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储能系统技术
★ 5.0
电能储存在波浪能硬件在环测试平台中的集成
Integration of Electrical Energy Storage in Wave Energy Hardware-in-the-Loop Test Rigs
| 作者 | Paula B. Garcia-Rosa · Rene A. Barrera-Cardenas · Giacomo Alessandri · Federico Gallorini · Mairead A. Cruz · Joao Cruz |
| 期刊 | IEEE Transactions on Sustainable Energy |
| 出版日期 | 2025年2月 |
| 技术分类 | 储能系统技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 波浪能转换器 硬件在环测试台 电能存储单元 功率波动 设计方法 |
语言:
中文摘要
本文提出一种将电能存储单元集成到波浪能转换器(WEC)硬件在环(HIL)测试平台的设计方法。WEC的功率输出通常具有低频大幅波动和远高于平均值的峰值,测试平台需复现此类特性以实现真实工况模拟。为此,电网连接容量须满足峰值需求,且需采取措施避免对邻近负载及电压质量造成干扰。引入电能存储可平抑功率波动,降低安装与运行成本。该设计方法指导如何根据测试类型与时长合理配置储能容量与技术路线。针对双HIL测试平台及三种WEC运行工况的仿真结果表明,当储能寿命短于设备日历寿命时,年利用率和加速测试程度显著影响储能能量需求。
English Abstract
This paper presents a design methodology for integrating an electrical energy storage unit into a hardware-in-the-loop (HIL) test rig for wave energy converters (WECs). Typically, the power production from WECs is characterised by pronounced fluctuations at low frequency and high peaks compared to the average. Wave energy test rigs should be able to reproduce these variations to impose realistic conditions to the device under test. Thus, the grid connection of the rig must be sized to cope with high peaks, and additional measures may be required to avoid disturbances on nearby loads and negative effects on voltage quality. The integration of electrical energy storage can smoothen power fluctuations and mitigate these drawbacks, while resulting in lower installation and operating costs. The design methodology indicates how to effectively size the storage unit and which technology to favour based on the type and duration of test campaigns. Numerical simulation results are presented for a dual HIL test rig and operational profiles of three different WEC technologies. For designs with energy storage lifetime shorter than the calendar life, sensitivity analyses indicate that the rig's annual utilisation rate and the level of accelerated testing have a significant effect on the storage energy requirements.
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SunView 深度解读
该波浪能HIL测试平台的储能集成方法对阳光电源ST系列储能变流器和PowerTitan系统具有重要参考价值。波浪能的低频大幅功率波动特性与光伏、风电的间歇性出力类似,文章提出的储能容量配置方法可直接应用于新能源并网场景的功率平抑设计。特别是针对峰值功率远超平均值的工况,通过储能削峰填谷降低电网连接容量的思路,可优化阳光电源大型储能系统的经济性配置方案。文章关于储能寿命与利用率关系的分析,对ST储能变流器的循环寿命管理策略和iSolarCloud平台的预测性维护算法具有指导意义,有助于提升储能系统全生命周期经济效益。