振荡阻尼:风力和光伏电站能力的比较

M. Singh, A. Allen, E. Muljadi, V. Gevorgian
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引用次数: 12

摘要

本文研究了风力发电厂(WPPs)和光伏发电厂(pv)阻尼区域间振荡的潜力。区域间振荡可能是单个或一组发电机在弱传输链路上与另一组发电机振荡的结果。如果阻尼不良,这些电力系统振荡可能导致系统不稳定,并可能导致停电。电力转换设备,特别是连接风力涡轮机和光伏发电厂到电网的兆瓦级转换器,可以通过向系统注入与潜在不稳定模式相异的电力来抑制这些振荡。随着时间的推移,净能量注入接近于零;因此,提供这种“静态阻尼”能力预计不会影响年能源产量。然而,由于这些植物固有的物理性质,wpp和pvp具有不同的能力。WPPs有一些能量储存在涡轮机的旋转质量中,而pvp没有这样的储存能量。因此,对于wpp和pvpp来说,提供振荡阻尼服务的挑战必须以不同的方式解决。在这项工作中,对wpp和pvp提供振荡阻尼服务的策略进行了比较。Kundur著名的两区四发电机系统在PSCAD/EMTDC中建模。WPP和PVP模型基于西部电力协调委员会(WECC)的标准模型。开发了抑制区域间振荡的控制器,并将其添加到WECC WPP和PVP模型中,研究了它们的效果。对仿真产生的数据进行了分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Oscillation damping: A comparison of wind and photovoltaic power plant capabilities
This paper investigates the potential for wind power plants (WPPs) and photovoltaic power plants (PVPs) to damp inter-area oscillations. Inter-area oscillations may be the result of a single or a group of generators oscillating against another group of generators across a weak transmission link. If poorly damped, these power system oscillations can cause system instability and potentially lead to blackouts. Power conversion devices, particularly megawatt-scale converters that connect wind turbines and photovoltaic power plants to the grid, could be used to damp these oscillations by injecting power into the system out of phase with the potentially unstable mode. Over time, the net energy injection is near zero; therefore, providing this “static damping” capability is not expected to affect annual energy production. However, WPPs and PVPs have different capabilities due to the inherent physical nature of these plants. WPPs have some energy stored in the rotating masses of the turbines, while PVPs have no such stored energy. Thus the challenge of providing oscillation damping services will have to be approached differently for WPPs and PVPPs. In this work strategies for providing oscillation damping services from WPPs and PVPs are compared and contrasted. Kundur's well-known two-area, four-generator system is modeled in PSCAD/EMTDC. The WPP and PVP models are based on the Western Electricity Coordination Council (WECC) standard models. Controllers to damp inter-area oscillations are developed and added to the WECC WPP and PVP models, and their effects are studied. Analysis is performed on the data generated by the simulations.
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