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Advanced control of thermostatic loads for rapid frequency response in Great Britain

机译:先进的恒温负载控制,可在英国快速获得频率响应

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In the Great Britain power system, reduced system inertia (particularly during low demand conditions) and larger possible infeed loss would make grid frequency regulation extremely challenging in future. Traditional primary frequency response could be insufficient to limit the frequency variation within acceptable range. This paper shows that thermostatically controlled loads (TCLs) (domestic refrigerators) can be controlled without real-time communication and in a non-disruptive way to collectively enhance the network frequency response. The aggregated power consumption of TCLs, distributed across the system, could be controlled as a â€linear’ function of the locally measured frequency and its rate of change. Alternatively, their aggregated consumption could be made to follow a â€pre-set’ power profile depending on the estimated infeed loss. A novel technique for accurate estimation of infeed loss and consequent post-fault TCL power reduction is also proposed. The effectiveness of the two TCL control strategies are compared for primary and secondary frequency response through a case study on a 36 busbar reduced equivalent of the Great Britain power system. The effect of spatial variation of transient frequencies and the time delays in frequency measurement and filtering are considered to show how the TCLs can realistically provide rapid frequency response.
机译:在英国电力系统中,减小的系统惯性(尤其是在低需求条件下)和更大的可能的馈电损耗将使电网频率调节在未来极具挑战性。传统的主频率响应可能不足以将频率变化限制在可接受的范围内。本文表明,无需实时通信即可以无干扰的方式控制恒温控制的负载(TCL)(家用冰箱),从而共同提高网络频率响应。 TCL的总功耗分布在整个系统中,可以作为本地测量频率及其变化率的“线性”函数进行控制。另外,根据估计的进料损耗,可以使它们的总消耗遵循“预设”功率曲线。还提出了一种新的技术,用于准确估计馈电损耗并降低故障后TCL的功耗。通过在36个母线简化的等效英国电力系统上进行案例研究,比较了两种TCL控制策略在一次和二次频率响应方面的有效性。考虑了瞬态频率的空间变化以及频率测量和滤波中的时间延迟的影响,以显示TCL如何实际地提供快速的频率响应。

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