桥梁颤振导数识别的强迫振动实验系统研究

Forced vibration experimental system for derivative identification of bridge flutter

  • 摘要: 强迫振动法是识别桥梁颤振导数的主要方法之一。提出了四种强迫振动方案,从位移控制精度与实施成本等方面分析了各方案的优缺点;制作了一套适用于大负载条件的三自由度强迫振动试验系统,该系统由强迫振动装置和测试系统组成,要求试验模型长度不大于2.1 m,适用于常规比例桥梁模型的颤振导数识别,还可考虑斜风作用;验证了强迫振动位移的控制精度,以及测力天平与运动位移的同步采集功能,讨论了天平测力时惯性力的消除方法;以一平板模型为例,对颤振导数进行了识别,并将试验识别结果与理论解进行了对比验证。结果表明:较大模型质量下的振动位移误差最大约0.5%,主从轴同步误差最大约0.6%。平板颤振导数识别结果与理论解吻合较好,该试验系统能够较好地实现颤振导数的识别。

     

    Abstract: The forced vibration method is one of the main techniques for identifying bridge flutter derivatives. First, four forced vibration schemes are proposed and compared in terms of displacement control accuracy and implementation cost. A three-degree-of-freedom forced vibration test system suitable for large-load conditions is then developed. This system consists of a forced vibration device and a testing system, with a model length of no more than 2.1 meters, making it suitable for identifying flutter derivatives of conventional scaled bridge models and considering the effect of crosswinds. The accuracy of forced vibration displacement and the synchronization of force balance measurements with displacement are further verified. The method for eliminating inertial forces during balance force measurements is also discussed. Finally, a flat plate model is used as an example to identify flutter derivatives, and the results are compared with theoretical solutions. The results show that the maximum displacement error under large model mass is approximately 0.5%, and the maximum synchronization error between the main and auxiliary axes is about 0.6%. The identified flutter derivatives of the flat plate model agree well with the theoretical solution, demonstrating that the test system can effectively identify flutter derivatives.

     

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