水力抽水蓄能在高风能渗透下的频率下降缓解-容量大小

A. Attya, H. Ali, T. Hartkopf
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引用次数: 2

摘要

预期风能在电力系统中的高渗透水平需要强大而实用的解决方案来改善典型的传统系统性能或至少保持它。风力发电场对消除电网频率偏差的积极贡献仍然是一个灰色地带,特别是当风力发电场取代相当大的传统发电能力时。本文提供了一种详细的算法来集成水力抽水蓄能设施,在频率事件期间提供电力支持,并吸收/注入有功功率以平滑风力发电波动。本文的第一部分研究工作是基于风速和负载特性等约束条件估算出额定功率和能量容量。第二部分讨论了集成建议存储装置对频率平滑和功率平滑的影响。此外,还重点介绍了控制电站蓄能和注能的准则。考虑的案例研究代表了一个定义的部门,从一个真正的传统电网与实际风速记录在推荐地点合并,以托管风力发电场。结果揭示了所需储存设施的主要技术方面(例如,泵的数量、水库的高度和体积以及集成发电机的规格)。MATLAB和Simulink是实现的仿真环境。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Frequency drops mitigation at high wind energy penetration by hydro-pumped storage — Capacity sizing
Expected wind energy high penetration levels in power systems require robust and practical solutions to improve typical conventional systems performance or at least maintain it. Wind farms positive contribution in eliminating grid frequency deviations still a grey area, especially, when wind farms replace considerable conventional generation capacities. This paper offers a detailed algorithm to integrate a hydro pumped storage facility to provide power support during frequency events and also absorb/inject active power to smooth wind power fluctuations. First part of offered research work, presented by this paper, estimates the rated power and energy capacities based on several constrains, including wind speeds and load characteristics. The second part discusses the impact of integrating suggested storage plant on frequency and power smoothing. Additionally, the criterion controlling energy storage and injection by storage plant is highlighted. Considered case study represents a defined sector from a genuine conventional grid merged with real wind speeds records at recommended locations to host wind farms. Results reveal the major technical aspects of required storage facility (e.g., number of pumps, reservoir height and volume as well as integrated generator(s) specifications). MATLAB and Simulink are the implemented simulation environments.
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