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EFFECTS OF SIZE REDUCTION ON THE FAILURE MECHANISM OF 3D PRINTED PLA+ PARTS

机译:尺寸减小对3D印刷PLA +零件失效机理的影响

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Fused Deposition Modeling (FDM) with Poly (lactic Acid) plus (PLA +) is frequently used in rapid prototyping and 3D printing of complex shapes. Owing to their light weight, manufacturability and cost effectiveness, thermoplastic parts made by FDM are increasingly used in several applications ranging from tissue engineering to consumer goods industry. Understanding the size effects on the strength of these parts is essential to extend their use in the microsystem applications. This paper studies the effect of scale on the mechanical properties and failure mechanisms of a 3D printed parts made by FDM. Process parameter such as extrusion temperature, infill density, infill pattern, print speed, layer thickness and nozzle diameter were kept consistent for this experiment. Five samples each with a square cross-sectional area of side lengths of 2mm, 4mm, 6mm, and 10mm were subjected to a tensile test. It was observed that parts with a smaller cross-sectional area experienced ductile failure as opposed to brittle fracture in larger cross-sectional area. Failure is shown to occur at sections where the geometry changes for brittle fractures while it occurs at the center of the parts displaying ductile failure. Results of the tensile test show a non-uniform ultimate yield strength across the four sizes. Crystallization of the material due to nozzle temperature at extrusion could be a contributing factor to failure discrepancies. Increase in the cycle time is theorized to improve the layer to layer adhesion of the part thereby affecting its mode of failure.
机译:用聚(乳酸)加(PLA +)的融合沉积建模(FDM)经常用于复杂形状的快速原型和3D印刷。由于其重量轻,可制造性和成本效益,FDM制造的热塑性零件越来越多地用于从组织工程到消费品行业的若干应用中。了解对这些部件的强度的大小效应对于扩展它们在微系统应用中的使用至关重要。本文研究了规模对FDM制造的3D印刷部件的机械性能和失效机制的影响。诸如挤出温度,填充密度,填充图案,打印速度,层厚度和喷嘴直径的工艺参数保持一致。每个具有2mm,4mm,6mm和10mm的方形横截面积的平方横截面积的样品进行拉伸试验。观察到具有较小横截面积的部件经历了延性衰竭,而不是较大横截面积的脆性骨折。显示故障发生在脆性骨折的几何形状变化的部分,而当它发生在零件的中心,显示延展性故障。拉伸试验结果显示了四种尺寸的不均匀恒大屈服强度。由于喷嘴温度挤出的材料的结晶可能是故障差异的贡献因素。循环时间的增加是理论化的,以改善层的层粘附,从而影响其失效模式。

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