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Temperature Mapping of 3D Printed Polymer Plates: Experimental and Numerical Study

机译:3D打印聚合物板的温度映射:实验和数值研究

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摘要

In Fused Deposition Modeling (FDM), which is a common thermoplastic Additive Manufacturing (AM) method, the polymer model material that is in the form of a flexible filament is heated above its glass transition temperature (Tg) to a semi-molten state in the head’s liquefier. The heated material is extruded in a rastering configuration onto the building platform where it rapidly cools and solidifies with the adjoining material. The heating and rapid cooling cycles of the work materials exhibited during the FDM process provoke non-uniform thermal gradients and cause stress build-up that consequently result in part distortions, dimensional inaccuracy and even possible part fabrication failure. Within the purpose of optimizing the FDM technique by eliminating the presence of such undesirable effects, real-time monitoring is essential for the evaluation and control of the final parts’ quality. The present work investigates the temperature distributions developed during the FDM building process of multilayered thin plates and on this basis a numerical study is also presented. The recordings of temperature changes were achieved by embedding temperature measuring sensors at various locations into the middle-plane of the printed structures. The experimental results, mapping the temperature variations within the samples, were compared to the corresponding ones obtained by finite element modeling, exhibiting good correlation.
机译:在熔融沉积建模(FDM)(这是一种常见的热塑性增材制造(AM)方法)中,将呈柔性长丝形式的聚合物模型材料在其玻璃化转变温度(Tg)以上加热至半熔融状态。头的液化器。加热后的材料以光栅配置被挤出到建筑平台上,在此平台上,加热的材料迅速冷却并与相邻的材料固化。在FDM过程中,工作材料的加热和快速冷却循环会引起不均匀的热梯度,并导致应力累积,从而导致零件变形,尺寸不正确,甚至可能导致零件制造故障。为了通过消除此类不良影响来优化FDM技术,实时监控对于评估和控制最终零件的质量至关重要。本工作调查了多层薄板FDM建造过程中产生的温度分布,并在此基础上进行了数值研究。温度变化的记录是通过将各个位置的温度测量传感器嵌入印刷结构的中间平面来实现的。将绘制样品内温度变化的实验结果与通过有限元建模获得的相应结果进行比较,表现出良好的相关性。

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