首页> 外文期刊>International Journal of Heat and Mass Transfer >Experimental investigation of the transient impact fluid dynamics and solidification of a molten microdroplet pile-up
【24h】

Experimental investigation of the transient impact fluid dynamics and solidification of a molten microdroplet pile-up

机译:熔融微滴堆积物瞬态冲击流体动力学和凝固的实验研究

获取原文
获取原文并翻译 | 示例
       

摘要

This paper presents an original systematic experimental investigation of the transient transport phenomena occurring during the pile-up of molten, picoliter-size liquid metal droplets. The prevailing physical mechanisms of the pile up process are identified and quantified experimentally. In terms of relevant dimensionless groups the following ranges are covered: Re = 281―153, We = 2.39―5.99, Ste = 0.187―0.895. This corresponds to molten solder droplets impinging at velocities ranging between 1.12 and 1.74 m/s having an average diameter of 78 μm. The impact fluid dynamics, cooling and subsequent solidification of the second (top) droplet in the pile-up is strongly influenced by the geometry of the first, already solidified droplet, upon which it impinges. The solidification time depends, in addition to the thermal contact resistances at the interfaces, on the transport of heat through the solid structures above the flat wafer substrate. The total solidification time of the second droplet depends non-monotonically on the substrate temperature, initially increasing with decreasing substrate temperature. The impact velocities affect strongly the final shapes of the observed pile up structures. For decreasing Stefan number (i.e. higher substrate temperature) an increasing importance of wetting phenomena is observed.
机译:本文介绍了对熔融,皮升大小的液态金属小滴堆积过程中发生的瞬态传输现象的原始系统实验研究。实验确定并量化了堆积过程的主要物理机制。就相关的无量纲组而言,涵盖了以下范围:Re = 281-153,We = 2.39-5.99,Ste = 0.187-0.895。这对应于以平均直径为78μm的速度在1.12至1.74 m / s范围内的速度撞击的熔融焊料滴。堆中第二个(顶部)液滴的冲击流体动力学,冷却和随后的凝固过程,将受到撞击的第一个已经凝固的液滴的几何形状的强烈影响。除了在界面处的热接触电阻之外,固化时间还取决于通过平板晶片衬底上方的固体结构的热量传输。第二滴的总固化时间非单调地取决于基材温度,最初随着基材温度的降低而增加。冲击速度强烈影响观察到的堆积结构的最终形状。为了降低斯蒂芬数(即更高的衬底温度),观察到润湿现象的重要性日益增加。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号