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Thrust and torque force analysis in the drilling of aramid fibre-reinforced composite laminates using RSM and MLPNN-GA

机译:使用RSM和MLPNN-GA分析芳纶纤维增强复合材料层压板时的推力和扭矩分析

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摘要

Aramid Fibre Reinforced Plastic composites are difficult to be drilled due to anisotropic material properties. Currently, soft computing techniques are used as alternatives to conventional mathematical models, which is robust and can deal with inaccuracy and uncertainty. In this paper, drilling of Aramid Fibre Reinforced Plastics (AFRPs) was carried out using Taguchi L54 experimental layout. Drilling tool used in this experiment was solid carbide. The purpose of this study was to find optimum combination of drilling parameters to obtain minimum thrust and torque force to reduce the delamination. Also, this paper proposed a prediction model of Multilayer Perception Neural Network optimized by Genetic Algorithm (MLPNN-GA). Moreover, RSM technique was used to evaluate the influence of process parameters (spindle speed, feed rate, drill point angle and drill diameter on thrust force and torque. The prediction capability of both RSM and MLPNN-GA was compared with Response optimizer for thrust force and torque. The investigation demonstrated that drill point angle is the primary factor affecting thrust force and drill diameter influences the torque force on the drill bit. Overall, this study recommends the use of high speed and low feed combination and drill point angles of 90°–118° to reduce the delamination of the materials in the drilling of AFRP composites.
机译:由于各向异性的材料特性,芳族聚酰胺纤维增强塑料复合材料很难钻孔。当前,软计算技术被用作传统数学模型的替代方法,该技术健壮并且可以处理不准确性和不确定性。在本文中,使用田口L54实验版图对芳纶纤维增强塑料(AFRP)进行钻孔。本实验中使用的钻孔工具是整体硬质合金。这项研究的目的是找到钻孔参数的最佳组合,以获得最小的推力和扭矩以减少分层。同时,提出了一种基于遗传算法优化的多层感知神经网络的预测模型。此外,利用RSM技术评估了工艺参数(主轴转速,进给速度,钻尖角和钻头直径对推力和扭矩的影响),并将RSM和MLPNN-GA的预测能力与响应优化器对推力的比较研究表明,钻尖角是影响推力的主要因素,钻头直径是影响钻头扭矩的主要因素,总体而言,本研究建议使用高速低进给组合和90°钻尖角–118°减少了AFRP复合材料钻孔时材料的分层。

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