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Novel compact bed design for adsorption cooling systems: Parametric numerical study

机译:吸附冷却系统的小型紧凑型床设计:参数数值研究

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A new bed configuration consists of two layers of packed beads separated by vapor passage is simulated using transient three-dimensional local thermal non-equilibrium model (LTNE). Darcy-Brinkman equation is solved in both the porous layers and the vapor passage. Silica-gel/water is selected as a working pair. Heat and mass diffusion time are calculated from the scaling analysis of the governing equations. Results show that reducing particle diameter and adsorbent bed thickness while enhancing the bed thermal conductivity can lead to a dramatic improvement in specific cooling power (SCP). Also, the feeding vapor passage is needed for particle size smaller than 0.5 mm but it can be removed for bigger particles. Analysis of results indicates that the adsorption process is controlled by heat diffusion resistance when heat diffusion time to mass diffusion time ratio (t(th)/t(m))similar to O(100) or more. While the adsorption is controlled by mass diffusion resistance when (t(th)/t(m))similar to O(1) or less. (C) 2017 Elsevier Ltd and IIR. All rights reserved.
机译:新的床配置由两层填充珠组成,通过蒸汽通道分离,使用瞬态三维局部热非平衡模型(LTNE)模拟。在多孔层和蒸汽通道中,达西 - 布兰克曼方程求解。选择二氧化硅 - 凝胶/水作为工作对。从控制方程的缩放分析计算热量和质量扩散时间。结果表明,降低粒径和吸附床厚度,同时增强床热导率可导致特定冷却功率(SCP)的显着改善。而且,需要小于0.5mm的颗粒尺寸所需的进料蒸汽通道,但是可以去除颗粒的粒度。结果分析表明,当热扩散时间与类似于O(100)或更多的质量扩散时间比(T(TH)/ T(M))时,通过热扩散阻力来控制吸附过程。当(T(th)/ t(m)类似于o(1)或更低时,吸附受到质量扩散阻力的控制。 (c)2017年Elsevier Ltd和IIR。版权所有。

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