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Maximization of performance in multi-tube latent heat storage: Optimization of fins topology, effect of materials selection and flow arrangements

机译:多管潜热储存性能最大化:鳍片拓扑的优化,材料选择和流量布置的影响

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摘要

This paper addresses the need of multi-tube latent heat thermal storage (LHTES) systems with enhanced heat transfer performance. Uniquely, this work draws from topology optimization method for thermal energy storage to search for the optimal configuration of fins in multi-tube LHTES systems with different phase change materials (PCMs), flow arrangements and design constraints. The design freedom of topology optimization allows the discovery of innovative LHTES designs and elucidate the link between design and physical processes occurring during charging/discharging. Three key results of this study are: ⅰ) the optimized fin design is tightly connected to the type of storage duty cycle, which demonstrates the necessity to account for realistic operating conditions in the optimization process. ⅱ) The fin material should be chosen in parallel with the layout of the fins and not sequentially as commonly done; this indicates that the optimization of LHTES systems is a co-design challenge. ⅲ) Topology optimized multi-tube LHTES units surpass in performance fins optimized for a single-tube configuration in a multi-tube unit. Finally, this work demonstrates for the first time the manufacturability of topology-optimized LHTES units by using 3D printing.
机译:本文满足了具有增强的传热性能的多管潜热热存储(LHTES)系统的需求。唯一的是,这项工作从拓扑优化方法中借鉴了热能存储器,以搜索具有不同相变材料(PCM),流量布置和设计约束的多管LHTES系统中翅片的最佳配置。拓扑优化的设计自由允许发现创新的LHTES设计,并阐明在充电/放电期间发生的设计和物理过程之间的联系。本研究的三个关键结果是:Ⅰ)优化的翅片设计紧密连接到存储占空比的类型,这表明需要考虑优化过程中的现实操作条件。 Ⅱ)翅片材料应与翅片的布局并联选择,而不是顺序地完成;这表明LHTES系统的优化是一个共同设计挑战。 Ⅲ)拓扑优化的多管LHTES在多管单元中针对单管配置优化的性能翅片中的超越。最后,这项工作首次展示了使用3D打印的拓扑优化的LHTES单元的可制造性。

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