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Response of cracked simply supported concrete beam with moving vehicle load

机译:简支简支混凝土梁在移动车辆荷载下的响应。

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The dynamic response of a cracked beam subjected to moving loads has been studied extensively in the past decades. However, very little is known about the dynamic impact factors and crack propagation when vehicles move along the cracked beam. It can be reasonably postulated that a crack extension may occur when the vehicle loads cross the cracked bridge at a high speed. As a result, the dynamic response will be enlarged significantly due to the flexural rigidity reduction induced by cracks, which may result in a dangerous effect on structures. To address this problem, a three-dimensional vehicle-bridge model was developed to investigate the dynamic response of cracked bridges with crack breathing. Crack breathing is simulated at the crack surface using contact elements. The modified crack closure method is adopted to calculate the stress intensity factors. The results showed that the impact factors for the damaged bridge under a moving load could be notably larger than those for the intact bridge, and could exceed the value specified in the AASHTO bridge design code. Meanwhile, crack propagation may occur when the vehicles move along the cracked bridge at a high speed. So, it is very necessary to limit the velocity and transverse position of the vehicles to avoid further damage to the cracked bridge.
机译:在过去的几十年中,对裂化梁承受移动载荷的动力响应进行了广泛的研究。然而,当车辆沿着破裂的梁移动时,关于动态影响因素和裂缝扩展的了解甚少。可以合理地假设,当车辆负载高速穿越开裂的桥梁时,可能会发生开裂。结果,由于裂纹引起的抗弯刚度降低,动态响应将显着扩大,这可能会对结构产生危险影响。为了解决这个问题,建立了三维车桥模型以研究带有裂纹呼吸的开裂桥梁的动力响应。使用接触元件在裂缝表面模拟裂缝呼吸。采用改进的裂纹闭合方法计算应力强度因子。结果表明,在移动荷载下,受损桥梁的影响因子可能明显大于完整桥梁,并且可能超过AASHTO桥梁设计规范中指定的值。同时,当车辆沿着裂开的桥高速行驶时,裂纹可能发生。因此,非常有必要限制车辆的速度和横向位置,以避免进一步破坏裂开的桥梁。

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