Optimization of Process Parameters to Minimize the Surface Roughness of Abrasive Water Jet Machined Jute/Epoxy Composites for Different Fiber Inclinations

IF 3 Q2 MATERIALS SCIENCE, COMPOSITES
B. R. N. Murthy, Emad Makki, S. Potti, Anupama Hiremath, G. Bolar, J. Giri, T. Sathish
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Abstract

Composites materials like jute/epoxy exhibit high hardness and are considered as difficult-to-machine materials. As a result, alternatives to conventional machining become essential to post-process the composites. Accordingly, due to its non-thermal nature, abrasive water jet machining has recently come to be seen as one of the most promising machining methods for composite materials. In the current study, the impact of machining parameters such as traverse speed (TS), standoff distance (SOD) and abrasive mass flow rate (MFR) on machined surface roughness (Ra) has been investigated. In addition, the optimum combination of process parameters to machine a jute fiber-reinforced polymer composite with minimum Ra is predicted. The experimental results are analyzed using Taguchi and Response Surface Methodology (RSM) approaches to determine the optimum set of process parameters to achieve the lowest roughness values. Without making any changes in the machining conditions, the optimum set of values is determined for two conditions by reinforcing the fiber with 45° inclination and 90° inclination. The results reflect the different optimum combinations for each fiber inclination. For 45° fiber inclination, to achieve the minimum Ra value, the predicted combination is TS = 30 mm/min, SOD = 2 mm and MFR = 0.35 kg/min. When the fiber inclination is 90°, the predicted optimum combination is TS = 25 mm/min, SOD = 2 mm, and MFR = 0.35 kg/min. It is evident from the results that the optimum combination will be changed according to the machining conditions as well as material properties. The results confirm the effect of fiber orientation on surface roughness. The specimen with 45° fiber inclination produces a lower Ra with an average of 4.116 µm, and the specimen with 90° fiber inclination generates a higher Ra with an average of 4.961 µm.
优化工艺参数以最小化不同纤维倾角下加砂水射流加工黄麻/环氧树脂复合材料的表面粗糙度
黄麻/环氧树脂等复合材料具有高硬度,被认为是难以加工的材料。因此,替代传统机械加工对复合材料后处理至关重要。因此,由于磨料水射流的非热特性,磨料水射流加工近年来被视为复合材料最有前途的加工方法之一。研究了横移速度(TS)、间隙距离(SOD)和磨料质量流量(MFR)等加工参数对加工表面粗糙度(Ra)的影响。此外,还预测了制备Ra最小的黄麻纤维增强聚合物复合材料的最佳工艺参数组合。采用田口法和响应面法(RSM)对实验结果进行了分析,以确定获得最低粗糙度值的最佳工艺参数集。在不改变加工条件的情况下,对倾角为45°和90°的纤维进行增强,确定了两种条件下的最优值集。结果反映了不同纤维倾角下的最佳组合。当纤维倾角为45°时,为获得最小Ra值,预测的组合为TS = 30 mm/min, SOD = 2 mm, MFR = 0.35 kg/min。当纤维倾角为90°时,预测最佳组合为TS = 25 mm/min, SOD = 2 mm, MFR = 0.35 kg/min。结果表明,根据加工条件和材料性能的不同,最佳组合会发生变化。结果证实了纤维取向对表面粗糙度的影响。当纤维倾角为45°时,Ra值较低,平均为4.116µm;当纤维倾角为90°时,Ra值较高,平均为4.961µm。
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来源期刊
Journal of Composites Science
Journal of Composites Science MATERIALS SCIENCE, COMPOSITES-
CiteScore
5.00
自引率
9.10%
发文量
328
审稿时长
11 weeks
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