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Improving Impact Strength in FSW of Polymeric Nanocomposites Using Stepwise Tool Design

机译:使用逐步刀具设计改善聚合物纳米复合材料的FSW中的冲击强度

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In recent years, many studies have been conducted on process parameters of polymers friction stir welding, while material parameters are still facing serious problems especially in polymeric nanocomposites. In the present study, the impact behavior of friction stir-welded polycarbonate (PC) nanocomposites under different material and process conditions has been investigated using Taguchi approach. A stepwise tool design procedure has been carried out to enhance the welding process. The samples containing various weight percentages of alumina nanoparticles have been welded under different welding process parameters. The analysis of variance results illustrated that nanoalumina content is the most effective parameter on impact strength followed by rotational and transverse speeds. Impact strength of welded samples was conspicuously improved up to 15% by adding 2 wt% of nanoalumina compared with pure PC samples. Also increasing rotational speed and decreasing transverse speed leads to increase of impact strength. In order to optimize the process, signal-to-noise ratio analysis was performed. The results indicated that the optimum levels of input parameters that give the maximum impact strength are as following: 2 wt% of nanoalumina, 2500 rpm of rotational speed, and 8 mm/min of transverse speed which causes 26.14% improvement in impact strength of samples.
机译:近年来,在聚合物摩擦搅拌焊接的工艺参数上进行了许多研究,而材料参数仍然面临着特别是在聚合物纳米复合材料中的严重问题。在本研究中,使用Taguchi方法研究了不同材料下的摩擦搅拌焊接聚碳酸酯(PC)纳米复合材料的冲击性能和工艺条件。已经进行了逐步工具设计程序以增强焊接过程。含有各种重量百分比的氧化铝纳米颗粒的样品已经在不同的焊接过程参数下焊接。方差结果分析说明纳米金氨酸含量是抗冲突力最有效的参数,然后是旋转和横向速度。与纯PC样品相比,通过加入2wt%的纳米金氨酸,焊接样品的冲击强度显着提高了15%。还增加旋转速度和横向速度降低导致冲击强度的增加。为了优化过程,执行信噪比分析。结果表明,给出最大冲击强度的最佳输入参数水平如下:2wt%的纳米铝,转速2500℃,8mm / min的横向速度,导致样品的冲击强度的26.14% 。

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