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Liquid desiccant lithium chloride regeneration by membrane distillation for air conditioning

机译:膜蒸馏法再生液态干燥剂氯化锂

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摘要

Liquid desiccant air conditioning (LDAC) has emerged as an attractive technology for improving indoor air quality and thermal comfort. Regeneration of liquid desiccants is critical to sustain the process efficiency of LDAC. This study explores membrane distillation (MD) for regeneration of lithium chloride (LiCl) desiccant solution commonly used in LDAC. The results demonstrate the viability of MD for LiCl regeneration. The MD process at the feed temperature of 65 °C could increase the LiCl concentration up to 29 wt.% without any observable LiCl loss. Given the high concentration of the LiCl solution feed, unlike traditional desalination applications, the impact of concentration polarisation on the process water flux was significant. Indeed, the calculated water flux obtained by excluding the concentration polarisation effect was more than twice the experimentally measured water flux from a concentrated LiCl solution (\u3e20 wt.%). The regeneration process can be optimised in terms of regeneration capacity (ΔC) and specific thermal energy consumption (α) by regulating several operating conditions, including LiCl concentration, feed temperature, and circulation cross flow velocity. Increasing feed temperature and circulation cross flow velocity was beneficial to the process efficiency, enhancing water flux and ΔC while reducing α. On the other hand, increasing LiCl concentration resulted in a linear decrease in both water flux and ΔC, but an increase in α following a hyperbolic function.
机译:液态干燥剂空调(LDAC)已经成为提高室内空气质量和热舒适性的诱人技术。液体干燥剂的再生对于维持LDAC的工艺效率至关重要。这项研究探索了膜蒸馏(MD)来再生LDAC中常用的氯化锂(LiCl)干燥剂溶液。结果证明了MD用于LiCl再生的可行性。进料温度为65°C的MD工艺可以将LiCl浓度提高到29 wt。%,而LiCl却没有任何损失。与传统的脱盐应用不同,鉴于高浓度的LiCl溶液进料,浓度极化对工艺水通量的影响非常明显。实际上,通过排除浓差极化效应而获得的计算出的水通量是来自浓LiCl溶液(约20 wt。%)的实验测得的水通量的两倍以上。通过调节几种运行条件,包括LiCl浓度,进料温度和循环错流速度,可以根据再生容量(ΔC)和比热能消耗(α)来优化再生过程。提高进料温度和循环错流速度有利于工艺效率,增加水通量和ΔC,同时降低α。另一方面,增加LiCl的浓度会导致水通量和ΔC均呈线性下降,但是随着双曲线函数的出现,α会增大。

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