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Prediction of Thrust Force and Torque in Drilling of Glass Fiber Reinforced Plastic Using Mechanistic Force Model Approach

机译:机械力模型法预测玻璃纤维增​​强塑料的钻孔推力和扭矩

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High strength to weight ratio along with non-corrosive characteristics make glass fiber reinforced plastics (GFRPs) most promising material in aerospace, navel, automobile and construction sector. However its non-homogeneous and anisotropic nature leads to unfavorable hole quality when subjected to drilling. Among all the drilling induced defects delamination has received considerable attention. Delamination of the material at drill entry occurs above critical torque where as it occurs above critical thrust force at drill exit which adversely affect product quality and results into rejection. Paper presents, a mechanistic approach to develop cutting force models to predict thrust force and torque in GFRP drilling. The mechanistic approach exploits different set of fundamentals of the process including speed, feed rate and tool geometry. Tool point angle, diameter and primary cutting edge effects are mainly considered in this model to predict thrust forces and torque for cutting speed and feed rate combinations. Drilling experiments were conducted on unidirectional glass fiber with stacking sequence of (0/90) sheet with carbide drill to study the influence of various combinations of speed and feed on thrust force and torque. Proposed model is validated for the drill point angle, drill diameter and primary cutting edge of drill bit for GFRP drilling over a wide range of machining conditions.
机译:玻璃纤维增​​强塑料(GFRP)具有很高的强度/重量比以及无腐蚀的特性,是航空航天,肚脐,汽车和建筑领域最有希望的材料。然而,其非均匀且各向异性的性质导致在进行钻孔时孔质量不佳。在所有钻孔引起的缺陷分层中,备受关注。钻头入口处的材料分层高于临界扭矩,而钻头入口处的材料高于临界推力时会发生分层,这会对产品质量产生不利影响并导致废品。本文提出了一种用于开发切削力模型以预测GFRP钻孔中的推力和扭矩的机械方法。机械方法利用了过程的不同基础,包括速度,进给速度和刀具几何形状。该模型主要考虑刀尖角度,直径和主要切削刃的影响,以预测切削速度和进给速度组合的推力和扭矩。在单向玻璃纤维上以硬质合金钻头按(0/90)片的堆叠顺序进行了钻探实验,以研究速度和进给的各种组合对推力和扭矩的影响。所提议的模型针对在各种加工条件下进行GFRP钻孔的钻头角度,钻头直径和钻头的主切削刃进行了验证。

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