电力系统保护与控制
電力繫統保護與控製
전력계통보호여공제
POWER SYSTM PROTECTION AND CONTROL
2013年
24期
144-148
,共5页
林瑞星%张蓓%李旻%刘柏私%徐琳
林瑞星%張蓓%李旻%劉柏私%徐琳
림서성%장배%리민%류백사%서림
自动电压控制%无功辅助服务%机组出力%分配策略%发电厂
自動電壓控製%無功輔助服務%機組齣力%分配策略%髮電廠
자동전압공제%무공보조복무%궤조출력%분배책략%발전엄
automatic voltage control (AVC)%reactive power ancillary service (RPAS)%generator output%allocation strategy%power plant
运行机组间无功出力分配是发电厂AVC系统的重要技术环节,分配策略的优劣影响着AVC控制的安全性及发电厂运行的经济性。从提高发电厂收益角度,提出了基于无功辅助服务补偿的发电厂AVC系统机组无功出力分配策略,建立了优化模型。该优化模型考虑了发电厂参与无功辅助服务后机组及变压器损耗增加的成本,在满足调度机构AVC系统下发的控制目标及机组安全运行等约束条件的前提下,以电厂收益最大为优化目标,求取参与AVC控制机组的无功出力控制量并下发相应机组执行。算例仿真验证了基于无功辅助服务补偿后发电厂运行机组间无功出力分配的有效性,能在满足调压要求的同时明显地提高电厂的经济效益。
運行機組間無功齣力分配是髮電廠AVC繫統的重要技術環節,分配策略的優劣影響著AVC控製的安全性及髮電廠運行的經濟性。從提高髮電廠收益角度,提齣瞭基于無功輔助服務補償的髮電廠AVC繫統機組無功齣力分配策略,建立瞭優化模型。該優化模型攷慮瞭髮電廠參與無功輔助服務後機組及變壓器損耗增加的成本,在滿足調度機構AVC繫統下髮的控製目標及機組安全運行等約束條件的前提下,以電廠收益最大為優化目標,求取參與AVC控製機組的無功齣力控製量併下髮相應機組執行。算例倣真驗證瞭基于無功輔助服務補償後髮電廠運行機組間無功齣力分配的有效性,能在滿足調壓要求的同時明顯地提高電廠的經濟效益。
운행궤조간무공출력분배시발전엄AVC계통적중요기술배절,분배책략적우렬영향착AVC공제적안전성급발전엄운행적경제성。종제고발전엄수익각도,제출료기우무공보조복무보상적발전엄AVC계통궤조무공출력분배책략,건립료우화모형。해우화모형고필료발전엄삼여무공보조복무후궤조급변압기손모증가적성본,재만족조도궤구AVC계통하발적공제목표급궤조안전운행등약속조건적전제하,이전엄수익최대위우화목표,구취삼여AVC공제궤조적무공출력공제량병하발상응궤조집행。산례방진험증료기우무공보조복무보상후발전엄운행궤조간무공출력분배적유효성,능재만족조압요구적동시명현지제고전엄적경제효익。
The reactive power output allocation for generators is an important technical link of automatic voltage control (AVC) system in power plant. The allocation strategy affects the security of the AVC control and operation economy of power plant. In order to improve the profits of the power plant, a reactive power allocation strategy based on the reactive power ancillary services (RPAS) compensation is proposed, and the optimization model is established. The model considers the increasing cost of units and transformer loss when the power plant adopts the RPAS. Under the condition of satisfying the constraints such as the control target of AVC system of the dispatching department and secure operation domain of generators, and taking the maximum profits of power plant as the optimization objective, the model solves the controlling quantity of reactive outputs of AVC generators and then they are implemented by corresponding units. The method is proved to be effective in the simulation and the strategy can satisfy the requirements of voltage regulation and significantly improve the economic efficiency of the power plant.