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Impact force identification by using modal transformation method for automobile test Rig

机译:基于模态变换方法的汽车试验台冲击力识别

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摘要

In the automobile industry, impact force is the main cause for material fatigue in lightweight vehicles. Bump-excited impact force is the most common case, which causes damage to vehicles and reduces the quality of the ride. Force identification is important to reflect the structure's health so that action such as structure modification can be taken before material fatigue. However, direct measurement by using force transducer is not practical due to difficulty in force sensor configuration. A methodology utilizing Operating Deflection Shape (ODS) analysis, Frequency Response Function (FRF) measurement and Modal Transformation Method (MTM) to evaluate the dynamic force is proposed here. This method is called indirect force measurement by using inverse technique. The performance of this approach was demonstrated via experiment. From the measured responses and measured dynamic characteristics of an automobile test rig, a real time mathematical manipulation can generate the system's input force. The force location is known in priori for impact excitation and therefore the inverse problem is well-posed. This method was tested using different force location with unique input force. It shows that high quality of curve fitting to extract the modal parameters such as damped natural frequency, modal damping and residue mode shape is essential to obtain a high accuracy force determination © (2014) Trans Tech Publications, Switzerland.
机译:在汽车工业中,冲击力是导致轻型车辆材料疲劳的主要原因。颠簸激发的冲击力是最常见的情况,它会损坏车辆并降低行驶质量。力识别对于反映结构的健康状况很重要,因此可以在材料疲劳之前采取诸如结构修改之类的措施。然而,由于力传感器配置的困难,使用力传感器直接测量是不实际的。本文提出了一种利用工作挠度形状(ODS)分析,频率响应函数(FRF)测量和模态变换方法(MTM)来评估动力的方法。这种方法称为通过逆技术进行间接力测量。通过实验证明了该方法的性能。根据汽车测试台的测量响应和测量动态特性,实时数学运算可以生成系统的输入力。对于冲击激发,力的位置在先验中是已知的,因此反问题是恰当的。使用具有唯一输入力的不同力位置测试了该方法。它显示出高质量的曲线拟合以提取模态参数(如阻尼固有频率,模态阻尼和残差模态形状)对于获得高精度的力确定至关重要。©(2014)Trans Tech Publications,Switzerland。

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