Flexible steel jacking pipes undergo circumferential deformation under external loads, causing soil pressure redistribution and additional frictional resistance. To accurately predict jacking forces, 2D numerical simulations were utilized to reveal a “quasi-elliptical” soil pressure redistribution evolving with burial depth, soil friction angle, and radius-to-thickness ratio. Based on Spangler’s theory and a full pipe–soil contact model, a novel analytical model incorporating soil arching is proposed. The elastic center method is employed to solve for bidirectional deformations. Crucially, an iterative fitting algorithm is introduced to quantify the non-linear coupling between bidirectional pipe deformation and soil pressure redistribution under various burial depths. Accounting for annular slurry lubrication, a comprehensive jacking force calculation framework is established and validated through an engineering case study. Results indicate: (1) Significant circumferential deformation renders traditional rigid pipe earth pressure assumptions inapplicable. (2) Case study horizontal deformation reaches 8‰ of the pipe diameter, inducing a maximum additional horizontal soil pressure of 125.26 kN/m2, far exceeding traditional active earth pressure. (3) Measured jacking forces successfully fall within the model’s prediction envelope, with the lower limit yielding a −19.3% average error, significantly outperforming current specifications. These findings optimize the design and construction control of large-diameter flexible steel jacking pipes.
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Yang et al. (2026) studied this question.
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