针对SVC(Static Var Compensation,简称SVC)控制系统的同步问题,通过充分利用控制装置硬件资源,设计了一种新型软件锁相环,在DSP(Digital Signal Processing,简称DSP)单元编码实现软件锁相模块,以现场FPGA(Field Programmable Gate Arr...针对SVC(Static Var Compensation,简称SVC)控制系统的同步问题,通过充分利用控制装置硬件资源,设计了一种新型软件锁相环,在DSP(Digital Signal Processing,简称DSP)单元编码实现软件锁相模块,以现场FPGA(Field Programmable Gate Array,简称FPGA),锁相计数器替代复杂的积分环节,产生锁相角θ,配合实现锁相。通过仿真和试验验证,软件锁相环在电压不平衡、电压跌落、频率突变等条件下,仍可快速、可靠的实现锁相,减小触发误差,具有良好的应用效果。展开更多
The dynamic reactive power compensation equipment in Jiuquan Wind Power Base of above 10 GW consists of three different types of compensation devices, including: static var generator (SVG), thyristor controlled com...The dynamic reactive power compensation equipment in Jiuquan Wind Power Base of above 10 GW consists of three different types of compensation devices, including: static var generator (SVG), thyristor controlled compensator (TGR) and magnetically controlled reactor (MGR). The lack of experimental verification of performance is not conducive to voltage/var management or full utilization of device capaci- ties. In order to solve the above problems, the compensation device performance test was performed. The test items and procedures were selected based on related national standards with the consideration for different grid structures and wind farm operation modes. The testing contents included dynamic regulating range, active power loss, dynamic response time, and harmonic voltage level. Three types of compensation devices installed in different wind farms, namely SVG, TCR and MCR, were chosen and tested. The performances were compared and analyzed according to the field test results.展开更多
文摘针对SVC(Static Var Compensation,简称SVC)控制系统的同步问题,通过充分利用控制装置硬件资源,设计了一种新型软件锁相环,在DSP(Digital Signal Processing,简称DSP)单元编码实现软件锁相模块,以现场FPGA(Field Programmable Gate Array,简称FPGA),锁相计数器替代复杂的积分环节,产生锁相角θ,配合实现锁相。通过仿真和试验验证,软件锁相环在电压不平衡、电压跌落、频率突变等条件下,仍可快速、可靠的实现锁相,减小触发误差,具有良好的应用效果。
文摘The dynamic reactive power compensation equipment in Jiuquan Wind Power Base of above 10 GW consists of three different types of compensation devices, including: static var generator (SVG), thyristor controlled compensator (TGR) and magnetically controlled reactor (MGR). The lack of experimental verification of performance is not conducive to voltage/var management or full utilization of device capaci- ties. In order to solve the above problems, the compensation device performance test was performed. The test items and procedures were selected based on related national standards with the consideration for different grid structures and wind farm operation modes. The testing contents included dynamic regulating range, active power loss, dynamic response time, and harmonic voltage level. Three types of compensation devices installed in different wind farms, namely SVG, TCR and MCR, were chosen and tested. The performances were compared and analyzed according to the field test results.