Al Rashid Ans, Koç Muammer
Division of Sustainable Development, College of Science and Engineering, Hamad Bin Khalifa University, Qatar Foundation, Doha 34110, Qatar.
Faculty of Engineering, University of Karabük, Karabük 78050, Turkey.
Polymers (Basel). 2022 Aug 26;14(17):3482. doi: 10.3390/polym14173482.
The material extrusion additive manufacturing (MEAM) process for polymers seems straightforward. However, several controlled and uncontrolled factors affect the 3D printed product quality, e.g., MEAM process parameters, thermomechanical properties of the material, and part design. Therefore, it is crucial to understand these interlinked factors of part geometry, material properties, and 3D printing (3DP) process parameters to optimize 3D printed product quality. The numerical models and simulation tools can predict the thermomechanical performance of the MEAM process under given input parameters (material, design, and process variables) and reduce the research and development costs significantly. However, the numerical models and tools need further exploration and validation of simulation predictions for their adaptability and reliability. Therefore, in this study, numerical simulations were performed to observe the impact of process parameters on the part quality of MEAM 3D printed components. The two crucial process parameters (i.e., extrusion temperature and layer resolution) were varied while keeping the other process parameters, part geometry (tensile testing coupon), and material properties (acrylonitrile butadiene styrene (ABS)) constant. These two process parameters were sequentially optimized for optimum part quality, first by varying the extrusion temperature and secondly by changing the printing resolution using the optimum printing temperature. The 3DP process quality was evaluated in terms of dimensional accuracy, distortions, and residual stresses. Finally, the specimens were 3D printed under similar process conditions to validate the numerical model predictions.
聚合物的材料挤出增材制造(MEAM)工艺看似简单直接。然而,有几个可控和不可控因素会影响3D打印产品的质量,例如MEAM工艺参数、材料的热机械性能和零件设计。因此,了解零件几何形状、材料性能和3D打印(3DP)工艺参数这些相互关联的因素对于优化3D打印产品质量至关重要。数值模型和模拟工具可以在给定输入参数(材料、设计和工艺变量)下预测MEAM工艺的热机械性能,并显著降低研发成本。然而,数值模型和工具对于其适应性和可靠性的模拟预测还需要进一步探索和验证。因此,在本研究中,进行了数值模拟以观察工艺参数对MEAM 3D打印部件的零件质量的影响。在保持其他工艺参数、零件几何形状(拉伸测试试样)和材料性能(丙烯腈丁二烯苯乙烯(ABS))不变的情况下,改变两个关键工艺参数(即挤出温度和层分辨率)。首先通过改变挤出温度,其次通过使用最佳打印温度改变打印分辨率,依次对这两个工艺参数进行优化以获得最佳零件质量。从尺寸精度、变形和残余应力方面评估3DP工艺质量。最后,在相似工艺条件下对试样进行3D打印以验证数值模型预测。