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Shell-and-Tube Latent Heat Thermal Energy Storage Design Methodology with Material Selection, Storage Performance Evaluation, and Cost Minimization

机译:壳管潜热热能储存设计方法,具有材料选择,存储性能评估和成本最小化

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摘要

Shell-and-tube latent heat thermal energy storage units employ phase change materials to store and release heat at a nearly constant temperature, deliver high effectiveness of heat transfer, as well as high charging/discharging power. Even though many studies have investigated the material formulation, heat transfer through simulation, and experimental studies, there is limited research dedicated to the storage unit design methodology. This study proposes a comprehensive methodology that includes the material assessment with multi-attribute decision-making and multi-objective decision-making tools, epsilon-NTU method, and cost minimization using Genetic Algorithm. The methodology is validated by a series of experimental results, and implemented in the optimization of a storage unit for solar absorption chiller application. A unit cost of as low as USD 8396 per unit is reported with a power of 1.42 kW. The methodology proves to be an efficient, reliable, and systematic tool to fulfill the preliminary design of shell-and-tube LHTES before the computational fluid dynamics or detailed experimental studies are engaged.
机译:壳管潜热热储能单元采用相变材料在几乎恒定的温度下存储和释放热量,提供高效率的传热,以及高充电/放电功率。尽管许多研究已经调查了材料配方,通过仿真和实验研究的热传递,但研究了有限的研究,专门用于存储单元设计方法。本研究提出了一种综合方法,包括使用多属性决策和多目标决策工具,epsilon-ntu方法以及使用遗传算法的成本最小化的材料评估。该方法由一系列实验结果验证,并在优化太阳能吸收冷却器应用的存储单元的优化中实现。报告每单位8396美元的单位成本,功率为1.42千瓦。该方法证明是在计算流体动力学或详细的实验研究啮合之前,以高效,可靠和系统的工具来满足壳和管LHTE的初步设计。

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