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Bubble Dynamics and Heat Transfer in Microgravity Pool Boiling

机译:微耕池沸腾中的泡沫动力学和传热

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Boiling is an extremely complicated and illusive process. Microgravity experiments offer a unique opportunity to study the complex interactions without external forces, such as buoyancy, which can affect the bubble dynamics and the related heat transfer. Furthermore, they can also provide a means to study the actual influence of gravity on the boiling. Two research projects on pool boiling in microgravity have been conducted aboard the Chinese recoverable satellites. Ground-based experiments both in normal gravity and in short-term microgravity in the Drop Tower Beijing and numerical simulations have also been performed. Steady boiling of R113 on thin platinum wires was studied with a temperature-controlled heating method, while quasi-steady boiling of FC-72 on a plane plate was investigated with an exponentially increasing heating voltage. It was found that the bubble dynamics in microgravity has a distinct difference from that in normal gravity, and that the heat transfer characteristic is depended upon the bubble dynamics. Lateral motions of bubbles on the heaters were observed before their departure in microgravity. The surface oscillation of the merged bubbles due to lateral coalescence between adjacent bubbles drove it to detach from the heaters. Slight enhancement of heat transfer on wires is observed in microgravity, while diminution is evident for high heat flux in the plate case.
机译:沸腾是一种非常复杂和虚幻的过程。微匍匐实验提供了一个独特的机会,可以研究没有外力的复杂相互作用,例如浮力,这可能影响泡沫动力学和相关的传热。此外,它们还可以提供研究重力对沸腾的实际影响的手段。在中国可收回的卫星上,已经进行了两种池沸腾的池沸腾的研究项目。北京跌落塔和数值模拟中,既往垂直重力和短期小匍匐的地面实验也已经进行。采用温度控制的加热方法研究了薄铂电线上R113的稳定沸腾,而采用指数增加的加热电压,研究了在平面板上的FC-72上的准稳定沸点。发现微匍匐的气泡动力学与正常重力中的泡沫动力学具有明显的差异,并且传热特性依赖于泡沫动力学。在脱离微匍匐之前观察到加热器上的气泡的横向运动。由于相邻气泡之间的横向聚结引起的合并气泡的表面振荡将其驱动以脱离加热器。在微粒中观察到导线上的传热略微增强,同时在板壳中的高热量通量显而易见。

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