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Energy Storage Technology Development for Space Exploration

机译:用于太空探索的储能技术开发

摘要

The National Aeronautics and Space Administration is developing battery and fuel cell technology to meet the expected energy storage needs of human exploration systems. Improving battery performance and safety for human missions enhances a number of exploration systems, including un-tethered extravehicular activity suits and transportation systems including landers and rovers. Similarly, improved fuel cell and electrolyzer systems can reduce mass and increase the reliability of electrical power, oxygen, and water generation for crewed vehicles, depots and outposts. To achieve this, NASA is developing non-flow-through proton-exchange-membrane fuel cell stacks, and electrolyzers coupled with low permeability membranes for high pressure operation. The primary advantage of this technology set is the reduction of ancillary parts in the balance-of-plant fewer pumps, separators and related components should result in fewer failure modes and hence a higher probability of achieving very reliable operation, and reduced parasitic power losses enable smaller reactant tanks and therefore systems with lower mass and volume. Key accomplishments over the past year include the fabrication and testing of several robust, small-scale non-flow-through fuel cell stacks that have demonstrated proof-of-concept. NASA is also developing advanced lithium-ion battery cells, targeting cell-level safety and very high specific energy and energy density. Key accomplishments include the development of silicon composite anodes, lithiatedmixed- metal-oxide cathodes, low-flammability electrolytes, and cell-incorporated safety devices that promise to substantially improve battery performance while providing a high level of safety.
机译:国家航空航天局正在开发电池和燃料电池技术,以满足人类探索系统的预期储能需求。改善人类执行任务的电池性能和安全性可改善许多勘探系统,包括不受束缚的航海活动服和包括着陆器和漫游车在内的运输系统。同样,改进的燃料电池和电解系统可以减轻重量,并提高乘用车,仓库和哨所的电力,氧气和水的可靠性。为此,美国国家航空航天局(NASA)正在开发非流通式质子交换膜燃料电池堆,以及与低渗透膜结合的电解器,以进行高压操作。该技术组的主要优点是减少了工厂平衡中的辅助部件,减少了泵,分离器和相关组件的数量,从而减少了故障模式,从而提高了实现非常可靠的运行的可能性,并减少了寄生功率损耗较小的反应罐,因此系统的质量和体积较小。在过去的一年中,主要成就包括已证明概念验证的几种坚固,小型非流通式燃料电池堆的制造和测试。 NASA还在开发先进的锂离子电池,其目标是电池级安全性以及非常高的比能量和能量密度。关键成就包括开发了硅复合阳极,锂化混合金属氧化物阴极,低易燃性电解质以及装有电池的安全装置,这些装置有望显着提高电池性能,同时提供高水平的安全性。

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