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Multi-body dynamic modelling and simulation of the torsional vibration system of converters based on rigid-flexible coupling

机译:基于刚柔耦合的变矩器扭转振动系统多体动力学建模与仿真

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This study aimed to examine the dynamic response of large converters to the braking process. Based on the rigid-flexible coupling theory of the multi-body dynamics, and by adopting the finite element method and multi-body dynamics software Recurdyn, this work constructed a variety of rigid-flexible coupling dynamic models of converter transmission systems. With torsional vibration of the converter furnace during braking as the object of analysis, this research studied the pattern of the impact of speed change of driving motors, braking time, and rotational damping of the system on the torsional vibration characteristics of converters during the braking process. Comparison of the simulation results indicated that the rigid-flexible coupling mode had a greater impact on the simulation results and simulation efficiency. In particular, the analysis model using elastic units in the coupling between rigid and flexible bodies could effectively simulate the torsional and vibrational response of the converter braking process. Dynamic simulation results showed that increasing the braking time and rotational damping of the driving motor could effectively reduce the torsional vibration of the furnace under certain conditions. Within the same braking time, the maximum value and the continuity of the driving motor acceleration had the greatest impact on the torsional vibration amplitude of the furnace, and optimal control of furnace torsional vibration could be achieved when the acceleration was a second-order curve.
机译:这项研究旨在检查大型变频器对制动过程的动态响应。基于多体动力学的刚柔耦合理论,并采用有限元方法和多体动力学软件Recurdyn,构建了变矩器传动系统的各种刚柔耦合动力学模型。以转炉窑在制动过程中的扭转振动为分析对象,研究了驱动电动机的速度变化,制动时间和系统的旋转阻尼对制动过程中转炉扭转振动特性的影响规律。 。仿真结果的比较表明,刚柔耦合方式对仿真结果和仿真效率的影响更大。特别是,在刚体和挠性体之间的耦合中使用弹性单元的分析模型可以有效地模拟转炉制动过程的扭转和振动响应。动态仿真结果表明,在一定条件下,增加制动时间和驱动电机的旋转阻尼可以有效降低炉膛的扭转振动。在相同的制动时间内,驱动电动机加速度的最大值和连续性对炉子的扭转振动幅度影响最大,当加速度为二阶曲线时,可以实现对炉子扭转振动的最佳控制。

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