The Role of Synthetic Inertia and Effective Load Modelling in Providing System Stability as Renewable Energy Penetration Increases

Ashraf Haque, A. Bhuiya
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引用次数: 1

Abstract

Recently, wind power penetration has increased to offset the reduction in fossil fuel generated power. To ensure the power system continues to function adequately, some grid operators require an inertial response from the wind turbines. Synthetic inertia, or the combined inertia from individual wind power turbines in a wind farm, can provide a measured inertial response to the system under various wind power penetration levels. However, the response to the system due to the synthetic inertia from the turbines may not be adequate to assist in the stability of the system due to its rapid response time, usually in the range of a couple of seconds. In this paper, effective load modelling is merged with the effects of synthetic inertia to discover what role these two methods can have on stability in the power system. The Alberta interconnected electric system (AIES) is used to test the proposed hybrid model. Alberta is an energyonly deregulated market. It is expected a higher volume of renewable energy will be added to the power systems everywhere including the AIES. The increase in renewable penetration may result in transient stability challenges. This paper explores how synthetic inertia and load modelling can facilitate a system stability opportunity. Further, the paper examines how synthetic inertia and load modelling can perform under various wind power penetration levels within the Alberta power system. Finally, the response of the inertial model is demonstrated through detailed simulations.
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随着可再生能源渗透率的增加,综合惯性和有效负荷建模在提供系统稳定性中的作用
最近,风力发电的普及率有所提高,以抵消化石燃料发电的减少。为了确保电力系统继续正常运行,一些电网运营商要求风力涡轮机具有惯性响应。综合惯性,或者风电场中单个风力涡轮机的综合惯性,可以在不同的风力渗透水平下为系统提供测量的惯性响应。然而,由于涡轮机的合成惯性对系统的响应可能不足以帮助系统的稳定性,因为它的快速响应时间,通常在几秒钟的范围内。本文将有效负荷建模与综合惯性效应相结合,探讨这两种方法对电力系统稳定性的影响。利用艾伯塔省互联电力系统(AIES)对所提出的混合动力模型进行了测试。阿尔伯塔省是一个解除管制的能源市场。预计包括AIES在内的世界各地的电力系统将增加更多的可再生能源。可再生能源渗透率的增加可能会导致暂态稳定性的挑战。本文探讨了综合惯性和负载建模如何促进系统稳定的机会。此外,本文还研究了在艾伯塔省电力系统内不同风力发电渗透水平下,综合惯性和负荷模型如何发挥作用。最后,通过详细的仿真验证了惯性模型的响应。
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