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An in-process laser localized pre-deposition heating approach to inter-layer bond strengthening in extrusion based polymer additive manufacturing

机译:在挤出型聚合物增材制造中进行层间粘结强化的过程中激光局部预沉积加热方法

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Material extrusion-based 3D printing processes have shown importance in the overall development of the field of additive manufacturing and displayed tremendous potential to becoming a cross-cutting tool for research, engineering, developmental work in a wide array of disciplines. In the context of the Fused Deposition Modeling (FDM, one form of Materials extrusion-based 3D printing), one of the main process issues lies in the property anisotropy of parts built using this method, even with process optimization. To address this issue, we report a near-IR laser-based pre-deposition heating method to locally heat up the region of an existing layer near the nozzle before an extrudate comes in contact with the heated region. This in-process approach raises the inter-layer interface temperature to above the critical temperature to increase the interpenetrating diffusion, and therefore the inter-layer bond strength. A 50% increase in the inter-layer bond strength in parts built with this approach is demonstrated. The in-process pre-deposition local heating approach reported here represents an effective means to increase the inter-layer bond strength, and property isotropy of FDM parts. Further, this approach is capable of real-time monitoring and controlling of temperatures at the inter-layer and inter-filament interfaces across the entire volume of a built part, allowing control of the physics of the FDM process to achieve desired mechanical properties. Published by Elsevier Ltd on behalf of The Society of Manufacturing Engineers.
机译:基于材料挤压的3D打印过程在增材制造领域的整体发展中已显示出重要性,并显示出成为跨学科,跨领域的研究,工程和开发工作的巨大潜力。在熔融沉积建模(FDM,一种基于材料挤压的3D打印形式)的背景下,主要工艺问题之一在于即使使用工艺优化,使用这种方法制造的零件的特性各向异性也是如此。为了解决这个问题,我们报告了一种基于近红外激光的预沉积加热方法,可以在挤出物与加热区域接触之前,局部加热喷嘴附近现有层的区域。这种工艺中方法将层间界面温度提高到临界温度以上,以增加互穿扩散,从而增加层间结合强度。使用这种方法制造的零件的层间粘结强度提高了50%。本文报道的过程中预沉积局部加热方法代表了一种提高层间结合强度和FDM零件性能各向同性的有效手段。此外,这种方法能够实时监视和控制整个已构建零件整个体积中的层间和丝间界面处的温度,从而可以控制FDM工艺的物理过程,以实现所需的机械性能。由Elsevier Ltd代表制造工程师协会出版。

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