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Taguchi S/N and TOPSIS Based Optimization of Fused Deposition Modelling and Vapor Finishing Process for Manufacturing of ABS Plastic Parts

机译:基于Taguchi S / N和TopSis的融合沉积建模和蒸汽整理工艺的优化用于制造ABS塑料部件

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摘要

Despite several additive manufacturing techniques are commercially available in market, Fused Deposition Modeling (FDM) is increasingly used by researchers and engineers for new product development. FDM is an established process with a plethora of advantages, but the visible surface roughness (SR), being an intrinsic limitation, is major barrier against utilization of fabricated parts for practical applications. In the present study, the chemical finishing method, using vapour of acetone mixed with heated air, is being used. The combined impact of orientation angle, finishing temperature and finishing time has been studied using Taguchi and ANOVA, whereas multi-criteria optimization is performed using the Technique for Order of Preference by Similarity to Ideal Solution (TOPSIS). The surface finish was highly responsive to increase in temperature while orientation angle of 0° yielded maximum strength; increase in finishing time led to weight gain of FDM parts. As the temperature increases, the percentage change in surface roughness increases as higher temperature assists the melt down process. On the other hand, anisotropic behaviour plays a major role during tensile testing. The Signal-to-noise (S/N) ratio plots, and ANOVA results indicated that surface finish is directly proportionate to finishing time because a longer exposure results in complete layer reflowing and settlement.
机译:尽管有几种添加剂制造技术在市场上商业上可用,但研究人员和工程师越来越多地用于新产品开发的融合沉积建模(FDM)。 FDM是具有过多优点的既定过程,但是可见表面粗糙度(SR)是内在的限制,是防止用于实际应用的制造部件的主要屏障。在本研究中,使用使用与加热空气混合的丙酮蒸气的化学精加工方法。使用Taguchi和Anova研究了取向角,精加工温度和精加工时间的组合撞击,而使用该技术进行多标准优化,其使用与理想解决方案(Topsis)相似的优先顺序进行。表面光洁度高响应于温度的增加,同时取向角为0°的最大强度;整理时间的增加导致FDM部件的重量增益。随着温度升高,随着较高温度助击熔体降压,表面粗糙度的百分比变化会增加。另一方面,各向异性行为在拉伸测试期间发挥着重要作用。信号 - 噪声(S / N)比例图和ANOVA结果表明,表面光洁度与整理时间成比例,因为更长的曝光导致完整的层次和沉降。

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