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Application of artificial neural network for the prediction of laser cladding process characteristics at Taguchi-based optimized condition

机译:人工神经网络在田口优化条件下激光熔覆过程特性预测中的应用

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摘要

This paper presents an investigation on the optimization of multiple performance characteristics during CO_2 laser cladding process considering clad width and clad depth as performance characteristics. This optimization for multiple quality characteristics has been done using Taguchi's quality loss function. The process model for laser cladding operation using various techniques like artificial neural network (ANN) has rarely been found in the literature review. In the present work, a number of experiments have been performed to establish the interrelationship between process variables and response variables using the back propagation method of ANN. The essential input process parameters are identified as laser power, scan speed of work table, and powder feed rate. Moreover, the analysis of variance is also employed to determine the contribution of each control parameter on clad bead quality. In order to validate the predicted result, an experiment as confirmatory test is carried out at the optimized cladding condition. It is observed that the confirmatory experimental result is showing a good agreement with the predicted one. However, it has been found that the optimum condition of the cladding parameters for multi-performance characteristics varies with the different combinations of weighting factors.
机译:本文以包层宽度和包层深度为性能特征,对优化CO_2激光熔覆过程中多种性能特征进行了研究。使用田口的质量损失函数已经完成了针对多个质量特征的优化。在文献综述中很少发现使用诸如人工神经网络(ANN)之类的各种技术进行激光熔覆操作的过程模型。在目前的工作中,已经进行了许多实验,以使用ANN的反向传播方法建立过程变量和响应变量之间的相互关系。输入的基本工艺参数包括激光功率,工作台扫描速度和送粉速度。此外,方差分析还用于确定每个控制参数对包层磁珠质量的影响。为了验证预测结果,在优化的包层条件下进行了实验作为验证性测试。可以观察到,验证性实验结果与预测结果吻合良好。然而,已经发现,针对多性能特征的包层参数的最佳条件随着加权因子的不同组合而变化。

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