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首页> 外文期刊>Tunnelling and underground space technology >Advantages and potential challenges of applying semi-rigid elements in an immersed tunnel: A case study of the Hong Kong-Zhuhai-Macao Bridge
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Advantages and potential challenges of applying semi-rigid elements in an immersed tunnel: A case study of the Hong Kong-Zhuhai-Macao Bridge

机译:在沉管隧道中应用半刚性元件的优势和潜在挑战:以港珠澳大桥为例

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摘要

The immersed tunnel of the Hong Kong-Zhuhai-Macao Bridge (HZMB) is the first of its kind constructed using semi-rigid elements and making a breakthrough in the structural theory. This paper explains the reason for applying the semi-rigid elements in an immersed tunnel and provides the design details using the example of the HZMB Tunnel. A theoretical analysis method based on the body-spring model is proposed for segmental joints of the semi-rigid elements. Potential challenges in the application of the semi-rigid elements are identified. Compared with the rigid (monolithic) elements and flexible (segmental) elements, the semi-rigid elements can improve the safety of segmental joints by increasing the flexural rigidity and joint friction. In addition, applying the semi-rigid elements can reduce the construction cost by retaining prestressed cables. Despite the advantages of the semi-rigid elements, some uncertainties arise due to the functional change of prestressed cables from a temporary structure to a permanent one. The location, number, and prestress level of the remaining prestressed cables need to be studied in accordance with the mechanical and waterproofing properties. The long-term prestress loss of prestressed cables should also be taken into consideration, especially the loss of asymmetric prestress in a marine environment. With the development of economy in costal regions, more immersed tunnels will face the similar engineering geological problems as the HZMB Tunnel. Discussing the technology of semi-rigid element has both engineering and theoretical significance to the development of immersed tunnels.
机译:港珠澳大桥的沉管隧道是第一条使用半刚性构件建造的隧道,在结构理论上取得了突破。本文解释了在沉浸式隧道中应用半刚性单元的原因,并以HZMB隧道为例提供了设计细节。提出了一种基于体弹簧模型的半刚性节段节理分析方法。确定了半刚性元件应用中的潜在挑战。与刚性(整体)元件和柔性(分段)元件相比,半刚性元件可以通过增加抗弯刚度和接头摩擦来提高节理接头的安全性。另外,应用半刚性元件可以通过保留预应力电缆来降低建造成本。尽管半刚性元件具有优势,但由于预应力电缆从临时结构到永久结构的功能变化,仍存在一些不确定性。剩余的预应力电缆的位置,数量和预应力水平需要根据机械和防水性能进行研究。还应考虑预应力电缆的长期预应力损失,尤其是海洋环境中不对称预应力的损失。随着沿海地区经济的发展,更多的沉管隧道将面临与HZMB隧道类似的工程地质问题。讨论半刚性单元技术对沉管隧道的发展具有工程和理论意义。

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