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Development of moisture absorber based on hydrophilic membrane mass exchanger and alkoxylated siloxane liquid desiccant

机译:基于亲水性膜配方交换剂和烷氧基化硅氧烷液干燥剂的吸湿器的开发

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By using small, decentralized liquid desiccant dehumidification combined with radiant panels or other low exergy chiller technologies large amounts of energy can be saved. This study builds off previous work characterizing a novel liquid desiccant system using a vapor permeable Pebax?membrane in conjunction with an alkoxylated siloxane liquid desiccant. Previous work addresses the chemical viability of the membrane/desiccant pair to produce dehumidified air by leveraging partial pressure differences as well as the full scale adaptation including pumping and regeneration costs. This study considers the overall heat and mass exchange of such a system, from initial kinetics experimentation through scaling the system up to dehumidify air at building-level flow rates, and develops a 3D printed prototype mass exchanger element for kinetic optimization. The results show further progress in the development of novel mixing stages to maintain good kinetics for water vapor removal from the air stream.
机译:通过使用小的,分散的液体干燥剂除湿,与辐射面板或其他低漏洞的冷却器技术相结合,可以节省大量的能量。本研究建立了以前的工作,其特征在于使用蒸气渗透性PeBaxα膜结合烷氧基化硅氧烷液干燥剂的新型液体干燥剂系统。以前的工作解决了膜/干燥剂对的化学活力,通过利用部分压力差异以及包括泵送和再生成本的全规模适应来产生除湿空气。本研究考虑了这种系统的整体热量和批量交流,通过将系统扩大到建筑级流速下的空气,开发用于动力学优化的3D印刷原型质量交换元件的初始动力学实验。结果表明,新型混合阶段的发展进一步进展,以维持从空气流中的水蒸气去除的良好动力学。

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