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Predicting model of thickness distribution and rolling force in angular rolling process based on influence function method

机译:基于影响功能法的角度轧制过程中厚度分布与轧制力的预测模型

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摘要

As a special rolling method, angular rolling can meet various gauge demands of customized production. Due to the asymmetry of angular rolling, the rolling forces on the two sides of the roll system are different and the thickness distribution of the plate will be complex. To accurately obtain the thickness distribution and predict the rolling force during the angular rolling process, a mathematical model based on the influence function method is developed. An experiment is also adopted to validate the results of the rolling force. The results show that the change in the total rolling force comprises three stages: increasing, stable, and decreasing. During most of the rolling time, the rolling forces on the two sides of the mill are different. Then the predicted results of the rolling force are validated by experiment. After the first pass of angular rolling, a serious wedge appears at the head and tail ends of the plate. But when the angular rolling is finished, the wedge has almost disappeared. Considering the short calculation time, this model can be applied in the actual production process for making effective shape control strategies and flexible rolling schedules to meet various gauge demands of customized production.
机译:作为一种特殊的轧制方法,角滚动可以满足定制生产的各种量表需求。由于角滚动的不对称,辊系统的两侧上的滚动力是不同的,并且板的厚度分布将复杂。为了在角度轧制过程中精确地获得厚度分布并预测滚动力,开发了一种基于影响功能方法的数学模型。还采用了实验来验证滚动力的结果。结果表明,总轧制力的变化包括三个阶段:增加,稳定和降低。在大多数滚动时间期间,轧机两侧的滚动力是不同的。然后通过实验验证滚动力的预测结果。在角滚动的第一次通过之后,将在板的头部和尾端出现严重的楔形物。但是当角滚动结束时,楔子几乎消失了。考虑到简短的计算时间,该模型可应用于实际生产过程中,以实现有效的形状控制策略和灵活的滚动计划,以满足定制生产的各种规范需求。

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