FLASC海上储能系统小型样机的海上试验

D. Buhagiar, T. Sant, R. Farrugia
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引用次数: 5

摘要

随着海上风电的日益普及,对海上储能技术的需求预计也将增长。这对于漂浮式风力发电来说尤其重要,因为它往往是电网的后来者,并且面临着更大的整合挑战。目前的工作重点是这种海上定制解决方案,依靠液压-气动液体活塞的概念。在地中海中部马耳他岛的一个隐蔽地点安装了一个小规模的实验装置。该系统运行了一年多,经历了数百次充放电循环。实验结果表明,循环性能良好,全年热效率始终保持在93%左右。开发了一个数值工具来预测所提出的存储系统的性能,并根据该实验数据进行了验证。对传热系数的敏感性分析(尤其难以精确地进行数值预测)表明,这些系数的±50%的变化会转化为预测循环性能的非常小的变化。总体而言,数值工具与实验数据吻合良好,并且在预测效率时通常更为保守。
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Marine Testing of a Small-scale Prototype of the FLASC Offshore Energy Storage System
With increasing implementation of offshore wind, power the need for offshore-based energy storage technologies is also expected to grow. This is particularly relevant for floating wind, which will tend to be a late-comer to the grid, and face more significant integration challenges. The present work focusses on such an offshore-tailored solution, relying on a hydro-pneumatic liquid piston concept. A small-scale experimental set-up was installed at a sheltered location in the central Mediterranean island of Malta. The system operated for over a year, undergoing hundreds of charging-discharging cycles. Results from this experimental campaign show that the cycle performance is favorable, with a consistently high thermal efficiency (> 93%) across the year. A numerical tool developed to predict the performance of the proposed storage system is validated against this experimental data. A sensitivity analysis of the heat transfer coefficients, which are particularly difficult to accurately predict numerically, indicates that variations of up to ± 50% in these coefficients translate into very minimal changes in the predicted cycle performance. Overall, the numerical tool was shown to be in good agreement with the experimental data, and is generally more conservative when it comes to predicting the efficiency.
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