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A Test Rig for the Experimental Investigation on the Nonlinear Dynamics in the Presence of Large Contact Interfaces and Numerical Models Validation

机译:用于在大接触接口存在下存在非线性动力学的试验台和数值模型验证

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The simulation of the coupling between components modeled by finite elements (FEs) plays an important role for the prediction of the forced response of the assembly in terms of resonant frequencies, vibration amplitudes, and damping. This is particularly critical when the time-varying stress distribution must be limited for vibrating components with thin thickness coupled with large contacts. Typical examples can be found in aeronautical structures (plates, panels, and bladed disk components) assembled with bolted flanges, riveted lap joints, or joints without hole discontinuities like rail-hook joints, lace wire sealings, and strip dampers. In this paper, a new test rig is introduced for the experimental validation of a reduced-order model (ROM) based on the Gram-Schmidt Interface (GSI) modes applied to a friction contact whose dimensions are not negligible with respect to the size of the substructures. In this case, classical approaches like Craig-Bampton technique might be not effective in reducing the size of the problem when many contact nodes subjected to nonlinear contact loads cannot be omitted. The technique is implemented in a solution scheme in the frequency domain using penalty contact elements and the harmonic balance method. The preload on the joint is produced by permanent magnets to enhance the friction contact without introducing uncertainties due to bolting. Measurements are compared with the ROM simulations and with standard time-domain integration of the full FE model. The advantage of using the GSI technique is shown in terms of time computation and accuracy of the simulation.
机译:由有限元(FES)建模的组件之间的耦合模拟在谐振频率,振动幅度和阻尼方面对组装的强制响应预测来说起着重要作用。当时变应力分布必须限制具有薄厚度的振动组分时,这尤其重要。典型的示例可以在与螺栓凸缘,铆接的搭接接头或没有漏洞接头,蕾丝线密封圈和带状阻尼器等孔不连续的接头组装在螺栓固定法兰,铆接的膝盖接头或接头中的航空结构(板,面板和叶片组件)中。本文基于克施密特接口(GSI)模式,引入了一种新的试验台,用于基于施加到摩擦触点的克施密特接口(GSI)模式,其尺寸与尺寸不可忽略子结构。在这种情况下,当不能省略经受非线性接触载荷的许多接触节点时,CRAIG-BAMPTON技术等经典方法可能无效地降低问题的大小。使用惩罚接触元件和谐波平衡方法在频域中的解决方案中实现该技术。接头上的预载是由永磁体产生的,以增强摩擦接触,而不会引起由于螺栓引起的不确定性。将测量与ROM仿真进行比较,并具有全FE FE模型的标准时域集成。在模拟的时间计算和准确性方面,示出了使用GSI技术的优点。

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