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Development, Testing, and Failure Mechanisms of a Replicative Ice Phase Change Material Heat Exchanger

机译:复制性冰相变材料换热器的开发,测试和故障机理

摘要

Phase change materials (PCM) may be useful for thermal control systems that involve cyclical heat loads or cyclical thermal environments such as Low Earth Orbit (LEO) and Low Lunar Orbit (LLO). Thermal energy can be stored in the PCM during peak heat loads or in adverse thermal environments. The stored thermal energy can then be released later during minimum heat loads or in more favorable thermal environments. One advantage that PCM's have over evaporators in this scenario is that they do not use a consumable. Wax PCM units have been baselined for the Orion thermal control system and also provide risk mitigation for the Altair Lander. However, the use of water as a PCM has the potential for significant mass reduction since the latent heat of formation of water is approximately 70% greater than that of wax. One of the potential drawbacks of using ice as a PCM is its potential to rupture its container as water expands upon freezing. In order to develop a space qualified ice PCM heat exchanger, failure mechanisms must first be understood. Therefore, a methodical experimental investigation has been undertaken to demonstrate and document specific failure mechanisms due to ice expansion in the PCM. An ice PCM heat exchanger that replicates the thermal energy storage capacity of an existing wax PCM unit was fabricated and tested. Additionally, methods for controlling void location in order to reduce the risk of damage due to ice expansion are investigated. This paper presents the results to date of this investigation. Nomenclature
机译:相变材料(PCM)可用于涉及周期性热负荷或周期性热环境(例如低地球轨道(LEO)和低月球轨道(LLO))的热控制系统。在峰值热负荷期间或在不利的热环境下,热能可以存储在PCM中。然后,可以在最小的热负荷期间或更有利的热环境中释放存储的热能。在这种情况下,PCM优于蒸发器的一个优点是它们不使用消耗品。蜡PCM单元已作为Orion热控制系统的基准,也为Altair Lander减轻了风险。但是,将水用作PCM可能会显着降低质量,因为水形成的潜热比蜡大70%。使用冰作为PCM的潜在缺点之一是,随着水在冻结时膨胀,其可能使容器破裂。为了开发符合太空条件的冰PCM热交换器,必须首先了解故障机理。因此,进行了系统的实验研究,以证明和记录由于PCM中的冰膨胀引起的特定故障机理。制作并测试了复制现有蜡PCM单元的热能存储能力的冰PCM热交换器。另外,研究了控制空隙位置以减少由于冰膨胀而造成损坏的风险的方法。本文介绍了迄今为止这项调查的结果。命名法

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