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Optimizing the Caloric Properties of Cu-Doped Ni–Mn–Ga Alloys

机译:优化掺杂Cu的Ni-Mn-Ga合金的热性能

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摘要

With the purpose to optimize the functional properties of Heusler alloys for their use in solid-state refrigeration, the characteristics of the martensitic and magnetic transitions undergone by Ni Mn Ga Cu ( = 3–11) alloys have been studied. The results reveal that, for a Cu content of = 5.5–7.5, a magnetostructural transition between paramagnetic austenite and ferromagnetic martensite takes place. In such a case, magnetic field and stress act in the same sense, lowering the critical combined fields to induce the transformation; moreover, magnetocaloric and elastocaloric effects are both direct, suggesting the use of combined fields to improve the overall refrigeration capacity of the alloy. Within this range of compositions, the measured transformation entropy is increased owing to the magnetic contribution to entropy, showing a maximum at composition = 6, in which the magnetization jump at the transformation is the largest of the set. At the same time, the temperature hysteresis of the transformation displays a minimum at = 6, attributed to the optimal lattice compatibility between austenite and martensite. We show that, among this system, the optimal caloric performance is found for the = 6 composition, which displays high isothermal entropy changes (−36 J·kg ·K under 5 T and −8.5 J·kg ·K under 50 MPa), suitable working temperature (300 K), and low thermal hysteresis (3 K).
机译:为了优化Heusler合金在固态制冷中的功能特性,研究了Ni Mn Ga Cu(= 3-11)合金经历的马氏体和磁转变的特性。结果表明,当Cu含量为5.5-7.5时,顺磁性奥氏体和铁磁性马氏体之间发生了磁结构转变。在这种情况下,磁场和应力以相同的方式作用,从而降低了关键的组合磁场,从而引起了转变。此外,磁热效应和弹性热效应都是直接的,这表明使用组合磁场可改善合金的整体制冷能力。在此组成范围内,由于磁性对熵的贡献,所测得的转变熵增加,在组成= 6时显示最大值,其中在转变处的磁化跃迁是集合中的最大值。同时,归因于奥氏体和马氏体之间的最佳晶格相容性,相变的温度滞后在= 6处显示最小值。我们表明,在该系统中,找到了= 6成分的最佳热量性能,该成分表现出较高的等温熵变(5 T下为-36 J·kg·K和50 MPa下为-8.5 J·kg·K),合适的工作温度(300 K)和低热滞(3 K)。

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