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ADDITIVE MANUFACTURING OF POLYMER NANOCOMPOSITES WITH IN-SITU STRAIN SENSING CAPABILITY

机译:具有原位应变能力的聚合物纳米复合材料的增材制造

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This paper presents the additive manufacturing of electrically conductive polydimethylsiloxane (PDMS) nanocomposites for in-situ strain sensing applications. A straight line of pristine PDMS was first 3D printed on a thin PDMS substrate using an in-house modified 3D printer. Carbon nanotubes (CNTs) were uniformly sprayed on top of uncured PDMS lines. An additional layer of PDMS was then applied on top of CNTs to form a thin protective coating. The 3D printed PDMS/CNT nanocomposites were characterized using a scanning electron microscope (SEM) to validate the thickness, CNT distribution, and microstructural features of the sensor cross-section. The strain sensing capability of the nanocomposites was investigated under tensile cyclic loading at different strain rates and maximum strains. Sensing experiments indicate that under cyclic loading, the changes in piezo resistivity mimic, both, the changes in the applied load and the measured material strain with high fidelity. Due to the high flexibility of PDMS, the 3D printed sensors have potential applications in real-time load sensing and structural health monitoring of complex flexible structures.
机译:本文介绍了用于原位应变传感应用的导电聚二甲基硅氧烷(PDMS)纳米复合材料的增材制造。首先使用内部改良的3D打印机将原始PDMS的直线3D打印在薄的PDMS基板上。将碳纳米管(CNT)均匀喷涂在未固化的PDMS管线上。然后将另外的PDMS层施加到CNT的顶部,以形成薄的保护涂层。使用扫描电子显微镜(SEM)对3D打印的PDMS / CNT纳米复合材料进行表征,以验证传感器横截面的厚度,CNT分布和微观结构特征。在不同的应变速率和最大应变下,在拉伸循环载荷下研究了纳米复合材料的应变传感能力。传感实验表明,在循环载荷下,压电电阻率的变化模仿了所施加载荷的变化以及所测材料应变的高保真度。由于PDMS具有高度的灵活性,因此3D打印传感器在复杂的柔性结构的实时载荷感测和结构健康状况监视中具有潜在的应用。

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