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首页> 外文期刊>Journal of Manufacturing Processes >A combined wavelet packet and Hilbert-Huang transform for defect detection and modelling of weld strength in friction stir welding process
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A combined wavelet packet and Hilbert-Huang transform for defect detection and modelling of weld strength in friction stir welding process

机译:小波包和Hilbert-Huang变换相结合的搅拌摩擦焊过程中缺陷检测和焊接强度建模

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摘要

The objectives of the current research work is two folded. First, to develop effective methodology for identification of internal defects in friction stir welded samples. Identification of tunnel type of defect is attempted through the analyses of real-time force signals and analyzing the signals with a proposed combination of wavelet packet transform with Hilbert-Huang transform. The analyses results in two features namely instantaneous phase and instantaneous frequency that efficiently describe the presence of defects in the welded samples. The study presented for tunnel defect can as well be implemented in detection of other types of defects in friction stir welded samples. The second objective of this work is to develop a data driven model for accurate estimation of ultimate tensile strength of the welded samples. For this purpose support vector machine learning based support vector regression model is developed. The model parameters are optimized using the grid search method to control the overfitting during training of the model. The accuracy of the developed model leads to the impression that it can be further modified for real-time welding operations for accurate modelling of ultimate tensile strength of the joints. (C) 2016 The Society of Manufacturing Engineers. Published by Elsevier Ltd. All rights reserved.
机译:当前研究工作的目标有两个方面。首先,开发有效的方法来识别搅拌摩擦焊接样品中的内部缺陷。通过实时力信号的分析,并尝试将小波包变换与希尔伯特-黄变换相结合,来分析缺陷的隧道类型。分析产生两个特征,即瞬时相位和瞬时频率,可以有效地描述焊接样品中缺陷的存在。提出的有关隧道缺陷的研究也可以用于检测搅拌摩擦焊接样品中的其他类型的缺陷。这项工作的第二个目标是建立一个数据驱动的模型,以准确估算焊接样品的极限抗拉强度。为此,开发了基于支持向量机学习的支持向量回归模型。使用网格搜索方法优化模型参数,以控制模型训练期间的过度拟合。开发模型的准确性给人以为可以对实时焊接操作进行进一步修改以对接头的极限抗拉强度进行精确建模的印象。 (C)2016年制造工程师学会。由Elsevier Ltd.出版。保留所有权利。

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