波浪能变换器储能系统的影响及其对电网的影响分析

J. Stefek, D. Bain, Yi-Hsiang Yu, D. Jenne, Greg Stark
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引用次数: 3

摘要

减少功率波动对于控制配电网和输电网以及独立隔离电力系统中波浪能转换器(WEC)电厂的集成影响至关重要。本文分析了电池储能系统的成本,以及如何利用电池储能系统进一步减少由于波浪的波动性质及其对电网的影响而产生的WEC发电的变化。分析了波浪能奖中使用的六种海况的wecc - sim模拟输出功率,计算了峰值功率和功率时程。研究结果用于评估WEC系统向电网提供合理功率流所需的电池存储容量,并根据美国能源情报署发布的最新电池技术成本信息估算其成本。最后,进行了初步的电网一体化分析,以证明白电气化发电将如何为小岛电力系统作出贡献。研究表明,瞬时峰值功率是电池储能和电力起飞系统的主要成本驱动因素,降低功率波动对于降低整体平准化能源成本(LCOE)至关重要。使用电池储能可以在不增加显著的整体系统成本的情况下显著减少白电网的潮流变化,并且电池储能的实施对于电网集成应用至关重要。也可能有更多的机会进一步研究针对WEC应用的储能技术,以进一步降低这些成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis on the Influence of an Energy Storage System and its Impact to the Grid for a Wave Energy Converter
Reducing power fluctuations is essential for controlling the integration impacts of wave energy converter (WEC) plants in both distribution and transmission grids, and in stand-alone isolated power systems. This paper presents an analysis on the cost of and how a battery storage system can be used to further reduce the variation of power generated from the WEC due to the fluctuating nature of waves and its impact to the grid. The electrical power output from WEC-Sim simulations for the six sea states used in the Wave Energy Prize was analyzed to compute the peak power and power time history. The results were used to evaluate the battery storage capacity that is needed for a WEC system to provide reasonable power flow to the grid and estimate its cost based on the latest cost information for battery technologies published by the U.S. Energy Information Administration. Finally, a preliminary grid integration analysis was performed to demonstrate how WEC-generated power would contribute to a small island electricity system. As shown in the study, the instantaneous peak power is the primary cost driver for the battery storage and the power take-off system, and reducing the power fluctuations is essential for reducing the overall levelized cost of energy (LCOE). The power flow variation from WECs can be significantly reduced using battery storage without adding significant overall system costs, and the implementation of battery storage is essential for grid integration applications. There may also be additional opportunities to further investigate energy storage technologies that are specific to WEC applications to reduce these costs even further.
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