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SMST2019: Novel Experimental Approach to Determine Elastocaloric Latent Heat

机译:SMST2019:确定弹性静脉潜热的新型实验方法

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摘要

One of the most important parameters of superelastic shape memory alloys to be used in elastocaloric cooling and heating processes is their specific latent heat. Usually, the latent heat of a material is determined by differential scanning calorimetry (DSC) where the material phase transformation is induced thermally under zero stress. During elastocaloric processes however, the latent heat becomes accessible by stress-induced transformation under tensile or compression loading and unloading of the sample. In recent elastocaloric experiments, we observed drastic differences between latent heat values determined in DSC experiments and the ΔT values observed in nearly adiabatic elastocaloric cycles, which reflect the latent heat; in fact, the DSC experiments predicted rather pessimistic values and thus poor cooling performance. Based on these observations we developed and tested a novel experimental approach to determine the latent heat of superelastic materials directly during the elastocaloric process. By comparing or combining direct Joule heating with the strain based process we are able to accurately determine the latent heat for both tensile loading and unloading for any elastocaloric heating or cooling process. Furthermore, the influence of applied mechanical parameters as well as material conditioning on the latent heat can be observed in the elastocaloric experiment.
机译:以弹性致大气压冷却和加热过程用于弹性形状记忆合金的最重要参数之一是它们的特定潜热。通常,材料的潜热由差示扫描量热法(DSC)确定,其中材料相变在零应力下热引起。然而,在弹性过程期间,在拉伸或压缩负载下的应力诱导的转化和卸载样品中,潜热变得可获得潜热。在最近的弹性静脉实验中,我们观察到在DSC实验中确定的潜热值之间的激烈差异,并且在几乎绝热的弹性循环中观察到的ΔT值,反映潜热;实际上,DSC实验预测了相当悲观的值,从而降低了较差的冷却性能。基于这些观察结果,我们开发并测试了一种新的实验方法,可以在弹性过程中直接确定超弹性材料的潜热。通过将直接焦耳加热与基于应变的方法进行比较或结合,我们能够精确地确定拉伸负载和卸载的潜热,以便任何弹性加热或冷却过程。此外,在弹性蜂制实验中可以观察到应用的机械参数以及材料调节对潜热的影响。

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