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首页> 外文期刊>International Journal of Heat and Mass Transfer >Modularized thermal storage unit of metal foam/paraffin composite
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Modularized thermal storage unit of metal foam/paraffin composite

机译:金属泡沫/石蜡复合材料的模块化储热单元

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摘要

Solid–liquid phase change materials (PCMs) are attractive candidates for thermal energy storage and electronics cooling applications, but once all the PCMs have completely phase-changed and approximate their thermal storage limit, they will become the bottleneck for heat dissipation on the contrary and the electronics have to stop working. In this paper, a modularized thermal storage unit (MTSU) was proposed to overcome such fatal drawback. Once the PCMs reach their limit, the completely phase-changed MTSU will be replaced by a new one due to the modularization. Such online thermal charging and offline thermal discharging working characteristics enable the continuous working of electronics. The proposed MTSU is fabricated by encapsulating paraffin with epoxy resin, and the paraffin is thermally enhanced via copper or nickel foams. Theoretical and experimental validations reveal that the ETC is increased by 376% via copper foam with the porosity of 95.52%, and by 205% for nickel foam with the porosity of 95.61% due to the relatively lower skeleton thermal conductivity of nickel foam. The cycled test revealed that the proposed MTSU has good thermal stability. Compared with the conventional TSU, the proposed MTSU avoids the slow re-solidification process and exhibits potential for continuous thermal storage over long periods of time. The proposed MTSU is expected to be applied in the field of driving batteries and solar-thermal conversion system.
机译:固液相变材料(PCM)是热能存储和电子制冷应用的有吸引力的候选人,但是一旦所有PCM完全相变并接近其储热极限,它们将成为散热的瓶颈,反之亦然。电子设备必须停止工作。在本文中,提出了模块化的蓄热单元(MTSU)来克服这种致命的缺点。一旦PCM达到极限,由于模块化,完全相变的MTSU将被新的MTSU取代。这种在线热充电和离线热放电工作特性使电子设备能够连续工作。所提出的MTSU是通过用环氧树脂封装石蜡制成的,并且通过铜或镍泡沫对石蜡进行热增强。理论和实验验证表明,由于泡沫镍的骨架导热系数相对较低,通过泡沫铜的孔隙率达到95.52%时,ETC增加了376%;对于孔隙率95.61%的泡沫镍而言,其ETC增加了205%,这是因为泡沫镍的骨架导热系数相对较低。循环测试表明,拟议的MTSU具有良好的热稳定性。与传统的TSU相比,拟议的MTSU避免了缓慢的重新固化过程,并具有长时间连续储热的潜力。拟议的MTSU有望应用于驱动电池和太阳热能转换系统领域。

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