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首页> 外文期刊>Current applied physics: the official journal of the Korean Physical Society >Processing and properties of Ni-Mn-Ga magnetic shape memory alloy based hybrid materials
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Processing and properties of Ni-Mn-Ga magnetic shape memory alloy based hybrid materials

机译:基于Ni-Mn-Ga磁形记忆合金的混合材料的处理与性能

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摘要

Magnetic shape memory (MSM) materials based on non-stoichiometric Ni-Mn-Ga (NMG) alloys have attracted extensive interest over the last decade because of their actuating, sensing, and damping properties. In addition to MSM phenomenon, NMG alloys have shown conventional shape memory effect, traditional and magnetic-field-assisted superelasticity, magnetocaloric, and special transport properties. The multifunctionality of MSM alloys may be utilized for actuators, sensors, dampers, and perhaps also for energy harvesting. The dominant mechanism behind the MSM phenomenon is the twin boundary movement in the martensitic phase, and in order to take the full advantage of above mentioned properties single crystals are usually desired. However, growth of Ni-Mn-Ga single crystals is quite tedious and high quality crystals are only limitedly available at a considerably high prize. Therefore, alternative material solutions based on hybrid concepts have attained increasing interest. NMG-polymer hybrids can be tailored for a particular application by a proper combination of NMG alloy and polymer and prepared in various forms including embedded NMG particles, ribbons, or sheets. These materials are especially interesting for applications in vibration damping, actuation, and sensing. Polymer selection is critical for the functionality of NMG-polymer hybrids, and the applied polymer should be selected based on the martensite type of the NMG alloy. E.g., the transition temperatures of both components should be adjusted carefully considering the application. The contact between NMG and polymer and the stiffness of the polymer are important. Excellent damping performance is obtained in the NMG-soft epoxy matrix below the martensite-austenite transition temperature region when compared to that of the pure polymer. The relative damping capacity is found to be better than that of any other known material.
机译:基于非化学计量Ni-Mn-Ga(NMG)合金的磁形存储器(MSM)材料由于其致动,感测和阻尼性能而在过去十年中引起了广泛的利益。除了MSM现象之外,NMG合金已经显示出常规的形状记忆效应,传统和磁场辅助超弹性,磁热和特殊的运输性能。 MSM合金的多功能性可用于致动器,传感器,阻尼器,以及也许也可以用于能量收集。 MSM现象背后的主导机制是马氏体相中的双界运动,并且为了采取上述性能的完全优势,通常需要单晶。然而,Ni-Mn-Ga单晶的生长是非常乏味的,并且高质量的晶体仅受到相当高的奖项。因此,基于混合概念的替代材料解决方案已经实现了越来越兴趣。通过NMG合金和聚合物的适当组合,可以针对特定应用来定制NMG-聚合物杂种,并以各种形式制备,包括嵌入NMG颗粒,带或片材。这些材料对于振动阻尼,致动和感测中的应用特别有趣。聚合物选择对于NMG-聚合物杂种的功能至关重要,并且应该基于马氏体的NMG合金的马氏体类型选择所施加的聚合物。例如,应仔细调整两种组件的过渡温度,考虑申请。 NMG和聚合物之间的接触和聚合物的刚度是重要的。与纯聚合物相比,在马氏体 - 奥氏体转变温度区域下方的NMG-软环氧基质中获得优异的阻尼性能。发现相对阻尼能力优于任何其他已知材料的相对阻尼能力。

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  • 作者单位

    Department of Materials Science and Engineering Aalto University School of Chemical Technology P.O. Box 16200 00076 Aalto Finland;

    Department of Materials Science and Engineering Aalto University School of Chemical Technology P.O. Box 16200 00076 Aalto Finland;

    Department of Materials Science and Engineering Aalto University School of Chemical Technology P.O. Box 16200 00076 Aalto Finland;

    Department of Biotechnology and Chemical Technology Aalto University School of Chemical Technology P.O. Box 16100 00076 Aalto Finland;

    Department of Materials Science and Engineering Aalto University School of Chemical Technology P.O. Box 16200 00076 Aalto Finland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用物理学;
  • 关键词

    Composite; Damping; Internal friction; Martensite; Ni-Mn-Ga; Polymer;

    机译:复合;阻尼;内部摩擦;马氏体;Ni-Mn-Ga;聚合物;

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