基于复变函数与Maxwell-Betti功互等定理的矩形隧道地表沉降预测方法

    GROUND SETTLEMENT PREDICTION FOR RECTANGULAR TUNNELS BASED ON COMPLEX VARIABLE FUNCTIONS AND MAXWELL-BETTI RECIPROCAL THEOREM

    • 摘要: 在矩形隧道施工期间,周边地层受扰动后的破坏机理尚不明确。这种不确定性极有可能引发地表坍塌,进而致使周边建筑变形、地下管线破裂等一系列严重工程灾害。同时,现有的地表沉降预测方法存在精度不足的问题。鉴于此,基于复变函数和Maxwell-Betti功互等定理提出一种矩形隧道施工地表沉降预测方法。首先,依据功互等定理构建两种处于不同受力状态下的二维矩形隧道计算模型。其次,通过保角变换将矩形隧道映射为圆形,进而得出矩形隧道洞身位移的计算式。再者,对Sagaseta法加以改进,使其适用于矩形隧道的计算。然后,基于功互等定理推导隧道地层损失的计算式,并结合改进后的Sagaseta法计算矩形隧道开挖所引起的地表沉降。最后,通过4组数值模拟与3项工程实测数据验证方法有效性。研究结果表明,理论分析与数值模拟值基本相符,且与3个矩形隧道工程的监测值具有更高的吻合度,能较好地适应不同地层环境下矩形隧道地表沉降预测,可为实际工程提供参考依据。

       

      Abstract: During rectangular tunnel construction, the mechanisms of disturbance and damage to the surrounding strata remain unclear, often leading to engineering disasters such as surface collapse, deformation of adjacent buildings, and rupture of underground pipelines. Existing methods for predicting surface settlement also lack sufficient accuracy. To address these issues, a new method for predicting surface settlement is proposed using complex functions and the Maxwell-Betti reciprocal work theorem. First, two two-dimensional calculation models for rectangular tunnels under different stress states are established based on the reciprocal work theorem. Next, conformal mapping is used to transform the rectangular tunnel cross-section into a circle, allowing the derivation of a displacement formula for the tunnel body. The Sagaseta method is then improved to adapt to rectangular tunnel calculations. Using the reciprocal work theorem, a soil loss formula is derived and combined with the improved Sagaseta method to calculate the surface settlement induced by rectangular tunnel excavation. Finally, the effectiveness of the method is validated through four sets of numerical simulations and three sets of field monitoring data. The results show that the theoretical analysis is generally consistent with numerical simulation values and exhibits a high degree of agreement with monitoring data from the three projects. This method effectively adapts to surface settlement prediction for rectangular tunnels in various geological environments, providing a practical reference for engineering applications.

       

    /

    返回文章
    返回