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首页> 外文期刊>Energy Technology: Generation,Conversion,Storage,Distribution >Reducing Hysteresis Losses by Heating Minor Loops in Magnetocaloric Ni-Mn-Ga-Co Films
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Reducing Hysteresis Losses by Heating Minor Loops in Magnetocaloric Ni-Mn-Ga-Co Films

机译:通过加热磁热镍氢锰膜中的小环减少滞后损失

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摘要

Magnetocaloric materials relying on first-order phase transitions give the highest entropy changes compared to second-order transitions. However, they have the drawback of a transformation hysteresis, which reduces the efficiency of a cooling cycle. Here an approach to reduce the thermal hysteresis losses by performing incomplete transformation cycles, so called minor loops, is presented. A freestanding, epitaxially grown Ni-Mn-Ga-Co film is used as a model system to analyze the direct martensitic and reverse transformation paths in detail. The additional residual phase fraction only facilitates the forward martensitic transformation, but not the reverse transformation. This pronounced asymmetry between cooling and heating demonstrates that the forward transformation to martensite is controlled by nucleation and the associated excess energy contributes to hysteresis losses. For the reverse transformation, however, nuclei of austenite are always present and accordingly this transformation is controlled by growth of the austenitic phase. The experiments reveal that only the use of heating minor loops is useful to improve the efficiency of magnetocaloric epitaxial films and by this, the ratio of usable magnetization difference divided by hysteresis loss can be increased by 64%.
机译:与二阶转换相比,依赖一阶相转换的磁热理材料具有最高的熵变化。然而,它们具有变换滞后的缺点,这降低了冷却循环的效率。这里,提出了一种通过执行不完整的转换周期来减少热磁滞损失的方法,所以称为次要环路。独立式外延生长的Ni-Mn-Ga-Co膜用作模型系统,详细分析直接马氏体和反转变换路径。额外的残留相位仅促进前向马氏体转换,但不是反向变换。冷却和加热之间的这种明显的不对称性表明,通过成核来控制对马氏体的前向转换,并且相关的过量能量有助于滞后损失。然而,对于反向变化,始终存在奥氏体的核,因此通过奥氏体相的生长来控制这种转化。实验表明,只有使用加热轻微环的使用是有助于提高磁热外延薄膜的效率,并且通过磁滞损失除以可用磁化差异的比率可以提高64%。

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