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Energy and exergy analysis of Ca(OH)_2/CaO dehydration-hydration chemical heat pump system: Effect of reaction temperature

机译:CA(OH)_2 / CAO脱水水化化学热泵系统的能量和漏洞分析:反应温度的影响

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Thermochemical energy storage (TCES) is based on the principle of employing a reversible chemical reaction for thermal energy storage. TCES is characterized by high energy density and low parasitic heat loss while also offering potential functionality as a chemical heat pump (CHP) to boost temperature. Results of experiments conducted on a Ca(OH)(2)/CaO TCES system based on reversible dehydration-hydration reactions are reported in this paper. Dehydration of Ca(OH)(2) pellets conducted in a thermogravimetric-differential calorimetry analyzer (TGA-DSC) revealed that the optimum heating rate ranges from 10-15 K/min for the decomposition of Ca(OH)(2). Repeated dehydration-hydration cycles were conducted in a bench scale reactor system under various reaction conditions. It was found that the temperature rise during hydration reaction was dependent on the extent of conversion during the dehydration process. The energy and exergy efficiencies of the dehydration-hydration cycles were found to range from 76% to 79% and 85% to 91%, respectively. Visual and scanning electron microscopic examinations of the product after each reaction revealed structural changes and formation of cracks in the pellets. These changes did not affect the thermal efficiency of the process. Results of this study provide a foundation for the development of Ca(OH)(2)/CaO CHPs for large-scale thermal energy storage systems.
机译:热化学能量存储(TCES)基于采用可逆化学反应的热能储存的原理。 TCE的特征在于能量密度高,寄生热损失高,同时还提供潜在的功能作为化学热泵(CHP)以提高温度。本文报道了基于可逆脱水 - 水合反应的Ca(OH)(2)/ CaO TCES系统的实验结果。在热分析 - 差分量热量分析仪(TGA-DSC)中进行的Ca(OH)(2)颗粒的脱水表明,最佳加热速率为10-15 k / min,用于分解Ca(OH)(2)。在各种反应条件下在台面尺度反应器系统中进行重复的脱水水合循环。发现水合反应过程中的温度升高取决于脱水过程中转化程度。发现脱水水合循环的能量和漏洞效率分别为76%至79%和85%至91%。每次反应后,产品的视觉和扫描电子显微镜检查显示出颗粒中的结构变化和形成裂缝。这些变化不会影响过程的热效率。本研究的结果为大型热能储存系统开发CA(OH)(2)/ CAO CHP的开发提供了基础。

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