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Numerical Investigation on Dynamic Performance of a Bridge-Tunnel Transition Section with a Deep Buried Pile-Plank Structure

机译:深层埋藏桩结构桥隧道过渡部分动态性能的数值研究

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To address the track irregularity at transition zones between subgrade and rigid structures (bridge, tunnel, etc.), some common transition approaches, such as trapezoid subgrade, were adopted in many engineering areas. However, in regard to a mountainous area, the common transition approaches may not be practicable anymore due to the limitation of the length between subgrade and rigid structures. In this paper, a new type of bridge-tunnel transition section with a deeply buried pile-plank structure (DBPPS) for short-distance transition is introduced. A three-dimensional finite element model that considers vehicle-track-subgrade coupling vibration is proposed to study the dynamic performances of a DBPPS transition section in the Shanghai–Kunming high-speed railway. With this model that has been validated with measured responses from field tests, the dynamic responses and the smoothness in track stiffness along the transition zone are analyzed. In addition, the influences of train speed, axle load, and train direction on dynamic responses are investigated, and the influences of two optimization strategies, including varying-length piles and constant-length piles, on the stiffness smoothness of the DBPPS transition section are discussed. Results show that the vibration level of the DBPPS transition section is lower than that of the abutment and the tunnel, and the additional load caused by vertical track stiffness difference aggravates the vibration at the connections between the DBPPS transition section and the abutment (or tunnel). Furthermore, the smoothness in stiffness along the transition zone can be significantly improved by the improvement strategy with varying-length piles.
机译:为了解决路基和刚性结构(桥,隧道等)之间的过渡区域的轨道不规则性,许多工程领域采用了一些常见的过渡方法,例如梯形路基。然而,在山区的方面,由于路基和刚性结构之间的长度的限制,常见的过渡方法可以不再是切实可行的。本文介绍了一种新型的桥隧道过渡部分,具有用于短距离转换的深层埋地桩结构(DBPPS)。提出了一种考虑车辆路基耦合振动的三维有限元模型,研究了上海 - 昆明高速铁路中DBPPS过渡部分的动态性能。利用该模型已经通过现场测试的测量响应验证,分析了沿着过渡区的轨道刚度的动态响应和平滑度。此外,研究了列车速度,轴载和列车方向对动态响应的影响,以及两种优化策略,包括不同长度桩和恒定长度桩的影响,在DBPPS过渡部分的刚度平滑度上是讨论。结果表明,DBPPS过渡部分的振动水平低于邻接和隧道的振动水平,并且由垂直轨道刚度差异引起的附加载荷会加剧DBPPS过渡部分和邻接(或隧道)之间的连接处的振动。此外,通过具有变化长度堆叠的改进策略,可以显着改善沿着过渡区的刚度的平滑度。

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