Xueli Wang, Quan Gao, Pengju Zhang, Jianfu Zhao, Na Xu, Yonghai Zhang
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引用次数: 0
摘要
为了研究带有楔形通道的微结构表面对 FC-72 的池沸腾传热性能的影响,本研究制作了四种混合润湿表面,微柱区与光滑通道区的面积比约为 1:1(分别为多尖表面、多星表面、少尖表面和少星表面)。实验结果表明,CHF 随液体过冷度的增加而增加。结构表面参数会影响气泡动力学行为,从而影响 CHF。毛细管吸力对混合润湿表面的影响先增大后减小。毛细管吸力对 CHF 的增加起着重要作用,传热性能最好的 Less tip 表面上的毛细管吸力最大。结合三个因素对 Zuber 模型进行了修正,提出了适合混合润湿表面的临界热通量模型。随着热通量的增加,气泡脱落频率降低,气泡脱落直径增大,成核点密度基本呈指数增长。在拉普拉斯力的作用下,微柱阵列区域的气泡会因能量差而滑向光滑通道,光滑通道中的气泡也会向更宽的光滑通道方向迁移。
Critical Heat Flux and Bubble Dynamics on Mixed Wetting Surfaces
To study the effect of micro-structured surface with wedge-shaped channel on pool boiling heat transfer performance of FC-72, four kinds of mixed wettability surfaces with area ratio of the micro-pillar region to the smooth channel region of approximately 1:1 were fabricated in this study (the surfaces were denoted as the Multi tip surface, Multi star surface, Less tip surface and Less star surface). The experimental results indicated that the CHF increases with the increase of liquid subcooling. The structural surface parameters will affect the bubble dynamics behavior and thus affect CHF. The effect of capillary wick suction on the mixed wetting surface first increases and then decreases. The capillary wick suction plays a significant role in the increase of CHF, and the capillary wick force on the Less tip surface with the best heat transfer performance is the largest. The Zuber model is modified by combining three factors to propose a critical heat flux model suitable for mixed wetting surfaces. With the increase of heat flux, the bubble detachment frequency decreases, the bubble detachment diameter increases and the nucleation site density basically shows exponential growth. Bubbles in the micro-pillar array region will be driven to slip onto the smooth channel due to energy difference and the bubbles in smooth channels will also migrate in the direction of wider smooth channels under the action of Laplace force.
期刊介绍:
Microgravity Science and Technology – An International Journal for Microgravity and Space Exploration Related Research is a is a peer-reviewed scientific journal concerned with all topics, experimental as well as theoretical, related to research carried out under conditions of altered gravity.
Microgravity Science and Technology publishes papers dealing with studies performed on and prepared for platforms that provide real microgravity conditions (such as drop towers, parabolic flights, sounding rockets, reentry capsules and orbiting platforms), and on ground-based facilities aiming to simulate microgravity conditions on earth (such as levitrons, clinostats, random positioning machines, bed rest facilities, and micro-scale or neutral buoyancy facilities) or providing artificial gravity conditions (such as centrifuges).
Data from preparatory tests, hardware and instrumentation developments, lessons learnt as well as theoretical gravity-related considerations are welcome. Included science disciplines with gravity-related topics are:
− materials science
− fluid mechanics
− process engineering
− physics
− chemistry
− heat and mass transfer
− gravitational biology
− radiation biology
− exobiology and astrobiology
− human physiology