Power quality compensator device and control method thereof
11575311 · 2023-02-07
Assignee
Inventors
Cpc classification
H02M1/0009
ELECTRICITY
Y02E40/10
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
H02J3/002
ELECTRICITY
Y02E40/20
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
A power quality compensator device and a control method thereof are provided. The power quality compensator device is electrically connected to a power grid and a nonlinear load, and includes a current controller, a converter, a ripple predictor, a processing unit and a voltage controller. The current controller is configured to receive an instruction current and output a switch control signal. The converter is configured to output an output current and an actual DC bus voltage according to the switch control signal. The ripple predictor is configured to receive an intermediate voltage and a first current and output a predicted ripple voltage. The processing unit is configured to output a processing result according to the actual DC bus voltage, the predicted ripple voltage and a reference DC bus voltage. The voltage controller is configured to receive the processing result and output a voltage control signal to the current controller.
Claims
1. A power quality compensator device, electrically connected to a power grid and a nonlinear load, comprising: a current controller configured to receive an instruction current and output a switch control signal; a converter electrically coupled to the current controller, wherein the converter is configured to output an output current and an actual DC bus voltage according to the switch control signal; a ripple predictor configured to receive an intermediate voltage and a first current and output a predicted ripple voltage, wherein the intermediate voltage is a voltage at a common node of the power grid and the nonlinear load; a processing unit electrically connected to the ripple predictor and the converter, wherein the processing unit is configured to output a processing result according to the actual DC bus voltage, the predicted ripple voltage and a reference DC bus voltage; and a voltage controller electrically coupled to the processing unit and the current controller, wherein the voltage controller is configured to receive the processing result and output a voltage control signal to the current controller.
2. The power quality compensator device according to claim 1, wherein the output current is selected as the first current, and the ripple predictor is configured to output the predicted ripple voltage according to the intermediate voltage and the output current.
3. The power quality compensator device according to claim 2, wherein a reference current of a current of the power grid is selected as the instruction current.
4. The power quality compensator device according to claim 3, further comprising a detector electrically connected to the current controller, wherein the detector is configured to detect a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the current of the power grid and output the instruction current to the current controller.
5. The power quality compensator device according to claim 2, wherein a reference current of a nonlinear load current is selected as the instruction current.
6. The power quality compensator device according to claim 5, further comprising a detector electrically connected to the current controller, wherein the detector is configured to detect a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the nonlinear load current and output the instruction current to the current controller.
7. The power quality compensator device according to claim 1, wherein the instruction current is selected as the first current, and the ripple predictor is configured to output the predicted ripple voltage according to the intermediate voltage and the instruction current.
8. The power quality compensator device according to claim 7, wherein a reference current of a current of the power grid is selected as the instruction current.
9. The power quality compensator device according to claim 8, further comprising a detector electrically connected to the current controller, wherein the detector is configured to detect a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the current of the power grid and output the instruction current to the current controller.
10. The power quality compensator device according to claim 7, wherein a reference current of a nonlinear load current is selected as the instruction current.
11. The power quality compensator device according to claim 10, further comprising a detector electrically connected to the current controller, wherein the detector is configured to detect a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the nonlinear load current and output the instruction current to the current controller.
12. The power quality compensator device according to claim 1, further comprising a driving circuit electrically connected between the current controller and the converter, wherein the driving circuit is configured to output a driving signal to the converter according to the switch control signal, and the converter operates according to the driving signal.
13. The power quality compensator device according to claim 1, wherein the power quality compensator device is an active power filter (APF), a static var generator (SVG) or an enhanced static var generator with harmonic compensation function.
14. A method for controlling a power quality compensator device electrically connected to a power grid and a nonlinear load, comprising: receiving an instruction current and outputting a switch control signal by a current controller; outputting an output current and an actual DC bus voltage according to the switch control signal by a converter; outputting a predicted ripple voltage according to an intermediate voltage and a first current by a ripple predictor, wherein the intermediate voltage is a voltage at a common node of the power grid and the nonlinear load; outputting a processing result according to the actual DC bus voltage, the predicted ripple voltage and a reference DC bus voltage by a processing unit; and outputting a voltage control signal to the current controller according to the processing result by a voltage controller.
15. The method according to claim 14, wherein the output current is selected as the first current, and the ripple predictor is configured to output the predicted ripple voltage according to the intermediate voltage and the output current.
16. The method according to claim 15, wherein a reference current of a current of the power grid is selected as the instruction current.
17. The method according to claim 16, further comprising: detecting a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the current of the power grid and outputting the instruction current to the current controller by a detector.
18. The method according to claim 15, wherein a reference current of a nonlinear load current is selected as the instruction current.
19. The method according to claim 18, further comprising: detecting a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the nonlinear load current and outputting the instruction current to the current controller by a detector.
20. The method according to claim 14, wherein the instruction current is selected as the first current, and the ripple predictor is configured to output the predicted ripple voltage according to the intermediate voltage and the instruction current.
21. The method according to claim 20, wherein a reference current of a current of the power grid is selected as the instruction current.
22. The method according to claim 21, further comprising: detecting a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the current of the power grid and outputting the instruction current to the current controller by a detector.
23. The method according to claim 20, wherein a reference current of a nonlinear load current is selected as the instruction current.
24. The method according to claim 23, further comprising: detecting a fundamental positive-sequence component, a fundamental negative-sequence component, a fundamental zero-sequence component and a harmonic component of the nonlinear load current and outputting the instruction current to the current controller by a detector.
25. The method according to claim 14, further comprising: outputting a driving signal to the converter according to the switch control signal by a driving circuit, wherein the converter operates according to the driving signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE EMBODIMENT
(6) The present disclosure will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this disclosure are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
(7)
(8) The actual implementation of the ripple predictor predicting the ripple is exemplified as follows. The value of the bus capacitance in the converter 12 is C. The output current i.sub.o is selected as the first current, and the bus capacitor voltage at the initial moment is U.sub.0. After a period of time t, since the energy is exchanged between the power quality compensator device and the power grid 2, the bus capacitor voltage is U.sub.0+ΔU, where ΔU is the ripple voltage. According to the law of conservation of energy, the following equation (1) is achieved.
(9)
(10) By simplifying the equation (1), equation (2) is achieved.
(11)
(12) Since ΔU is much less than U.sub.0, the ΔU.sup.2 in equation (2) can be ignored to simplify, and the predicted ripple voltage ΔU is achieved as equation (3).
(13)
(14) In the equation (3), the intermediate voltage u.sub.pcc is a voltage at the common node of the power grid 2 and the nonlinear load 3. Thereby, according to the intermediate voltage u.sub.pcc and the first current (the output current i.sub.0), the ripple component of the bus voltage can be predicted.
(15) In an embodiment, the processing unit 14 includes an operator 141 and a comparator 142. The operator 141 is electrically connected to the ripple predictor 13a and the converter 12. The operator 141 is configured to receive the actual DC bus voltage u.sub.dc and the predicted ripple voltage u.sub.dc_ripple, calculate a difference between the actual DC bus voltage u.sub.dc and the predicted ripple voltage u.sub.dc_ripple, and output the difference to the comparator 142. The comparator 142 is electrically connected between the operator 141 and the voltage controller 15. The comparator 142 is configured to receive the difference, compare the difference with the reference DC bus voltage u.sub.dc_ref, and output the processing result.
(16) In an embodiment, the power quality compensator device 1a further includes a driving circuit 16. The driving circuit 16 electrically connected between the current controller 11 and the converter 12. The driving circuit 16 is configured to receive the switch control signal outputted by the current controller 11. According to the switch control signal, the driving circuit 16 is configured to output a driving signal to the converter 12. The converter 12 operates according to the driving signal.
(17) In addition, in the first and third embodiments shown in
(18) Moreover, in the first and second embodiments shown in
(19) In addition, in the first and second embodiments shown in
(20)
(21) The step S1 is, receiving the instruction current and outputting the switch control signal by the current controller 11.
(22) The step S2 is, outputting the output current i.sub.o and the actual DC bus voltage u.sub.dc according to the switch control signal by the converter 12.
(23) The step S3 is, outputting the predicted ripple voltage u.sub.dc_ripple according to the intermediate voltage u.sub.pcc and the first current by the ripple predictor 13a or 13b, wherein the intermediate voltage u.sub.pcc is the voltage at the common node of the power grid 2 and the nonlinear load 3.
(24) The step S4 is, outputting the processing result according to the actual DC bus voltage u.sub.dc, the predicted ripple voltage u.sub.dc_ripple and the reference DC bus voltage u.sub.dc_ref by the processing unit 14.
(25) The step S5 is, outputting the voltage control signal to the current controller 11 according to the processing result by the voltage controller 15.
(26) It is noted that the steps S1 to S5 can be performed circularly. Further, when starting to perform the control method, any of the steps S1 to S5 can be the initial step.
(27) In an embodiment, the control method further includes: outputting the driving signal to the converter 12 according to the switch control signal by the driving circuit 16. The converter 12 operates according to the driving signal.
(28) In this control method, the output current i.sub.o or the instruction current may be selected as the first current, and the reference current of the power grid current is or the nonlinear load current i.sub.L may be selected as the instruction current.
(29) In addition, when the control method is applied to control the power quality compensator devices 1a and 1b shown in
(30) For the power quality compensator device controlled by the control method of the present disclosure, the power quality compensator device is for example but not limited to an active power filter, a static var generator or an enhanced static var generator with harmonic compensation function.
(31) From the above descriptions, the present disclosure provides a power quality compensator device and a control method thereof. When the power quality compensator device compensates the harmonic component and reactive component of the power grid current caused by the nonlinear load, the ripple component of the bus voltage is predicted according to the first current and the voltage at the common node of the power grid and the nonlinear load. The ripple component of the actual DC bus voltage is compensated by the predicted ripple voltage, and thus the actual DC component of the DC bus voltage is achieved and the average value of the bus voltage is stable. Consequently, the power quality compensator device of the present disclosure can adopt the higher wide-bandwidth voltage control loop, the response speed of the voltage loop is much faster, and the control result for the bus voltage is more optimized. Further, the stability of the power quality compensator device is improved, while the power quality of the power grid current doesn't have side-effect.
(32) While the disclosure has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the disclosure needs not be limited to the disclosed embodiment.