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Real-Time Prediction of Geometrical Distortions of Hot-Rolled Steel Rings during Cooling

机译:冷却过程中热轧钢环几何变形的实时预测

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The paper deals with the application of neural network modelling to the real-time prediction of the geometrical distortion of hot rolled steel rings during cooling from rolling to room temperature. The neural network model was designed and developed to be part of a new modular system for the in-line monitoring and real-time control of the geometrical quality of rings, even those with a complex profile, during hot and warm ring rolling operations. The data utilised to train the neural network were generated by numerical simulations of the cooling phase. In order to do these simulations, an FE model capable of coupling thermal, mechanical and metalllurgical events was accurately calibrated. The proposed model was then applied to an industrial case that is described in the paper.
机译:本文将神经网络建模应用于热轧钢环从轧制到室温冷却期间的几何变形的实时预测中。设计和开发了神经网络模型,将其作为新的模块化系统的一部分,以便在热轧和热轧过程中在线监测和实时控制环的几何质量,即使是轮廓复杂的环。用于训练神经网络的数据是通过冷却阶段的数值模拟生成的。为了进行这些模拟,精确地校准了能够耦合热,机械和冶金事件的有限元模型。然后将提出的模型应用于本文所述的工业案例。

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