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Seismic design method analyses of an innovative steel damping bearing for railway bridges

机译:铁路桥梁新型钢阻尼轴承的抗震设计方法分析

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The bearing sliding effect of the pot bearing and plastic deformation of a low-yield steel damper has been proven to be effective in mitigating the seismic response of railway bridges during earthquakes. However, both the sliding effect and plastic deformation require large bearing and pier dimensions to avoid unseating damage during earthquakes, leading to higher costs during construction of the railway bridge. On the basis of bearing sliding and energy dissipation, a novel steel damping bearing is developed by using "function separated design". The steel damping bearing is composed of a pot bearing to support the vertical loads and a series of low-yield steel dampers to bear the horizontal seismic loads. In this paper, both the force-based and displacement-based design methods for the steel damping bearing are analysed by using the equivalent linearization method. Then, a 1:7 scale two-span simply supported railway bridge model is tested on a shaking table under different ground motions to estimate the design method results for the steel damping bearing. Additionally, a bridge model with pot bearings is tested as a benchmark model. Finally, the prototype bridge is modelled by numerical analysis to evaluate the effectiveness of each design method. The experimental and numerical results reveal that both design methods can effectively simulate the response of the bridge model. Moreover, a comparison between the models with steel damping bearings and with pot bearings reveal that the steel damping bearing can greatly mitigate the pier forces and displacement with an acceptable displacement between the pier and girder.
机译:盆式轴承的轴承滑动效果和低屈服钢制减震器的塑性变形已被证明可有效减轻地震期间铁路桥梁的地震响应。但是,滑动效果和塑性变形都需要较大的轴承和桥墩尺寸,以避免在地震期间造成不适当的损坏,从而导致铁路桥梁建造过程中的成本增加。在轴承滑动和能量耗散的基础上,采用“功能分离设计”开发了新型钢阻尼轴承。钢制减震轴承由支撑垂直载荷的罐式轴承和一系列承受水平地震载荷的低屈服钢制减震器组成。本文采用等效线性化方法对钢制阻尼轴承的基于力和基于位移的设计方法进行了分析。然后,在振动台上在不同的地面运动下测试了1:7比例的两跨简支铁路桥模型,以估算钢制阻尼轴承的设计方法结果。此外,带有罐轴承的桥梁模型已作为基准模型进行了测试。最后,通过数值分析对原型桥进行建模,以评估每种设计方法的有效性。实验和数值结果表明,两种设计方法都可以有效地模拟桥梁模型的响应。此外,带有钢制减震轴承的模型与带有罐形轴承的模型之间的比较表明,钢制减震轴承可以在桥墩和大梁之间的位移可接受的情况下大大减轻桥墩力和位移。

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