上海交通大学学报 ›› 2024, Vol. 58 ›› Issue (4): 419-427.doi: 10.16183/j.cnki.jsjtu.2022.414
收稿日期:
2022-10-20
修回日期:
2023-03-06
接受日期:
2023-03-24
出版日期:
2024-04-28
发布日期:
2024-04-30
通讯作者:
金哲岩,副教授,博士生导师,电话(Tel.):021-65982651;E-mail:zheyanjin@tongji.edu.cn.
作者简介:
桑 旭(2000-),硕士生,从事飞行器结冰机理研究.
基金资助:
SANG Xu1, JIN Zheyan1,2(), YANG Zhigang2, YU Fang3,4
Received:
2022-10-20
Revised:
2023-03-06
Accepted:
2023-03-24
Online:
2024-04-28
Published:
2024-04-30
摘要:
针对水滴在结冰风洞实验中加速过程内易发生破碎而导致试验段内水滴粒径分布难以符合结冰气象条件的问题,利用流体体积(VOF)方法,模拟了直径为100、200、400、600、800、1 000 μm 以及 1 200 μm 的水滴在不同气流速度作用下(20、50、80 m/s)的变形破碎情况.结果表明:在20 m/s气流作用下,直径为600 μm的水滴不发生破碎;当风速为50 m/s时,直径为100 μm的水滴不发生破碎;随着韦伯数增加,最大不稳定波波长也随之增大,水滴的破碎模式从袋状破碎变为包-蕊状破碎,随后转变为蕊-层状破碎,进一步转变为剪切破碎.水滴的破碎形式包括袋状破碎、包-蕊状破碎、蕊-层状破碎及剪切破碎,会对面积最大的液滴与初始液滴面积之比有较大影响.在初始水滴直径相同的条件下,入口速度越大,破碎后的面积比越大.
中图分类号:
桑旭, 金哲岩, 杨志刚, 余放. 水滴在气流中变形破碎过程的数值模拟研究[J]. 上海交通大学学报, 2024, 58(4): 419-427.
SANG Xu, JIN Zheyan, YANG Zhigang, YU Fang. Numerical Study of Deformation and Breakup Processes of Water Droplets in Air Flow[J]. Journal of Shanghai Jiao Tong University, 2024, 58(4): 419-427.
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