Kong Chao, Guan Guoqing, Gu Song, Zhou Zaiyan, Wang Haiyan
School of Civil Engineering, Southwest University of Science and Technology, Mianyang, 610031, People's Republic of China.
China Railway 15th Bureau Group City Construction Engineering Co. Ltd., Luoyang, 471000, People's Republic of China.
Sci Rep. 2023 Sep 11;13(1):14992. doi: 10.1038/s41598-023-42189-9.
In practical engineering, whilst estimating the jacking force of rectangular pipe jacking using an empirical formula, the results obtained from said formula deviate from reality and manifest inadequate engineering guidance. The equations governing the applied force during the installation of rectangular pipe jacking have been derived for various contact states involving the interaction between the pipe, slurry, and soil. The distinct stress conditions in the pipe jacking process as well as the shear-friction mechanism between the pipe and the surrounding soil have been taken into account. The displacement control method is introduced to simulate the pipe-slurry-soil contact friction during the pipe jacking process in FLAC. Additionally, the pipe jacking behavior, pipe-slurry-soil contact frictional force, and variation law of the jacking force are also simulated. Mutual verification was carried out using the results obtained from field monitoring, numerical and theoretical. The findings are as follows: the established equations for calculating pipe jacking force are highly applicable across various conditions of pipe-slurry-soil contact, and the outcomes derived from theoretical formulas align remarkably well with those obtained through field monitoring and numerical simulation. During the jacking process, the sidewalls exhibit initial partial sliding followed by a complete movement as the jacking force intensifies and subsequently diminishes, eventually attaining stability during the behavior adjustment phase. Moreover, the bottom pipe-soil contact is the most common situation in actual construction.
在实际工程中,利用经验公式估算矩形顶管的顶力时,该公式所得结果与实际情况存在偏差,工程指导意义不足。针对矩形顶管施工过程中管、泥浆和土体相互作用的不同接触状态,推导了顶管施工时作用力的控制方程,考虑了顶管过程中不同的应力状态以及管道与周围土体之间的剪摩擦机理。引入位移控制法,在FLAC中模拟顶管过程中管道 - 泥浆 - 土体的接触摩擦,同时模拟了顶管行为、管道 - 泥浆 - 土体接触摩擦力及顶力变化规律。采用现场监测、数值模拟和理论计算结果相互验证,结果表明:所建立的顶管力计算方程在管道 - 泥浆 - 土体不同接触状态下具有较高的适用性,理论公式计算结果与现场监测及数值模拟结果吻合度高。顶进过程中,随着顶力增大再减小,侧壁先出现局部初始滑动,后整体移动,最终在行为调整阶段达到稳定。此外,管底与土体接触是实际施工中最常见的情况。