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Comparison of RSM with ANFIS in predicting tensile strength of dissimilar friction stir welded AA2024 -AA5083 aluminium alloys

机译:对抗极摩擦搅拌焊接AA2024-A A A AMA5083铝合金拉伸强度的RSM与ANFIS的比较

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摘要

Friction stir welding (FSW) is a solid-state joining technique which has been employed in aerospace, marine, and automotive industries for joining aluminum, copper, titanium and other alloys. The FSW process parameters such as welding speed, tool rotational speed, pin profile, and axial force have a main role in determining the joint quality. A comparative study was achieved between the response surface method (RSM) and the adaptive neuro-fuzzy inference system (ANFIS) to improve the mechanical properties of dissimilar friction stir welded AA2024-AA5083 aluminium alloys in terms of the ultimate tensile strength (UTS). The effects of the welding parameters on the UTS were investigated using four-factor, three-level ANFIS model. The statistical results of the ANFIS model were compared with those of RSM. The results reveal that the developed ANFIS model is more powerful than the RSM model.
机译:摩擦搅拌焊接(FSW)是一种固态连接技术,该技术已在航空航天,海洋和汽车工业中采用,用于连接铝,铜,钛和其他合金。 FSW工艺参数,如焊接速度,刀具转速,销轮廓和轴向力在确定关节质量方面具有主要作用。在响应面法(RSM)和自适应神经模糊推理系统(ANFIS)之间实现了比较研究,以改善焊接AA2024-AA5083铝合金的不同摩擦搅拌焊接AA2024-AA5083铝合金的机械性能。使用四因素三级ANFIS模型研究了焊接参数对UTS的影响。将ANFIS模型的统计结果与RSM的统计结果进行了比较。结果表明,发达的ANFIS模型比RSM模型更强大。

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