Power Supply Device
20240055973 ยท 2024-02-15
Inventors
Cpc classification
H02M1/32
ELECTRICITY
H02M1/0016
ELECTRICITY
H02M1/0074
ELECTRICITY
H02M7/49
ELECTRICITY
H02M1/008
ELECTRICITY
Y02B70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
Provided is a power supply device in which the output voltages of unit power converters can be controlled to be substantially constant even when the loads of the respective unit power converters are different from each other. The power supply device in which a plurality of unit power converters are connected in series with an AC system and power is supplied from the unit power converters to load devices is characterized by being provided with a control device for obtaining the degree of load imbalance among the load powers of the load devices and controlling the AC system side voltages of the unit power converters to operate by reducing the power factor of the AC system when the degree of load imbalance increases.
Claims
1. A power supply device in which a plurality of unit power converters is connected in series to an AC system and power is supplied from each unit power converter to a load device, the power supply device comprising: a control device that obtains a load unbalanced degree of load powers in a plurality of load devices and controls a voltage on the AC system side of the unit power converters to operate by lowering a power factor in the AC system when the load unbalanced degree becomes large.
2. The power supply device according to claim 1, wherein the control device sets the power factor to 1.0 when the load unbalanced degree is smaller than a limit value, and reduces the power factor when the load unbalanced degree is larger than the limit value.
3. The power supply device according to claim 2, wherein the control device controls the DC voltages of the plurality of unit power converters to the same value when the power factor in the AC system is lowered for operation.
4. The power supply device according to claim 3, wherein the unit power converters are configured in such a manner that two sets of semiconductor switch circuits are connected in series to configure legs, two sets of legs are connected in parallel to form DC output terminals at both ends of the legs, and connection points of the two sets of semiconductor switch circuits connected in series in the legs are connected to respective AC terminals of single-phase AC.
5. The power supply device according to claim 3, wherein each unit power converter is configured by arranging an AC-DC converter, a parallel capacitor, a DC-AC converter, a transformer, and an AC-DC converter sequentially from the AC input side.
6. The power supply device according to claim 3, wherein the unit power converters include a first unit power converter and a second unit power converter and are configured in such a manner that power is fed to a first load in parallel, an installation point is provided on the AC system side, a positive potential is applied to the first unit power converter, and a negative potential is applied to the second unit power converter, wherein power is fed to a plurality of loads by the plurality of unit power converters, and wherein a plurality of first unit power converters and a plurality of second unit power converters configuring the plurality of unit power converters are connected in series to the AC system.
7. The power supply device according to claim 6, wherein the load unbalanced degree is obtained by a calculation using the maximum value of a plurality of load powers as a denominator and the sum of differences between the maximum value and the load powers as a numerator.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DESCRIPTION OF EMBODIMENTS
[0017] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.
First Embodiment
[0018]
[0019] In the upper part of
[0020] A control device 200 of the power supply device shown in the lower part of
[0021] It should be noted that the unit power converter PC is a so-called AC/DC converter that performs power conversion between AC and DC, but functions as a rectifier that converts AC to DC in a state where the power supply device shown in
[0022]
[0023] Processing steps S1 and S2 shown in
[0024] In processing steps S3 and S4 in
[0025] Next, a difference P.sub.n between Pmax and Pn is obtained in the processing step S4. Therefore, in the case of the example of
[Equation 1]
Load unbalanced degree=n/Pmax(1)
[0026] As is clear from Equation (1), as a balanced state, for example, when all the load powers Pn (P1 to P4) have the same value (for example, all are 100%), the load unbalanced degree is 0, but when the load powers become unbalanced, it shows a significant value, and it can be understood that the greater the unbalanced degree is, the greater the value is. An index indicating the load unbalanced degree other than Equation (1) described above can be employed as long as it indicates such a tendency.
[0027] A processing step S5 is a process for converting the load unbalanced degree into a power factor. In this case, the limit value limit of the load unbalanced degree is appropriately set in advance. Here, in the state of the load unbalanced degree equal to or smaller than the limit value limit (including the stable state), a power factor cos is set to 1, and in the state of the load unbalanced degree equal to or larger than the limit value limit, the power factor cos decreases as the load unbalanced degree becomes larger. That is, although the terminal voltage Vs and the current iL of the AC power supply 100 are in phase in the state of the load unbalanced degree equal to or smaller than the limit value limit, the current iL is made to have a delay phase with respect to the voltage Vs in the state of the load unbalanced degree equal to or larger than the limit value limit, and the degree of the delay phase is increased according to the magnitude of the load unbalanced degree.
[0028] Processing steps S6 and S7 relate to a power factor control process. First, in the processing step S6, a charge/discharge mode is set to the unit power converters PC1 to PC4 in order to adjust the power factor cos . When the load unbalanced degree is equal to or smaller than the intrinsic limit value limit of the power supply device as a normal state, the power supply device is controlled with a power factor cos of 1, which is the conventional control method, but when the intrinsic limit value limit of the power supply device is exceeded, the effective value of the line current iL is increased by decreasing the power factor cos to increase the charge/discharge current in the charge/discharge mode.
[0029] Here, the charge mode is a mode in which when the line current iL is positive (or negative), +Vdc (or Vdc) is generated on the AC side of the unit power converters PC, the line current iL simultaneously flows into the capacitors C (C1 to C4), and the capacitor voltage increases. On the other hand, the discharge mode is a mode in which when the line current iL is positive (or negative), Vdc (or +Vdc) is generated on the AC side, the line current iL simultaneously flows out to the capacitors, and the capacitor voltage decreases.
[0030] When the charge/discharge current in the charge/discharge mode increases, the ability to charge/discharge the capacitors C (C1 to C4) can be enhanced, and the rectifier output voltage can be stably controlled even when the load is unbalanced by accelerating the control response of the capacitor voltage that is the output voltage.
[0031] In the processing step S7, the AC terminal-side voltages Vacl to Vac4 of the unit power converters PC1 to PC4 are determined for the unit power converters PC1 to PC4 in accordance with the charge/discharge mode set in the processing step S6, and PWM (Pulse Width Modulation) control of the unit power converters PC1 to PC4 is performed so as to become the voltages.
[0032]
[0033] According to the principle waveforms, before the time t in
[0034] According to the control of the present invention, each rectifier output voltage Vdc is controlled to the same value in a state where the load unbalanced degree is lowered.
[0035] It should be noted that
Second Embodiment
[0036] In a second embodiment, another configuration example in which the unit power converter in the power supply device of the present invention can be employed will be described by using
[0037] Each unit power converter PC (PC1 to PC4) shown in
[0038] According to
[0039] According to the above configuration and usage, it is natural that charging power is different when charging each EV charger. For example, the output voltage Vdc of the rectifier REC1 can be stably controlled by using the control method according to the present invention even if the load of one unit becomes zero and the load unbalanced degree becomes high.
Third Embodiment
[0040] In a third embodiment, a further modified configuration example using the unit power converter of the second embodiment will be described by using
[0041] The configuration of the unit power converter PC (unit) of the third embodiment is the same as that of the second embodiment, but the power supply-side connection and the load-side connection of the unit power converter PC (unit) are different from those of the second embodiment.
[0042] As in a connection relationship shown in the middle of
[0043] According to this configuration, when the loads of the unit PC1 and the unit PC2 are different from each other, the output voltage of the rectifier can be stably controlled by using the control method according to the present invention even if the load unbalanced degree becomes high.
[0044] When the load unbalanced degree becomes much higher, the power storage system is operated to act as a balancer in the distribution system so that the difference between the load P1 and the load P2 can be eliminated.
LIST OF REFERENCE SIGNS
[0045] PC1, PC2, PC3, PC4 unit power converter (unit) [0046] Ld1, Ld2, Ld3, Ld4 load [0047] 100 AC power supply [0048] 101 reactor [0049] 200 control device