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新型泥石流格栅坝锚固拉拔系统抗拔力及位移变形分析

Anti-pulling force and displacement deformation analysis of the anchor pulling system of the new debris flow grille dam.

作者信息

Wang Yongsheng, Lv Baohong, Liu Jianshe, Zhang Xiaobin

机构信息

School of Civil Engineering, Lanzhou University of Technology, Lanzhou, 730050, China.

Key Laboratory of Disaster Prevention and Mitigation in Civil Engineering of Gansu Province, Lanzhou University of Technology, Lanzhou, 730050, Gansu, China.

出版信息

Sci Rep. 2022 Mar 8;12(1):3769. doi: 10.1038/s41598-022-07722-2.

Abstract

To avoid waste from a large section space structure layout and deep burial, improve the structural strength and stability. Anchor technology is introduced, and combined with the advantages of the supporting wall, a new debris-flow grille dam is proposed. Starting from the force process and damage mechanism of the new debris-flow grille dam, the computation formula for the anti-pulling force and the total displacement is given. The anti-pulling force includes the sidewall frictional resistance of the anchor pier and the positive pressure of the front end face of the anchor pier. The total displacement includes three parts: the elastic deformation of the cable, the relative shear displacement between the anchor pier and the surrounding soil, and the compression deformation of the soil at the front of the anchor pier. Finally, the influence of soil parameters and anchor pier size on the anti-pulling force and displacement deformation of the anchor-pulling system is analyzed by examples, and the results are compared with the numerical results. The results show that the displacement deformation decreases gradually with increasing elastic modulus of the soil around the anchor pier and increases with increasing Poisson's ratio. The change in elastic modulus mainly affects the relative shear displacement of the anchor pier and soil and the compressive deformation of the soil at the front end of the anchor pier. Poisson's ratio has the greatest influence on the relative shear displacement of the anchor pier and soil. A larger anchor pier is not better; thus, it is wise to choose the economic design dimension. Theoretical and numerical simulation results are consistent, showing a linear growth trend. The results of this paper can further improve the theoretical calculation method of the new debris-flow grille dam, thus making it widely used in more debris flow control projects.

摘要

为避免因大断面空间结构布局和深埋而造成浪费,提高结构强度和稳定性。引入锚固技术,并结合支挡墙的优点,提出了一种新型泥石流格栅坝。从新型泥石流格栅坝的受力过程和破坏机理出发,给出了抗拔力和总位移的计算公式。抗拔力包括锚墩的侧壁摩擦力和锚墩前端面的正压力。总位移包括三部分:锚索的弹性变形、锚墩与周围土体之间的相对剪切位移以及锚墩前端土体的压缩变形。最后通过实例分析了土体参数和锚墩尺寸对锚索抗拔系统抗拔力和位移变形的影响,并将结果与数值计算结果进行了比较。结果表明,位移变形随锚墩周围土体弹性模量的增大而逐渐减小,随泊松比的增大而增大。弹性模量的变化主要影响锚墩与土体之间的相对剪切位移以及锚墩前端土体的压缩变形。泊松比对锚墩与土体之间的相对剪切位移影响最大。锚墩尺寸并非越大越好,因此选择经济的设计尺寸是明智的。理论计算结果与数值模拟结果一致,呈线性增长趋势。本文的研究结果可进一步完善新型泥石流格栅坝的理论计算方法,使其在更多泥石流防治工程中得到广泛应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7232/8904529/77836f5ca6d8/41598_2022_7722_Fig1_HTML.jpg

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