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Determination of Optimum Process Parameters for Cutting Hole in a Randomly-oriented Glass Fiber Reinforced Epoxy Composite by Milling Process: Maximization of Surface Quality and Cut-hole Strength

机译:铣削法确定无规玻璃纤维增​​强环氧树脂复合材料中切孔的最佳工艺参数:表面质量和切孔强度的最大化

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摘要

The epoxy based randomly-oriented glass fiber reinforced polymer (GFRP) composites are used to construct structures intended to support multi-directional loading. Due to random orientation of the fibers, cutting of high quality hole is a difficult task in such composites. In the present study, a composite with 60% glass and 40% epoxy (by volume fraction) was fabricated by hand lay-up. To begin with, the performance of two machining processes, namely twist-drilling and end-milling, was compared to cut hole in the composite. It was found that the milling performed better than the drilling process. Later, a design of experiments following the response surface methodology was conducted to determine the effect of milling parameters (i.e., feed rate and speed) on the surface quality and cut-hole strength of composite. The results showed that the parameter-response relationship was not straight rather the parametric effects were interactive and complex. Further, the relative value of speed and feed rate was observed to have controlling influence on the process performance. To predict the process performance for a given set of conditions, empirical models were proposed. Finally, the optimal parameters minimizing the surface roughness and maximizing the tensile strength, employing desirability function approach, was carried out so as to provide guidelines to the users.
机译:环氧基无规取向玻璃纤维增​​强聚合物(GFRP)复合材料用于构建旨在支持多方向载荷的结构。由于纤维的随机取向,在这种复合材料中切割高质量的孔是困难的任务。在本研究中,通过手工铺层制造了一种复合材料,其中玻璃含量为60%,环氧含量为40%(按体积分数计)。首先,将两种加工工艺(即麻花钻和立铣)的性能与复合材料上的切孔进行了比较。发现研磨的性能优于钻孔过程。后来,根据响应表面方法进行了实验设计,以确定研磨参数(即进给速度和速度)对复合材料表面质量和切孔强度的影响。结果表明,参数-响应关系不是直的,参数影响是交互的和复杂的。此外,观察到速度和进料速率的相对值对加工性能具有控制影响。为了预测给定条件下的过程性能,提出了经验模型。最后,采用期望函数法,进行了最小化表面粗糙度和最大拉伸强度的最佳参数,以为用户提供指导。

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