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Modeling dynamic responses of a cross-river road shield tunnel under stochastic vehicle loads

机译:随机车载负载下跨河道盾隧道的动态响应

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Vehicle-induced dynamic loads are far more complex than those induced by trains because of their stochastic nature. In this study, we developed the stochastic dynamic vehicle load model and addressed a series of loading scenarios for a large road shield tunnel across the Yangtze River of China. The range analysis results show that, given the three factors influencing the dynamic responses of the tunnel, the pavement roughness plays a more important role than the vehicle type and running speed. The finite element model analysis shows that stress concentration occurs around the corbels fixed to the tunnel haunches; the stress amplitude of the soil responses, ranked in the descending order, is at the tunnel sides, under the tunnel bottom and above the tunnel, respectively. Under the stochastic vehicle loads, the amplitudes of the displacement of the road shield tunnel and the maximal settlement of the surrounding soils are basically one-tenth of those of the subway tunnel; the surrounding soil stress amplitude of the road shield tunnel is about one-third of that of the subway shield tunnel; while the structural stress amplitude of the road shield tunnel, focused around the corbels, are about 4 times of that of the subway shield tunnel. Those insights can be referred by the practitioners, especially those of the cross-river combined road-and-subway shield tunnels.
机译:由于其随机性质,车辆诱导的动态载荷远比被列车引起的动态载荷更复杂。在这项研究中,我们开发了随机动态车载载荷模型,并解决了整个中国长江大型道路盾隧道的一系列装载情景。范围分析结果表明,考虑到影响隧道动态反应的三个因素,路面粗糙度比车辆类型和运行速度更重要。有限元模型分析表明,在固定到隧道臀部的Corbels周围发生应力浓度;土壤响应的应力幅度以下降顺序排列,分别位于隧道侧,分别在隧道底部和隧道上方。在随机车辆载荷下,道路屏蔽隧道位移的幅度和周围土壤的最大沉降基本上是地铁隧道的第十分之一;路盾隧道的周围土壤应力幅度约为地铁盾隧道的三分之一;虽然路盾隧道的结构应力幅度,聚焦在Corbels周围,但是地铁盾构隧道的4倍。这些见解可以被从业者推荐,特别是跨河联合道路和地铁盾隧道的洞察力。

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