中国安全科学学报 ›› 2026, Vol. 36 ›› Issue (7): 60-69.doi: 10.16265/j.cnki.issn1003-3033.2026.07.0543

• 安全技术与工程 • 上一篇    下一篇

盾构组合刀具切桩机制与变形控制

管晓明1(), 于庆庆1, 刘泽亮2,**(), 撒占友1, 张拥军1   

  1. 1 青岛理工大学 土木工程学院, 山东 青岛 266520
    2 中建五局山东公司, 山东 济南 250000
  • 收稿日期:2026-02-10 修回日期:2026-05-10 出版日期:2026-07-28
  • 通信作者:
    **刘泽亮(1998—),男,山东青岛人,硕士,助理工程师,主要从事房建、隧道盾构刀盘刀具参数优化工作。E-mail:
  • 作者简介:

    管晓明 (1985—),男,山东诸城人,博士,副教授,主要从事隧道与地下工程研究。E-mail:

    撒占友,教授;

    张拥军,教授

Pile-cutting mechanism and deformation control using shield combined cutters

Guan Xiaoming1(), Yu Qingqing1, Liu Zeliang2,**(), Sa Zhanyou1, Zhang Yongjun1   

  1. 1 School of Civil Engineering, Qingdao University of Technology, Qingdao Shandong 266520, China
    2 China Construction Fifth Engineering Bureau Shandong Company, Jinan Shandong 250000, China
  • Received:2026-02-10 Revised:2026-05-10 Published:2026-07-28

摘要:

为防止盾构切削大直径桩基引发地层与结构过大变形问题,保障下穿车站安全,提出采用“六齿切刀-撕裂刀”组合刀具系统,通过优化参数提升六齿切刀切削性能与耐磨性,六齿切刀宽度由100 mm增至150 mm、前角由10°提高至15°。利用显式动力学求解器软件建立撕裂刀和六齿切刀组合刀具切桩模型,结合理论解析与现场实测系统研究切桩破坏机制、力学响应及对周边环境变形的影响。首先,揭示切桩过程依次经历混凝土切削、钢筋划痕、弯曲与缩颈断裂4个破坏阶段,阐明“先撕后剪”协同机制下钢筋的拉-剪复合断裂机制;然后,量化分析刀具力学特性,通过宏观切削力对比、细观断口形貌验证及与经典理论一致性分析,证实数值模型可靠性;最后,基于该优化机制,将现场沉降监测结果作为工程验证。研究结果表明:六齿切刀以切削力为主,接触钢筋后其值由8 kN陡增至300~400 kN;撕裂刀则以贯入力为主,峰值达647 kN;施工引起地表与车站最大沉降仅5.10 mm、隆起2.26 mm变形量远低于控制标准。

关键词: 盾构切桩, 组合刀具, 六齿切刀, 撕裂刀, 刀具切削, 地表沉降

Abstract:

To prevent excessive deformation of the ground and adjacent structures caused by shield tunneling through large-diameter piles and to ensure the safety of under passing stations, this study proposed a combined cutter system consisting of “six-tooth cutters” and “tearing cutters”. The cutting performance and wear resistance of the six-tooth cutter were improved by optimizing the cutter parameters. The cutter width was increased from 100 mm to 150 mm and the rake angle was increased from 10° to 15°. A pile-cutting model for the combined tearing-cutter and six-tooth-cutter system was established using the explicit dynamic solver. The pile failure mechanism, mechanical response, and deformation effect on the surrounding environment were systematically investigated through theoretical analysis and field measurements. Firstly, the pile cutting process was shown to proceed through four failure stages: concrete cutting, steel bar scratching, bending, and necking fracture. The tensile-shear composite fracture mechanism of the steel bar under the “tear-first, shear-later” synergistic action was clarified. Secondly, the mechanical characteristics of the cutters were quantified. The reliability of the numerical model was verified through macroscopic cutting force comparison, mesoscopic fracture morphology analysis, and consistency analysis with classical theories. Finally, field settlement monitoring results were used as engineering validation for this optimized mechanism. The results show that the six-tooth cutter is dominated by cutting force, which surged from 8kN to 300-400 kN upon engaging the steel bar, while the tearing cutter is dominated by penetration force with a peak value of 647 kN. The construction induced a maximum ground and station settlement of only 5.10 mm and a heave of 2.26 mm. These deformations are far below the control thresholds.

Key words: shield pile cutting, combined cutter, six-tooth cutter, ripper cutter, cutter cutting, ground subsidence

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