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Construction technology for a shallow-buried underwater interchange tunnel with a large span

机译:大跨度浅埋水下互换隧道施工技术

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The construction of underwater tunnels has become a major method for enabling transportation across rivers in cities. In this paper, several innovative ideas and methods adopted in the construction of the Yingpan Road Underwater Tunnel in Changsha, China were introduced. On the basis of the crossing function of traditional underwater tunnels, an underground interchange tunnel was designed, which could effectively overcome the bottleneck of regional transportation in cities and significantly expand the traffic function of tunnels. A method for determining the minimum burial depth of underwater tunnels was proposed by considering reinforcement control measures. This method indicated that the minimum burial depth of the Yingpan Road Tunnel was 11.5 m, which was shallower by over 5 m compared with existing data calculated using other methods. The tunnel length was also shorter by 400 m, which enhanced the traffic evacuation function of the tunnel. Seepage quantity in the tunnel during the service periods could be remarkably reduced by adjusting the thickness of the grouting reinforcement loop and the reinforcing parameters. By adopting advanced full-face pre-reinforcement and preliminary supports with double-layer steel and reasonably organising benching excavation, an ultra shallow-buried large-section underwater tunnel with a depth/span ratio of only 0.46 and an excavation area of 376 m(2) was successfully excavated. The multi-operation and multi-section difficulties in constructing underwater super-large-section tunnels were overcome.
机译:水下隧道的建设已成为在城市中跨河运输的主要方法。本文介绍了长沙营盘路水下隧道建设中采用的几种创新思路和方法。在传统水下隧道穿越功能的基础上,设计了地下换乘隧道,可以有效克服城市区域运输的瓶颈,大大扩展隧道的交通功能。通过考虑加固控制措施,提出了一种确定水下隧道最小埋深的方法。该方法表明,营盘公路隧道的最小埋葬深度为11.5 m,与使用其他方法计算的现有数据相比,浅埋深度浅了5 m以上。隧道长度也缩短了400 m,增强了隧道的疏散功能。通过调节注浆加固环的厚度和加固参数,可以显着减少服务期间隧道的渗水量。通过采用双层钢的先进全断面预加固和初步支护并合理地组织台阶开挖,该超浅埋大断面水下隧道的纵横比仅为0.46,开挖面积为376 m( 2)被成功挖掘。克服了水下超大断面隧道施工中多工序多断面的难题。

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