首页> 外文会议>Conference on Sensors and Smart Structures Technologies for Civil, Mechanical, and Aerospace Systems >The Effect of Extrusion Temperature and Cycles on Electrical Resistivity in Carbon Nanofiber-Modified PLA Filament for Multi-Functional Additive Manufacturing
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The Effect of Extrusion Temperature and Cycles on Electrical Resistivity in Carbon Nanofiber-Modified PLA Filament for Multi-Functional Additive Manufacturing

机译:挤出温度和循环次数对多功能增材制造用碳纳米纤维改性的PLA纤维的电阻率的影响

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Multi-functional additive manufacturing is a promising route to achieving exciting new rapid prototyping and in-the-field manufacturing capabilities. Ideally, multi-functionality could be imparted to materials that can be used with existing additive manufacturing hardware with little-to-no modification of the hardware. However, because much of the additive manufacturing hardware currently available is highly sensitive to the properties of the input material, it is important to understand the relationship among the processing/development of the input material, its physical properties, and quality and properties of the additively manufactured part. To that end, this project explores the effects of processing conditions on the electrical properties and printability of nanofiller-modified fused deposition modeling (FDM) filament. Specifically, pulverized polylactic acid (PLA) is dry mixed with carbon nanofibers (CNFs) and extruded through a commercially available single-screw filament extruder. Filament resistivity and diameter are then statistically characterized as a function of extrusion temperature and number of extrusions. Printability is also quantitatively and qualitatively characterized using a commercial FDM printer. Insights developed through this work could be of considerable significance to next-generation additively manufactured piezoresistive-based sensors, actuators, and electrical components.
机译:多功能增材制造是实现令人兴奋的新型快速原型设计和现场制造能力的有希望的途径。理想情况下,多功能性可以赋予可以与现有增材制造硬件一起使用的材料,而硬件几乎不需要修改。但是,由于当前可用的许多增材制造硬件对输入材料的特性高度敏感,因此重要的是了解输入材料的处理/开发,其物理特性以及添加剂的质量和特性之间的关系。制造零件。为此,该项目探讨了加工条件对纳米填料改性的熔融沉积建模(FDM)细丝的电性能和可印刷性的影响。具体而言,将粉碎的聚乳酸(PLA)与碳纳米纤维(CNF)进行干混,然后通过市售的单螺杆长丝挤出机进行挤出。然后根据挤出温度和挤出次数统计地表征细丝的电阻率和直径。使用商用FDM打印机还可以定量和定性地表征可印刷性。通过这项工作得出的见解对于下一代增材制造的基于压阻的传感器,执行器和电气组件可能具有相当重要的意义。

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