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Development and characteristics analysis of salt-hydrate based composite sorbent for low-grade thermochemical energy storage

机译:低级热化学能量储存盐水水合物复合吸附剂的开发与特性分析

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摘要

Salt-hydrate based thermochemical energy storage is currently a momentous technique utilized for longterm energy storage due to the reversible gas-solid reaction under low-temperature. Among available salt candidates, LiOH center dot H2O is a promising thermochemical material owing to its high heat storage density of 1400 kJ/kg and low charging temperature. The expanded graphite (EG) is selected as a host matrix owing to its excellent thermal conductivity and abundant microstructure, which can promote the heat and mass transfer. This work focuses on the thermochemical performances of the form-stable LiOH$H2O/ EG composite sorbents. Five samples were being synthesized with EG contents of 0, 5, 8, 12 and 15 wt%. These porous sorbents are characterized to understand the microstructure and thermophysical properties. Considering the comprehensive effect of thermal conductivity and storage density, as well as the adsorption kinetics, the 8 wt% EG-doped sample is the most favourable sorbent, which possesses the thermal conductivity of 6.92 W/(m K) and energy density of 1120 kJ/kg. The cyclability results also reveal the energy capacity of this composite maintains similar to 90% of the original after ten consecutive heat charging (dehydration) and discharging (hydration), suggesting good stability. Additionally, the active energy of 2.58 x 10(9) s(-1) and pre-exponential factor of 59.5 kJ/mol for the sorbent is derived. Finally, the thermal power of 123 Wand thermal efficiency of 83.6% are achieved for the storage unit in simulation. All these results further confirmed the feasibility of the developed composite sorbent in low-grade heat storage. (C) 2020 Elsevier Ltd. All rights reserved.
机译:基于盐水合物的热化学储能是目前由于低温下可逆气体固体反应而用于长期储能的重要技术。在可用的盐候选者中,LioH中心点H2O由于其高储热密度为1400 kJ / kg和低充电温度而是一个有前途的热化学材料。由于其优异的导热性和丰富的微观结构而选择膨胀的石墨(例如)作为宿主基质,这可以促进热量和传质。这项工作侧重于形状稳定的LiOH $ H2O /例如复合吸附剂的热化学性能。合成五个样品,例如0,5,8,12和15wt%的含量。这些多孔吸附剂的特征是理解微观结构和热物理性质。考虑到导热率和储存密度的综合效果以及吸附动力学,8wt%的Eg-掺杂样品是最有利的吸附剂,其具有6.92W /(M K)的导热率和1120的能量密度KJ / kg。可循环性结果还揭示了这种复合材料的能量,其在连续十个连续热充电(脱水)和排出(水合)后的90%相似,呈现出良好的稳定性。另外,衍生出2.58×10(9)秒(-1)的有效能和59.5kJ / mol的预指数因子。最后,为模拟中的储存单元实现了123号棒热效率为83.6%的热功率。所有这些结果进一步证实了发育的复合吸附剂在低级蓄热中的可行性。 (c)2020 elestvier有限公司保留所有权利。

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