首页> 外文期刊>Advances in Structural Engineering >Aerodynamic interference between the cables of the suspension bridge hanger
【24h】

Aerodynamic interference between the cables of the suspension bridge hanger

机译:悬索桥吊架电缆之间的空气动力干扰

获取原文
获取原文并翻译 | 示例
           

摘要

The hangers of long-span suspension bridges are significantly prone to wind-induced vibrations due to their light mass, low frequency, and small structural damping. However, the underlying mechanism of the hanger vibration is not clearly clarified yet. To study the aerodynamic interference between the cables of the hanger, which is a possible mechanism for the hanger vibration, a series of wind tunnel tests were carried out to measure the mean aerodynamic drag and lift coefficients of a leeward cylinder. Then, the motion equations governing the vibration of leeward cable were derived based on the quasi-steady assumption. The numerical results show that large-amplitude vibrations of the leeward cable will occur in the region of 1 = |Y| = 3, where Y is a non-dimensional vertical coordinate normalized with the diameter of the cylinder. It appears that the stable trajectory of the leeward cable is ellipse, and trajectory is clockwise above the center line of the wake, whereas anti-clockwise below the center line of the wake. An important finding is that the frequency of the stable vibration of the leeward cable is slightly smaller than its natural frequency, which implies that a negative aerodynamic stiffness might arise. The time histories of the aerodynamic stiffness and damping forces on the leeward cable were identified from the numerical results. It seems that there is always a positive work done within a period by the aerodynamic stiffness force, whereas a negative work by the aerodynamic damping force. The response characteristics of the leeward cable of the hanger of suspension bridge obtained in this study are identical with those of the wake-induced flutter widely discussed for the power transmission line. This implies that wake-induced flutter theory could well illustrate the underlying mechanism of the aerodynamic interference effects on the hangers of a suspension bridge.
机译:大跨度悬索桥的吊架由于质量轻,频率低,结构阻尼小,因此很容易产生风振。但是,吊架振动的潜在机理尚不清楚。为了研究衣架电缆之间的空气动力干扰(这可能是导致衣架振动的一种机制),进行了一系列风洞测试,以测量下风缸的平均空气阻力和升力系数。然后,基于准稳态假设,得出了控制背风电缆振动的运动方程。数值结果表明,背风电缆的大振幅振动将发生在1 <= | Y |的范围内。 <= 3,其中Y是使用圆柱体直径标准化的无量纲垂直坐标。似乎背风缆线的稳定轨迹是椭圆形的,并且轨迹在尾流的中心线上方是顺时针方向,而在尾流的中心线下方是逆时针方向。一个重要的发现是,背风电缆的稳定振动频率略小于其固有频率,这意味着可能会产生负的空气动力学刚度。从数值结果中可以识别出空气动力学刚度和背风电缆上的阻尼力的时间历程。似乎在一段时间内,空气动力刚度力总是产生积极的作用,而空气动力阻尼力总是会产生负面的作用。这项研究中获得的悬索桥吊架的背风电缆的响应特性与电力传输线中广泛讨论的尾波诱发颤动的响应特性相同。这意味着尾流引起的颤振理论可以很好地说明空气动力学干扰效应对悬索桥吊架的潜在机理。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号