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Multiscale simulation approach to heat and mass transfer properties of nanostructured materials for sorption heat storage

机译:用于吸附储热的纳米结构材料传热和传质特性的多尺度模拟方法

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摘要

Thermal storage devices are becoming crucial for the exploitation of solar energy. From the point of view of seasonal energy storage, the most promising technology is represented by adsorption thermal batteries, which allow storing energy without heat loss with time. The improvement of thermal batteries design is related to a better understating of transport phenomena occurring in the adsorption/desorption phases. In this work, we discuss an efficient computational protocol to characterize adsorbent materials, in terms of both heat and mass transfer proprieties. To this purpose, a hybrid Molecular Dynamics and Monte Carlo method is developed. The proposed model is then tested on two types of 13X zeolite, with 76 and 88 Na cations. The results obtained, such as adsorbate diffusivity, adsorption curves, and heat of adsorption are validated with the literature. Finally, in the view of a multiscale analysis of sorption thermal storage devices, the possible use of the simulation outputs as inputs of thermal fluid dynamics models of adsorbent beds is discussed.
机译:蓄热装置对于利用太阳能变得至关重要。从季节性能量存储的角度来看,最有前途的技术以吸附式热电池为代表,它可以存储能量而不会随时间损失热量。热电池设计的改进与更好地降低吸附/解吸阶段中发生的传输现象有关。在这项工作中,我们讨论了一种有效的计算协议,可以根据传热和传质特性来表征吸附材料。为此,开发了分子动力学和蒙特卡罗方法的混合方法。然后,在具有76和88个Na阳离子的两种类型的13X沸石上测试了提出的模型。所获得的结果,如吸附物的扩散率,吸附曲线和吸附热均已通过文献验证。最后,鉴于对吸附式储热装置的多尺度分析,讨论了将模拟输出用作吸附剂床热流体动力学模型输入的可能性。

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