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礦山采空區邊坡動態穩定性評價方法

Dynamic stability evaluation method of mine goaf slopes

  • 摘要: 礦山邊坡因采空區沉降引發的斜面巖土體崩塌破壞,是一種破壞力極強的地質災害. 由于傳統的穩定性評價方法未考慮采空區沉降造成的應力場變異,難以實現礦山邊坡的動態穩定性評價,因而在礦山地質災害預警預防方面存在諸多限制. 基于此,本研究針對礦山采空區滑坡的成因機制,建立了一套適用于礦山邊坡的動態穩定性評價方法. 首先通過構建采空區沉降分析模型,計算采空區上方巖體的沉降范圍及其產生的沖擊作用力,分析沉降對坡體應力場的影響,并在此基礎上對傳統不平衡推力法進行修正. 案例分析結果顯示,傳統方法未考慮采空區沉降作用和鎖固段的破壞情況,導致穩定性系數計算偏大,為1.355. 而改進方法通過考慮采空區沉降信息,計算得出鎖固段穩定性系數為0.667,整體穩定性系數為0.979,與礦山采空區邊坡實際破壞情況一致. 當沉降位移比(SHDR)大于0.73時,采空區邊坡穩定性會發生明顯變異,因而會在相對安全的工況下發生失穩破壞. 改進方法通過考慮采空區沉降作用和鎖固段的破壞情況,可以更好地實現礦山邊坡穩定性的評價,為礦區更好地應對類似地質災害提供有效參考.

     

    Abstract: The collapse and damage of inclined rock and soil masses caused by subsidence in mining goaf areas pose serious geological risks. These hazards are not only highly destructive and widespread but also occur suddenly, endangering mine operations and human safety. Traditional stability evaluation methods often overlook the variations in thrust caused by the settlement of goaf blocks at the leading edge locking section, making it difficult to dynamically evaluate mine slope stability. This limits the effectiveness of early warning and prevention strategies for geological disasters in mines. To address these challenges, this study introduces a dynamic stability evaluation method tailored for mine slopes, targeting the landslide formation mechanisms in mining goaf areas. The first involves constructing a settlement analysis model for the goaf areas to calculate the settlement range of the rock mass above the goaf and the resulting impact forces. The proposed model helps analyze how settlement affects the stress field of slopes. Therefore, the traditional unbalanced thrust method is modified. During stability evaluation, the safety factor of the slope’s locking section under the subsidence effect of the goaf was analyzed. When the safety factor of the locking section (SFk) is less than 1, the residual strength needs to be considered to calculate the overall safety factor (SF) of the slope. If SFk exceeds 1, the section remains intact, allowing the SF to be calculated under original working conditions. The Jiweishan case in Wulong, Chongqing, illustrates the limitations of traditional methods, which neglected the settlement and locking section damage, overestimating the safety factor at 1.355. The improved method, accounting for these effects, found the locking section’s safety factor at 0.667, indicating damage and an overall landslide safety factor of 0.979. This finding aligns with the observed failure and instability mechanism of the mine goaf landslide. When the weight of the settlement slope at the rear edge is large, settlement causes instantaneous shear failure of the landslide locking section, substantially reducing the stability of the Jiweishan landslide. The settlement–horizontal displacement ratio (SHDR) of the slope is crucial in dynamic stability analysis for goaf areas. An SHDR greater than 0.73 indicates significant stability variations, leading to instability under working conditions previously deemed safe. This improved method offers a more accurate assessment of mine slope stability by considering goaf settlement and locking section damage, providing a valuable tool for managing similar geological disasters.

     

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