首页> 外文OA文献 >Evaporative Cooling and Dehumidification Garment for Portable Life Support Systems
【2h】

Evaporative Cooling and Dehumidification Garment for Portable Life Support Systems

机译:便携式生命支持系统的蒸发冷却和除湿服装

摘要

This paper describes the design and development of an innovative thermal and humidity control system for future space suits. The system comprises an evaporation cooling and dehumidification garment (ECDG) and a lithium chloride absorber radiator (LCAR). The ECDG absorbs heat and water vapor from inside the suit pressure garment, while the LCAR rejects heat to space without venting water vapor. The ECDG is built from thin, flexible patches with coversheets made of non-porous, water-permeable membranes that -enclose arrays of vapor flow passages. Water vapor from inside the spacesuit diffuses across the water permeable membranes, enters the vapor flow channels, and then flows to the LCAR, thus dehumidifying the internal volume of the space suit pressure garment. Additional water evaporation inside the ECDG provides cooling for sensible heat loads. -The heat released from condensation and absorption in the LCAR is rejected to the environment by thermal radiation. We have assembled lightweight and flexible ECDG pouches from prototypical materials and measured their performance in a series of separate effects tests under well-controlled, prototypical conditions. Sweating hot plate tests at typical space suit pressures show that ECDG pouches can absorb over 60 W/ft of latent heat and 20 W/ft of sensible heat from the pressure garment environment. These results are in good agreement with the predictions of our analysis models.
机译:本文介绍了用于未来航天服的创新型热和湿度控制系统的设计和开发。该系统包括蒸发冷却和除湿服(ECDG)和氯化锂吸收器散热器(LCAR)。 ECDG从西服压力服内部吸收热量和水蒸气,而LCAR则将热量排入太空而不排放水蒸气。 ECDG由薄而柔韧的贴片制成,其贴片由无孔,透水的薄膜制成,这些薄膜包围着蒸汽流动通道的阵列。来自太空服内部的水蒸气扩散穿过透水膜,进入蒸气流动通道,然后流向LCAR,从而使太空服压力服的内部体积除湿。 ECDG内部额外的水蒸发为显热负荷提供了冷却。 -LCAR中的冷凝和吸收释放的热量通过热辐射散发到环境中。我们已经用原型材料组装了轻巧而灵活的ECDG小袋,并在良好控制的原型条件下进行了一系列单独的效果测试,评估了它们的性能。在典型的宇航服压力下出汗的热板测试表明,ECDG袋可从压力服装环境吸收超过60 W / ft的潜热和20 W / ft的显热。这些结果与我们的分析模型的预测非常吻合。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号