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Experimental Study on Structural Form and Excavation Model of Urban Metro Cross Transfer Station with Super Large Cross Section and Shallow Excavation

机译:超大横截面和浅挖挖掘城市地铁交叉转移站结构形式和挖掘模型的实验研究

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The construction of urban underground cross-interchange transfer subway stations often encounters the difficulties of shallow-buried, different surrounding rock, large spans and heights, congested road traffic, and surrounding buildings sensitive to the construction sequence. Therefore, there is a need for an underground project that controls the stability of underground space and ground subsidence. Based on the construction difficulties of a certain station (the maximum excavation area over 760?m2), this paper conducts a comprehensive selection design of the structure, construction mechanics response, and control technology of this type of interchange station structure and construction excavation. First of all, based on the design experience of large-scale underground transfer transportation engineering and taking full consideration of the stratum conditions, an “arch-wall” cross transfer structure method is proposed. The refined numerical analysis shows that the structure can fully utilize the stratum conditions to reduce the ground surface settlement. Then, in view of the stability of surrounding rock during the construction of a large section, based on the traditional large section excavation method, a construction method of “cross rock beam?+?heading method” was proposed. In order to verify the effect of the construction method, the three-dimensional detailed numerical model was used to simulate the construction conditions, and the mechanical response characteristics and displacement changes of surrounding rock under each excavation step are explored. Simultaneous interpreting with the traditional large section excavation method, the results show that the new method has advantages in controlling the stability of the surrounding rock. Meanwhile, in order to ensure the safe construction of the project, the self-developed multifunctional engineering test system for traffic tunnels is used to carry out a large-scale physical model experiment to simulate the entire process of the “arch-wall” cross transfer structure construction response characteristics. By analyzing the data of measuring points, the results show that the structure form and the excavation method cause the ground surface settlement, stress, and structural forces meet the requirements for safe construction. Finally, the station can be safely constructed under the new structure form and construction method. Therefore, the structure form and method proposed in this paper can be adapted to the large-scale underground structure under construction in complex environments.
机译:城市地下交叉交流转移地铁站的建设经常遇到浅埋,不同周围岩石,大跨度,大跨度,拥挤的道路交通和围绕对建筑序列敏感的围绕建筑物的困难。因此,需要一个控制地下空间和地面沉降稳定性的地下项目。基于某台站的施工困难(最高挖掘面积超过760?M2),这篇论文进行了综合选择设计的结构,施工力学响应和这种交汇处结构的控制技术和施工挖掘。首先,基于大规模地下转移运输工程的设计经验,并充分考虑层阶段条件,提出了“拱壁”交叉传递结构方法。精制的数值分析表明,该结构可以充分利用层状条件来减少地面沉降。然后,考虑到围岩在围岩期间的围岩稳定性,基于传统的大截面挖掘方法,提出了“交叉岩梁”的施工方法。为了验证施工方法的效果,使用三维详细数值模型来模拟施工条件,并探讨了每个挖掘步骤下围岩的机械响应特性和位移变化。同时解释传统的大截面挖掘方法,结果表明,新方法具有控制周围岩石稳定性的优势。同时,为了确保该项目的安全结构,交通隧道的自我开发的多功能工程测试系统用于进行大规模的物理模型实验,以模拟“拱墙”交叉转移的整个过程结构施工响应特征。通过分析测量点的数据,结果表明,结构形式和挖掘方法导致地面沉降,应力和结构力满足安全结构的要求。最后,可以在新的结构形式和施工方法下安全地构建该站。因此,本文提出的结构形式和方法可以适用于在复杂环境中建造的大规模地下结构。

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