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Ventless Pressure Control of Two-Phase Propellant Tanks in Microgravity

机译:微重力下两相推进剂坦克的无排气压力控制

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This work studies pressurization and pressure control of a large liquid hydrogen storage tank. A finite element model is developed that couples a lumped thermodynamic formulation for the vapor region with a complete solution of the Navier-Stokes and energy equations for the flow and temperature fields in the liquid. Numerical results show that buoyancy effects are strong, even in microgravity, and can reposition a vapor bubble that is initially at the center of the tank to a region near the tank wall in a relatively short time. Long-term tank pressurization with the vapor bubble at the tank wall shows that after an initial transient lasting about a week, the final rate of pressure increase agrees with a purely thermodynamic analysis of the entire tank. However, the final pressure levels are quite different from thermodynamic predictions. Numerical results also show that there is significant thermal stratification in the liquid due to the effects of natural convection. A subcooled jet is used to provide simultaneous cooling and mixing in order to bring the tank pressure back down to its initial value. Three different jet speeds are examined. Although the lowest jet speed is ineffective at controlling the pressure because of insufficient penetration into the liquid region, the highest jet speed is shown to be quite effective at disrupting thermal stratification and reducing the tank pressure in reasonable time.
机译:这项工作研究大型液态氢储罐的增压和压力控制。建立了一个有限元模型,该模型将用于蒸汽区域的集总热力学公式与用于流体中流场和温度场的Navier-Stokes和能量方程的完整解耦合。数值结果表明,即使在微重力作用下,浮力作用也很强,并且可以在较短的时间内将最初位于水箱中心的气泡重新定位到靠近水箱壁的区域。在罐壁处带有气泡的罐的长期加压表明,在持续约一周的初始瞬变之后,最终的压力增加速率与整个罐的纯热力学分析一致。但是,最终压力水平与热力学预测完全不同。数值结果还表明,由于自然对流的影响,液体中存在明显的热分层。过冷射流用于同时进行冷却和混合,以使储罐压力回落至其初始值。检查了三种不同的喷射速度。尽管最低的射流速度由于无法充分渗透到液体区域而无法有效地控制压力,但显示出最高的射流速度对于在合理的时间内破坏热分层和降低储罐压力非常有效。

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