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Application of short-time stochastic subspace identification to estimate bridge frequencies from a traversing vehicle

机译:短时随机子空间识别在横穿车辆中估算桥梁频率的应用

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This study establishes a short-time stochastic subspace identification (ST-SSI) framework to estimate bridge frequencies by processing the dynamic response of a traversing vehicle. The formulation uses a dimensionless description of the response that simplifies the vehicle-bridge interaction (VBI) problem and brings forward the minimum number of parameters required for the identification. With the aid of the dimensionless parameters the analysis manages to successfully apply ST-SSI despite the time-varying nature of the VBI system. Further, the proposed approach eliminates the adverse effect of the road surface roughness using a transformed residual vehicle response obtained from two traverses of a vehicle at different speeds over the bridge. The study verifies the proposed ST-SSI approach numerically: it first performs the dynamic VBI simulations to obtain the response of the vehicle, and then applies the proposed ST-SSI method, assuming the dynamic characteristics of the vehicle are available. The numerical experiments concern both a sprung mass model and a more realistic multi-degree of-freedom (MDOF) vehicle model traversing a simply supported bridge. The results show that the proposed approach succeeds in identifying the first two bridge frequencies for test-vehicle speeds much higher (e.g., 10 m/ s = 36 km/h and 20 m/s = 72 km/h) than previously considered, even in the presence of high levels of road surface roughness.
机译:本研究通过处理遍历车辆的动态响应来建立短时间随机子空间识别(ST-SSI)框架来估计桥梁频率。该配方使用无量纲的响应描述,该响应简化了车辆桥接交互(VBI)问题,并带来了识别所需的最小参数数量。借助无量纲参数,尽管VBI系统的时变性质,但分析仍可成功应用ST-SSI。此外,所提出的方法消除了使用从桥上的不同速度从车辆的两个横向获得的变换的残余车辆反应来消除道路表面粗糙度的不利影响。该研究在数值上验证了所提出的ST-SSI方法:首先执行动态VBI模拟以获得车辆的响应,然后应用所提出的ST-SSI方法,假设车辆的动态特性可用。数值实验涉及弹簧质量模型和更现实的多程度 - 自由度(MDOF)车辆模型穿过简单的支撑桥。结果表明,该方法成功地识别测试车辆速度的前两个桥梁频率远远高(例如,10m / s = 36 km / h和20 m / s = 72km / h),甚至在高水平的道路表面粗糙度存在下。

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