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A Smart Polymer Composite Based on a NiTi Ribbon and a Magnetic Hybrid Material for Actuators with Multiphysic Transduction

机译:基于NiTi碳带和磁性混合材料的智能聚合物复合材料,用于多物理场驱动器。

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A smart composite material constituted of a magnetic hybrid film and a NiTi shape memory alloy (SMA) ribbon was obtained and characterized. The magnetic hybrid film was joined to the NiTi ribbon in order to combine the properties of both materials. This new composite material combines magnetic properties of the hybrid film, (Fe2O3-CMC)/(polyvinyl butyral), and the shape memory properties of the NiTi ribbon, which has a chemical composition of Ti-50.13 at. % Ni. This smart composite material has a mass of 18.3% NiTi ribbon and 81.7% magnetic hybrid film. Results obtained by DSC show that the smart composite material presents a small delay of transformation during warming and cooling because the magnetic hybrid film acts like a thermal insulator. Thermomechanical results indicate that the hybrid material also acts as a mechanical reinforcement, since it is observed that the Stress-Assisted Two-Way Memory Effect (SATWME) of the smart composite is lower than the SATWME of the SMA ribbon. The density current values of phase transformations were clearly identified with a thermomechanical apparatus developed in our laboratory. Finally, displacements of the smart composite material in cantilever configuration are obtained by applying an external magnetic field. All these results demonstrate that the smart composite material can be activated by temperature, electrical current, stress, and/or magnetic field, offering good expectations for actuating applications with multiphysic transduction.
机译:获得并表征了由磁性混合膜和NiTi形状记忆合金(SMA)薄带组成的智能复合材料。将磁性杂化膜连接到NiTi带上,以结合两种材料的特性。这种新型复合材料结合了杂化膜的磁性(Fe 2 O 3 -CMC)/(聚乙烯醇缩丁醛)和NiTi带的形状记忆特性,化学成分为Ti-50.13 at。 % 你。这种智能复合材料的质量为18.3%的NiTi碳带和81.7%的磁性混合膜。通过DSC获得的结果表明,智能复合材料在加热和冷却期间呈现出小的转变延迟,这是因为磁性杂化膜的作用类似于绝热体。热力学结果表明,该杂化材料还起到了机械增强作用,因为已观察到智能复合材料的应力辅助双向记忆效应(SATWME)低于SMA带的SATWME。用我们实验室开发的热机械设备可以清楚地识别出相变的密度电流值。最后,通过施加外部磁场获得悬臂结构的智能复合材料的位移。所有这些结果表明,智能复合材料可以被温度,电流,应力和/或磁场激活,从而为多物理转换的驱动应用提供了良好的期望。

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