首页> 外文期刊>Journal of Wind Engineering and Industrial Aerodynamics: The Journal of the International Association for Wind Engineering >Flutter and buffeting performances of Third Nanjing Bridge over Yangtze River under yaw wind via aeroelastic model test
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Flutter and buffeting performances of Third Nanjing Bridge over Yangtze River under yaw wind via aeroelastic model test

机译:偏航作用下长江第三南京长江大桥颤振和抖振性能的气动弹性模型试验

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Third Nanjing Bridge over Yangtze River in China is a long-span steel cable-stayed bridge with a main span of 648 m and a closed streamline cross-section of single box. The flutter and buffeting performances of the bridge under yaw winds were investigated via a wind tunnel test of full bridge aeroelastic model at a geometric scale of 1: 120. The service state and three key construction states including the longest single-cantilever state, the longest double-cantilever state with a temporary pier, and the longest double-cantilever state without any temporary pier, were considered in the test. The test was conducted in both smooth and simulated boundary layer wind fields with various combinations of wind yaw angle and inclination angle. The model was elaborately designed and manufactured, and the modal properties of the service-state model were checked before the test. The natural frequencies and mode shapes were identified automatically using a self-developed special software from the acceleration signals recorded in an ambient vibration test, where an "artificial" turbulent wind with lower mean speed of I m/s was used as a major ambient excitation addition to the "natural" one from the slight ground trembling. The modal damping ratios were checked using free-decay vibration approach. The testing results show that the bridge has enough aerodynamic stability for all structural states and wind directions concerned, and the most unfavorable buffeting responses often occur in yaw wind case with a yaw angle between 5 degrees and 30 degrees. (c) 2007 Elsevier Ltd. All rights reserved.
机译:中国第三座长江大桥是一座大跨度的钢斜拉桥,主跨度为648 m,单箱封闭的流线横截面。通过全桥气动弹性模型的风洞试验,以1:120的几何比例,研究了偏航风作用下桥梁的颤振和抖振性能。服务状态和三个关键施工状态,包括最长的单悬臂状态,最长的悬臂状态在测试中考虑了具有临时墩的双悬臂状态和最长的没有任何临时墩的双悬臂状态。该测试是在具有平滑偏航角和倾斜角的各种组合的光滑边界层和模拟边界层风场中进行的。该模型经过精心设计和制造,并在测试前检查了服务状态模型的模态特性。使用自行开发的专用软件从环境振动测试中记录的加速度信号中自动识别固有频率和模式形状,其中以较低的平均速度I m / s的“人工”湍流风作为主要的环境激励除了“自然”的人从轻微的地面颤抖。使用自由衰减振动方法检查了模态阻尼比。测试结果表明,该桥在所有相关结构状态和风向下均具有足够的空气动力学稳定性,在偏航风情况下,偏航角在5度至30度之间时,经常会出现最不利的抖振响应。 (c)2007 Elsevier Ltd.保留所有权利。

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