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储能系统技术
★ 5.0
推进基于钙的热化学储热:双反应策略对系统性能的影响
Advancing calcium-based thermochemical heat storage: Impact of a dual-reaction strategy on the system performance
| 作者 | Haocheng Sunab1 · Zhiwei Geabc1 · Zhihan Yao · Liang Wanga · Xipeng Lina · Yakai Baia · Shuang Zhanga · Haisheng Chena |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 396 卷 |
| 技术分类 | 储能系统技术 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Investigated the heat release performance of the shell-and-tube reactor. |
语言:
中文摘要
摘要 热化学储热技术因其高能量存储密度和低热损失而具有巨大的应用潜力,非常适合长周期、大规模的能量储存应用。然而,在反应器的可扩展性、放热效率以及系统整体性能评估方面仍存在挑战。本研究提出了一种基于钙的热化学储热顺序式双反应策略,并采用一种灵活且可扩展的壳管式反应器进行实现。本文深入探讨了基本单反应放热过程中涉及的多物理场耦合机制及影响反应动力学的关键因素。除了验证壳管式结构在传热性能上的优越性外,研究结果还揭示了不可逆熵产显著增加的现象。在理想的恒压条件下,我们识别出控制基本单反应放热过程的关键参数,并实现了高达97.01%的优异效率。为进一步优化热化学储热系统,本文提出了一种级联式双反应放热策略,与基本单反应过程相比,该策略使不可逆熵产降低了15%。该策略同时提升了能量转换速率和传热速率。最后,通过对多反应耦合机制的详细分析与优化,综合能效评价指标相较于基准模型提升了30.60%。本研究为热化学储热系统的设计与调控提供了有价值的指导,提出了实现长期、低熵能量转换的新解决方案。
English Abstract
Abstract Thermochemical heat storage technology offers immense potential owing to its high energy storage density and low heat loss, making it ideal for long-duration and large-scale energy storage applications . However, challenges persist in terms of the reactor scalability, heat release efficiency, and comprehensive system evaluation. This study proposes a sequential dual-reaction strategy for calcium-based thermochemical heat storage using a flexible and scalable shell-and-tube reactor. The multi-physical coupling mechanisms and key factors influencing the kinetics of a fundamental single-reaction heat release process are explored in this study. In addition to demonstrating the superior heat transfer capabilities of the shell-and-tube design, our findings revealed a significant increase in irreversible entropy generation . Under ideal constant-pressure conditions, we also identified the key parameters governing the basic single-reaction heat release process, achieving a remarkable efficiency of up to 97.01 %. To further optimize the thermochemical heat storage system , a cascaded dual-reaction heat release strategy was proposed, which reduced irreversible entropy generation by 15 % compared to the basic single-reaction process. This strategy simultaneously enhanced the rates of both energy conversion and heat transfer. Finally, the detailed examination and optimization of the multi-reaction coupling mechanisms yielded a 30.60 % improvement in the comprehensive energy efficiency evaluation metric compared to the baseline model. This study offers valuable guidance for the design and control of thermochemical heat storage systems, presenting new solutions for achieving long-term, low-entropy energy conversion.
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SunView 深度解读
该钙基热化学储能技术为阳光电源PowerTitan储能系统提供长时储能技术路径参考。其双反应级联策略降低15%熵增损失、提升30.60%综合能效的优化思路,可启发ST系列PCS的多级能量转换控制策略设计。壳管式反应器的可扩展性与模块化理念契合阳光大规模储能系统架构。研究中的多物理场耦合机制分析方法,对优化储能系统热管理、提升iSolarCloud平台预测性维护算法具有借鉴意义,助力实现低熵高效的长时储能解决方案。