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Numerical Model and Experimental Validation for Laser Sinterable Semi-Crystalline Polymer: Shrinkage and Warping

机译:激光烧结半结晶聚合物的数值模型和实验验证:收缩和翘曲

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摘要

Shrinkage and warping of additive manufacturing (AM) parts are two critical issues that adversely influence the dimensional accuracy especially in powder bed fusion processes such as selective laser sintering (SLS). Powder fusion, material solidification, and recrystallization are the key stages causing volumetric changes of polymeric materials during the abrupt heating–cooling process. In this work, the mechanisms of shrinkage and warping of semi-crystalline polyamide (PA) 12 in SLS are well investigated. Heat-transfer and thermo-mechanical models are established to predict the process-dependent shrinkage and warping. The influence of raw material- and laser-related parameters are considered in the heat-transfer and thermo-mechanical models. Such models are established considering the natural thermal gradient and dynamic recrystallization, which induce internal strain and volumetric change. Moreover, an experimental design via orthogonal approach is introduced to validate the feasibility and accuracy of the proposed models. Finally, the quantitative relationships of process parameters with product shrinkage and warping are established; the dimensional accuracy in part-scale can be well predicted and validated with printed parts in a real experiment.
机译:增材制造(AM)零件的收缩和翘曲是两个严重影响尺寸精度的关键问题,尤其是在粉末床熔合工艺(例如选择性激光烧结(SLS))中。粉末熔融,材料凝固和重结晶是在突然的加热-冷却过程中引起聚合材料体积变化的关键阶段。在这项工作中,对SLS中半结晶聚酰胺(PA)12的收缩和翘曲的机理进行了深入研究。建立了传热和热机械模型,以预测与过程有关的收缩和翘曲。在传热和热机械模型中考虑了原材料和激光相关参数的影响。建立此类模型时要考虑自然热梯度和动态再结晶,它们会引起内部应变和体积变化。此外,通过正交方法进行了实验设计,以验证所提出模型的可行性和准确性。最后,建立了工艺参数与产品收缩和翘曲的定量关系。可以在实际实验中使用印刷零件很好地预测和验证零件尺寸的尺寸精度。

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