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首页> 外文期刊>IEEE Transactions on Power Delivery >Comparison of Different Frequency Controllers for a VSC-HVDC Supplied System
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Comparison of Different Frequency Controllers for a VSC-HVDC Supplied System

机译:VSC-HVDC提供的系统中不同频率控制器的比较

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This paper studies three different frequency controllers and their effects on the voltage disturbance ride-through capability of a VSC-HVDC supplied industrial system. The idea of implementing frequency controller is to improve the power quality of industrial plants by slightly decreasing the VSC output voltage frequency since industrial processes are more sensitive to voltage drops than frequency deviations. The first two controllers, frequency controllers I and II, are fixed frequency controllers and the third one, frequency controller III, is a PI frequency controller. In order to compare three different controllers, a system with a simplified VSC-HVDC and different load types is simulated in PSCAD/EMTDC. Simulation results show that with frequency controller III, the VSC-HVDC supplied industrial plant can avoid a voltage collapse by decreasing frequency during or after disturbances. Furthermore, with an increase of the converter current limit, the possibility of mitigating voltage dips increases. For frequency controllers I and II, the extent of the disturbance ride-through capability depends on the current limit of the VSC-HVDC. A higher current limit results in a higher ride-through capability. The effect of the dc capacitor on improving the system voltage disturbance tolerance is also investigated during and after disturbances when the VSC-HVDC uses frequency controller I. The system voltage disturbance ride-through capability increases with an increase of the dc capacitance or the current limit.
机译:本文研究了三种不同的频率控制器及其对VSC-HVDC提供的工业系统的电压干扰穿越能力的影响。实施频率控制器的想法是通过略微降低VSC输出电压频率来改善工业工厂的电能质量,因为工业过程对电压降的敏感度要大于频率偏差。前两个控制器(频率控制器I和II)是固定频率控制器,第三个控制器(频率控制器III)是PI频率控制器。为了比较三个不同的控制器,在PSCAD / EMTDC中模拟了具有简化VSC-HVDC和不同负载类型的系统。仿真结果表明,使用频率控制器III,由VSC-HVDC提供的工业设备可以通过在干扰期间或之后降低频率来避免电压崩溃。此外,随着转换器电流极限的增加,减轻电压骤降的可能性增加。对于频率控制器I和II,干扰穿越能力的程度取决于VSC-HVDC的电流极限。较高的电流限制导致较高的穿越能力。还研究了在VSC-HVDC使用频率控制器I期间和之后的干扰期间和之后,直流电容器对改善系统电压干扰耐受性的影响。系统电压干扰穿越能力随直流电容或电流限制的增加而增加。 。

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