Magnetic states stabilization in Ni51Mn33.4In15.6 Heusler alloy

M. Ghahremani, A. Aslani, H. Elbidweihy, L. H. Bennett, E. Torre
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Abstract

Abstract The rate-independent stabilization of magnetic states with iterations in a Heusler alloy has been studied. The direct measurement of the adiabatic temperature change, ΔTad, of a Ni51Mn33.4In15.6 alloy near the magnetostructural phase transition is presented. The adiabatic temperature change at a given temperature within the temperature range of the magnetostructural transition is history dependent and varies considerably with the iteration count of the field cycle. The data show the transition from the low magnetization state to the high magnetization state during low to high (L–H) temperature change direction and from high magnetization to low magnetization state during high to low (H–L) temperature change direction require several field cycles to stabilize the ΔTad measurement, similar to the accommodation phenomenon in hysteretic materials. In the mixed magnetic state inside the first-order transition, both low and high magnetization portions of the alloy exist and it varies considerably with the induced fields. This original observation emphasizes that it is incorrect to assess the performance of a magnetic refrigeration system through a single measurement, and that achieving a stable, utilizable, adiabatic temperature change requires several field-induced transitions.
Ni51Mn33.4In15.6 Heusler合金的磁态稳定
摘要研究了Heusler合金中磁态迭代的速率无关稳定化问题。本文对Ni51Mn33.4In15.6合金在磁结构相变附近的绝热温度变化ΔTad进行了直接测量。在磁结构转变的温度范围内,给定温度下的绝热温度变化与历史有关,并随磁场循环的迭代次数而变化。数据表明,从低到高(L-H)温度变化方向从低磁化状态转变为高磁化状态,从高到低(H-L)温度变化方向从高磁化状态转变为低磁化状态,需要多次场循环来稳定ΔTad测量,类似于滞后材料中的调节现象。在一阶跃迁内的混合磁态中,合金的低磁化部分和高磁化部分同时存在,且随感应磁场的变化而变化较大。这一最初的观察强调,通过一次测量来评估磁制冷系统的性能是不正确的,并且实现稳定的、可用的、绝热的温度变化需要多次场致转变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cogent Physics
Cogent Physics PHYSICS, MULTIDISCIPLINARY-
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