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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Water vapor uptake into hygroscopic lithium bromide desiccant droplets: mechanisms of droplet growth and spreading
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Water vapor uptake into hygroscopic lithium bromide desiccant droplets: mechanisms of droplet growth and spreading

机译:水蒸气吸收到吸湿锂溴化物干燥剂液滴:液滴生长和扩散机制

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摘要

The study of vapor absorption into liquid desiccant droplets is of general relevance to a better understanding and description of vapor absorption phenomena occurring at the macroscale as well as for practical optimization of dehumidification and refrigeration processes. Hence, in the present work, we provide the first systematic experimental study on the fundamentals of vapor absorption into liquid desiccant at the droplet scale, which initiates a novel avenue for the research of hygroscopic droplet growth. More specifically we address the behavior of lithium bromide-water droplets on hydrophobic PTFE and hydrophilic glass substrates under controlled ambient conditions. Driven by the vapor pressure difference between the ambient air and the droplet interface, desiccant droplets absorb water vapor and increase in volume. To provide further insights on the vapor absorption process, the evolution of the droplet profile is recorded using optical imaging and relevant profile characteristics are extracted. Results show that, even though the final expansion ratio of droplet volume is only a function of relative humidity, the dynamics of contact line and the absorption rate are found to differ greatly when comparing data with varying substrate wettability. Droplets on hydrophilic substrates show higher absorption kinetics and reach equilibrium with the ambient much faster than those on hydrophobic substrates. This is attributed to the absorption process being controlled by solute diffusion on the droplet side and to the shorter characteristic length for the solute diffusion on hydrophilic substrates. Moreover, the apparent droplet spreading process on hydrophilic substrates when compared to hydrophobic ones is explained based on a force balance analysis near the triple contact line, by the change of liquid-vapor surface tension due to the increase in water concentration, and assuming a development of a precursor film.
机译:蒸汽吸收到液体干燥剂液滴的研究与在宏观尺寸发生的蒸汽吸收现象的更好的理解和描述中的一般相关性,以及用于除湿和制冷方法的实际优化。因此,在目前的工作中,我们提供了对液滴尺度蒸汽吸收到液体干燥剂的基础上的第一个系统实验研究,这引发了一种新颖的吸湿液滴生长的途径。更具体地,我们在受控环境条件下解决了疏水性PTFE和亲水性玻璃基板上的溴化锂 - 水滴的行为。由环境空气和液滴接口之间的蒸气压差驱动,干燥剂液滴吸收水蒸气并增加体积。为了提供对蒸汽吸收过程的进一步见解,使用光学成像记录液滴曲线的演化,并提取相关的轮廓特性。结果表明,即使液滴体积的最终膨胀比仅是相对湿度的函数,发现接触线的动态和吸收率在比较具有不同底物润湿性的数据时差异很大。亲水底物上的液滴显示出较高的吸收动力学,并比疏水基材上的环境更快地达到平衡。这归因于通过在液滴侧的溶质扩散和用于在亲水基材上的溶质扩散的较短特征长度来控制的吸收过程。此外,基于三重接触线附近的力平衡分析,通过在水浓度的增加,通过液态 - 蒸汽表面张力的变化,在三相接触线附近的力平衡分析进行了与疏水性底板上的表观液滴扩散过程。前体膜。

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    Kyushu Univ Int Inst Carbon Neutral Energy Res WPI I2 CNER Fukuoka Fukuoka 8190395 Japan;

    Kyushu Univ Int Inst Carbon Neutral Energy Res WPI I2 CNER Fukuoka Fukuoka 8190395 Japan;

    Univ Edinburgh Inst Multiscale Thermofluids Sch Engn Kings Bldg Mayfield Rd Edinburgh EH9 3JL Midlothian Scotland;

    Kyushu Univ Int Inst Carbon Neutral Energy Res WPI I2 CNER Fukuoka Fukuoka 8190395 Japan;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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