在岛屿系统中整合高水平的风:来自夏威夷的教训

N. Miller, D. Manz, Harjeet Johal, S. Achilles, Leon R. Roose, J. P. Griffin
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引用次数: 4

摘要

风能和太阳能等间歇性资源发电的可变性给电网运营商带来了运营挑战。岛屿电力系统中大量的可变发电所带来的经济激励和技术挑战往往要大得多。夏威夷电力公司及其子公司,毛伊岛电力公司和夏威夷电灯公司在规划和运营风力发电水平相对较高的电力系统方面拥有相当丰富的经验。夏威夷和毛伊岛的电力系统拥有高水平的风力发电(占能源的10%以上),并且经历并解决了与风力发电的可变性和不确定性相关的挑战。毛伊岛预计在不久的将来会部署更多的风力发电厂。最近对瓦胡岛电力系统近期可能部署大量风力发电的分析(500兆瓦风力发电;大约1200MW的峰值和520MW的最低年负荷)已经显示出该系统接受近25%的风能和太阳能的潜力。本文将确定一些风力整合的挑战,并强调各种策略的好处,这些策略有望提高系统的经济性和运行可靠性,包括对基本负荷热机组的拟议修改(更深的调低,更高的斜坡率和调整的下垂特性),先进的风力涡轮机电网支持功能,新的运营策略,风力预测和对上下降储备要求的改进。本文将在有用的见解和经验教训的背景下提出关键的发现,这些发现与考虑非常高水平风力发电的其他岛屿电力系统相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrating high levels of wind in island systems: Lessons form Hawaii
Variability of power generation from intermittent resources such as wind and solar plants presents an operational challenge for grid operators. The economic incentives and technical challenges that accompany large amounts of variable generation in island power systems are often much greater. The Hawaiian Electric Company and its subsidiaries, the Maui Electric Company and the Hawaii Electric Light Company have considerable experience in planning and operating power systems with relatively high levels of wind power. The islands of Hawaii and Maui operate power systems with high levels of wind power (more than 10% by energy) and have experienced and addressed challenges associated with the variability and uncertainty of wind power. The island of Maui is anticipating further wind plant deployments in the near future. Recent analyses of possible near-term deployment of large amounts of wind power on the Oahu power system (500MW of wind power; approximately 1200MW peak and 520MW minimum annual load) has shown the potential for this system to accept almost 25% of its energy from wind and solar power. This paper will identify some of the wind integration challenges and highlight the benefits of a variety of strategies that are expected to improve system economics and operational reliability, including proposed modifications to the baseload thermal fleet (deeper turndown, higher ramp rates, and tuned droop characteristics), advanced wind turbine grid support features, new operating strategies, wind forecasting and refinements to the up and down reserve requirements. This paper will present the key findings in the context of useful insights and lessons learned that are relevant to other island power systems considering very high levels of wind power.
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