水蒸气在亲水性和疏水性颗粒上异质凝结的显微可视化

IF 3.9 3区 环境科学与生态学 Q2 ENGINEERING, CHEMICAL Journal of Aerosol Science Pub Date : 2024-01-01 DOI:10.1016/j.jaerosci.2023.106332
Li Lv , Xiangcheng Wu , Longfei Chen , Junchao Xu , Guangze Li , Lijuan Qian
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引用次数: 0

摘要

水蒸气在颗粒上的异相凝结被广泛应用于大气云物理和工业颗粒物减排领域。颗粒表面润湿性在水蒸气凝结过程中起着基础性作用,但目前还缺乏对颗粒表面润湿性对水蒸气凝结影响的微观认识。因此,本文采用环境扫描电子显微镜(ESEM)在微观尺度上直接观察不同表面润湿性颗粒上的水汽凝结。首先通过 ESEM 获得水蒸气在亲水和疏水颗粒上的异相凝结。结果表明,当水蒸气在亲水性粒子上凝结时,首先出现一个球形帽状胚胎,随后发展成球形液滴,最后包裹住单个粒子。而在疏水粒子上,则会先出现一个球形帽状胚,然后继续成长为球形液滴,最后脱离粒子。然后引入润湿系数来表征液滴在颗粒上的润湿程度。润湿系数会随着接触角的减小而增大,因此水蒸气在亲水性颗粒上的润湿性要好于在疏水性颗粒上的润湿性。同时,根据经典成核理论,当接触角减小时,几何系数和临界过饱和度也会减小,从而使水蒸气更容易在亲水颗粒上凝结。最后,研究了线张力来解释冷凝机理。在亲水颗粒上,当水滴越过颗粒的赤道线时,正的线张力会促进水滴在颗粒上的扩散运动,形成一个包裹的球形水滴。因此,在越过粒子赤道线之前,液滴呈球形帽状胚胎,而在越过赤道线之后,液滴呈包裹状球形胚胎。而在疏水粒子上,负线张力会抑制液滴在粒子上的扩散运动,形成分离的球形液滴。因此,在穿过粒子的赤道线之前,会出现一个球形帽状胚胎,而在穿过赤道线之后,则会出现一个分离的球形液滴。
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Microscopic visualization of heterogeneous condensation of water vapor on hydrophilic and hydrophobic particles

Heterogeneous condensation of water vapor on particles is widely used in the fields of atmospheric cloud physics and industrial particulate abatement. Particles surface wettability plays a fundamental role in water vapor condensation, but a microscopic insight of the impact of particles surface wettability on vapor condensation is lacked. Therefore, the Environmental Scanning Electron Microscope (ESEM) is adopted to directly visualize vapor condensation on particles with different surface wettability at a microscopic scale. Firstly heterogeneous condensation of water vapor on the hydrophilic and hydrophobic particles is obtained by the ESEM. The results show that when water vapor condenses on the hydrophilic particles, a spherical cap-shaped embryo first appears and subsequently develops into a spherical droplet to finally wrap the single particle. While on the hydrophobic particles, a spherical cap-shaped embryo will first appear and continue to grow into a spherical droplet to finally detach from the particle. Then the wetting coefficient is introduced to characterize the wetting degree of the droplet on the particle. The wetting coefficient will increase with the decrease of the contact angle, so the wettability of water vapor on the hydrophilic particles is better than that on the hydrophobic particles. Meanwhile based on classical nucleation theory, the geometrical factor and the critical supersaturation will decrease when the contact angle decreases, making it easier for water vapor to condense on the hydrophilic particles. Finally the line tension is investigated to explain the condensation mechanism. On the hydrophilic particles, when the droplet has crossed the equatorial line of the particle, the positive line tension promotes the spreading movement of the droplet over the particle to form a wrapped spherical droplet. Therefore, there is a transition from a spherical cap-shaped embryo before crossing the equatorial line of the particle to a wrapped spherical droplet after crossing the equatorial line. While on the hydrophobic particles, the negative line tension suppresses the spreading movement of the droplet over the particle to form a detached spherical droplet. So there is a transition from a spherical cap-shaped embryo before crossing the equatorial line of the particle to a detached spherical droplet after crossing the equatorial line.

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来源期刊
Journal of Aerosol Science
Journal of Aerosol Science 环境科学-工程:化工
CiteScore
8.80
自引率
8.90%
发文量
127
审稿时长
35 days
期刊介绍: Founded in 1970, the Journal of Aerosol Science considers itself the prime vehicle for the publication of original work as well as reviews related to fundamental and applied aerosol research, as well as aerosol instrumentation. Its content is directed at scientists working in engineering disciplines, as well as physics, chemistry, and environmental sciences. The editors welcome submissions of papers describing recent experimental, numerical, and theoretical research related to the following topics: 1. Fundamental Aerosol Science. 2. Applied Aerosol Science. 3. Instrumentation & Measurement Methods.
期刊最新文献
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