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Physico-Mechanical and Tribological Properties of Nanoclay Filled Friction Composite Materials Using Taguchi Design of Experiment Approach

机译:纳米粘土填充摩擦复合材料的物理 - 机械和摩擦学特性使用TAGUCHI设计实验方法

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In this article, nanoclay filled organic-inorganic fiber reinforced brake friction composites are designed, fabricated by compression molding and then investigated their physical, chemical, mechanical, and tribological properties. It is observed that density of the composites increased due to incorporation of inorganic contents (nanoclay/lapinus), which are quite heavier than organic contents (Kevlar/graphite) in the composites. Similarly, as far as mechanical properties are concerned the hardness, tensile strength, and flexural strength of the composites increased with the decrease in the nanoclay/lapinus fiber content but at the same time the organic contents, that is, both Kevlar fiber and graphite content are in the increased order of proportionality. Finally, Taguchi design of experiment technique (L-16 orthogonal array design) is implemented to evaluate the optimal factor settings simultaneously wear loss of the brake friction composites. In this experimental analysis, four input control factors have been taken such as composition, load, Speed, and distance at four levels each to obtain the wear rate and coefficient of friction of the fiber reinforced brake friction composites. The overall mean for the signal-to-noise (S/N) ratio of the coefficient of friction and wear rate of the brake friction composites is found to be -29.20 and 96.72 db, respectively. At the end, a confirmation experiment is conducted between the experimental result and predicted theoretical result in order to validate the experimental result. (C) 2016 Society of Plastics Engineers
机译:在本文中,设计了纳米铬填充有机 - 无机纤维增强制动摩擦复合材料,通过压缩成型制造,然后研究了它们的物理,化学,机械和摩擦学特性。观察到,由于掺入了无机内容物(纳米粘土/拉帕嘌呤)的掺入,复合材料的密度增加,这比复合材料中的有机含量(Kevlar /石墨)更重。类似地,只要机械性能涉及复合材料的硬度,拉伸强度和抗弯强度随着纳米粘土/拉帕诺纤维含量的降低而增加,而是同时的有机含量,即Kevlar纤维和石墨含量处于增加的比例顺序。最后,实现了实验技术(L-16正交阵列设计)的Taguchi设计以评估制动摩擦复合材料的同时磨损的最佳因子设置。在该实验分析中,已经进行了四个输入控制因子,例如组成,负载,速度和四个距离,每个距离各自以获得纤维增强制动摩擦复合材料的磨损率和摩擦系数。将制动摩擦复合材料的摩擦系数和磨损率的信号对噪声(S / N)比的总体平均值分别为-29.20和96.72dB。最后,在实验结果之间进行确认实验,并预测理论效果以验证实验结果。 (c)2016年塑料工程师协会

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