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A Novel Device Addressing Design Challenges for Passive Fluid Phase Separations Aboard Spacecraft

机译:一种新型设备,应对航天器上被动流体相分离的设计挑战

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Capillary solutions have long existed for the control of liquid inventories in spacecraft fluid systems such as liquid propellants, cryogens and thermal fluids for temperature control. Such large length scale, 'low-gravity,' capillary systems exploit container geometry and fluid properties-primarily wetting-to passively locate or transport fluids to desired positions for a variety of purposes. Such methods have only been confidently established if the wetting conditions are known and favorable. In this paper, several of the significant challenges for 'capillary solutions' to low-gravity multiphase fluids management aboard spacecraft are briefly reviewed in light of applications common to life support systems that emphasize the impact of the widely varying wetting properties typical of aqueous systems. A restrictive though no less typifying example of passive phase separation in a urine collection system is highlighted that identifies key design considerations potentially met by predominately capillary solutions. Sample results from novel scale model prototype testing aboard a NASA low-g aircraft are presented that support the various design considerations.
机译:长期以来,毛细管溶液一直用于控制航天器流体系统中的液体清单,例如液体推进剂,冷冻剂和温度控制用的热流体。这种大尺寸,“低重力”的毛细管系统利用了容器的几何形状和流体特性(主要是润湿),可以将流体被动地定位或运输到所需的位置,以实现各种目的。仅在已知润湿条件并确定润湿条件的情况下,才能确信地建立这种方法。在本文中,根据生命支持系统的常见应用简要介绍了航天器低重力多相流体管理的“毛细管解决方案”的几个重大挑战,这些应用强调了水系统典型的广泛润湿特性的影响。突出显示了尿液收集系统中被动相分离的一个限制性示例,但同样具有代表性,该示例确定了主要毛细管解决方案可能满足的关键设计考虑因素。本文介绍了在NASA低g飞机上进行新型比例模型原型测试的示例结果,这些结果支持各种设计注意事项。

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