP, UCN, VCP, and VCN are stopped, and the regenerative operation is prevented by the parasitic diodes. On the other hand, to operate the control unit 70, a control voltage for operating the control unit 70 must be secured. Therefore, the power conversion device 110 according to the first embodiment is operated according to the control flow shown in Fig. 6. Fig. 6 is a flowchart used to explain the operation of the main parts of the power conversion device 110 according to the first embodiment.
[0047] First, step S001 indicates that the converter 20 is operating. In step S002, it is determined whether or not the AC power supply 10 has been lost. If the AC power supply 10 has not been lost (step S002, No), the process proceeds to step S003, where the operation of the converter 20 continues. Thereafter, the process returns to step S002, where the control flow of FIG. 6 continues. On the other hand, if the AC power supply 10 has been lost (step S002, Yes), the process proceeds to step S004. In step S004, the magnitude relationship between the DC voltage and the control voltage is compared. If the DC voltage is less than the control voltage (step S004, No), it is determined that there is no risk of an excessive voltage flowing backward to the AC power supply 10, and the process proceeds to step S003, where the operation of the converter 20 continues. Thereafter, the process returns to step S002, where the control flow of FIG. 6 continues. On the other hand, if the DC voltage is equal to or higher than the control voltage (Yes at step S004), the process proceeds to step S005, where the operation of converter 20 is stopped, and the control flow of FIG. 6 is ended.
[0048] 6, the case where the DC voltage is equal to the control voltage is determined as "Yes", but it may be determined as "No". That is, the case where the DC voltage is equal to the control voltage may be determined as either "Yes" or "No".
[0049] 6, the determination of whether or not the AC power supply 10 has been lost can be made based on a detection signal from the voltage detection unit 83, which is the second detection unit. Specifically, it can be determined that the AC power supply 10 has been lost when no detection signal is output from the voltage detection unit 83. When no detection signal is output, this means that no significant signal is output from the voltage detection unit 83.
[0050] The configuration or operation of the power conversion device 110 related to the control flow of FIG. 6 will be supplemented below. First, although it depends on the capacitance of the capacitor 30, when the capacitor voltage is less than 50 [V], the control voltage generation ability of the control voltage generation unit 90 decreases, making it difficult to stably operate the converter 20. Therefore, it is considered to use normally-off type MOSFETs for the switching elements UCP, UCN, VCP, and VCN constituting the converter 20. In general, a drive signal for driving a MOSFET is designed so that the MOSFET is in an off state when the signal level is low. Therefore, if the switching elements UCP, UCN, VCP, and VCN are normally-off type MOSFETs, the converter 20 can be controlled on the safe side.
[0051] Also, it is said that the voltage that is generally considered to have no effect on the human body is about 42 [V]. The difference between this 42 [V] voltage and 50 [V], which is the minimum operating voltage of the control voltage generating unit 90, is small at 8 [V]. Also, there is a relationship of Q = C × V between the charge amount Q stored in the capacitor 30, the capacitance C of the capacitor 30, and the capacitor voltage V. Therefore, for example, when the capacitance C = 2000 [μF], the charge amount Q for a voltage difference of 8 [V] is 16 [mC]. Here, the safe value of the current passing through the human body is said to be 50 [mA / s], and if this 16 [mC] flows for one second, the current change rate is 16 [mA / s]. After one second has passed, the charge of 16 [mC] is discharged from the capacitor 30, and the capacitor voltage becomes 50-8 = 42 [V] or less. Therefore, it is no exaggeration to say that the operating voltage of 50 [V] has no effect on the human body.
[0052] In addition, when the application example of the power conversion device 110 is an air conditioner, the capacitor voltage when the converter 20 is in a boost operation is often about 300 [V]. In this case, the voltage difference described above is 300 [V] - 42 [V] = 258 [V], and the amount of charge stored in the capacitor 30 with a capacitance of 2000 μF is 516 [mC], which is about 32 times the amount of charge of 16 [mC]. With this amount of charge, it cannot be said that there is an immediate effect on the human body. However, it is expected that air conditioners that perform synchronous rectification, which has a high energy-saving effect, will become a standard function as a future trend. Even if it is safe for one or a few air conditioners, it is expected that it will become a problem in the future when many air conditioners that perform synchronous rectification are gathered together. Therefore, it can be said that operating the power conversion device 110 according to the control flow of FIG. 6 is of great significance as a technology that looks into future product trends.
[0053] As described above, in the power conversion device 110 according to the first embodiment, the control unit 70 controls the operation of the converter 20, and the control voltage generating unit 90 generates a control voltage for operating the control unit 70. When the voltage value of the DC voltage output by the power conversion device 110 is higher than the voltage value of the control voltage and no detection signal is output from the voltage detecting unit 83 for detecting the power supply voltage, the operation of the switching elements UCP, UCN, VCP, and VCN of the converter 20 is stopped by the control of the control unit 70. This control can reliably prevent reverse power flow to the AC power source 10 even when the power conversion device 110 includes the boost converter 20 and performs synchronous rectification. This makes it possible to realize a highly reliable power conversion device 110.
[0054] When the control voltage generating unit 90 is constructed using a switching power supply system, the operating voltage is preferably set to 42 [V], which is a safe voltage that takes into consideration the effects on the human body. The operating voltage may be set to 50 [V] or higher depending on the specifications of the switching power supply system or to suppress a decrease in the ability of the control voltage generating unit 90 to generate a control voltage. However, it goes without saying that when the operating voltage is set to 50 [V] or higher, the capacitance of the capacitor 30 should be taken into consideration when determining the voltage.
[0055] Next, a hardware configuration for realizing the functions of the control unit 70 according to the first embodiment will be described with reference to the drawings of Fig. 7 and Fig. 8. Fig. 7 is a block diagram showing an example of a hardware configuration for realizing the functions of the control unit 70 according to the first embodiment. Fig. 8 is a block diagram showing another example of a hardware configuration for realizing the functions of the control unit 70 according to the first embodiment.
[0056] In order to realize the functions of the control unit 70 according to embodiment 1, the configuration can include a processor 300 that performs calculations, a memory 302 that stores programs read by the processor 300, and an interface 304 that inputs and outputs signals, as shown in FIG. 7.
[0057] The processor 300 is a computing means called an arithmetic device, a microprocessor, a microcomputer, a CPU (Central Processing Unit), a DSP (Digital Signal Processor), or a system LSI (Large Scale Integration). Examples of the memory 302 include non-volatile or volatile semiconductor memories such as RAM (Random Access Memory), ROM (Read Only Memory), flash memory, EPROM (Erasable Programmable ROM), and EEPROM (registered trademark) (Electrically EPROM), magnetic disks, flexible disks, optical disks, compact disks, mini disks, and DVDs (Digital Versatile Discs).
[0058] The memory 302 stores a program for executing the functions of the control unit 70 according to the first embodiment. The processor 300 receives and transmits necessary information via the interface 304, and executes the program stored in the memory 302, thereby performing the above-mentioned processing. The calculation results by the processor 300 can be stored in the memory 302.
[0059] In addition, when implementing the functions of the control unit 70 according to the first embodiment, a processing circuit 305 shown in Fig. 8 can also be used. The processing circuit 305 can be a single circuit, a composite circuit, an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array), or a combination of these. Information to be input to the processing circuit 305 and information to be output from the processing circuit 305 can be obtained via an interface 306. Note that even in a configuration using the processing circuit 305, some of the processing in the control unit 70 may be performed by a processor 300 configured as shown in Fig. 7.
[0060] Embodiment 2 In the second embodiment, an air conditioner including the power conversion device 110 described in the first embodiment will be described.
[0061] Fig. 9 is a diagram showing an example of the configuration of an air conditioner 200 according to embodiment 2. The air conditioner 200 shown in Fig. 9 is a separate type air conditioner, and includes an indoor unit 210 and an outdoor unit 220. The indoor unit 210 includes an indoor unit load 211 and an opening / closing unit 212. The outdoor unit 220 includes the power conversion device 110, the load 120, and the control unit 70 described in embodiment 1.
[0062] Although not shown, the indoor unit load 211 is composed of a fan motor that drives the blower fan of the indoor unit 210, a stepping motor that operates a flap that adjusts the air direction, a control unit for operating these, etc. In addition, in a model in which the indoor unit 210 receives power from the AC power source 10, when a start command is given to the air conditioner 200 by a remote control or an emergency operation switch, the indoor unit load 211 operates to apply AC voltage from the AC power source 10 to the outdoor unit 220 with the opening / closing unit 212 in the closed state.
[0063] When the AC power source 10 is lost due to a power outage or the like, energy due to the regenerative operation of the power conversion device 110 may be supplied to the AC power source 10 until the opening / closing unit 212 is opened. Even if the opening / closing unit 212 is in the open state, regenerative energy is supplied to the opening / closing unit 212 of the indoor unit 210. Therefore, there is a risk that a user or a service person performing repairs or the like may accidentally touch the opening / closing unit 212 of the indoor unit 210.
[0064] Next, the operation of the power conversion device 110 specific to an air conditioner will be described with reference to Fig. 10. Fig. 10 is a diagram used to explain the operation of the air conditioner 200 according to the second embodiment. In Fig. 10, the first inverter 40 and the first permanent magnet synchronous motor 50 are used to drive an outdoor fan (not shown) in the outdoor unit 220. The outdoor fan is a fan device for performing heat exchange in the outdoor unit 220. In Fig. 10, the first inverter 40 and the first permanent magnet synchronous motor 50 are used to drive a compressor (not shown) in the outdoor unit 220. The compressor compresses the refrigerant and circulates it between the indoors and outdoors.
[0065] The outdoor unit 220 is generally installed outdoors and is therefore exposed to wind and rain. When rotated by an external force, the first permanent magnet synchronous motor 50 operates as a generator and generates a voltage. FIG. 10 shows the path of a current flowing between the U phase and the V phase when the first permanent magnet synchronous motor 50 operates as a generator. In the first permanent magnet synchronous motor 50, a current flowing out of the U phase flows through the diode of the switching element UP, the capacitor 30, and the diode of the switching element VN, and flows into the V phase. This current charges the capacitor 30. Note that, although the time periods during which the current flows are different, similar currents also flow between the V phase and the W phase and between the W phase and the U phase.
[0066] The generated voltage of the first permanent magnet synchronous motor 50 is proportional to the rotation speed. The typical rotation speed when driving an outdoor fan is about 1000 [rpm]. However, when the outdoor unit 220 is exposed to strong winds such as a typhoon, it may rotate at a rotation speed nearly five times the typical rotation speed. In this case, a generated voltage that is much higher than the voltage of the AC power supply 10 is generated in the capacitor 30 due to the current flowing through the path in FIG. 10, and a voltage above a certain level is stored in the capacitor 30.
[0067] When a certain voltage or more is stored in the capacitor 30, the control voltage generator 90 generates a control voltage, and the controller 70 can be started. When the controller 70 starts and controls the switching elements UCP, UCN, VCP, and VCN of the converter 20, an excessive voltage may be applied to the AC power source 10. In particular, during a power outage, the potential difference between the AC power source 10 and the capacitor 30 is large, and an excessive regenerative current may flow. In addition, since the converter 20 is designed assuming that an input voltage of 100 [V] or 200 [V] is applied, there is a risk of a short circuit state due to insufficient insulation distance, which may damage the circuit, and there is also a risk of the varistor, which is a protective device when an excessive voltage is applied, operating.
[0068] The above-mentioned phenomenon occurs even during a power outage when power is not supplied to the outdoor unit 220, and also occurs when the outdoor fan rotates even when the opening / closing unit 212 is open. For this reason, it is necessary to appropriately protect the air conditioner 200 from these phenomena. Therefore, in the air conditioner 200 according to the second embodiment, when the control unit 70 is started up by the rotation of the outdoor fan, first, the detection value V ac Then, if the control unit 70 is running even though no power supply voltage is detected, it is determined that the outdoor fan is rotating due to a strong wind such as a typhoon, and the operation of the switching elements UCP, UCN, VCP, and VCN is stopped. This control makes it possible to reliably prevent reverse power flow to the AC power supply 10, even when the power conversion device 110 provided in the air conditioner 200 includes a boost converter 20 and performs synchronous rectification. This makes it possible to realize a highly reliable air conditioner 200.
[0069] The configurations shown in the above embodiments are examples of the contents of the present invention, and may be combined with other known technologies. Parts of the configurations may be omitted or modified without departing from the gist of the present invention. [Explanation of symbols]
[0070] 10 AC power supply, 16 reactor, 20 converter, 25a, 25b DC bus, 30 capacitor, 40 first inverter, 45 second inverter, 50 first permanent magnet synchronous motor, 55 second permanent magnet synchronous motor, 60 semiconductor substrate, 61 p-type region, 62 source electrode, 63 drain electrode, 64 gate electrode, 65 n-type region, 66 oxide insulating film, 67 n-type channel, 70 control unit, 80, 83 voltage detection unit, 82 first current detector, 84 second current detector, 90 control voltage generation unit, 100 motor drive device, 110 power conversion device, 120 load, 200 air conditioner, 210 indoor unit, 211 indoor unit load, 212 opening / closing unit, 220 outdoor unit, 300 processor, 302 memory, 304, 306 interface, 305 Processing circuit, UCP, UCN, VCP, VCN, UP, UN, VP, VN, WP, WN, UP', UN', VP', VN', WP', WN' switching elements.
Claims
1. A power conversion device that converts an AC voltage applied from an AC power source into a DC voltage for an inverter that drives a permanent magnet synchronous motor, A reactor, a converter including a plurality of switching elements each having an anti-parallel connected diode, the plurality of switching elements being bridge-connected, and connected to the AC power supply via the reactor; a capacitor connected to an output terminal of the converter and holding the DC voltage; A first detection unit that detects a voltage value of the DC voltage; A second detection unit that detects a voltage value, a frequency, or a zero cross point of the AC voltage; A control unit for controlling an operation of the converter; a control voltage generating unit that generates a control voltage for operating the control unit; Equipped with When the voltage value of the DC voltage is higher than the voltage value of the control voltage and the second detection unit does not output a detection signal, the operation of the multiple switching elements is stopped. Power conversion equipment.
2. The switching element is a normally-off metal oxide semiconductor field effect transistor. The power conversion device according to claim 1 .
3. The switching element is a metal oxide semiconductor field effect transistor formed of a wide band gap semiconductor. The power conversion device according to claim 1 or 2.
4. The wide band gap semiconductor is silicon carbide, gallium nitride, gallium oxide or diamond. The power conversion device according to claim 3 .
5. The switching element is a metal oxide semiconductor field effect transistor having a superjunction structure. The power conversion device according to claim 1 .
6. The anti-parallel connected diode is a parasitic diode of the metal oxide semiconductor field effect transistor. The power conversion device according to any one of claims 2 to 5.
7. A motor drive device comprising the power conversion device according to any one of claims 1 to 6.
8. An air conditioner comprising the motor drive device according to claim 7.
Citation Information
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