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Entropy and exergy analysis of a liquid-liquid air-gap hollow fiber membrane contactor

机译:液液间隙中空纤维膜接触器的熵和漏极分析

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摘要

A liquid-liquid air-gap hollow fiber membrane contactor consisting of a number of hollow fiber membrane tubes forms a hollow fiber membrane absorption heat pump where the refrigerant (water) and the absorbent (LiCl solution) flow inside the tubes in a cross-flow arrangement. There are defined air-gaps between neighboring tube rows. A lumped parameter model which describes the heat and mass transfer is established by transforming the membrane contactor into a parallel-plate one. The governing equations are solved by the finite difference approach. The model is validated experimentally. The influences of various structural parameters, operation conditions, and membrane parameters on the contactor performances are analyzed. An entropy generation model and an exergy destruction model are established to solve and disclose the thermodynamic properties of the heat and mass transfer process inside the membrane contactor, which is an irreversible process. It has been found that the contactor performance can be improved by using the hollow fiber membranes with larger diffusivity or a smaller diameter of about 1.5 mm. Furthermore, the packing fraction of about 0.349 is optimal for the performance. The maximum mass transfer entropy generation rate usually corresponds to the best performance. The entropy generation minimization method is not suitable for the optimization of this membrane contactor. The optimized regions of the structural parameters, operation conditions, and membrane transport parameters with better performances and smaller entropy generation can be obtained to reduce irreversible loss in future.
机译:由多个中空纤维膜管组成的液 - 液间隙中空纤维膜接触器,其形成中空纤维膜吸收热泵,其中制冷剂(水)和吸收剂(LICL溶液)在横流中的管内流动安排。在相邻管排之间有限定的空气间隙。通过将膜接触器转换成平行板1,建立了描述热量和传质的集成参数模型。控制方程通过有限差异方法解决。该模型实验验证。分析了各种结构参数,操作条件和膜参数对接触器性能的影响。建立熵生成模型和漏洞破坏模型来解决和公开膜接触器内的热量和传质过程的热力学性质,这是一种不可逆的方法。已经发现,通过使用具有较大扩散率的中空纤维膜或较小直径为约1.5mm的中空纤维膜可以改善接触器性能。此外,约0.349的包装分数对于性能是最佳的。最大传质熵生成率通常对应于最佳性能。熵产生最小化方法不适用于优化该膜接触器。可以获得结构参数,操作条件和膜传输参数的优化区域,具有更好的性能和更小的熵产生,以减少未来不可逆转的损失。

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