Scientific Reports· 2026Q1
Development and performance evaluation of a novel borehole protection screen pipe for preventing borehole collapse in soft and fragmented rock strata
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- Q1SCImago
- 2026year
Short summary
A novel stainless-steel socket-type screen pipe with an "upper large, lower small" structure effectively prevented borehole collapse in soft and fragmented rock strata, increasing gas drainage volume 8-10 times compared to unprotected boreholes.
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Key points
- A novel "upper large, lower small" socket-type screen pipe was developed for borehole protection in soft rock.
- The pipe effectively prevented borehole collapse at coal-rock interfaces, identified as high-incidence zones.
- Protected boreholes showed gas drainage concentrations >80% and flow rates ≥ 0.2 m³/min.
- Total extracted gas volume was 8-10 times higher than unprotected boreholes (30-45% concentration, 0.03-0.06 m³/min flow rate).
AI-generated from the title and abstract; the full text is not read.
Abstract
High-level roof borehole is one of the core technologies for gas control in high-gas mines in China. However, in soft and fragmented rock strata, the influence of mining-induced stress disturbance often causes compression-torsion deformation, borehole wall collapse, or dislocation when the borehole passes through the coal-rock interface due to lithological differences. This results in blockage of the gas flow channel or even borehole failure. Existing borehole protection technologies generally suffer from issues such as heavy screen pipes, low construction efficiency, and difficulty in large-scale application. To address these problems, this study, based on the engineering background of Xin’an Coal Mine, developed a stainless-steel socket-type screen pipe with an “upper large, lower small” structure by systematically analyzing the necessity of borehole protection and the stress characteristics of protective pipes. A stepwise insertion method driven by the drill rig’s jacking system was adopted to achieve full-length borehole protection in soft rock strata. Meanwhile, the rock formation borehole detector was used to analyze borehole wall stability, and a comparative experiment between protected and unprotected boreholes was carried out at the 14,230 working face of Xin’an Coal Mine. The results indicate that the rock formation detector identified the coal-rock interface as the high-incidence zone of borehole collapse, whereas the novel protective screen pipe effectively maintained borehole wall integrity in this zone. The gas drainage concentration of protected boreholes remained stable above 80%, with a pure extraction flow rate of ≥ 0.2 m 3 /min, and the total extracted gas volume was 8–10 times higher than that of unprotected boreholes (with extraction concentrations of 30%–45% and pure flow rates of 0.03–0.06 m 3 /min). Furthermore, based on a fluid‑solid coupling model and field data from Xin’an Coal Mine, the recommended spacing for high‑level roof boreholes under the present geological conditions is 3.0–3.5 m, with 3‑4 boreholes suggested for field application. The proposed novel screen pipe and corresponding construction technology can mitigate borehole collapse and blockage for high-level roof boreholes under the geological conditions of soft and fragmented rock strata at Xin’an Coal Mine, achieving substantial improvement in gas drainage efficiency and borehole utilization in field tests.
The authors' abstract, as published at the source. Scientific Reports, 2026 · DOI ↗
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