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Exergy Analysis of Concentrated Solar Power Plants with Thermochemical Energy Storage Based on Calcium Looping

机译:基于钙循环的热化学储能浓缩太阳能发电厂的暴力分析

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It is important and urgent to overcome the intermittent nature of solar energy as a green substitute for fossil-based electricity. Concentrated solar power plants with thermochemical energy storage are considered as a potential option for cost-effective electricity generation and dispatchability. This study aims to propose a novel concentrated solar power plant that uses thermochemical energy storage based on calcium looping with a flexible operation sequence to eliminate the dependence of power generation on the carbonation reaction under sunshine. The flexible operation involves two successive phases: energy charging in the sunshine mode and discharging in the night mode. A comprehensive exergy analysis was used to characterize the system performance based on its storage and power efficiencies. The results, which demonstrated a global storage exergy efficiency of more than 37% and a global power efficiency of around 48%, are comparable to those of the state-of-the-art systems. Moreover, it was also observed that the highest exergy loss is caused by the compressor and cooling process under the sunshine and night modes, respectively. In addition, a sensitivity analysis was performed to examine the thermodynamic laws of our system. The results indicated a technical contradiction between the storage and power efficiencies (net power) under sunshine mode, while no such contradiction was observed under night mode. Overall, the main contribution of this study is the design of a novel system with competitive performance, which is expected to serve as a useful guideline for the future development of efficient and flexible concentrated solar power plants.
机译:克服太阳能的间歇性是重要的,迫切需要,作为绿色替代化石电力的替代品。具有热化学储能的集中的太阳能发电厂被认为是具有成本效益发电和调度性的潜在选择。本研究旨在提出一种新型集中的太阳能发电厂,该浓缩太阳能发电厂使用基于柔性操作顺序的钙循环使用热化学储能,以消除发电对阳光下的碳酸化反应对碳酸化反应的依赖性。灵活的操作涉及两个连续阶段:在阳光模式下能量充电并在夜间模式下放电。综合漏洞分析用于基于其存储和功效来表征系统性能。结果表明全球储存效率超过37%,全球功率效率约为48%,与最先进的系统相当。此外,还观察到,最高的漏洞是由阳光和夜间模式下的压缩机和冷却过程引起的。此外,进行敏感性分析以检查我们系统的热力学定律。结果表明阳光模式下的储存和电源效率(净功率)之间的技术矛盾,而在夜间模式下没有观察到这种矛盾。总体而言,本研究的主要贡献是具有竞争性能的新系统的设计,预计将成为未来发展高效灵活的集中太阳能发电厂的有用指导性。

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