Experimental and numerical simulation study on the mass transfer characteristics of static flash evaporation

IF 8.3 1区 工程技术 Q1 ENGINEERING, CHEMICAL Desalination Pub Date : 2024-09-17 DOI:10.1016/j.desal.2024.118134
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Abstract

Due to the short duration and intense nature of static flash evaporation, and limited by the measurement methods, there is still limited understanding of the inhomogeneous characteristics of mass transfer within the waterfilm. This paper studies the spatiotemporal variation of mass transfer characteristics during static flash using experimental and numerical simulation methods. The formation and evolution mechanism of the bubble layer is analyzed, and its impact on the spatial distribution of temperature within the waterfilm is explained. Firstly, it was found that during the flash process, the temperature difference at different heights of the waterfilm first increases and then decreases. Secondly, during the flash process, there is a maximum value of the vapor generation rate within the waterfilm along the height direction of the flash chamber, and there is a spatial inconsistency between the vapor generation rate and the superheat distribution. Thirdly, reducing the initial waterfilm height can improve the consistency between the maximum superheat and the maximum volume fraction, resulting in a higher vapor generation rate per unit mass and an earlier peak appearance. This study contributes to a deeper understanding of flash mass transfer and provides ideas for the future enhancement of flash evaporation.

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静态闪蒸传质特性的实验和数值模拟研究
由于静态闪蒸的持续时间短、强度大,再加上测量方法的限制,人们对水膜内部非均质传质特性的了解还很有限。本文利用实验和数值模拟方法研究了静态闪蒸过程中传质特性的时空变化。分析了气泡层的形成和演化机理,并解释了气泡层对水膜内温度空间分布的影响。首先,研究发现在闪蒸过程中,水膜不同高度的温差先增大后减小。其次,在闪蒸过程中,沿着闪蒸室的高度方向,水膜内的水蒸汽产生率存在一个最大值,并且水蒸汽产生率和过热度分布存在空间上的不一致性。第三,降低初始水膜高度可以改善最大过热度与最大体积分数之间的一致性,从而提高单位质量的蒸汽产生率,并提前出现峰值。这项研究有助于加深对闪蒸传质的理解,并为未来闪蒸的改进提供了思路。
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来源期刊
Desalination
Desalination 工程技术-工程:化工
CiteScore
14.60
自引率
20.20%
发文量
619
审稿时长
41 days
期刊介绍: Desalination is a scholarly journal that focuses on the field of desalination materials, processes, and associated technologies. It encompasses a wide range of disciplines and aims to publish exceptional papers in this area. The journal invites submissions that explicitly revolve around water desalting and its applications to various sources such as seawater, groundwater, and wastewater. It particularly encourages research on diverse desalination methods including thermal, membrane, sorption, and hybrid processes. By providing a platform for innovative studies, Desalination aims to advance the understanding and development of desalination technologies, promoting sustainable solutions for water scarcity challenges.
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