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有限空間新建設施基坑開挖沉降特征及小變形控制

Study on settlement characteristics and microdeformation control of foundation pit excavation in new facilities with limited space

  • 摘要: 針對有限空間新建基坑變形控制難題,采用理論分析、數值推演和工程實踐相結合的研究方法,建立了考慮應力釋放的有限空間夾持力學模型,推導了夾持應力與地層損傷因子的函數關系,研究了應力釋壓孔對有限空間地層應力的影響特征,提出了變形支擋–應力阻隔一體結構控制方法,并通過北京科技大學工程實踐基地(二期)驗證該方法的有效性. 結果表明,地層損傷因子與夾持應力呈線性負相關關系,隨開挖深度逐漸增大,布設釋壓孔可有效降低有限空間夾持應力,釋壓孔有利于調整地層夾持應力和控制地層變形,變形控制率為33.48%~58.72%,且變形支擋–應力阻隔一體結構控制方法的水平變形控制率為28.57%~37.91%,地層沉降變形控制率為36.86%~54.26%,與數值模型計算結果趨勢相同,論證了理論分析和數值推演結果有效性,為有限空間基坑穩定性控制提供數據支撐.

     

    Abstract: To address the problem of deformation control of a new foundation pit in finite space, a mechanical model of strong mutual clamping in finite space considering stress release is developed based on the plane strain method of elastic mechanics by combining theoretical analysis, numerical deduction, and engineering practice. The formation damage factor is introduced to distinguish the structural failure state of the formation, and the functional relationship between the clamping stress and the formation damage factor is obtained. A numerical deduction model of the stress barrier in finite space is constructed. The influence of stress release holes on the stress structure of finite space is examined, and an integrated structural control method for deformation support and stress barrier is proposed. The effectiveness of the method was validated by the engineering practice base project of the University of Science and Technology Beijing. The findings reveal that under the strong mutual clamping effect between the lateral earth pressure of the existing building and the supporting reaction force of the foundation pit, the formation damage factor has a linear negative correlation with clamping stress. The vertical stress in the shallow part of the model without a pressure relief hole increases gradually and then decreases and sets near 21.2–22.5 kPa. The vertical stress level of the model with a pressure relief hole is ~40 kPa lower than that of the model without a pressure relief hole. The horizontal stress of the shallow layer without the pressure relief hole first increases, then decreases, and gradually increases to a maximum value of 94.72 kPa in the early stage of foundation pit excavation. The peak value of horizontal stress is lowered by 65.51%, and the effective release of formation stress is 43.55%–65.51%. The settlement of the foundation pit increases gradually with increasing excavation time. The maximum horizontal deformation of the model with a pressure relief hole is 15.86 mm lower than that of the model without a pressure relief hole, and the vertical deformation is reduced by 39.53%. The effective control rate of formation deformation is 33.48%–58.72%. The horizontal deformation control rate of the deformation support–stress barrier integrated structure support method is 28.57%–37.91%, and the ground settlement deformation control rate is 36.86%–54.26%, which confirms the effectiveness of the method. This work offers data support for the stability control of foundation pits in limited space.

     

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