ISSN 1004-4140
    CN 11-3017/P

    城市复杂环境下既有建筑桩基井中地球物理探测

    Borehole Geophysical Investigation of Existing Pile Foundations in Complex Urban Environments

    • 摘要: 城市地下空间开发施工过程中,临近或穿越既有建筑施工对建筑物沉降变形控制要求严格。针对复杂城市环境下既有建筑桩基资料缺失、地面物探受场地条件限制以及单一物探方法解释存在多解性等问题,提出一种钻探约束下井中磁测法、钻孔地质雷达法和旁孔透射波法相结合的综合探测技术路线。该路线利用钢筋笼磁异常、电磁波反射与绕射响应以及弹性波速度突变信息,分别约束钢筋笼底端、桩身界面和桩端位置。以杭州市香积寺路西延工程盾构隧道下穿既有建筑桩基探测为例进行验证,结果表明:井中磁测法可快速识别钢筋笼底端位置,判断钢筋笼底端埋深为9.50 m;钻孔地质雷达法可识别桩身反射界面及桩端绕射特征,确定桩端埋深为9.75 m;旁孔透射波法可依据首波走时和波速变化特征辅助确定桩基存在,判断桩端埋深为9.25 m。结合3方法结果及钻探验证,综合判定桩长为9.50 m,与钻探揭露桩长一致。研究表明,井中综合地球物理探测可降低单一方法解释不确定性,提高复杂城市环境中既有建筑桩基探测的可靠性。

       

      Abstract: Construction activities adjacent to or beneath existing buildings during urban underground development require reliable information on pile foundations to ensure construction safety and control settlement. However, investigations of existing pile foundations in complex urban environments are frequently constrained by incomplete foundation records, restricted site conditions for surface geophysical surveys, and the inherent ambiguity of interpreting a single geophysical method. To overcome these limitations, this study proposes an integrated borehole geophysical investigation approach combining borehole magnetic surveying, borehole ground-penetrating radar, and parallel seismic testing under drilling constraints. These methods provide complementary constraints on the bottom of the reinforcement cage, pile-shaft interface, and pile tip by exploiting magnetic anomalies, electromagnetic reflection and diffraction responses, and elastic-wave velocity variations, respectively. To validate the proposed approach, it was applied to the Xiangjisi Road West Extension Project in Hangzhou, where a shield tunnel passes beneath existing buildings. Borehole magnetic surveying identified the bottom of the reinforcement cage at a depth of 9.50 m. Borehole GPR delineated the pile-shaft boundary and pile-tip diffraction, indicating a pile-tip depth of 9.75 m, whereas PST identified the pile tip at a depth of 9.25 m based on first-arrival travel times and velocity variations. Integration of the three datasets, together with drilling verification, identified a pile length of 9.50 m, consistent with the drilling result. The results demonstrate that the proposed integrated borehole geophysical approach effectively reduces the interpretational uncertainty of individual methods and improves the reliability of existing pile foundation investigations in complex urban environments.

       

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