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Numerical investigation into thermal load responses of railway transom bridge

机译:铁路横梁桥热荷载响应的数值研究

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Australian railway networks suffer a large fluctuation of extreme heats each year due to their wide variety of geographical conditions. Depending on climatic, cloud and radiation conditions, an ambient temperature of 20 degrees C could induce an equivalent thermal load absorption of track components as much as 30 degrees C to 35 degrees C or even more. As such, relatively high turnover of timber sleepers (crossties in a plain track), bearers (skeleton ties in a turnout), and transoms (bridge cross beams) can often be observed due to their unstable deformation and rapid deterioration. This paper investigates an application for the replacement of ageing timber transoms mounted on existing railway bridges using fibre reinforced foamed urethane (FFU) transom beams, which are proven to provide environmental, safety and financial benefits. Clear benefits of the FFU material are the maintainability and constructability, especially for existing railway bridges. In this study, numerical simulations using finite element package ABAQUS have been carried out to illustrate the effect of thermal loads on the structural behaviour of a railway transom bridge. The model was developed using a case study of an actual railway bridge in Kiama, Australia and it has been validated by field data measurements. It is found that nonlinear structural behaviour of the bridge components exists at highly elevated temperatures. The better insight into the thermal load responses will lead to safer and more reliable rail stress adjustment practice, preventing rail misalignment or buckling. (C) 2015 Elsevier Ltd. All rights reserved.
机译:澳大利亚的铁路网络由于其各种各样的地理条件,每年都会遭受极端高温的极大波动。根据气候,云和辐射条件,环境温度为20摄氏度可能会导致等效吸收轨道组件的热负荷,最高可达30摄氏度至35摄氏度甚至更高。因此,由于其不稳定的变形和快速的退化,经常可以观察到相对较高的木材枕木(平整的十字路口),承重物(岔道的最基本的枕木)和横梁(横梁)的周转率。本文研究了使用纤维增强的聚氨酯泡沫横梁代替安装在现有铁路桥梁上的老化木材横梁的应用,事实证明,这种横梁可以提供环境,安全和经济效益。 FFU材料的明显好处是可维护性和可构造性,尤其是对于现有的铁路桥梁。在这项研究中,已经进行了使用有限元软件包ABAQUS进行的数值模拟,以说明热负荷对铁路横梁桥梁结构行为的影响。该模型是使用澳大利亚Kiama的实际铁路桥梁的案例研究开发的,并已通过现场数据测量得到了验证。发现桥构件的非线性结构行为在高温下存在。对热负荷响应的更好了解将导致更安全,更可靠的钢轨应力调节实践,从而防止钢轨未对准或弯曲。 (C)2015 Elsevier Ltd.保留所有权利。

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