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Fuzzy rule based predictive model for cutting force in turning of reinforced PEEK composite

机译:基于模糊规则的增强PEEK复合材料车削切削力预测模型。

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Carbon fiber reinforced plastics have gained large interest among the community of composites manufactures and consumers due to their excellent adaptability to various industrial applications. In particular, there exists a demand for optimizing machining conditions of mechanical parts made from poly ether ether ketone reinforced with 30percent of carbon fiber when using TiN coated cutting tools. In this work, predictive models that describe the relationship between the independent machining variables: cutting speed, feed rate and depth of cut, and the criteria of machinability: cutting force, cutting power and specific cutting pressure were derived. This was achieved by using either classical response surface regression technique or by implementing fuzzy logic models which are based on the compositional rule of inference that establish a parametric relation between a given response and the independent input variables. Effectiveness of these models has been proved by analyzing their coefficients of correlation and by comparing predictions they give with experimental results.
机译:碳纤维增强塑料因其对各种工业应用的出色适应性而在复合材料制造商和消费者中引起了广泛兴趣。尤其是,当使用TiN涂层切削刀具时,需要优化由用30%碳纤维增强的聚醚醚酮制成的机械零件的加工条件。在这项工作中,得出了描述独立加工变量之间的关系的预测模型:切削速度,进给速度和切削深度,以及可加工性标准:切削力,切削能力和比切削压力。这是通过使用经典的响应曲面回归技术或通过实施基于推理组成规则的模糊逻辑模型实现的,该模型在给定响应和独立输入变量之间建立了参数关系。通过分析它们的相关系数,并将它们给出的预测结果与实验结果进行比较,可以证明这些模型的有效性。

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