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首页> 外文期刊>Composites Science and Technology >Versatile magnetorheological plastomer with 3D printability, switchable mechanics, shape memory, and self-healing capacity
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Versatile magnetorheological plastomer with 3D printability, switchable mechanics, shape memory, and self-healing capacity

机译:多功能磁流变塑性体,具有3D可打印性,可切换的力学,形状记忆和自修复能力

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摘要

The rapid advancement in soft actuators imposes an emergent requirement for soft stimuli-sensitive materials that are deformable and stiffness variable and show designability and adaptivity. Soft actuators based on magneto-sensitive materials with outstanding magnetic-control performance are highly desirable in research. In this paper, we developed a versatile magnetorheological plastomer (MRP) based on polycaprolactone (PCL)/ thermoplastic polyurethane (TPU) polymer blends. The MRP showed 3D printability, switchable mechanics, shape memory, and self-healing properties. The thermoplasticity of the matrix enables fused deposition modeling 31) printing, which affords the MRP excellent shape designability. By taking advantage of the phase transition and magnetorheological effect, the dramatic switchable mechanical properties of MRP can be triggered by thermal stimulus and magnetic field. The influences of matrix, particle content, temperature and magnetic field on the mechanical properties were discussed comprehensively, and possible physical mechanisms were proposed so that the result can be qualitatively explained. Based on hybrid crystalline and amorphous regions of PCL and TPU, the MRP exhibited superior shape memory and self-healing properties. This work may play an important role in the future development of multifunctional magneto-sensitive material and promote the application of soft actuators in the fields of soft robotics, medical care, and bionics applications.
机译:软致动器的快速发展对可变形且刚度可变并显示出可设计性和适应性的软刺激敏感材料提出了新的要求。在研究中非常需要基于具有磁控制性能的磁敏材料的软执行器。在本文中,我们开发了一种基于聚己内酯(PCL)/热塑性聚氨酯(TPU)聚合物共混物的通用磁流变塑性体(MRP)。 MRP具有3D可打印性,可切换的力学,形状记忆和自我修复特性。基质的热塑性可实现熔融沉积建模31)印刷,从而为MRP提供出色的形状设计性。通过利用相变和磁​​流变效应,可以通过热刺激和磁场来触发MRP惊人的可切换机械性能。全面讨论了基体,颗粒含量,温度和磁场对机械性能的影响,并提出了可能的物理机理,从而可以定性地解释结果。基于PCL和TPU的混合晶体和非晶区域,MRP表现出优异的形状记忆和自我修复特性。这项工作可能在多功能磁敏材料的未来开发中发挥重要作用,并促进软致动器在软机器人,医疗保健和仿生学领域的应用。

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