Optimization of Selective Laser Sintering Three-Dimensional Printing of Thermoplastic Polyurethane Elastomer: A Statistical Approach

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2023-08-08 DOI:10.3390/jmmp7040144
Md Mahfuzur Rahman, Kazi Arman Ahmed, Mehrab Karim, Jakir Hassan, Rakesh Roy, Bayazid Bustami, S. Alam, Hammad Younes
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Abstract

This research addresses the challenge of determining the optimal parameters for the selective laser sintering (SLS) process using thermoplastic polyurethane elastomer (TPU) flexa black powder to achieve high-quality SLS parts. This study focuses on two key printing process parameters, namely layer thickness and the laser power ratio, and evaluates their impact on four output responses: density, hardness, modulus of elasticity, and time required to produce the parts. The primary impacts and correlations of the input factors on the output responses are evaluated using response surface methodology (RSM). A particular response optimizer is used to find the optimal settings of input variables. Additionally, the rationality of the model is verified through an analysis of variance (ANOVA). The research identifies the optimal combination of process parameters as follows: a 0.11 mm layer thickness and a 1.00 laser power ratio. The corresponding predicted values of the four responses are 152.63 min, 96.96 Shore-A, 2.09 MPa, and 1.12 g/cm3 for printing time, hardness, modulus of elasticity, and density, respectively. These responses demonstrate a compatibility of 66.70% with the objective function. An experimental validation of the predicted values was conducted and the actual values obtained for printing time, hardness, modulus of elasticity, and density at the predicted input process parameters are 159.837 min, 100 Shore-A, 2.17 MPa, and 1.153 g/cm3, respectively. The errors between the predicted and experimental values for each response (time, hardness, modulus of elasticity, and density) were found to be 4.51%, 3.04%, 3.69%, and 2.69%, respectively. These errors are all below 5%, indicating the adequacy of the model. This study also comprehensively describes the influence of process parameters on the responses, which can be helpful for researchers and industry practitioners in setting process parameters of similar SLS operations.
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热塑性聚氨酯弹性体选择性激光烧结三维打印优化:统计学方法
本研究解决了使用热塑性聚氨酯弹性体(TPU) flexa黑粉进行选择性激光烧结(SLS)工艺的最佳参数确定的挑战,以获得高质量的SLS零件。本研究主要关注两个关键的打印工艺参数,即层厚度和激光功率比,并评估它们对四个输出响应的影响:密度、硬度、弹性模量和生产零件所需的时间。利用响应面法(RSM)评估了输入因素对输出响应的主要影响和相关性。使用特定的响应优化器来找到输入变量的最佳设置。此外,通过方差分析(ANOVA)验证了模型的合理性。研究确定了工艺参数的最佳组合为:0.11 mm的层厚和1.00的激光功率比。打印时间、硬度、弹性模量和密度的预测值分别为152.63 min、96.96 Shore-A、2.09 MPa和1.12 g/cm3。这些反应与目标函数的相容性为66.70%。对预测值进行了实验验证,在预测输入工艺参数下,打印时间、硬度、弹性模量和密度的实际值分别为159.837 min、100 Shore-A、2.17 MPa和1.153 g/cm3。各响应(时间、硬度、弹性模量和密度)的预测值与实验值的误差分别为4.51%、3.04%、3.69%和2.69%。这些误差都在5%以下,说明模型的充分性。本研究还全面描述了工艺参数对反应的影响,可以为研究人员和行业从业者设置类似SLS操作的工艺参数提供帮助。
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
期刊最新文献
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