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一滴静止的水滴和一滴盐水溶液的蒸发。

Evaporation of a sessile water drop and a drop of aqueous salt solution.

作者信息

Misyura S Y

机构信息

Kutateladze Institute of Thermophysics of the Siberian Branch of the Russian Academy of Sciences, Lavrentiev Ave. 1, Novosibirsk, 630090, Russia.

National Research Tomsk Polytechnic University, 30 Lenin Ave, Tomsk, 634050, Russia.

出版信息

Sci Rep. 2017 Nov 7;7(1):14759. doi: 10.1038/s41598-017-15175-1.

Abstract

The influence of various factors on the evaporation of drops of water and aqueous salt solution has been experimentally studied. Typically, in the studies of drop evaporation, only the diffusive vapor transfer, radiation and the molecular heat conduction are taken into account. However, vapor-gas convection plays an important role at droplet evaporation. In the absence of droplet boiling, the influence of gas convection turns out to be the prevailing factor. At nucleate boiling, a prevailing role is played by bubbles generation and vapor jet discharge at a bubble collapse. The gas convection behavior for water and aqueous salt solution is substantially different. With a growth of salt concentration over time, the influence of the convective component first increases, reaches an extremum and then significantly decreases. At nucleate boiling in a salt solution it is incorrect to simulate the droplet evaporation and the heat transfer in quasi-stationary approximation. The evaporation at nucleate boiling in a liquid drop is divided into several characteristic time intervals. Each of these intervals is characterized by a noticeable change in both the evaporation rate and the convection role.

摘要

已通过实验研究了各种因素对水滴和盐水溶液滴蒸发的影响。通常,在液滴蒸发研究中,仅考虑扩散蒸汽传输、辐射和分子热传导。然而,蒸汽-气体对流在液滴蒸发中起着重要作用。在没有液滴沸腾的情况下,气体对流的影响成为主要因素。在核态沸腾时,气泡生成和气泡坍塌时的蒸汽喷射排放起主要作用。水和盐水溶液的气体对流行为有很大不同。随着盐浓度随时间增加,对流成分的影响首先增加,达到极值,然后显著降低。在盐溶液中的核态沸腾时,以准稳态近似模拟液滴蒸发和传热是不正确的。液滴中核态沸腾时的蒸发分为几个特征时间间隔。这些间隔中的每一个都以蒸发速率和对流作用的显著变化为特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af57/5676712/9eb1b30d7fbc/41598_2017_15175_Fig1_HTML.jpg

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