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Analysis of the effectiveness of grid codes for offshore wind farms connected to onshore grid via VSC-based HVDC

机译:通过基于VSC的HVDC与陆上电网连接的海上风电场的电网规范有效性分析

摘要

The definition of adequate Grid Codes is essential to ensure an efficient and secure operation of offshore wind farms and their integration into the interconnected electricity system. The German Ordinance on System Services by Wind Energy Plants (SDLWindV) as legal base for the corresponding Grid Codes demands wind turbine generators (WTG) and the whole farm to provide a wide range of reactive power supply. Furthermore fault-ride-through (FRT) capabilities are requested, i.e. the ability to keep connected in case of faults and to adjust active and reactive power supply as response to grid voltage and frequency deviations within a short-time frame. While these requirements have their justification in supporting AC-onshore-grids, it has to be analysed whether the potential of the WTGs can be exploited in offshore wind farms coupled by Voltage Source Converter-based High Voltage Direct Current links (VSC HVDC). Subsequently it is to discuss if a simplification of the Grid Codes in accordance with the secure and efficient integration of a VSC-based HVDC connected wind farm is possible. For the studies carried out in this paper, an offshore wind farm model is presented, which consists of 40 single wind turbines with FRT-capable doubly-fed induction generators (DFIG) and a VSC-based HVDC link to the onshore grid. The VSC-based HVDC is equipped with a control strategy to handle offshore and onshore faults. The offshore converter works as a reference machine while the onshore converter operates with a Vdc/Vac control scheme, designed for an appropriate integration into the interconnected electricity system. Various cases with different control strategies, such as Q(U) or fixed Q control, were investigated to study the steady-state offshore grid operation and the corresponding fault behaviour. Results indicate the possibility to operate the offshore grid in steady-state on a low loss level while maintaining good voltage quality with a distinctly tighter P-Q-range of the WTG than required from the Grid Codes with limited impact on the dynamic behaviour. It can be demonstrated that voltage drops during a three phase (symmetrical) fault as well as the voltage recovering time are mostly independent from the pre-fault reactive power supply. The latter is dominated by the offshore converter and the requested WTG reactive current support during faults. The results imply that initiating a discussion about a modification of the ordinance with a downsized reactive power range for VSC-HVDC connected wind farms is entitled and necessary.
机译:适当的电网规范的定义对于确保海上风电场的高效和安全运行以及将其集成到互连的电力系统中至关重要。作为相应电网法规的法律基础的德国《风能设备系统服务条例》(SDLWindV)要求风力涡轮发电机(WTG)和整个农场提供广泛的无功功率供应。此外,还要求通过故障穿越(FRT)功能,即在出现故障的情况下保持连接并在短时间内响应电网电压和频率偏差来调整有功和无功电源的能力。虽然这些要求在支持交流陆上电网方面是有道理的,但必须分析在通过基于电压源转换器的高压直流链路(VSC HVDC)耦合的海上风电场中是否可以利用WTG的潜力。随后将讨论根据基于VSC的HVDC连接的风电场的安全有效集成来简化电网规范的可能性。对于本文中进行的研究,提出了一种海上风电场模型,该模型由40台具有FRT功能的双馈感应发电机(DFIG)的单台风力涡轮机以及一个基于VSC的HVDC到陆上电网的链接组成。基于VSC的HVDC配备了控制策略来处理海上和陆上故障。海上变流器充当参考机器,而陆上变流器采用Vdc / Vac控制方案运行,该方案旨在适当集成到互连的电力系统中。研究了具有不同控制策略(例如Q(U)或固定Q控制)的各种情况,以研究稳态海上电网运行和相应的故障行为。结果表明,可以使离岸电网在低损耗水平下以稳定状态运行,同时保持WTG的P-Q范围比电网规范所要求的更紧密的P-Q范围,对动态行为的影响有限,从而保持良好的电压质量。可以证明,在三相(对称)故障期间的电压降以及电压恢复时间大部分与故障前无功电源无关。后者主要由海上转换器和故障期间所需的WTG无功电流支持控制。结果表明,有必要就VSC-HVDC连接的风电场启动关于减小无功功率范围的法规修改的讨论。

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