马朗戈尼效应
磁流体
热磁对流
材料科学
对流
马兰戈尼数
传质
机械
传热
流体力学
磁场
物理
量子力学
作者
Hang Zhang,Feng Lin,Laichen Liu,Tian Tong,Runjia Li,Zhong Hong,Zhongchen Chen,Chengzhen Qin,Qiaozhen Wang,Qi Yu,Changjin Wu,Xin Tong,Peng Yu,Ke Sun,Dong Liu,Jiming Bao,Zhiming Wang
标识
DOI:10.1002/adfm.202202984
摘要
Abstract Temperature gradient‐induced Marangoni convection has attracted much attention for basic research and applications since it provides an effective means for mass and heat transfer through a liquid surface flow. Here the authors first propose a general principle to enhance such surface flow by hindering its transition to recirculation flow using an external field. They subsequently identify ferrofluid and use it validate the principle since its reduced magnetic susceptibility at higher temperatures will make the heated surface liquid stay on the surface by a thermomagnetic body force. Using a laser beam to create a heated local surface and a magnet beneath the ferrofluid to provide a vertical field, a high speed and long‐range Marangoni flow is confirmed experimentally and further supported by computational fluid dynamics simulations. To demonstrate possible applications, the authors show a self‐driving pipeless liquid conveyor belt that can efficiently transfer heat from a source to sink without external power. The demonstration of enhanced Marangoni convection opens new avenue to explore interfacial fluid dynamics and its wide applications.
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