寒区大型弧脚梯形渠道衬砌纵缝防冻胀机理与优化OA
Mechanism and layout optimization of the longitudinal lining joints for frost-heave control in large arc-toe trapezoidal canals in cold regions
纵缝防冻胀技术可有效缓解寒区渠道衬砌冻胀破坏问题,然而现有纵缝防冻胀设计多依赖经验,缺乏系统的设计理论和规律指导.为此,该研究基于冻土水-热-力三场耦合理论,考虑水分迁移、冰水相变、热量传递、冻胀及衬砌-基土相互作用,建立了渠道冻胀数值分析模型.以山东打渔张五干渠大型弧脚梯形渠道为例,构建了涵盖纵缝位置、间距(1~4m)与数量(1~4个)的153种布缝方案,以衬砌最大拉应力-冻胀变形-冻胀不均匀性为综合评价体系,系统分析纵缝设置对衬砌力学响应的调控规律.结果表明:1)纵缝将衬砌分割为独立板块,使其变形模式从整体弯曲转变为分块倾斜,从而有效适应渠基土冻胀变形,达到削减衬砌冻胀应力的目的.2)单缝设置在渠底或渠坡时,仅在其所在区域产生局部应力释放作用;其中,单缝最优位置为渠底中心.以该位置作为首条纵缝布设点继续增设第二条纵缝时,随着第二条纵缝由渠底向渠顶移动,全断面最大拉应力和不均匀冻胀变形均呈先降低后升高的变化趋势.其最优位置为新生拉应力峰值位置,可使全断面最大拉应力降至0.96 MPa,削减达85.21%,冻胀变形不均匀性降低97.18%.基于最大拉应力依次设缝原则布设多缝(不小于3条),全断面最大拉应力可降至0.20 MPa以下(削减率不小于98.25%),冻胀变形不均匀性削减率大于98.61%,防冻胀效果显著.3)水位降低及土体冻胀敏感性减弱有利于减少最优缝数,而填缝材料弹性模量增大则会提高衬砌最大拉应力.研究成果可为寒区渠道纵缝冻胀设计提供理论基础和设计指导.
Longitudinal joints can serve as an effective measure to mitigate frost-heave damage to canal linings in cold regions.However,their design still relies heavily on the empirical mode at present.It is lacking in systematic theoretical and practical guidance.In this study,a numerical model of freezing soil was developed for canal frost-heave analysis,according to the thermo-hydro-mechanical coupling theory.The model also considered moisture migration,water-ice phase change,heat transfer,frost-heave deformation,and lining-foundation.A case study was taken as of the large arc-toe trapezoidal canal of the Fifth Main Canal in the Dayuzhang Irrigation District,Shandong Province,China.153 longitudinal-joint layout schemes were constructed to vary the joint location,spacing(1-4 m),and number of joints(1-4).An evaluation framework was established to incorporate the maximum tensile stress in the lining,frost-heave deformation,and frost-heave nonuniformity.A systematic investigation was conducted to explore the influence patterns of longitudinal-joint layouts on the mechanical response of the lining.The results showed that:1)Longitudinal joints subdivided the lining into independent panels,particularly with the deformation mode from integral bending to segmented tilting.The frost-heave deformation of the canal foundation soil was better accommodated to reduce frost-heave-induced stress in the lining.2)When a single longitudinal joint was arranged at the canal bottom or on the canal slope,it only produced a local stress-relief effect in the region.Therefore,the first longitudinal joint was placed at the position of the maximum tensile stress in the lining,namely,the center of the canal bottom.With the first joint placed at the center of the canal bottom,the maximum tensile stress and nonuniform frost-heave deformation of the full cross-section first decreased and then increased,as the second longitudinal joint moved from the canal bottom toward the top of the canal slope.The optimal position of the second joint was corresponded to the newly formed position of the maximum tensile stress.The maximum tensile stress of the full cross-section was reduced to 0.96 MPa,with a reduction of 85.21%.The nonuniformity of frost-heave deformation was reduced by 97.18%.When multiple joints(no fewer than three)were arranged,according to the sequentially placing placement of joints at positions of the maximum tensile stress,the maximum tensile stress of the full cross-section was reduced to below 0.20 MPa,with a reduction rate of no less than 98.25%,and the reduction rate of frost-heave deformation nonuniformity exceeded 98.61%,indicating a significant frost-heave mitigation.3)A lower water level and weaker frost-heave susceptibility of the soil were contributed to the optimal number of joints,whereas an increase in the elastic modulus of the joint-filling material increased the maximum tensile stress in the lining.The findings can provide a theoretical basis and guidance for the frost-heave mitigation of longitudinal joints in canals in cold regions.
李唱唱;江浩源;王正中;刘铨鸿;王羿
西北农林科技大学水利与建筑工程学院,杨凌 712100||西北农林科技大学旱区寒区水工程安全研究中心,杨凌 712100西北农林科技大学水利与建筑工程学院,杨凌 712100||西北农林科技大学旱区寒区水工程安全研究中心,杨凌 712100西北农林科技大学水利与建筑工程学院,杨凌 712100||西北农林科技大学旱区寒区水工程安全研究中心,杨凌 712100河南开放大学建筑工程与智能建造学院,郑州 450000南京水利科学研究院岩土工程研究所,南京 210024
建筑与水利
纵缝防冻胀机理大型弧脚梯形渠道水-热-力耦合数值模拟
longitudinal jointsfrost-heave mitigation mechanismlarge arc-toe trapezoidal canalthermo-hydro-mechanical couplingnumerical simulation
《农业工程学报》 2026 (13)
203-216,14
国家自然科学基金项目(42401174,U2003108)国家重点研发计划项目(2017YFC0405103)甘肃省科技计划项目(25JRRA508)西藏土木水利电力工程技术研究中心开放课题(XZA202405CHP1001A)
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