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基于3D打印纳米复合材料的复杂几何应变传感器:弹簧、三柱装置和脚步传感平台。

Complex Geometry Strain Sensors Based on 3D Printed Nanocomposites: Spring, Three-Column Device and Footstep-Sensing Platform.

作者信息

Cortés Alejandro, Sánchez-Romate Xoan F, Jiménez-Suárez Alberto, Campo Mónica, Esmaeili Ali, Sbarufatti Claudio, Ureña Alejandro, Prolongo Silvia G

机构信息

Materials Science and Engineering Area, Escuela Superior de Ciencias Experimentales y Tecnología, Universidad Rey Juan Carlos, C/Tulipán s/n, 28933 Móstoles, Madrid, Spain.

Department of Mechanical Engineering, Politecnico di Milano, 20156 Milan, Italy.

出版信息

Nanomaterials (Basel). 2021 Apr 25;11(5):1106. doi: 10.3390/nano11051106.

Abstract

Electromechanical sensing devices, based on resins doped with carbon nanotubes, were developed by digital light processing (DLP) 3D printing technology in order to increase design freedom and identify new future and innovative applications. The analysis of electromechanical properties was carried out on specific sensors manufactured by DLP 3D printing technology with complex geometries: a spring, a three-column device and a footstep-sensing platform based on the three-column device. All of them show a great sensitivity of the measured electrical resistance to the applied load and high cyclic reproducibility, demonstrating their versatility and applicability to be implemented in numerous items in our daily lives or in industrial devices. Different types of carbon nanotubes-single-walled, double-walled and multi-walled CNTs (SWCNTs, DWCNTs, MWCNTs)-were used to evaluate the effect of their morphology on electrical and electromechanical performance. SWCNT- and DWCNT-doped nanocomposites presented a higher T compared with MWCNT-doped nanocomposites due to a lower UV light shielding effect. This phenomenon also justifies the decrease of nanocomposite T with the increase of CNT content in every case. The electromechanical analysis reveals that SWCNT- and DWCNT-doped nanocomposites show a higher electromechanical performance than nanocomposites doped with MWCNTs, with a slight increment of strain sensitivity in tensile conditions, but also a significant strain sensitivity gain at bending conditions.

摘要

基于掺杂碳纳米管的树脂的机电传感装置,是通过数字光处理(DLP)3D打印技术开发的,以增加设计自由度并确定新的未来创新应用。对采用DLP 3D打印技术制造的具有复杂几何形状的特定传感器进行了机电性能分析:一个弹簧、一个三柱装置以及一个基于三柱装置的脚步传感平台。所有这些传感器都显示出所测电阻对施加负载具有很高的灵敏度以及高循环再现性,证明了它们在我们日常生活中的众多物品或工业设备中的通用性和适用性。使用了不同类型的碳纳米管——单壁、双壁和多壁碳纳米管(SWCNT、DWCNT、MWCNT)——来评估它们的形态对电学和机电性能的影响。由于较低的紫外线屏蔽效应,与MWCNT掺杂的纳米复合材料相比,SWCNT和DWCNT掺杂的纳米复合材料呈现出更高的T。这种现象也解释了在每种情况下纳米复合材料的T随着CNT含量增加而降低的原因。机电分析表明,SWCNT和DWCNT掺杂的纳米复合材料比MWCNT掺杂的纳米复合材料表现出更高的机电性能,在拉伸条件下应变灵敏度略有增加,而在弯曲条件下应变灵敏度显著提高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a38/8146940/24aec32960b0/nanomaterials-11-01106-g001.jpg

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