论文标题

尺寸和热梯度对热量存储的相变材料过冷的影响

Impact of Size and Thermal Gradient on Supercooling of Phase Change Materials for Thermal Energy Storage

论文作者

Lilley, Drew, Lau, Jonathan, Dames, Chris, Kaur, Sumanjeet, Prasher, Ravi

论文摘要

基于相变材料的热能存储在建筑物的加热和冷却,电池和电子热管理,热纺织品以及发电厂的干燥冷却时具有许多当前和潜在的应用。但是,将DSC上获得的实验室比例热数据连接到大规模实用系统的性能一直是一个重大挑战,这主要是由于超冷对系统的尺寸和温度梯度的依赖性。在这项工作中,我们展示了如何使用常见的实验室比例热分析技术对相变材料的超冷行为进行实验表征。然后,我们开发了一个基于统计的理论模型,该模型使用实验室量表数据在小样本上进行定量预测任何大小与温度梯度的一般热量储能应用的超冷性能。最后,我们通过与Neopentyl甘油中固体相变的实验结果进行比较来验证建模方法,这表明该模型如何成功预测了跨大量冷却速率(2个数量级)和体积(3个数量级)的超冷温度的变化。通过考虑热梯度,该模型避免了近似值发生的〜2倍误差。

Phase change material based thermal energy storage has many current and potential applications in the heating and cooling of buildings, battery and electronics thermal management, thermal textiles, and dry cooling of power plants. However, connecting lab scale thermal data obtained on DSC to the performance of large-scale practical systems has been a major challenge primarily due to the dependence of supercooling on the size and temperature gradient of the system. In this work we show how a phase change material's supercooling behavior can be characterized experimentally using common lab scale thermal analysis techniques. We then develop a statistics based theoretical model that uses the lab scale data on small samples to quantitatively predict the supercooling performance for a general thermal energy storage application of any size with temperature gradients. Finally, we validate the modeling methodology by comparing to experimental results for solid-solid phase change in neopentyl glycol, which shows how the model successfully predicts the changes in supercooling temperature across a large range of cooling rates (2 orders of magnitude) and volumes (3 orders of magnitude). By accounting for thermal gradients, the model avoids ~2x error incurred by lumped approximations.

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