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风电变流技术 调峰调频 多物理场耦合 ★ 5.0

通过热电联合调峰优化风电利用率

Optimizing wind power utilization through integrated thermoelectric peak shaving

语言:

中文摘要

摘要 将风电整合到能源系统中是当前全球面临的一项重大挑战,尤其在许多风能资源丰富但热电联产机组调峰能力有限的地区更为突出。本研究探讨了热电解耦策略,以提高风电利用率并改善系统效率。研究分析了四种集成式热电联合调峰方案,包括电锅炉、电热泵、吸收式热泵和机械式热泵,每种方案均与储热系统相结合。基于中国吉林省某热电厂的实际数据,建立并验证了数学模型,证明了该模型具有良好的可扩展性和适用性。结果表明,机械式热泵和电热泵方案实现了最高的净收益,其㶲效率均超过65%。电锅炉方案实现了最高的风电利用率,使弃风率降低至0.1%。所有方案均显著节约了煤炭消耗,其中机械式热泵使每兆瓦时电力的标准煤耗减少16.91千克,每吉焦热量的标准煤耗减少1.22千克。此外,这些方案还表现出显著的碳排放削减效果,并提升了整体能源利用效率。本研究结果为进一步提升热电联产系统的运行灵活性以及促进可再生能源的集成提供了深入见解,为致力于向低碳能源系统转型的地区提供了一种可扩展的解决方案。

English Abstract

Abstract The integration of wind power into energy systems is a critical global challenge in the context of limited peak shaving capacity of cogeneration units, observed in many regions with high wind energy potential. This study explores thermoelectric decoupling strategies to enhance wind power utilization and improve system efficiency. Four integrated thermoelectric peak shaving schemes are investigated, including electric boiler, electric heat pump, absorption heat pump, and mechanical heat pump, each integrated with thermal energy storage. A mathematical model was developed and validated using data from a combined heat and power plant in Jilin Province, China, demonstrating its scalability and applicability. The results indicate that the mechanical heat pump and electric heat pump schemes achieved the highest net incomes, with exergic efficiencies exceeding 65 %. The electric boiler scheme achieved the highest wind power utilization, reducing the wind curtailment rate to 0.1 %. All schemes contributed to significant coal savings, with the mechanical heat pump reducing standard coal consumption by 16.91 kg/MWh of electricity and 1.22 kg/GJ of heat. Furthermore, the schemes demonstrated substantial carbon emission reductions and improvements in overall energy efficiency. These findings provide more insights into enhancing the operational flexibility of combined heat and power systems and integrating renewable energy sources, offering a scalable solution for regions seeking to transition to low-carbon energy systems.
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SunView 深度解读

该热电解耦调峰技术对阳光电源储能系统具有重要应用价值。研究中的电锅炉、热泵与储热方案可与ST系列PCS及PowerTitan储能系统深度结合,通过多能互补提升风电消纳率至99.9%。其热电协同优化思路可启发iSolarCloud平台开发多物理场耦合算法,实现源网荷储协调控制。机械热泵方案的高火用效率(>65%)验证了电-热转换路径的经济性,为阳光电源拓展热电联供型储能解决方案提供技术依据,助力工业园区、北方供热等场景的零碳化改造。