Wind power generation system and power conversion apparatus
11764585 · 2023-09-19
Assignee
Inventors
Cpc classification
Y02B70/30
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
Y02E10/76
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
H02J3/472
ELECTRICITY
H02P9/00
ELECTRICITY
Y02E10/72
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
Y04S20/20
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
H02J3/38
ELECTRICITY
H02J3/46
ELECTRICITY
Abstract
A wind power generation system includes a power generator body, an auxiliary device that assists the power generator body, and a power conversion apparatus that converts first AC power generated by the power generator body to second AC power, and outputs the second AC power to an electric power grid. The power conversion apparatus includes a first power conversion circuit, a second power conversion circuit, a power storage element that receives DC power from the first power conversion circuit via a first passing point, a breaker, and a control unit. When the power generator body is in a power generation standby state, the control unit sets a parallel-off mode and controls the second power conversion circuit to convert power of the power storage element to third AC power having a preset voltage. The auxiliary device is configured to receive the second AC power or the third AC power.
Claims
1. A wind power generation system comprising: a power generator body that generates first AC power from wind power; an auxiliary device that assists the power generator body; and a power conversion apparatus that converts the first AC power from the power generator body to second AC power, and outputs the second AC power to an electric power grid, wherein the power conversion apparatus includes a first power conversion circuit that converts the first AC power to DC power, a second power conversion circuit that converts the DC power resulting from conversion at the first power conversion circuit to the second AC power, a breaker that is provided between the second power conversion circuit and the electric power grid, and control circuitry that controls the second power conversion circuit and the breaker, wherein the breaker is provided between the control circuitry and the electric power grid to disconnect the control circuitry from the electric power grid when the breaker is shut off, the wind power generation system further comprises a power storage element that stores power by receiving the DC power from the first power conversion circuit via a first passing point provided between the first power conversion circuit and the second power conversion circuit, wherein when the power generator body is generating power, the control circuitry brings the breaker into conduction to set a grid-connected operation mode in which the second power conversion circuit cooperates with the electric power grid, and controls the second power conversion circuit to convert the DC power from the first power conversion circuit to the second AC power during the grid-connected operation mode, when the power generator body is in a power generation standby state which is a time period of being on standby for power generation, the control circuitry shuts off the breaker to set a parallel-off mode in which the second power conversion circuit is disconnected from the electric power grid, and controls the second power conversion circuit to convert power of the power storage element received by the second power conversion circuit via the first passing point, to third AC power having a preset voltage, the auxiliary device is configured to receive the second AC power in the grid-connected operation mode and the third AC power in the parallel-off mode, the second and third AC power being outputted from the second power conversion circuit via a second passing point provided between the second power conversion circuit and the breaker, the auxiliary device includes a wind turbine control unit and a yaw motor for adjusting a direction of a nacelle, and the wind turbine control unit and the yaw motor are configured to receive the third AC power via the second passing point during the power generation standby state.
2. The wind power generation system according to claim 1, wherein the power conversion apparatus further includes a chopper circuit that is connected to the first passing point and that converts power received from the first passing point, and a resistor for consuming power outputted from the chopper circuit, the power storage element includes a first power storage element that is provided on an output side of the chopper circuit inside the power conversion apparatus and that stores at least a part of output power from the chopper circuit, and the chopper circuit transmits power of the first power storage element to the second power conversion circuit during the power generation standby state.
3. The wind power generation system according to claim 1, wherein the power conversion apparatus further includes a DC capacitor that is connected to the first passing point between the first power conversion circuit and the second power conversion circuit, and the power storage element includes a second power storage element that is provided outside the power conversion apparatus and is connected in parallel with the DC capacitor.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF EMBODIMENTS
(7)
(8) The plurality of wind power generation systems 10 are connected to the electric power grid 1 via a transmission line 6. A transformer 2, a current meter 3, a high-order breaker 4, and a WF (wind farm) control unit 5 are provided between the electric power grid 1 and the transmission line 6.
(9) As illustrated in
(10) The power generator body 12 generates power from wind power. The power generated by the power generator body 12 is first AC power P1. The auxiliary device 13 and the auxiliary device 14 include various devices for assisting the power generation operation of the power generator body 12. The auxiliary device 13 is a wind turbine control unit.
(11) The wind power generation system 10 has a nacelle in which the power generator body 12 is housed. In the actual wind power generation system 10, the power generator body 12 and the power conversion apparatus 20 are ordinarily housed in the nacelle in a collective manner.
(12) The auxiliary device 14 is a motor part including a pitch motor and a yaw motor. The pitch motor and the yaw motor are constantly operated according to the wind state, and are intermittently actuated. When the yaw motor included in the auxiliary device 14 is driven, the direction of the nacelle can be adjusted.
(13) The power conversion apparatus 20 converts the first AC power P1 from the power generator body 12 to second AC power P2. The power conversion apparatus 20 outputs the second AC power P2 to the electric power grid 1.
(14) The power conversion apparatus 20 includes a first power conversion circuit 21, a second power conversion circuit 22, a PCS control unit 23, a PCS control power source unit 24, a DC capacitor 25, an AC reactor 26, an AC capacitor 27, a breaker 28, and an energy consumption circuit 30.
(15) The first power conversion circuit 21 is a converter circuit that converts the first AC power P1 to DC power. The second power conversion circuit 22 is an inverter circuit that converts the DC power resulting from conversion at the first power conversion circuit 21 to the second AC power P2. The output end of the second power conversion circuit 22 is connected to one end of the AC reactor 26.
(16) The PCS control unit 23 controls the second power conversion circuit 22 and the breaker 28. The PCS control power source unit 24 supplies a control power source to the PCS control unit 23.
(17) One end of the DC capacitor 25 is connected to a first passing point Q1. The other end of the AC reactor 26 is connected to the breaker 28. One end of the AC capacitor 27 is connected to a connection point between the AC reactor 26 and the breaker 28.
(18) The breaker 28 is provided between the second power conversion circuit 22 and the electric power grid 1. When the breaker 28 is brought into a connected state, the second power conversion circuit 22 and the electric power grid 1 can be interconnected. When the breaker 28 is brought into a shut-off state, the second power conversion circuit 22 and the electric power grid 1 are disconnected from each other, whereby the wind power generation system 10 can be paralleled off from the electric power grid 1.
(19) As illustrated in
(20) The energy consumption circuit 30 is connected to the first passing point Q1. The first passing point Q1 is provided on an electric path between the first power conversion circuit 21 and the second power conversion circuit 22.
(21) The first power storage element 33 can receive the DC power resulting from conversion at the first power conversion circuit 21, via the first passing point Q1. The first power storage element 33 can store power by receiving the DC power. An explanation of the configuration and operation of the energy consumption circuit 30 will be given in detail later with use of
(22)
(23) The other end of the transformer 40 is connected to a connection point to which the auxiliary device 14, the auxiliary device control power source unit 15, and the PCS control power source unit 24 are connected. Accordingly, the auxiliary device 14, the auxiliary device control power source unit 15, and the PCS control power source unit 24 can receive power supply from the second passing point Q2 via the transformer 40.
(24) In addition, the auxiliary device control power source unit 15 supplies a control power source to the auxiliary device 13, and also supplies a control power source to a motor control circuit (not illustrated) included in the auxiliary device 14. Therefore, the auxiliary device 13 also can receive power supply from the second passing point Q2, via the transformer 40 and the auxiliary device control power source unit 15.
(25) One end of the transformer 41 is connected to the breaker 28. The other end of the transformer 41 is connected to the transmission line 6.
(26) The PCS control unit 23 brings the wind power generation system 10 into a grid-connected operation mode when the power generator body 12 is generating power. In the grid-connected operation mode, the breaker 28 is brought into conduction such that the second power conversion circuit 22 cooperates with the electric power grid 1. In the grid-connected operation mode, the PCS control unit 23 controls the second power conversion circuit 22 to convert the DC power from the first power conversion circuit 21 to the second AC power P2.
(27)
(28) During the power generation standby mode, the PCS control unit 23 brings the wind power generation system 10 into the “parallel-off mode”. In the “parallel-off mode”, the breaker 28 is shut off such that the second power conversion circuit 22 is disconnected from the electric power grid 1. The parallel-off mode can be also referred to as a “stand-alone mode” in which the wind power generation system 10 is operating alone.
(29) During the power generation standby mode, the PCS control unit 23 causes the first power conversion circuit 21 to serve as a gate block. During the power generation standby mode and the parallel-off mode, the PCS control unit 23 controls the second power conversion circuit 22 to convert power received from the first power storage element 33 via the first passing point Q1 to third AC power P3.
(30) The third AC power P3 has a preset voltage and a preset frequency. When the third AC power P3 is being outputted, the second power conversion circuit 22 serves as an AC voltage source.
(31) As has been explained with use of
(32) On the other hand, as has been explained with use of
(33)
(34) The chopper circuit 31 is connected to the first passing point Q1, and converts the power received from the first passing point Q1 during execution of FRT (fault ride through). The first power storage element 33 is provided on the output side of the chopper circuit 31. The first power storage element 33 may be a storage battery or a capacitor.
(35) The resistor 32 is used to consume power outputted from the chopper circuit 31 during execution of FRT. The switch 34 selectively connects the resistor 32 and the first power storage element 33 to the chopper circuit 31.
(36) The first power storage element 33 is charged by the following operation. The switch control circuit 35 controls the switch 34 by transmitting a switch signal S1 to the switch 34. When the charge amount in the first power storage element 33 is equal to or higher than a predetermined threshold, the switch control circuit 35 controls the switch 34 to connect the chopper circuit 31 to the resistor 32. When the charge amount in the first power storage element 33 is less than the predetermined threshold, the switch control circuit 35 controls the switch 34 to connect the chopper circuit 31 to the first power storage element 33.
(37) As a result of establishment of connection between the chopper circuit 31 and the first power storage element 33 during execution of FRT, the first power storage element 33 stores at least a part of the output power from the chopper circuit 31.
(38) As a result of addition of the first power storage element 33 to the chopper circuit 31, power that cannot reversely flow to the electric power grid 1 during execution of FRT can be stored into the first power storage element 33. The power stored in the first power storage element 33 can be reused, as needed. Therefore, power loss that is generated due to execution of FRT can be reduced.
(39) Power stored in the first power storage element 33 is used by the following operation. During the power generation standby mode, the chopper circuit 31 transmits the power in the first power storage element 33 to the second power conversion circuit 22. Specifically, during the power generation standby mode, the PCS control unit 23 turns on a switching element of the chopper circuit 31 such that the first power storage element 33 and the first passing point Q1 are electrically connected. During the power generation standby mode, the third AC power P3 is generated from the power from the first power storage element 33, and thus, the third AC power P3 can be supplied to the auxiliary device 13 and the auxiliary device 14.
(40) The wind power generation system 10 is configured to supply the third AC power P3 at least to the yaw motor of the auxiliary device 14 during the power generation standby mode. When the wind speed is low, the yaw motor is preferably driven in order to rotate the nacelle in the wind direction. However, if the wind speed is so low that the wind power generation system 10 has to be on standby for power generation, no generated power from the wind power generation system 10 can be given to the auxiliary device 13 and the auxiliary device 14. Therefore, the third AC power P3 generated from the power of the first power storage element 33 can be supplied to the yaw motor. Accordingly, the yaw motor can be driven even when the wind power generation system 10 is in the power generation standby mode.
(41)
(42) The difference according to the modification is that the energy consumption circuit 30 is replaced with an energy consumption circuit 130. The energy consumption circuit 130 does not include the first power storage element 33, but, except for this, has a configuration identical to that of the energy consumption circuit 30.
(43) The wind power generation system 110 according to the modification further includes the second power storage element 133 that is connected in parallel with the DC capacitor 25. In the embodiment, the size of the second power storage element 133 may be large because the second power storage element 133 is an external type storage battery or capacitor that is provided outside the power conversion apparatus 20.
(44) The second power storage element 133 stores power by receiving DC power resulting from conversion at the first power conversion circuit 21 via the first passing point Q1, during the power generation mode of the wind power generation system 110.
(45) During the power generation standby mode, the PCS control unit 23 brings the breaker 28 into the shut-off state so as to bring the wind power generation system 110 into the parallel-off mode. The second power conversion circuit 22 receives the power from the second power storage element 133 via the first passing point Q1. The PCS control unit 23 controls the second power conversion circuit 22 to convert the power from the second power storage element 133 to the third AC power P3.
(46) As described above, also in the wind power generation system 110 according to the modification, the third AC power P3 can be generated from power stored in the second power storage element 133, and can be supplied to the auxiliary device 14 and the like, during the power generation standby mode.
(47)
(48) The wind power generation system 210 according to the comparative example differs from the wind power generation system 10 illustrated in
(49) A second difference is that one end of the transformer 40 is connected not to the second passing point Q2, but to another passing point Qx. The other passing point Qx is provided on an electric path between the breaker 28 and the transformer 41.
(50) A third difference is that the energy consumption circuit 30 is replaced with the energy consumption circuit 130. The energy consumption circuit 130 does not include the first power storage element 33, but, except for this, has a configuration identical to that of the energy consumption circuit 30.
(51) Further, the wind power generation system 210 according to the comparative example does not include the second power storage element 133 according to the modification in
(52) In the comparative example, during power generation in
(53) Regarding this point, the embodiment has an advantage that power supply to the auxiliary device 13, the auxiliary device 14, and the like, can be covered not by the grid AC power P4 but by the third AC power P3.
(54) The power conversion apparatus 20 according to the embodiment may be used not in the wind power generation system 10, but in another power system. The power conversion apparatus 20 includes the first power conversion circuit 21, the second power conversion circuit 22, the chopper circuit 31, the resistor 32, the first power storage element 33, and the switch 34. Accordingly, output power from the chopper circuit 31 can be given to the first power storage element 33 via the switch 34, whereby at least a part of power that cannot reversely flow to the grid during execution of FRT can be stored.
REFERENCE SIGNS LIST
(55) 1 electric power grid 2 transformer 3 current meter 4 high-order breaker 5 WF (wind farm) control unit 6 transmission line 10, 110, 210 wind power generation system 12 power generator body 13 auxiliary device (wind turbine control unit) 14 auxiliary device (motor part) 15 auxiliary device control power source unit 20, 220 power conversion apparatus 21 first power conversion circuit 22 second power conversion circuit 23 PCS control unit 24 PCS control power source unit 25 DC capacitor 26 AC reactor 27 AC capacitor 28 breaker 30, 130 energy consumption circuit 31 chopper circuit 32 resistor 33 first power storage element 34 switch 35 switch control circuit 40, 41 transformer 133 second power storage element P1 first AC power P2 second AC power P3 third AC power P4 grid AC power Q1 first passing point Q2 second passing point Qx another passing point