西安交通大学能源与动力工程学院,西安,710049
刘秀芳(通信作者),女,副教授,博士生导师。基金项目: 国家自然科学基金资助项目(52076164)
网络首发:2021-07-10,
纸质出版:2021
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强伟, 侯予, 薛绒, 等. 氮液滴碰撞不同浸润性壁面特性研究[J]. 西安交通大学学报, 2021,55(7):151-157.
Research on the Behaviors of Nitrogen Droplets Impacting Surfaces with Different Wettabilities[J]. 2021, 55(7): 151-157.
强伟, 侯予, 薛绒, 等. 氮液滴碰撞不同浸润性壁面特性研究[J]. 西安交通大学学报, 2021,55(7):151-157. DOI: 10.7652/xjtuxb202107017.
Research on the Behaviors of Nitrogen Droplets Impacting Surfaces with Different Wettabilities[J]. 2021, 55(7): 151-157. DOI: 10.7652/xjtuxb202107017.
为了探究氮液滴撞击不同浸润性壁面的行为特性
揭示其与常温工质液滴碰撞特性的差异
采用流体体积法研究了氮液滴以一定速度碰撞壁面接触角分别为30°、90°、120°和150°的壁面的过程
并将其与水滴碰撞特性进行对比。模拟计算结果表明:在接触角为30°和90°的壁面上
氮液滴和水滴均出现振荡行为
并且氮液滴在铺展阶段达到的铺展系数更大
在回缩阶段初始回缩速度不均匀
整体的振荡次数更少
达到稳定状态更缓慢; 在接触角为120°的壁面上
水滴出现振荡
氮液滴则完全反弹; 在接触角为150°的壁面上
相比水滴而言
氮液滴出现反弹行为所需的时间更长。
In order to explore the behaviors of nitrogen droplets impacting surfaces with different wettabilities and reveal the differences of the impact performance between nitrogen droplets and normal-temperature working fluid droplets
this paper adopts the volume of fluid method to study the process of nitrogen droplets impacting the walls with contact angles of 30°
90°
120° and 150° at a certain speed
and compares this process with that of water droplets. The results show that on the wall with contact angles of 30° and 90°
both the nitrogen droplets and water droplets exhibit oscillating behavior
but the nitrogen droplets have a larger spreading factor during the spreading stage; the initial retraction speed is uneven in the retraction stage
the overall oscillation frequency is lower and reaches slower to a stable state. On the wall with contact angle of 120°
the water droplets oscillate
but the nitrogen droplets rebound completely; on the wall with contact angle of 150°
it takes longer time for nitrogen droplets to rebound.
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