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Development of an Electrodynamic Actuator for an Automatic Modal Impulse Hammer

机译:用于自动模态脉冲锤的电动执行器的开发

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In Experimental Dynamic Substructuring, automatic modal impulse hammers have been shown to be a very useful tool. The Automatic Modal Impulse Hammer AMimpact (described in an earlier publication (Maierhofer et al, Development of a low cost automatic modal hammer for applications in substructuring. In: Conference proceedings of the society for experimental mechanics series. Springer International Publishing, June 2019, pp 77-86. https://doi.org/10.1007/978-3-030-12184-6_9)) developed at the Chair of Applied Mechanics (TUM) uses an electromagnetic actuator with the principle of reluctance forces. This has some disadvantages regarding the power density, and therefore makes it difficult to render the automatic hammer compact. Also, the force is very nonlinear with respect to the position of the piston. This results in quite some effort in positioning the impulse hammer at the right distance from the object. This contribution shows the process of developing a new electromagnetic actuator in combination with a permanent magnet. The physical principle is now based on the Lorentz forces. The goal is to find a configuration with minimal packaging and a sufficiently adjustable impulse peak. Using a modern 3D-FEM approach, the multiphysical system is simulated and optimized. A special control strategy is developed to overcome the disadvantage of unknown distance to the structure. Therefore, a hall sensor is used to monitor the actual position of the hammer. The system is built, then experimentally tested on an academic benchmark system. Furthermore, test series were carried out to prove repeatability.
机译:在实验性动态子结构中,已显示自动模态脉冲锤是一个非常有用的工具。自动模态脉冲锤子ammmpact(在先前的出版物中描述(Maierhofer等,用于在子结构中的应用程序的低成本自动模锤的开发。在:实验力学系列社会的会议程序。Springer International Publishing,2019年6月,PP 77-86。HTTPS://Do.org/10.1007/978-3-030-12184-6_030-12184-6_0-6))在应用力学椅子上开发(TUM)使用电磁执行器具有磁阻原理。这对功率密度具有一些缺点,因此难以使自动锤紧凑。而且,相对于活塞的位置,力是非常非线性的。这导致在与物体的正确距离处定位脉冲锤的一定努力。该贡献显示了开发新型电磁执行器与永磁体组合开发新的电磁致动器的过程。物理原则现在基于洛伦兹力量。目标是找到具有最小包装和足够可调节的脉冲峰的配置。使用现代的3D-FEM方法,模拟和优化多职业系统。开发了一种特殊的控制策略来克服距离结构未知距离的缺点。因此,霍尔传感器用于监测锤子的实际位置。系统建成,然后在学术基准系统上进行实验测试。此外,进行了测试系列以证明重复性。

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