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綜放開采頂煤與覆巖力鏈結構及演化光彈試驗研究

Photoelastic experimental study on the force chain structure and evolution in top coal and overlaying strata under fully mechanized top coal caving mining

  • 摘要: 綜放開采過程中頂煤和覆巖由連續向非連續和散體介質狀態轉變,描述礦壓在斷裂覆巖和碎裂頂煤中的形成、傳遞方式和作用機理是綜放開采礦壓理論研究的難點.基于光彈試驗原理,借助散體介質雙軸加載雙向流動光彈試驗裝置,對綜放開采過程中散體頂煤與非連續覆巖關鍵層中力鏈網絡結構及演化特征進行研究.研究發現:地層載荷在煤巖體中構成了錯綜復雜的弱-強力鏈網絡.綜放開采打破了初始力鏈網絡結構的平衡,頂煤與覆巖中形成梁-拱復合力鏈拱結構,覆巖荷載以強力鏈形式傳遞到工作面前方煤體.隨著工作面推進和頂煤放出,覆巖梁-拱力鏈網絡不斷擴展和演化,形成更大規模的力鏈拱結構.關鍵層彎曲、斷裂和失穩運動,使工作面前方的強力鏈拱腳出現回縮現象,力鏈分布密度和強度增加,導致工作面來壓現象.地層內水平力作用使頂煤與覆巖內的梁-拱力鏈結構效應較更加明顯,整體拱結構形態愈加完整,強力鏈網絡結構更加緊致,關鍵層斷裂失穩時力鏈拱對工作面煤層的作用力更加顯著.

     

    Abstract: In top coal caving mining, the state of top coal and overburden strata changes from continuous media to discontinuous and loose aggregate media. It is difficult to theoretically describe the transition and action of mining induced pressure in discrete top coal and fractured overlaying strata. Based on the photoelastic experiment principle, the network structure and the evolution characteristics of force chains in discrete top coal and discontinuous overlaying key strata are investigated during fully mechanized top coal caving mining by employing photoelastic test equipment that allows biaxial loading and bilateral particle flowing. The study shows that overburden load in discontinuous strata displays a complicated network composed by weak and strong force chains. Top coal caving mining destroys the equilibrium of the initial force chain network structure, and a composed beam-arch force chain structure forms in top coal and overlaying strata, where the overburden load is transformed into the front coal seam in the form of strong force chains. With mining face advancing and top coal caving, the beam-arch force chain network in overlaying strata develops, and a larger force chain arch structure forms. Bending, breaking and instable movement of the key strata give rise to an inverse moving of the force chain arching foot and a compaction process of the strong force chain network. The distribution density and intensity of force chains evidently increase, resulting in strong pressure phenomena taking place in the mining face. Under the biaxial loading condition, the effect of the beam-arch force chain structure becomes much evident in the earth. The entire structure of the force chain arch displays perfectly, the structure of the strong force chain network becomes denser, and due to breaking and instability of the key stratum, the pressure phenomenon of the force chain arch in front of the mining face and coal seam manifests much pronounced.

     

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