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A Flywheel Energy Storage System for Fault Ride Through Support of Grid-Connected VSC HVDC-Based Offshore Wind Farms

机译:通过基于VSC HVDC并网的海上风电场支持故障穿越的飞轮储能系统

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Voltage source converter (VSC)-based high voltage DC (HVDC) transmission is considered the future of offshore power transmission. This paper aims at providing a reliable VSC-HVDC transmission system architecture between offshore wind farms and onshore grids. In this paper, a large-capacity, low-speed flywheel energy storage system (FESS) based on a squirrel cage induction machine is applied in parallel with the VSC-HVDC at the grid side converter. The FESS is dedicated for surge power (due to power flow imbalance during fault) absorption instead of being dissipated in the form of resistive losses. Since the duration of these surges is relatively small, it has been shown that the flywheel can effectively mitigate this problem. In addition to the fault ride-through support during fault conditions, the FESS is employed for power leveling functionality during normal operation. The performance parameters of the proposed approach are investigated via both simulation and experimental results. A 132-kV, 100-MW HVDC system is simulated using MATLAB/Simulink during normal and fault conditions. The proposed architecture is substantiated experimentally through a scaled down test rig with a 2-kW FESS.
机译:基于电压源转换器(VSC)的高压DC(HVDC)传输被认为是海上电力传输的未来。本文旨在为海上风电场和海上电网之间提供可靠的VSC-HVDC传输系统架构。在本文中,基于鼠笼式感应电机的大容量,低速飞轮储能系统(FESS)在电网侧变流器上与VSC-HVDC并联应用。 FESS专用于吸收浪涌功率(由于故障期间的功率流不平衡),而不是以电阻损耗的形式消散。由于这些喘振的持续时间相对较小,因此已经表明,飞轮可以有效地缓解该问题。除了在故障情况下提供故障穿越支持外,FESS还用于正常操作期间的功率均衡功能。通过仿真和实验结果研究了该方法的性能参数。在正常和故障情况下,使用MATLAB / Simulink对132kV,100 MW HVDC系统进行了仿真。通过具有2kW FESS的按比例缩小的试验台,通过实验对拟议的体系结构进行了验证。

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