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Prediction of Laser Hardening by Means of Neural Network

机译:基于神经网络的激光淬火预测

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Laser hardening is a surface treatment process characterized by a high level of performance. The resulting physical, chemical, and mechanical properties of the surface layers can be accurately designed by modifying the process parameters i.e., scanning speed, frequency and laser power. Thus, the development of the laser hardening technology requires considerable preliminary work, including the determination of the range of components that may be hardened, the selection of proper treatment conditions and the identification of optimized strategies to employ such a technology for real industrial components. The present research aimed to provide a deep understanding of the laser hardening process. The effect of process parameters i.e., the laser power, the scan ning speed, the number of scans and the overlapping, has been assessed by means of a campaign of experimental tests. Thus, an attempt to predict the effect of process parameters of treated components was carried out by developing an expert system using a neural network.
机译:激光硬化是一种具有高水平性能的表面处理工艺。可以通过修改工艺参数,即扫描速度,频率和激光功率来精确地设计所得的表面层的物理,化学和机械性能。因此,激光硬化技术的发展需要大量的前期工作,包括确定可能硬化的部件范围,选择合适的处理条件以及确定将这种技术用于实际工业部件的优化策略。本研究旨在提供对激光硬化过程的深刻理解。工艺参数的影响,即激光功率,扫描扫描速度,扫描次数和重叠,已通过一系列实验测试进行了评估。因此,通过使用神经网络开发专家系统,进行了预测被处理部件的工艺参数的效果的尝试。

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