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首页> 外文期刊>European Polymer Journal >3D printing of multifunctional materials for sensing and actuation: Merging piezoelectricity with shape memory
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3D printing of multifunctional materials for sensing and actuation: Merging piezoelectricity with shape memory

机译:用于传感和致动的多功能材料的3D印刷:用形状记忆合并压电性

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摘要

Multifunctional materials play a vital role in attaining adaptability, autonomy and many such benefits with no added material cost and weight. However, even today multifunctional structures entail more than one material to obtain combined sensing and actuation, resulting in incompatibility during fabrication as well as service. In this study, a single material that changes its shape with temperature and simultaneously measures the extent of this deformation is designed, making it a viable solution to remotely monitor actuators or change the orientations of sensors, for example in pipelines, space, or the human body. To realize this combination of properties, a composite made from shape-memory polymers - PLA and PEA, and piezoelectric barium titanate nanoparticles is developed and investigated. We explore the possibilities to tune our actuation temperatures from 100 degrees C down to body temperatures, and present a robust sensor capable of withstanding temperatures ranging from 23 degrees C to 100 degrees C, and to over 5000 operation cycles. We use direct-write 3D printing to form different shapes from this multifunctional material. This shape-memory composite has a recovery rate of similar to 98% and the sensor has a linear response in the force range of 0.1 - 1 N. Our material with presented improvements towards 4D printing offers applications in electroactive scaffolds, artificial organs for surgical training as well as adaptive electronics.
机译:多功能材料在实现适应性,自主性和许多这种益处中起着至关重要的作用,没有添加的材料成本和重量。然而,即使是今天的多功能结构也需要多个材料来获得组合的感测和致动,从而在制造期间以及服务期间不相容。在这项研究中,设计了一种改变其形状的单个材料,并同时测量这种变形的程度,使其成为远程监测致动器或改变传感器方向的可行解决方案,例如管道,空间或人身体。为了实现这种性能的组合,开发并研究了由形状记忆聚合物 - PLA和豌豆制成的复合材料和压电钡纳米粒子。我们探讨将致动温度从100摄氏度降至身体温度的可能性,并呈现能够承受从23摄氏度至100摄氏度的温度和超过5000个操作循环的强大传感器。我们使用直接写入3D打印来形成来自该多功能材料的不同形状。该形状存储器复合材料具有类似于98%的回收率,并且传感器在0.1-1 n的力范围内具有线性响应。我们的材料具有展示的4D印刷的改进,提供了电活性支架,人工器官用于外科手术训练的应用以及自适应电子设备。

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