劲性复合桩中柱地铁车站结构地震动响应特性研究

Study on Seismic Response Characteristics of Station Structures with Strength Composite Piles as Central Columns

  • 摘要: 为研究采用劲性复合桩作为永久中柱支撑的新型车站结构的抗震性能,建立车站整体结构三维数值模型,分析3种水平地震波作用下车站结构关键节点位置的位移、内力和加速度响应规律,并探讨管桩刚度、管桩间转动刚度、管桩与顶纵梁转动刚度对结构抗震性能的影响。研究结果表明:水平地震作用下,最大水平相对位移出现在中柱和边墙顶部,最大内力集中于边墙-底板及中柱-顶纵梁连接处,顶板处加速度响应最显著;Taft波对车站结构影响最显著,引起的最大水平位移为16.97 mm,最大弯矩为1 214.63 kN·m;各刚度参数对水平位移的影响程度依次为:管桩刚度>管桩间转动刚度>桩顶与纵梁转动刚度。

     

    Abstract: To evaluate the seismic performance of a novel station structure employing strength-composite piles as permanent column supports, a three-dimensional numerical model of the entire structure was developed. The displacement, internal force, and acceleration responses at critical locations were evaluated under three representative horizontal seismic motions. In addition, the effects of critical parameters—including pile stiffness, rotational stiffness between piles, and rotational stiffness between the pile top and the longitudinal beam—on the seismic performance were systematically investigated. The results indicate that the maximum horizontal relative displacement occurs at the tops of the columns and side walls under seismic excitation. The maximum internal forces are concentrated at the junctions of the side walls and baseplates, as well as at the connections between the central columns and longitudinal beams. The most pronounced acceleration response is observed at the top slab. Among the input motions, the Taft wave has the most significant impact on the station structure, causing a maximum horizontal displacement of 16.97 mm and a maximum bending moment of 1 214.63 kN·m. The influence of stiffness parameters on horizontal displacement follows the order: pile stiffness > rotational stiffness between piles > rotational stiffness between the pile top and longitudinal beam. These findings provide valuable insights for the seismic design and construction of such structures in engineering practice.

     

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