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Inhibiting Random Droplet Motion on Hot Surfaces by Engineering Symmetry-Breaking Janus-Mushroom Structure

机译:通过工程对称的Janus-Mushroom结构抑制热表面上的随机液滴运动

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AbstractConcentrating impacting droplets onto a localized hotspot and inducing them to remain in a preferential heat transfer mode is essential for efficient thermal management such as spray cooling. Conventionally, droplets impacting on hot surfaces can randomly bounce off without becoming fully evaporated, resulting in low heat transfer efficiency. Although the directional and guided transport of impacting droplets to a preferential location can be achieved through the introduction of a structural gradient, the manifestation of such a motion requires the meticulous control of the spatial location where the droplet is released. Here, a novel surface consisting of regularly patterned posts with Janus‐mushroom structure (JMS) is designed, in which the sidewalls of the individual posts are decorated with straight and curved morphologies. It is revealed that such structural symmetry‐breaking in the individual posts leads to directional liquid penetration and vapor flow toward the straight sidewall, and also reduces the work of adhesion, altogether triggering collective and preferential droplet transport at a high temperature. By surrounding a conventional surface with JMS endowed with favorable directionality, it is possible to concentrate small impacting droplets preferentially onto a localized hotspot to achieve enhanced cooling efficiency.
机译:向局部热点上的抽象冲击液体撞击液滴并诱导它们保持优先传热模式对于诸如喷雾冷却等有效的热管理是必不可少的。通常,影响在热表面上的液滴可以随机地反弹而不会完全蒸发,导致传热效率低。尽管通过引入结构梯度可以实现将液滴的方向和引导运输能够通过引入结构梯度来实现,但是这种运动的表现需要对释放液滴的空间位置的细致控制。这里,设计了一种新的表面,包括具有Janus-Mushroom结构(JMS)的规则图案化的柱,其中各个柱的侧壁用直线和弯曲的形态装饰。据透露,各个柱的这种结构对称性断裂导致定向液体穿透和朝向直侧壁的蒸汽流动,并且还降低了粘合的工作,共同触发了高温下的集体和优先液滴传输。通过围绕具有有利方向性的JMS的传统表面,可以将小冲击液滴集中在局部热点上以实现增强的冷却效率。

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