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Stretching breakup of a conical liquid bridge with a moving contact line

The stretching breakup of a conical liquid bridge is the core process of micro-dispensing. To precisely control the droplet loading and improve the dispensing resolution, a detailed study of bridge breakup with a moving contact line is required. A conical liquid bridge is established by an electric...

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Autores principales: Xu, Xiao-yu, Xu, Zheng, Wang, Li-ding, Wang, Xiao-dong, Sun, Zhong-ping, Yu, Yu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10153601/
https://www.ncbi.nlm.nih.gov/pubmed/37143918
http://dx.doi.org/10.1039/d3ra01140b
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author Xu, Xiao-yu
Xu, Zheng
Wang, Li-ding
Wang, Xiao-dong
Sun, Zhong-ping
Yu, Yu
author_facet Xu, Xiao-yu
Xu, Zheng
Wang, Li-ding
Wang, Xiao-dong
Sun, Zhong-ping
Yu, Yu
author_sort Xu, Xiao-yu
collection PubMed
description The stretching breakup of a conical liquid bridge is the core process of micro-dispensing. To precisely control the droplet loading and improve the dispensing resolution, a detailed study of bridge breakup with a moving contact line is required. A conical liquid bridge is established by an electric field and stretching breakup is investigated here. The effect of contact line state is investigated by examining the pressure at the symmetry axis. Compared to the pinned case, the moving contact line causes a shift of the pressure maximum from the bridge neck to top, and it facilitates the evacuation of the bridge top. For the moving case, factors affecting the contact line motion are then considered. The results show that the increase of the stretching velocity U and the decrease of the initial top radius R(top) accelerate the contact line motion. And the amount of contact line movement is basically constant. To analyze the influence of the moving contact line on bridge breakup, neck evolution is tracked under different U. An increase of U decreases the breakup time and increases the breakup position. Based on the breakup position and the remnant radius, the influences of U and R(top) on remnant volume V(d) are examined. It is found that V(d) decreases with an increase of U and increases with an increase of R(top). Accordingly, different sizes of remnant volume can be obtained by adjusting U and R(top). This is helpful for the optimization of liquid loading for transfer printing.
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spelling pubmed-101536012023-05-03 Stretching breakup of a conical liquid bridge with a moving contact line Xu, Xiao-yu Xu, Zheng Wang, Li-ding Wang, Xiao-dong Sun, Zhong-ping Yu, Yu RSC Adv Chemistry The stretching breakup of a conical liquid bridge is the core process of micro-dispensing. To precisely control the droplet loading and improve the dispensing resolution, a detailed study of bridge breakup with a moving contact line is required. A conical liquid bridge is established by an electric field and stretching breakup is investigated here. The effect of contact line state is investigated by examining the pressure at the symmetry axis. Compared to the pinned case, the moving contact line causes a shift of the pressure maximum from the bridge neck to top, and it facilitates the evacuation of the bridge top. For the moving case, factors affecting the contact line motion are then considered. The results show that the increase of the stretching velocity U and the decrease of the initial top radius R(top) accelerate the contact line motion. And the amount of contact line movement is basically constant. To analyze the influence of the moving contact line on bridge breakup, neck evolution is tracked under different U. An increase of U decreases the breakup time and increases the breakup position. Based on the breakup position and the remnant radius, the influences of U and R(top) on remnant volume V(d) are examined. It is found that V(d) decreases with an increase of U and increases with an increase of R(top). Accordingly, different sizes of remnant volume can be obtained by adjusting U and R(top). This is helpful for the optimization of liquid loading for transfer printing. The Royal Society of Chemistry 2023-05-02 /pmc/articles/PMC10153601/ /pubmed/37143918 http://dx.doi.org/10.1039/d3ra01140b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xu, Xiao-yu
Xu, Zheng
Wang, Li-ding
Wang, Xiao-dong
Sun, Zhong-ping
Yu, Yu
Stretching breakup of a conical liquid bridge with a moving contact line
title Stretching breakup of a conical liquid bridge with a moving contact line
title_full Stretching breakup of a conical liquid bridge with a moving contact line
title_fullStr Stretching breakup of a conical liquid bridge with a moving contact line
title_full_unstemmed Stretching breakup of a conical liquid bridge with a moving contact line
title_short Stretching breakup of a conical liquid bridge with a moving contact line
title_sort stretching breakup of a conical liquid bridge with a moving contact line
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10153601/
https://www.ncbi.nlm.nih.gov/pubmed/37143918
http://dx.doi.org/10.1039/d3ra01140b
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