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Experimental evaluation of metallic phase change materials for thermal transient mitigation

机译:金属相变材料热瞬态缓解的实验评估

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The military has various high rate transient pulse applications which create unique thermal management challenges due to their high heat flux and short pulse duration. Phase change materials (PCMs) have been studied due to their ability to absorb thermal energy with minimal temperature increase. This work investigates the performance of metallic PCMs (Fields' metal (32.5Bi/51In/16.5Sn wt%) and 49Bi/18Pb/12Sn/21In wt%) acting as an integrated thermal buffer for high power 19 ms pulses. Two commercially available organic PCMs (PureTemp 29® and PureTemp 58®) and a dielectric gel (Sylgard 527®) were used for comparison. The studied materials were deposited directly in contact with the heat-dissipating surface of a custom micro-fabricated heater chip with an embedded resistance temperature detector (RTD) for in-situ temperature measurement. PCMs were subjected to 19 ms pulses and a maximum heat flux of 338 W/cm~2 (relative to heat source area). The Bi/Pb/Sn/In PCM was able to reduce temperature rise during the pulse by 60 ℃ (63%) for 120 W and 81 ℃ (68%) for 160 W using the dielectric gel as baseline. In comparison the best performing organic PCM, PureTemp58, only reduced temperature rise by 16 ℃ (17%) and 17 ℃ (14%) for 120W and 160 W, respectively. This supports previous assertions in the literature that metallic PCMs can be an enabling thermal protection technology for high rate transient applications.
机译:军方具有各种高速率瞬态脉冲应用,这些应用因其高热通量和短脉冲持续时间而带来了独特的热管理挑战。由于相变材料(PCM)能够以最小的温度升高吸收热能,因此已经对其进行了研究。这项工作研究了金属PCM(Fields的金属(32.5Bi / 51In / 16.5Sn wt%)和49Bi / 18Pb / 12Sn / 21In wt%)作为集成热缓冲器的性能,以应对19 ms大功率脉冲。比较使用了两种市售的有机PCM(PureTemp29®和PureTemp58®)和介电凝胶(Sylgard527®)。所研究的材料直接沉积在与具有内置电阻温度检测器(RTD)的定制微加工加热器芯片的散热表面接触的位置,以进行原位温度测量。 PCM受到19 ms脉冲,最大热通量为338 W / cm〜2(相对于热源面积)。使用介电凝胶作为基线,Bi / Pb / Sn / In PCM可以将120 W的脉冲过程中的温度升高降低60℃(63%),将160 W的温度降低81℃(68%)。相比之下,性能最佳的有机PCM PureTemp58仅将120W和160W的温度上升分别降低了16℃(17%)和17℃(14%)。这支持了文献中先前的主张,即金属PCM可以成为高速率瞬态应用中的使能热保护技术。

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