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March 29, 2026Water0 citationsOpen Access

Experimental Study on Fiber Optic Monitoring of Settlement Deformation During Water Injection in Deep Unconsolidated Strata

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DZDingding ZhangWLWenxuan LiuYDYanyan Duan

Key Points

  • The study aims to investigate the coupling mechanism of seepage and soil deformation during groundwater injection in mining areas.
  • Constructed a visual cylindrical model (1025 mm × 150 mm) with well-graded analogous materials.
  • Embedded FBG sensors at depths of 200/400/600 mm and used a dial indicator for measurements.
  • Conducted two cycles of water injection and dewatering to assess deformation characteristics.
  • Water injection creates excess pore water pressure, inducing tensile stress in the model.
  • Post-injection stress redistributes with tension above and compression below the injection point.
  • Upper monitoring point experiences a tensile strain of 597.77 με, while lower depths show a compressive strain of -253.90 με.

Abstract

Ground subsidence and shaft lining deformation caused by compressed dewatered bottom aquifers in deep unconsolidated strata mining areas are critical engineering challenges, making the study of the seepage–soil deformation coupling mechanism during groundwater injection remediation vital. This study built a visual cylindrical model (1025 mm × 150 mm); formulated well-graded analogous materials based on the D20 principle to simulate sandy gravel layers; embedded FBG sensors at 200/400/600 mm depths, combined with a dial indicator on the model top; and conducted two water injection–dewatering cycles. Results indicate: water injection generates excess pore water pressure, placing the entire model in a tensile stress state with top rebound; post-injection vertical stress redistributes (tension above the injection point, compression below, and an interlaced transitional band), validating the necessity of full-section injection; during the second injection–dewatering cycle, tensile strain at the upper monitoring point reaches 597.77 με, while compressive strain at lower depths reaches −253.90 με, internal deformation stabilizes within 6.5–10.0 days, injection improves the in situ stress state by reducing effective stress, and the deformation of the field strata remains in a stabilization period, with the stabilization time decreasing as the depth of the strata increases. This study clarifies the temporal evolution and representative spatial variation in internal strain at monitored depths during injection, providing theoretical and design references for optimizing water injection schemes to mitigate coal mine shaft damage.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69c8c2b8de0f0f753b39d1b2https://doi.org/10.3390/w18070804
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