Rock and Soil Mechanics ›› 2020, Vol. 41 ›› Issue (12): 3851-3861.doi: 10.16285/j.rsm.2020.0311

• Fundamental Theroy and Experimental Research • Previous Articles     Next Articles

Study on dynamic response of debris flow impact arc-shaped dam

WANG Dong-po, ZHANG Xiao-mei   

  1. State Key Laboratory of Geohazard Prevention and Geoenvironment Protection, Chengdu University of Technology, Chengdu, Sichuan 610059, China
  • Received:2020-03-18 Revised:2020-07-11 Online:2020-12-11 Published:2021-01-15
  • Supported by:
    This work was supported by the National Natural Science Foundation of China(41877266, 41790433), the Science Foundation for Distinguished Young Scholars of Sichuan Province(2020JDJQ0044) and the State Key Laboratory of Geohazard Prevention and Geoenvironment Protection Independent Research Project(SKLGP2019Z013, SKLGP2019K011).

Abstract: Dam foundation is subjected to a larger impact force when debris flow runs up, causing stress concentration and local impact failure. To address this problem, in this study the vertical structures are optimized into arc-shaped dams. Based on the principle of momentum and energy conservation, the theoretical calculations of the impact process of debris flow and arc-shaped dam are carried out, and the formulas of impact force and maximum run-up height of debris flow are deduced. The theoretical formulas are verified through a series of physical model tests of debris flow impact arc-shaped dam. The results show that the results of the physical model are highly consistent with those of the theoretical calculations, indicating that the proposed theoretical formulas are applicable in the calculation of the impact of debris flow on arc-shaped dam. The debris velocity, impact force and the maximum run-up height are proportional to the flume slope of debris flow. The impact force and the maximum run-up height are mainly controlled by Froude number(Fr), flume slope(?), and arc-shaped radius(R). Both the impact force and the maximum run-up height have quadratic relationships with the Froude number, and are inversely proportional to the cosine of the flume slope. Compared with the rigid vertical structures, the arc-shaped dams have no signicicant influence on the maximum run-up height, but it can reduce the normal impact force on the dam considerably, and the structure strength can also be enhanced by the strengthening of local structure. This study provides a theoretical and technical support for the dam structure design.

Key words: debris flow, arc-shaped dam, impact force, maximum run-up height

CLC Number: 

  • TU42
[1] CHEN Tai-jiang, XIANG Xin, ZHANG Guang-cheng, . Characteristic parameters theoretical analysis of rockfall impact on ground based on linear viscoelastic contact theory [J]. Rock and Soil Mechanics, 2022, 43(9): 2410-2420.
[2] XU Jiang, CHENG Liang, WEI Ren-zhong, PENG Shou-jian, ZHOU Bin, YANG Hai-lin, . Propagation characteristics of coal-gas two-phase flow in T-shaped roadway [J]. Rock and Soil Mechanics, 2022, 43(6): 1423-1433.
[3] WANG Dong-po, ZHAO Jun, ZHANG Xiao-mei, YANG Xin, . Experimental study of regulation performance of open flexible debris flow barriers [J]. Rock and Soil Mechanics, 2022, 43(5): 1237-1248.
[4] CHEN Tai-jiang, ZHANG Guang-cheng, XIANG Xin, . Investiagtions on mechanical characteristics of rockfall impact on concrete shed cave [J]. Rock and Soil Mechanics, 2022, 43(1): 277-285.
[5] LIANG Heng, LI Ji-lin, LIU Fa-ming, ZHANG Lun, FU Gang, LI Ming-qing, HE Si-ming, . Simulation of debris flow impacting bridge pier tests based on smooth particle hydromechanics method [J]. Rock and Soil Mechanics, 2021, 42(5): 1473-1484.
[6] YE Yang, ZENG Ya wu, DU Xin, SUN Han qing, CHEN Xi, . Three-dimensional discrete element simulation of spherical gravel collision damag [J]. Rock and Soil Mechanics, 2020, 41(S1): 368-378.
[7] CHENG Liang, XU Jiang, ZHOU Bin, PENG Shou-jian, YAN Fa-zhi, YANG Xiao-bo, YANG Wen-jian . The influence of different gas pressures on the propagation law of coal and gas outburst two-phase flow [J]. Rock and Soil Mechanics, 2020, 41(8): 2619-2626.
[8] HAN Zheng, SU Bin, LI Yan-ge, WANG Wei, WANG Wei-dong, HUANG Jian-ling, CHEN Guang-qi, . Smoothed particle hydrodynamic numerical simulation of debris flow process based on Herschel-Bulkley-Papanastasiou constitutive model [J]. Rock and Soil Mechanics, 2019, 40(S1): 477-485.
[9] WANG Dong-po, CHEN Zheng, HE Si-ming, CHEN Ke-jian, LIU Fa-ming, LI Ming-qing, . Physical model experiments of dynamic interaction between debris flow and bridge pier model [J]. Rock and Soil Mechanics, 2019, 40(9): 3363-3372.
[10] WU Feng-yuan, FAN Yun-yun, CHEN Jian-ping, LI Jun, . Simulation analysis of dynamic process of debris flow based on different entrainment models [J]. Rock and Soil Mechanics, 2019, 40(8): 3236-3246.
[11] WANG You-biao, YAO Chang-rong, LIU Sai-zhi, LI Ya-dong, ZHANG Xun. Experimental study of debris flow impact forces on bridge piers [J]. Rock and Soil Mechanics, 2019, 40(2): 616-623.
[12] LI Zhao-hua, HU Jie, FENG Ji-li, GONG Wen-jun. Numerical simulation of debris flow based on visco-elastoplastic constitutive model [J]. , 2018, 39(S1): 513-520.
[13] CHEN Xing-zhang, CHEN Hui, YOU Yong, LIU Jin-feng,. Experiment on distribution and influence factors of uplift pressure acting on bottom of debris flow check dam [J]. , 2018, 39(9): 3229-3236.
[14] DU Guo-liang, ZHANG Yong-shuang, YAO Xin, GUO Chang-bao, YANG Zhi-hua,. Formation mechanism analysis of Wulipo landslide-debris flow in Dujiangyan city [J]. , 2016, 37(S2): 493-501.
[15] FEI Jian-bo, JIE Yu-xin, ZHANG Bing-yin, FU Xu-dong. Application of a three-dimensional yield criterion to granular flow modeling [J]. , 2016, 37(6): 1809-1817.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!