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Bubble Formation from Wall Orifice in Liquid Cross-Flow Under Low Gravity

机译:低重力作用下液体横流中壁孔的气泡形成

摘要

Two-phase flows present a wide variety of applications for spacecraft thermal control systems design. Bubble formation and detachment is an integral part of the two phase flow science. The objective of the present work is to experimentally investigate the effects of liquid cross-flow velocity, gas flow rate, and orifice diameter on bubble formation in a wall-bubble injection configuration. Data were taken mainly under reduced gravity conditions but some data were taken in normal gravity for comparison. The reduced gravity experiment was conducted aboard the NASA DC-9 Reduced Gravity Aircraft. The results show that the process of bubble formation and detachment depends on gravity, the orifice diameter, the gas flow rate, and the liquid cross-flow velocity. The data are analyzed based on a force balance, and two different detachment mechanisms are identified. When the gas momentum is large, the bubble detaches from the injection orifice as the gas momentum overcomes the attaching effects of liquid drag and inertia. The surface tension force is much reduced because a large part of the bubble pinning edge at the orifice is lost as the bubble axis is tilted by the liquid flow. When the gas momentum is small, the force balance in the liquid flow direction is important, and the bubble detaches when the bubble axis inclination exceeds a certain angle.
机译:两相流为航天器热控制系统设计提供了广泛的应用。气泡的形成和分离是两相流科学的组成部分。本工作的目的是通过实验研究液体横流速度,气体流速和孔口直径对壁泡喷射配置中气泡形成的影响。数据主要在重力降低的条件下获取,但一些数据在正常重力下进行比较。降低重力的实验是在NASA DC-9降低重力的飞机上进行的。结果表明,气泡的形成和分离过程取决于重力,孔口直径,气体流速和液体错流速度。基于力平衡分析数据,并确定两种不同的分离机制。当气体动量较大时,由于气体动量克服了液体阻力和惯性的附着作用,气泡会从喷射孔中脱离。由于当气泡轴线由于液体流倾斜而损失了孔口处的气泡钉扎边缘的大部分时,表面​​张力大大降低了。当气体动量较小时,在液体流动方向上的力平衡很重要,并且当气泡轴线倾斜度超过某个角度时,气泡会分离。

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    Kamotani Y.; Nahra Henry K.;

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  • 年度 2000
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