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Improvement of Flutter Performance of a Streamlined Box Girder by Using an Upper Central Stabilizer

机译:使用上部稳定器改进流线型箱梁的颤动性能

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Streamlined box girders are widely used when designing long-span bridges owing to their aerodynamic and aerostatic stability. However, the flutter performance of this type of girder requires improvement when they are employed in extreme wind load conditions. Based on wind tunnel tests and coupled flutter analysis, in this study, we attempted to improve the flutter performance of streamlined box girders by configuring them with an upper central stabilizer (UCS), which was then applied to a long-span suspension bridge being constructed in southern China with a main span of 1,666 m connecting Shenzhen and Zhongshan. Initially, aerostatic wind tunnel tests and free vibration tests were conducted in a wind tunnel. The results show that the girder configured with the UCS could have higher drag coefficients and could also reach a higher critical flutter speed than the ones without UCS, indicating that a higher UCS is not suitable for aerostatics, but the girder's flutter performance was aerodynamically enhanced. Then, to investigate the dynamic mechanism behind this enhancement, flutter derivatives of the girder with UCS were extracted from forced vibration wind tunnel tests and used in flutter analysis. The calculated results agreed well with the test results. Finally, a series of parametric tests were conducted to analyze the dynamic mechanism of enhancement, including evaluation of the aerodynamic damping ratio, phase lag, amplitude ratio of vertical to torsional motion, and energy participation levels of the two types of motion. The analytical results revealed that the enhanced flutter performance of the box girders can be mainly attributed to an increase in the uncoupled aerodynamic damping ratio which is directly related to the flutter derivative, and changes in the phase lag, amplitude ratio, and energy participation level can be described as a unified result of the variation in the UCS height.
机译:由于它们的空气动力学和空气稳定性,在设计长跨度桥梁时,简化的盒梁梁广泛使用。然而,这种类型的梁的颤动性能需要在极端风力载荷条件下使用时改进。基于风洞测试和耦合颤动分析,在这项研究中,我们试图通过用上部中心稳定器(UCS)配置流线型盒梁梁的颤动性能,然后将其应用于构造的长跨度悬架桥在中国南方,主要跨度1,666米连接深圳和中山。最初,在风洞中进行空气静力隧道试验和自由振动试验。结果表明,使用UCS配置的梁可以具有更高的阻力系数,并且还可以达到比没有UC的突起更高的临界颤动速度,表明更高的UCS不适合空气静态学,但是梁的颤动性能是空气动力学增强的。然后,为了研究这种增强背后的动态机制,从强制振动风隧道试验中提取了UCS的梁的颤振衍生物,并用于颤动分析。计算结果与测试结果相加得很好。最后,进行了一系列参数测试以分析增强的动态机制,包括评估空气动力学阻尼比,相滞,垂直于扭转运动的幅度比,以及两种运动的能量参与水平。分析结果表明,盒梁梁的增强颤动性能主要归因于与颤振衍生物直接相关的未耦合空气动力学阻尼比的增加,以及相滞,幅度比和能量参与水平的变化被描述为UCS高度变化的统一结果。

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