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Experimentally valided approach for the simulation of the forging process using mechanical vibration

机译:机械振动模拟锻造过程的实验验证方法

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摘要

In this study, an experimental setup of a forging process has been designed which allows to apply vibrations to the lower die of amplitude ranging from 0 to 80 ?m at frequencies varying from 1 to 130Hz thanks to the use of a stack piezoelectric actuator fed by an electronic inverter. In order to explore those results, a coupling model has been developed to provide a design tool in a mechatronic frame which consists of an analytical model of the forging process based on simplified visco-plastic laws and a state space model of the piezoelectric actuator based on a finite element approach [1]. The coupling model can be used to analyse the important parameters of the whole process in order to optimize the forging process design using mechanical vibrations or to control the process if necessary. A finite element simulation of forging process using mechanical vibration based on finite element software Forge2008® is also presented in this study. The results obtained by experiment, finite element simulation and simulation using the model above are compared in the case of simple upsetting, with good agreement. Moreover, it can be concluded that high frequencies are not required to observe this phenomenon. Finally visco-plasticity phenomenon is not self-sufficient toexplain completely the force reduction.
机译:在这项研究中,设计了一个锻造工艺的实验装置,由于使用了由压电陶瓷供电的叠层压电致动器,因此可以在频率范围为1至130Hz的情况下将振动施加到振幅范围为0至80 µm的下模。电子逆变器。为了探索这些结果,已经开发了一种耦合模型以在机电一体化框架中提供设计工具,该模型包括基于简化的粘塑性定律的锻造过程分析模型和基于压电模型的压电致动器的状态空间模型。有限元方法[1]。耦合模型可用于分析整个过程的重要参数,以便利用机械振动来优化锻造过程设计或在必要时控制过程。本研究还基于有限元软件Forge2008®进行了机械振动对锻造过程的有限元模拟。在简单up粗的情况下,比较了通过实验,有限元模拟和使用上述模型进行的模拟所获得的结果,具有很好的一致性。而且,可以得出结论,不需要高频率来观察该现象。最后,粘塑性现象不能完全解释力的减小。

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