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Design and Evaluation of a Water Recirculation Loop Maintenance Device for the Advanced Spacesuit Water Membrane Evaporator

机译:先进宇航服水膜蒸发器水循环回路维护装置的设计与评估

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A dual-bed device to maintain the water quality of the Advanced Spacesuit Water Membrane Evaporation (SWME) water recirculation loop has been designed and is undergoing testing. The SWME is a heat rejection device under development at the NASA Johnson Space Center to perform thermal control for advanced spacesuits. One advantage of this technology is the potential for a significantly greater degree of tolerance to contamination when compared to the existing Sublimator technology. The driver for the development of a water recirculation maintenance device is to further enhance this advantage through the leveraging of fluid loop management lessons-learned from the International Space Station (ISS). A bed design that was developed for a Hamilton Sundstrand military application, and considered for a potential ISS application with the Urine Processor Assembly, provides a low pressure drop means for water maintenance in a recirculation loop. The bed design is coupled with high capacity ion exchange resins, organic adsorbents, and a cyclic methodology developed for the Extravehicular Mobility Unit (EMU) Transport Water Loop. The bed design further leverages a sorbent developed for ISS that introduces a biocide in a microgravity-compatible manner for the Internal Active Thermal Control System (IATCS). The leveraging of these water maintenance technologies to SWME recirculation loop water quality maintenance is a unique demonstration of applying the valuable lessons learned on the ISS to the next generation of manned spaceflight Environmental Control and Life Support System (ECLSS) hardware.
机译:已经设计出一种用于维持高级航天服水膜蒸发(SWME)水循环回路水质的双床装置,并且正在接受测试。 SWME是NASA约翰逊航天中心正在开发的一种排热设备,用于执行高级航天服的热控制。与现有的Sublimator技术相比,该技术的优势之一是可以显着提高对污染的容忍度。开发水循环维护设备的驱动力是通过利用从国际空间站(ISS)汲取的流体回路管理课程,进一步增强这一优势。专为汉密尔顿·森德斯特兰德(Hamilton Sundstrand)军事应用开发的床设计,并考虑与尿液处理器组件一起用于潜在的ISS应用,该床设计提供了一种低压降装置,用于在循环回路中维持水。床设计与高容量离子交换树脂,有机吸附剂以及为车外流动单元(EMU)运输水回路开发的循环方法相结合。床的设计进一步利用了为ISS开发的吸附剂,该吸附剂以微重力兼容的方式向内部主动热控制系统(IATCS)引入了杀菌剂。这些水维护技术与SWME再循环回路水质维护的结合,是将在国际空间站获得的宝贵经验应用于下一代载人航天环境控制和生命支持系统(ECLSS)硬件的独特展示。

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