基于模型试验的回填土地层中顶管间距对管幕施工力学特性的影响研究OA
Study on the mechanical characteristics of pipe curtain group construction in the backfill soil stratum based on model tests
回填土地层管幕法施工过程中,群管顶进的叠加扰动效应易导致顶管受力异常、地表沉降失控等风险.文章以成渝高速下穿通道工程为研究背景,采用物理模型试验的方法研究顶管间距对管周土压力、管节应变、顶推力及地表沉降变化的影响规律.研究结果表明,后续顶管顶进至监测断面附近时,顶管上方和下方土体竖向土压力和相邻管间土体水平向土压力小于第一根顶管顶进时的土压力,并且顶管上方和下方土体竖向土压力和相邻管间土体水平向土压力随着顶管间距的增加不断减小.顶管顶进结束后,顶管正上方的管节径向应变最大,并且管节径向应变随着顶管间距的增加不断减小.在相同顶进长度下,第二根顶管和第三根顶管顶进过程中的顶推力均比第一根顶管的顶推力大.并且顶推力随着顶管间距的增加不断减小.后续顶管顶进过程中,地表沉降区域朝施工顶管所在方向偏移,且地表沉降范围和沉降值不断增加.研究成果可为回填土地层中管幕法施工参数优化及安全控制提供理论依据.
[Objective]Under backfill layer conditions,pipe-roof construction using multiple closely spaced jacked pipes has been widely adopted in shallow-buried undercrossing projects to satisfy the increasing demand for underground space utilization and structural presupport.However,during sequential pipe jacking,the superposition of soil disturbance induced by multiple pipes considerably alters the mechanical properties of the surrounding ground.As a result,abnormal pipe loading responses and uncontrolled surface settlement are likely to occur,posing potential engineering risks.Existing studies have mainly focused on single-pipe jacking,whereas systematic investigations on the coupled effects of pipe spacing on soil pressure redistribution around pipes,pipe deformation,jacking force evolution,and surface settlement during multipipe jacking remain insufficient.This deficiency is particularly evident in backfilled ground,which is characterized by a loose structure and high stress sensitivity.Therefore,the objective of this study is to systematically investigate the influence of pipe spacing on the mechanical response and deformation behavior of the ground-pipe system during multi-pipe jacking in backfilled ground.It also seeks to clarify the interaction mechanisms between adjacent pipes and the surrounding soil under pipe-roof construction conditions.[Methods]Based on the Chengdu-Chongqing Expressway undercrossing project,a series of physical model tests were designed and conducted according to similarity theory.A model box was constructed to simulate backfilled ground conditions,in which three pipes were sequentially jacked under different pipe spacing configurations.During the tests,vertical and horizontal soil pressures around the pipes,radial strain in the pipe segments,jacking force during advancement,and surface settlement were continuously monitored.The effects of geometric parameters on the interaction between the pipes and surrounding soil,as well as the superposition of disturbances during multi-pipe jacking,were analyzed across different spacing conditions.These physical model tests enabled continuous observation of the entire jacking process and provided a basis for comparing the mechanical responses of the leading pipe and the subsequent pipes under identical jacking conditions.[Results]Experimental results indicate notable differences exist in the mechanical responses between the leading pipe and subsequent pipes.When subsequent pipes advanced to the monitoring section,the vertical soil pressures above and below the pipes,as well as the horizontal soil pressures in the inter-pipe zone,were considerably lower than those observed during the first pipe jacking stage.This phenomenon suggests that the presence of the leading pipe alters the original stress field and induces evident stress redistribution and partial unloading in the surrounding soil.Moreover,with increasing pipe spacing,vertical and horizontal soil pressures around the pipes exhibited an overall decreasing trend,indicating that larger pipe spacing can effectively reduce the extent of disturbance zones and alleviate stress concentration in the soil.In terms of structural response,the maximum radial strain was observed at the pipe crown after completion of jacking,and the magnitude of radial strain decreased progressively with increasing pipe spacing,demonstrating that larger spacing is beneficial for reducing pipe deformation.Meanwhile,under the same jacking length,the jacking forces required for the second and third pipes were greater than those for the first pipe,which can be attributed to cumulative soil disturbance.However,the peak jacking force decreased as the pipe spacing increased,indicating that appropriate spacing can effectively reduce construction resistance and improve jacking efficiency.In addition,surface settlement measurements show that during subsequent jacking,the settlement trough shifted toward the advancing pipe,accompanied by a continuous increase in settlement magnitude and affected area.[Conclusions]This study systematically reveals the controlling role of pipe spacing in soil pressure redistribution,pipe deformation,jacking force demand,and surface settlement during pipe-roof construction in backfilled ground through physical model tests.The results demonstrate that the presence of a leading pipe induces notable stress field modification,while increasing pipe spacing effectively weakens the superposition of disturbance,thereby reducing soil stress levels,structural deformation,and jacking force requirements.The findings provide valuable experimental evidence and theoretical support for pipe spacing optimization and construction safety control in pipe-roof construction conducted in backfilled ground.
郭正祥;罗淦铃;徐曾武;高华;罗志浩;杨永浩
中国水利水电第十四工程局有限公司,云南 昆明 650200重庆交通大学 土木工程学院,重庆 400074中国水利水电第十四工程局有限公司,云南 昆明 650200中国水利水电第十四工程局有限公司,云南 昆明 650200重庆交通大学 土木工程学院,重庆 400074重庆交通大学 土木工程学院,重庆 400074
交通工程
回填土管幕法顶管间距顶推力地表沉降
backfill soiltube curtain methodpipe jacking spacingtop thrustsurface subsidence
《实验技术与管理》 2026 (7)
52-61,10
重庆市博士后研究项目(2023CQBSHTB3065)
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