Wind farm power regulation
10428797 ยท 2019-10-01
Assignee
Inventors
Cpc classification
F03D17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J3/46
ELECTRICITY
Y02E40/30
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
F03D9/257
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
F05B2270/504
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
F03D7/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J3/38
ELECTRICITY
H02K7/18
ELECTRICITY
Abstract
One example includes a wind farm power control system. The system includes a wind farm controller configured to monitor a power characteristic at a high-side of a generator step-up (GSU) transformer. The high-side of the GSU transformer is coupled to a point-of-interconnect (POI) that provides power from the wind farm to a power grid. The system also includes an automatic voltage regulator (AVR) configured to monitor a voltage of a power bus associated with a low-side of the GSU transformer, the power bus being provided power from a plurality of feeder groups. Each of the plurality of feeder groups includes a plurality of wind turbines. The AVR can be further configured to regulate the power characteristic at the high-side of the GSU transformer to within a predetermined range of amplitudes based on the voltage of the power bus.
Claims
1. A wind farm power control system comprising: a first site controller configured to monitor a power characteristic at a high-side of a generator step-up (GSU) transformer, the high-side of the GSU transformer being coupled to a point-of-interconnect (POI) that provides power from a wind farm to a power grid, the first site controller comprising a single first automatic voltage regulator (AVR) per a plurality of first feeder groups, each of the plurality of first feeder groups comprising a plurality of first wind turbines; and a second site controller comprising a single second automatic voltage regulator (AVR) per a plurality of second feeder groups configured to monitor a voltage of a power bus associated with a low-side of the GSU transformer, the power bus being provided power from the plurality of second feeder groups, each of the plurality of second feeder groups comprising a plurality of second wind turbines, wherein the first site controller generates a cross-control signal directly provided to the second site controller to provide an indication of the power characteristic to the second site controller, wherein the second site controller generates a cross-control signal directly provided to the first site controller to provide an indication of the voltage on the power bus, and wherein the first AVR is further configured to regulate the power characteristic at the high-side of the GSU transformer to within a predetermined range of amplitudes based on the voltage of the power bus.
2. The system of claim 1, wherein the first AVR is configured to generate a voltage set-point based on the monitored power characteristic and to provide the voltage set-point to at least one control processor associated with each of the plurality of first feeder groups and the plurality of second feeder groups, the at least one control processor being configured to regulate a voltage output associated with the respective one of the plurality of first feeder groups and the plurality of second feeder groups, wherein the first AVR and the second AVR are configured to set the voltage output associated with each of the respective plurality of first feeder groups and the plurality of second feeder groups to regulate the power characteristic at the high-side of the GSU transformer to within the predetermined range of amplitudes based on the voltage set-point.
3. The system of claim 2, wherein the wind farm comprises a plurality of breaker switches that interconnect the respective plurality of first feeder groups and the plurality of second feeder groups to the power bus, wherein the first AVR is configured to determine the voltage set-point based on a number of the plurality of first feeder groups and the plurality of second feeder groups that are coupled to the power bus via a respective number of the plurality of breaker switches, and is configured to provide the voltage set-point to the at least one control processor associated with each of the plurality of first feeder groups and the plurality of second feeder groups that are coupled to the power bus via the respective plurality of breaker switches.
4. The system of claim 1, wherein the first site controller is configured to monitor a reactive power associated with the high-side of the GSU transformer, such that the first AVR is configured to regulate the reactive power at the high-side of the GSU transformer to within the predetermined range of amplitudes.
5. A method for regulating power in a wind farm, the method comprising: monitoring a power characteristic at a high-side of a generator step-up (GSU) transformer with a first site controller, the first site controller comprising a single first automatic voltage regulator (AVR) per a plurality of first feeder groups, the high-side of the GSU transformer being coupled to a point-of-interconnect (POI) that provides power from the wind farm to a power grid, each of the plurality of first feeder groups comprising a plurality of first wind turbines; monitoring a voltage of a power bus associated with a low-side of the GSU transformer with a second site controller, the second site controller comprising a single second automatic voltage regulator (AVR) per a plurality of second feeder groups, the power bus being provided power from a voltage output of each of the plurality of feeder groups, each of the plurality of second feeder groups comprising a plurality of second wind turbines; generating via the first AVR a voltage set-point based on the monitored power characteristic and directly providing the voltage set-point to the second site controller via a cross-control signal; providing, via the first AVR, the voltage set-point to at least one first control processor associated with the plurality of first feeder groups configured to regulate a voltage output associated with the first feeder groups; providing, via the second AVR, the voltage set-point to at least one second control processor being configured to regulate a voltage output associated with the plurality of second feeder groups; and setting via the first AVR and the second AVR the voltage output associated with each of the respective plurality of first feeder groups and the respective plurality of second feeder groups to provide the voltage of the power bus to regulate the power characteristic at the high-side of the GSU transformer to within a predetermined range of amplitudes based on the voltage set-point.
6. The method of claim 5, further comprising selectively activating a plurality of breaker switches that interconnect the respective plurality of first feeder groups and the plurality of second feeder groups to the power bus, wherein generating via the first AVR the voltage set-point comprises generating via the first AVR the voltage set-point based on a number of the plurality of first feeder groups and the plurality of second feeder groups that are coupled to the power bus via the selective activation of a respective number of the plurality of breaker switches, wherein providing via the first AVR the voltage set-point comprises providing via the first AVR the voltage set-point to each of the plurality of first feeder groups and the plurality of second feeder groups that are coupled to the power bus via the respective plurality of breaker switches.
7. The method of claim 5, wherein monitoring the voltage of the power bus comprises monitoring via the second AVR the voltage of the power bus that is provided from each the plurality of second feeder groups, wherein providing via the first AVR the voltage set-point comprises providing via the first AVR the voltage set-point to each of the at least one control processor associated with the respective first and second pluralities of feeder groups, and wherein setting via the first AVR the voltage output comprises setting via the first AVR the voltage output associated with the first plurality of feeder groups and the second plurality of feeder groups to provide the voltage of the power bus to cooperatively regulate the power characteristic at the high-side of the GSU transformer to within the predetermined range of amplitudes based on the voltage set-point.
8. The method of claim 5, wherein monitoring the voltage of the power bus comprises monitoring via the second AVR the voltage of the power bus that is provided from each of the plurality of second feeder groups, wherein generating via the first AVR the voltage set-point comprises generating via the first AVR the voltage set-point at the first site controller associated with the plurality of first feeder groups based on the monitored power characteristic, wherein providing via the first AVR the voltage set-point comprises: providing via the first AVR the voltage set-point to the second site controller associated with the plurality of second feeder groups; providing via the first AVR the voltage set-point to the at least one control processor associated with the plurality of first feeder groups; and providing via the first AVR the voltage set-point to the at least one control processor associated with the plurality of second feeder groups, wherein setting via the AVR the voltage output comprises setting via the second AVR the voltage output associated with the plurality of first feeder groups and the plurality of second feeder groups to provide the voltage of the power bus to cooperatively regulate the power characteristic at the high-side of the GSU transformer to within the predetermined range of amplitudes based on the voltage set-point.
9. The method of claim 5, wherein monitoring via the second AVR the voltage of the power bus comprises monitoring via the second AVR the voltage of a first power bus that is provided from each of the plurality of first feeder groups and that is associated with a low-side of a first GSU transformer, and monitoring via the second AVR the voltage of second power bus that is provided from each of the plurality of second feeder groups and that is associated with a low-side of a second GSU transformer, wherein providing via the first AVR the voltage set-point comprises providing via the first AVR the voltage set-point to each of the at least one control processor associated with the respective pluralities of first and second feeder groups, and wherein setting via the first AVR and the second AVR the voltage output comprises setting via the first AVR and the second the voltage output associated with the plurality of first feeder groups and the plurality of second feeder groups to provide the voltage of the power bus to cooperatively regulate the power characteristic at the coupled high-side of the first and second GSU transformers to within the predetermined range of amplitudes based on the voltage set-point.
10. The method of claim 5, wherein monitoring via the second AVR the voltage of the power bus comprises monitoring via the second AVR the voltage of a first power bus that is provided from the plurality of first feeder groups and that is associated with a low-side of a first GSU transformer, and monitoring via the second AVR the voltage of a second power bus that is provided from the plurality of second feeder groups and that is associated with a low-side of a second GSU transformer, wherein providing via the first AVR the voltage set-point comprises: providing via the first AVR the voltage set-point to the second site controller associated with the second plurality of feeder groups; providing via the first AVR the voltage set-point to the at least one control processor associated with the plurality of first feeder groups; and providing via the first AVR the voltage set-point to the at least one control processor associated with the plurality of second feeder groups, wherein setting via the first AVR and the second AVR the voltage output comprises setting via the first AVR and the second AVR the voltage output associated with the plurality of first feeder groups and the plurality of second feeder groups to provide the voltage of the power bus to cooperatively regulate the power characteristic at the coupled high-side of the first and second GSU transformers to within the predetermined range of amplitudes based on the voltage set-point.
11. A wind farm power control system comprising: a first site controller configured to monitor a power characteristic at a high-side of a generator step-up (GSU) transformer, the high-side of the GSU transformer being coupled to a point-of-interconnect (POI) that provides power from the wind farm to a power grid, the first site controller comprising a single automatic voltage regulator (AVR) per a plurality of first feeder groups; a plurality of first breaker switches configured to interconnect the plurality of first feeder groups to a power bus associated with a low-side of the GSU transformer, each of the plurality of first feeder groups comprising a plurality of first wind turbines; a second site controller, the second site controller comprising a single second automatic voltage regulator (AVR) per a plurality of second feeder groups configured to monitor a voltage of the power bus that is provided power from the plurality of first and second feeder groups; and a plurality of second breaker switches configured to interconnect the plurality of second feeder groups to a power bus associated with a low-side of the GSU transformer, each of the plurality of second feeder groups comprising a plurality of second wind turbines, wherein the first site controller generates a cross-control signal and directly provides the cross-control signal to the second site controller to provide an indication of the power characteristic to the second site controller, wherein the second site controller generates a cross-control signal directly provided to the first site controller to provide an indication of the voltage on the power bus, and wherein the first AVR being further configured to generate a voltage set-point based on the voltage of the power bus and based on a number of the plurality of first and second feeder groups that are coupled to the power bus via a respective number of the plurality of first and second breaker switches, and to regulate the power characteristic at the high-side of the GSU transformer to within a predetermined range of amplitudes based on the voltage set-point.
12. The system of claim 11, wherein the first AVR is configured to provide the voltage set-point to at least one control processor associated with each of the plurality of first and second feeder groups, the at least one control processor being configured to regulate a voltage output associated with the respective one of the plurality of first and second feeder groups, wherein the first AVR is configured to set the voltage output associated with each of the respective plurality of first and second feeder groups to regulate the power characteristic at the high-side of the GSU transformer to within the predetermined range of amplitudes based on the voltage set-point.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) This disclosure relates generally to wind turbine control systems, and more specifically to wind farm power regulation. In a given wind farm, a wind farm power control system can regulate a power characteristic based on regulating individual feeder groups of wind turbines. As an example, the wind turbines of a wind farm can be assigned to separate feeder groups, such as corresponding to different customer requirements. As a result, the feeder groups can be controlled in a segmented curtailment manner, such that some of the feeder groups can be selectively curtailed to accommodate customer demands. The power control system can be configured to monitor a power characteristic (e.g., volt-ampere reactive power (var)) at the high-side of a generator step-up (GSU) transformer. The GSU transformer can generate an output voltage at the high-side, and can thus correspond to the point of interconnect (POI), such as coupled to a power grid to supply power to a community or region. As an example, the output voltage at the high-side of the GSU transformer can be defined within a tolerance of a predetermined specification, such as defined by a voltage schedule, such as issued by a Transmission Operator (TO) to a Generator Operator (GO).
(8) In response to monitoring the power characteristic, the power control system can regulate the wind turbines in the feeder groups in a voltage control mode. Particularly, a wind farm controller can be programmed to selectively control a voltage output set-point of each of the feeder groups that provide power on a bus that is coupled to the low-side of the GSU transformer. As a result, the wind farm controller can maintain the voltage of the wind farm at the high-side of the GSU transformer to within the predetermined specification by monitoring the power characteristic at the high-side of the GSU transformer and selectively controlling the power output of the feeder groups of each of the feeder groups that have not been selectively curtailed, and thus the voltage at the low-side of the transformer.
(9)
(10) In the example of
(11) The power bus 18 is coupled to a low-side of a generator step-up (GSU) transformer 24. In the example of
(12) In the example of
(13) For example, the AVR 28 can be configured to determine which of the feeder groups 16 are selectively coupled to the power bus 18 via the respective breaker switches 22. The AVR 28 can thus be configured to implement an algorithm to calculate the voltage set-point SET based on the number of the feeder groups 16 that are coupled to the power bus 18 (via closed breaker switches 22), characteristics associated with the respective feeder groups 16 (e.g., the number and characteristics of the wind turbines 12 in the feeder groups 16), and the amplitude of the voltage V.sub.BUS with respect to the amplitude of the power characteristics associated with the power P.sub.GRID. For example, the voltage set-point SET can be provided to implement voltage mode control of the feeder groups 16 to provide an appropriate amplitude of the respective voltages V.sub.FG to provide a sufficient amplitude of the voltage V.sub.BUS to maintain the power characteristic associated with the power P.sub.GRID to within the predetermined range of amplitudes, such as dictated by the standard.
(14)
(15) In the example of
(16) In each of the wind farms 56, each of the feeder groups 58 includes at least one control processor 62 that is configured to control the respective feeder group 58 to provide a respective voltage V.sub.FG, demonstrated as V.sub.FG1_1 through V.sub.FGM_1 in the first wind farm 56 and V.sub.FG1_X through V.sub.FGN_X in the X.sup.th feeder group 58. In the example of
(17) The power bus 60 is coupled to a low-side of a GSU transformer 66. In the example of
(18) In the example of
(19) In response to the monitoring of the power P.sub.GRID and the control signals CTL.sub.1 through CTL.sub.X, the main controller 68 can be configured to generate a main voltage set-point SET.sub.MAIN that is provided to each of the site controllers 70. The main voltage set-point SET.sub.MAIN can be associated with a desired amplitude of the voltage V.sub.BUS associated with the power bus 60 to maintain the power P.sub.GRID to within the predetermined range of amplitudes. In the example of
(20) For example, the AVR 72 can be configured to determine which of the feeder groups 58 are selectively coupled to the power bus 60 via the respective breaker switches 64. The AVR 72 can thus be configured to implement an algorithm to calculate the voltage set-point SET based on the number of the feeder groups 58 that are coupled to the power bus 60 (via closed breaker switches 64), characteristics associated with the respective feeder groups 58 (e.g., the number and characteristics of the wind turbines in the feeder groups 58), and the amplitude of the voltage V.sub.BUS relative to the main voltage set-point SET.sub.MAIN. For example, the voltage set-point SET can be provided to implement voltage mode control of the feeder groups 58 to provide an appropriate amplitude of the respective voltages V.sub.FG to provide a sufficient amplitude of the voltage V.sub.BUS to maintain the power characteristic associated with the power P.sub.GRID to within the predetermined range of amplitudes, such as dictated by the main voltage set-point SET.sub.MAIN.
(21)
(22) In the example of
(23) In each of the wind farms 106, each of the feeder groups 108 includes at least one control processor 112 that is configured to control the respective feeder group 108 to provide a respective voltage V.sub.FG, demonstrated as V.sub.FG1_1 through V.sub.FGM_1 in the first wind farm 106 and V.sub.FG1_X through V.sub.FGN_X in the X.sup.th feeder group 108. In the example of
(24) The power bus 110 is coupled to a low-side of a GSU transformer 116. In the example of
(25) In the example of
(26) The site controller(s) 120 are demonstrated as being configured to generate a cross-control signal CCTRL that is provided to each of the other site controller(s) 120. The cross-control signal CCTRL can be provided from the site controller(s) 120 that are monitoring the power P.sub.GRID to provide an indication of the power P.sub.GRID to each of the other site controller(s) 120. Similarly, the cross-control signal CCTRL can be provided from the site controller(s) 120 that are monitoring the voltage V.sub.BUS to provide an indication of the voltage V.sub.BUS to each of the other site controller(s) 120. Therefore, the site controller(s) 120 can be configured to collectively share the monitored power P.sub.GRID and monitored voltage V.sub.BUS.
(27) In the example of
(28) The wind farm power control system 100 that is demonstrated in the example of
(29)
(30) In the example of
(31) In each of the wind farms 156, each of the feeder groups 158 includes at least one control processor 162 that is configured to control the respective feeder group 158 to provide a respective voltage V.sub.FG, demonstrated as V.sub.FG1_1 through V.sub.FGM_1 in the first wind farm 156 and V.sub.FG1_X through V.sub.FGN_X in the X.sup.th feeder group 158. In the example of
(32) The power bus 160 is coupled to a low-side of a respective one of a plurality of GSU transformers 166. In the example of
(33) In the example of
(34) In response to the monitoring of the powers P.sub.GRID1 through P.sub.GRIDX and the control signals CTL.sub.1 through CTL.sub.X, the main controller 168 can be configured to generate a main voltage set-point SET.sub.MAIN that is provided to each of the site controllers 170. The main voltage set-point SET.sub.MAIN can be associated with a desired amplitude of the voltages V.sub.BUS1 through V.sub.BUSX associated with the respective power buses 160 to maintain the powers P.sub.GRID1 through P.sub.GRIDX and/or an overall power at the POI 154 to within the predetermined range of amplitudes. As an example, the main voltage set-point SET.sub.MAIN can correspond to a single voltage set-point for all of the site controllers 170, or can include individual voltage set-points for each of the respective site controllers 170.
(35) In the example of
(36) The wind farm power control system 150 that is demonstrated in the example of
(37)
(38) In the example of
(39) In each of the wind farms 206, each of the feeder groups 208 includes at least one control processor 212 that is configured to control the respective feeder group 208 to provide a respective voltage V.sub.FG, demonstrated as V.sub.FG1_1 through V.sub.FGM_1 in the first wind farm 206 and V.sub.FG1_X through V.sub.FGN_X in the X.sup.th feeder group 208. In the example of
(40) The power bus 210 is coupled to a low-side of a respective one of a plurality of GSU transformers 216. In the example of
(41) In the example of
(42) The site controller(s) 220 are demonstrated as being configured to generate a cross-control signal CCTRL that is provided to each of the other site controller(s) 220. The cross-control signal CCTRL can be provided from the site controller(s) 220 that are monitoring one or more of the powers P.sub.GRID1 through P.sub.GRIDX to provide an indication of the respective powers P.sub.GRID1 through P.sub.GRIDX to each of the other site controller(s) 120. Similarly, the cross-control signal CCTRL can be provided from the site controller(s) 120 that are monitoring the respective one or more of the voltages V.sub.BUS1 through V.sub.BUSX to provide an indication of the respective voltages V.sub.BUS1 through V.sub.BUSX to each of the other site controller(s) 120. Therefore, the site controller(s) 120 can be configured to collectively share the monitored powers P.sub.GRID1 through P.sub.GRIDX and monitored voltages V.sub.BUS1 through V.sub.BUSX.
(43) In the example of
(44) The wind farm power control system 200 that is demonstrated in the example of
(45) In view of the foregoing structural and functional features described above, methods in accordance with various aspects of the present disclosure will be better appreciated with reference to
(46)
(47) What have been described above are examples of the disclosure. It is, of course, not possible to describe every conceivable combination of components or method for purposes of describing the disclosure, but one of ordinary skill in the art will recognize that many further combinations and permutations of the disclosure are possible. Accordingly, the disclosure is intended to embrace all such alterations, modifications, and variations that fall within the scope of this application, including the appended claims. Additionally, where the disclosure or claims recite a, an, a first, or another element, or the equivalent thereof, it should be interpreted to include one or more than one such element, neither requiring nor excluding two or more such elements. As used herein, the term includes means includes but not limited to, and the term including means including but not limited to. The term based on means based at least in part on.