Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields

The evaporation of a sessile water droplet under the coupled electrostatic and high-temperature fields is studied numerically. The leaky dielectric model and boiling point evaporation model are used for calculating the electric force and heat mass transfer. The free surface is captured using the vol...

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Main Authors: Ziwen Zuo, Junfeng Wang, Yuanping Huo, Yajun Fan
Format: Article
Language:English
Published: SAGE Publishing 2015-03-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814015575388
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spelling doaj-577db5fb86a64557a20d7ccc4fcc2b0f2020-11-25T03:17:12ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402015-03-01710.1177/168781401557538810.1177_1687814015575388Numerical study of droplet evaporation in coupled high-temperature and electrostatic fieldsZiwen ZuoJunfeng WangYuanping HuoYajun FanThe evaporation of a sessile water droplet under the coupled electrostatic and high-temperature fields is studied numerically. The leaky dielectric model and boiling point evaporation model are used for calculating the electric force and heat mass transfer. The free surface is captured using the volume of fluid method accounting for the variable surface tension and the transition of physical properties across the interface. The flow behaviors and temperature evolutions in different applied fields are predicted. It shows that in the coupled fields, the external electrostatic field restrains the flow inside the droplet and keeps a steady circulation. The flow velocity is reduced due to the interaction between electric body force and the force caused by temperature gradient. The heat transfer from air into the droplet is reduced by the lower flow velocity. The evaporation rate of the droplet in the high-temperature field is decreased.https://doi.org/10.1177/1687814015575388
collection DOAJ
language English
format Article
sources DOAJ
author Ziwen Zuo
Junfeng Wang
Yuanping Huo
Yajun Fan
spellingShingle Ziwen Zuo
Junfeng Wang
Yuanping Huo
Yajun Fan
Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
Advances in Mechanical Engineering
author_facet Ziwen Zuo
Junfeng Wang
Yuanping Huo
Yajun Fan
author_sort Ziwen Zuo
title Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
title_short Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
title_full Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
title_fullStr Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
title_full_unstemmed Numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
title_sort numerical study of droplet evaporation in coupled high-temperature and electrostatic fields
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2015-03-01
description The evaporation of a sessile water droplet under the coupled electrostatic and high-temperature fields is studied numerically. The leaky dielectric model and boiling point evaporation model are used for calculating the electric force and heat mass transfer. The free surface is captured using the volume of fluid method accounting for the variable surface tension and the transition of physical properties across the interface. The flow behaviors and temperature evolutions in different applied fields are predicted. It shows that in the coupled fields, the external electrostatic field restrains the flow inside the droplet and keeps a steady circulation. The flow velocity is reduced due to the interaction between electric body force and the force caused by temperature gradient. The heat transfer from air into the droplet is reduced by the lower flow velocity. The evaporation rate of the droplet in the high-temperature field is decreased.
url https://doi.org/10.1177/1687814015575388
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AT junfengwang numericalstudyofdropletevaporationincoupledhightemperatureandelectrostaticfields
AT yuanpinghuo numericalstudyofdropletevaporationincoupledhightemperatureandelectrostaticfields
AT yajunfan numericalstudyofdropletevaporationincoupledhightemperatureandelectrostaticfields
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