首页> 外文会议>Annual Meeting of the Deutscher Kaelte und Klimatechnischer Verein >Deutsche Kaelte- und Klimatagung 2013 -Ⅱ.1.03: The Potential of NiTi-Based Solid State Cooling Processes
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Deutsche Kaelte- und Klimatagung 2013 -Ⅱ.1.03: The Potential of NiTi-Based Solid State Cooling Processes

机译:Deutsche Kaelte-und Klimatagung 2013-Ⅱ.1.03:基于NITI的固态冷却过程的潜力

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Energy saving and environmental protection are topics of growing interest. In the light of these aspects alternative refrigeration principles become increasingly important. Shape memory alloys (SMA), especially NiTi alloys, generate a large amount of latent heat during solid state phase transformations, which can lead to a significant cooling effect in the material. These materials do not only provide the potential for an energy-efficient cooling process, they also minimize the impact on the environment by reducing the need for conventional ozone-depleting refrigerants. Our paper, presenting first results obtained in a project within the DFG Priority Program SPP 1599 "Ferroic Cooling", focuses on the thermodynamic analysis of a NiTi-based cooling system. We first introduce a suitable cooling process and subsequently illustrate the underlying mechanisms of the process in comparison with the conventional compression refrigeration system. We further introduce a graphical solution to calculate the energy efficiency ratio of the system. This thermodynamic analysis method shows the necessary work input and the heat absorption of the SMA in stress/strain- or temperature/entropy-diagrams, respectively. The results of the calculations underline the high potential of this solid-state cooling methodology.
机译:节能环保是兴趣日益增长的主题。鉴于这些方面,替代的制冷原则变得越来越重要。形状记忆合金(SMA),特别是Niti合金,在固态相变期间产生大量的潜热,这可能导致材料中的显着冷却效果。这些材料不仅提供了节能冷却过程的可能性,它们还通过减少常规臭氧消耗制冷剂的需求来最小化对环境的影响。我们的论文,介绍了DFG优先程SPP 1599“铁冷却”项目中的项目中获得的第一个结果,专注于NITI基冷却系统的热力学分析。我们首先介绍合适的冷却过程,随后与传统的压缩制冷系统相比说明该方法的底层机构。我们进一步引入了图形解决方案来计算系统的能效比。该热力学分析方法分别显示了应力/应变或温度/熵图中SMA的必要工作输入和热吸收。计算结果强调了这种固态冷却方法的高潜力。

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