An Integrated Innovative 3D Radiation Protection Fabric for Advanced Spacesuits and Systems

C. Paige, D. Newman, S. Lombardo
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引用次数: 3

Abstract

Within the next five years NASA intends to be back on the moon and within the next decade, to have long-duration, deep-space exploration missions on Mars. Radiation doses predicted for current shielding systems exceed the allowable limits for these missions. In order to achieve these goals, we propose the novel use of nanomaterials in the development of a thermal radiation and micrometeoroid protection garment for advanced spacesuits with applications to radiation protection in space systems. Preliminary results from radiation transport modeling demonstrate the improved shielding capabilities of boron nitride nanotubes (BNNT) over traditional space system shielding materials. Combining the novel BNNT material with Aerogels and more traditional materials such as carbon nanotubes and polyethylene, we have developed a material system which will be able to incorporate radiation shielding with thermal and micrometeoroid protection. A prototype was manufactured demonstrating the materials development capabilities and compatible applications for the proposed system.
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一种用于先进太空服和系统的集成创新3D辐射防护织物
美国国家航空航天局计划在未来五年内重返月球,并在未来十年内在火星上进行长期的深空探测任务。预计当前屏蔽系统的辐射剂量超过了这些任务的允许限度。为了实现这些目标,我们提出了纳米材料在先进宇航服中热辐射和微流星体防护服的新应用,并将其应用于空间系统的辐射防护。辐射输运模型的初步结果表明,氮化硼纳米管(BNNT)的屏蔽能力优于传统的空间系统屏蔽材料。将新型BNNT材料与气凝胶以及碳纳米管和聚乙烯等更传统的材料相结合,我们开发了一种能够将辐射屏蔽与热防护和微流星体防护结合起来的材料系统。制造了一个原型,演示了该系统的材料开发能力和兼容应用。
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An Integrated Innovative 3D Radiation Protection Fabric for Advanced Spacesuits and Systems Model-based Tools designed for the FACE™ Technical Standard, Editions 3.0 & 2.1 Can Adaptive Response and Evolution Make Survival of Extremophile Bacteria Possible on Mars? Initial Orbit Determination Using Simplex Fusion Headline-based visualization to prioritize events
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