吉林大学学报(地球科学版) ›› 2026, Vol. 56 ›› Issue (2): 598-610.doi: 10.13278/j.cnki.jjuese.20240120

• 地质工程与环境工程 • 上一篇    下一篇

设防地震作用下深厚覆盖层上土石混合体高填方人工半岛动力反应及抗震性能

黄华1, 王圆圆1, 裴志勇1, 邓小芹1, 方火浪2   

  1. 1.中国电建集团华东勘测设计研究院有限公司,杭州311122

    2.浙江大学建筑工程学院,杭州310058

  • 出版日期:2026-03-26 发布日期:2026-04-15
  • 基金资助:
    国家自然科学基金项目(51878605)

Dynamic Response and Seismic Performance of High Filled Artificial Peninsula with Soil-Rock Mixtures on Deep Overburden Under Fortification Earthquakes

Huang Hua1,Wang Yuanyuan1,Pei Zhiyong1,Deng Xiaoqin1,Fang Huolang2   

  1. 1. PowerChina Huadong Engineering Corporation Limited, Hangzhou 311122, China

    2. College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China

  • Online:2026-03-26 Published:2026-04-15
  • Supported by:

    Supported by the National Natural Science Foundation of China (51878605)

摘要:

在高地震烈度库区,深厚覆盖层上土石混合体高填方人工半岛的抗震性能是工程设计和建设中需要重点考虑的问题。此类结构的地震反应复杂,不仅受到地震波的影响,还受到覆盖层与填方体之间相互作用的影响。本文以白鹤滩水电站库区象鼻岭居民安置点的建设工程为研究背景,基于工程场地的岩土工程勘察结果和结构设计资料,首先利用MIDAS GTS/NX有限元软件,构建了人工半岛-基础-上部结构系统的三维有限元精细化模型;然后根据现场和室内试验数据,确定了各种岩土材料、填筑料的物理力学性质和本构模型参数;再结合场地地震安全性评价结果,采用三角级数法合成了工程场地50年超越概率为10%的人工地震波;最后通过弹塑性动力时程分析,研究了人工半岛-基础-上部结构系统的动力相互作用机理、地震反应和永久变形特征。结果表明:在设防地震动作用下,人工半岛中轴线处沿横向、纵向和竖向的加速度峰值总体随高程增加呈先减小后增大的变化趋势,三者最大加速度放大系数分别为1.43、1.81和1.67;中轴线处沿横向、纵向和竖向相对位移峰值与高程呈非线性递增关系,且横向位移表现出明显的鞭鞘效应;顶部平台沿横向和纵向的最大永久变形量分别为12.2和1.7 cm,远小于规范限值;顶部平台的最大沉降量为7.6 cm,对应震陷率为0.25%,远小于规范规定的限值。

关键词: 深厚覆盖层, 土石混合体, 高填方人工半岛, 地震反应, 永久变形

Abstract: In high seismic intensity reservoir areas, the seismic performance of high filled artificial peninsula with soil-rock mixtures on deep overburden is a key issue that needs to be considered in engineering design and construction. The seismic response of such structures is complex, not only affected by seismic waves, but also by the interaction between the overburden and the filling body. This paper takes the construction project of the Xiangbiling residential settlement in the Baihetan hydropower station reservoir area as the research background. Based on the geotechnical investigation results of the engineering site and structure design documents, a three-dimensional finite element refined model of the artificial peninsula-foundation-upper structure system is conducted using the finite element software MIDAS GTS/NX. According to field and laboratory test data, the physical and mechanical properties and constitutive model parameters of various geotechnical materials and filling materials are determined. Based on the seismic safety evaluation results of the site, the trigonometric series method is used to synthesize the artificial seismic waves with a 50 years exceedance probability of 10% for the engineering site. Through elastic-plastic dynamic time history analysis, the dynamic interaction mechanism, seismic response, and permanent deformation characteristics of the artificial peninsula-foundation-upper structure system are studied. The research results indicate that under the action of fortification earthquakes, the peak acceleration distributions along the transvers, longitudinal, and vertical directions at the central axis of the artificial peninsula generally shows a trend of first decreasing and then increasing with elevation, and their maximum acceleration amplification coefficients are 1.43, 1.81 and 1.67, respectively; The peak relative displacement along the transvers, longitudinal, and vertical directions at the central axes of the artificial peninsula reveals a non-linear increasing relationship with elevation, and the displacement in the transvers direction exhibits a clear whiplash effect; The maximum permanent deformation of the top platform along the transvers and longitudinal directions are 12.2 and 1.7 cm, respectively, which are much smaller than the limit given in the specifications; The maximum settlement of the top platform is 7.6 cm, and the corresponding seismic settlement rate is 0.25%, which is much smaller than the limit given in the specifications.

Key words: deep overburden, soil-rock mixture, high filled artificial peninsula, seismic response, permanent deformation

中图分类号: 

  • P315.9
[1] 杨忠平, 赵凯, 高宇豪, 向宫固, 刘新荣. 基于模型试验的欠固结深厚土石混合回填区隧道施工力学响应[J]. 吉林大学学报(地球科学版), 2025, 55(6): 1945-1957.
[2] 施有志, 华建兵, 李秀芳, 林树枝. 反应位移法在地下综合管廊抗震设计中的应用[J]. 吉林大学学报(地球科学版), 2018, 48(6): 1785-1796.
[3] 高玮, 胡瑞林. 基质胶结对土石混合体强度变形特性影响[J]. 吉林大学学报(地球科学版), 2015, 45(4): 1164-1172.
[4] 徐鹏举, 唐亮, 凌贤长, 高霞, 苏雷, 辛全明, 张勇强. 液化场地桩-土-桥梁结构地震相互作用简化分析方法[J]. J4, 2010, 40(5): 1121-1127.
[5] 甘 杨,李 凡,李大华. 一维土层非线性地震反应分析的解析递推格式法[J]. J4, 2006, 36(04): 631-635.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] 程立人,张予杰,张以春. 西藏申扎地区奥陶纪鹦鹉螺化石[J]. J4, 2005, 35(03): 273 -0282 .
[2] 李 秉 成. 陕西富平全新世古气候的初步研究[J]. J4, 2005, 35(03): 291 -0295 .
[3] 和钟铧,杨德明,王天武,郑常青. 冈底斯带巴嘎区二云母花岗岩SHRIMP锆石U-Pb定年[J]. J4, 2005, 35(03): 302 -0307 .
[4] 陈 力,佴 磊,王秀范,李 金. 绥中某电力设备站场区地震危险性分析[J]. J4, 2005, 35(05): 641 -645 .
[5] 纪宏金,孙丰月,陈满,胡大千,时艳香,潘向清. 胶东地区裸露含金构造的地球化学评价[J]. J4, 2005, 35(03): 308 -0312 .
[6] 初凤友,孙国胜,李晓敏,马维林,赵宏樵. 中太平洋海山富钴结壳生长习性及控制因素[J]. J4, 2005, 35(03): 320 -0325 .
[7] 李斌,孟自芳,李相博,卢红选,郑民. 泌阳凹陷下第三系构造特征与沉积体系[J]. J4, 2005, 35(03): 332 -0339 .
[8] 李涛, 吴胜军,蔡述明,薛怀平,YASUNORI Nakayama. 涨渡湖通江前后调蓄能力模拟分析[J]. J4, 2005, 35(03): 351 -0355 .
[9] 旷理雄,郭建华,梅廉夫,童小兰,杨丽. 从油气勘探的角度论博格达山的隆升[J]. J4, 2005, 35(03): 346 -0350 .
[10] 章光新,邓伟,何岩,RAMSIS Salama. 水文响应单元法在盐渍化风险评价中的应用[J]. J4, 2005, 35(03): 356 -0360 .