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Subcooling for Long Duration In-Space Cryogenic Propellant Storage

机译:过冷可长时间在太空中进行低温推进剂储存

摘要

Cryogenic propellants such as hydrogen and oxygen are crucial for exploration of the solar system because of their superior specific impulse capability. Future missions may require vehicles to remain in space for months, necessitating long-term storage of these cryogens. A Thermodynamic Cryogen Subcooler (TCS) can ease the challenge of cryogenic fluid storage by removing energy from the cryogenic propellant through isobaric subcooling of the cryogen below its normal boiling point prior to launch. The isobaric subcooling of the cryogenic propellant will be performed by using a cold pressurant to maintain the tank pressure while the cryogen's temperature is simultaneously reduced using the TCS. The TCS hardware will be integrated into the launch infrastructure and there will be no significant addition to the launched dry mass. Heat leaks into all cryogenic propellant tanks, despite the use of the best insulation systems. However, the large heat capacity available in the subcooled cryogenic propellants allows the energy that leaks into the tank to be absorbed until the cryogen reaches its operational thermodynamic condition. During this period of heating of the subcooled cryogen there will be minimal loss of the propellant due to venting for pressure control. This simple technique can extend the operational life of a spacecraft or an orbital cryogenic depot for months with minimal mass penalty. In fact isobaric subcooling can more than double the in-space hold time of liquid hydrogen compared to normal boiling point hydrogen. A TCS for cryogenic propellants would thus provide an enhanced level of mission flexibility. Advances in the important components of the TCS will be discussed in this paper.
机译:诸如氢和氧之类的低温推进剂由于其卓越的比脉冲能力而对于探索太阳系至关重要。未来的任务可能需要将车辆在太空中停留数月,因此需要长期储存这些冷冻剂。热力学低温过冷器(TCS)可以通过在发射之前通过将冷冻剂的等压过冷降至其正常沸点以下来从低温推进剂中除去能量,从而缓解低温流体存储的挑战。低温推进剂的等压过冷将通过使用冷压剂保持罐内压力来进行,同时使用TCS同时降低制冷剂的温度。 TCS硬件将被集成到发射基础设施中,并且发射的干重物不会有重大增加。尽管使用了最佳的隔热系统,但热量仍泄漏到所有低温推进剂罐中。但是,过冷的低温推进剂中提供的大热容量允许泄漏到储罐中的能量被吸收,直到制冷剂达到其工作热力学条件为止。在该过冷的致冷剂的加热期间,由于用于压力控制的排气,推进剂的损失将最小。这种简单的技术可以以最小的质量损失将航天器或轨道低温仓库的使用寿命延长数月。实际上,与普通沸点氢相比,等压过冷可以使液态氢的空间保持时间增加一倍以上。因此,用于低温推进剂的TCS将提供更高水平的任务灵活性。本文将讨论TCS重要组成部分的进展。

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