缓倾斜煤层采空区CO2−N2混合惰化“三带”分布规律研究

    Study on distribution law of “three zones” under CO2-N2 mixed inertization in goaf of gently inclined coal seam

    • 摘要: 为了解决缓倾斜煤层采空区遗煤自然发火问题,基于采空区多孔介质模型与气体组分运输方程,建立了缓倾斜煤层采空区气体运移数值模型,研究了单一CO2和CO2−N2混合注入位置与注入量参数变化对采空区“三带”分布范围的影响,分析了CO2−N2混合惰化下采空区内气体运移规律。结果表明:当进风侧注CO2惰化采空区时,随着CO2注入位置距工作面距离的增加,氧化带面积呈先减小后增大的趋势;随着CO2注入量的增加,氧化带面积呈减小的趋势,CO2运移形状呈“喇叭状”,进风侧靠近工作面区域及采空区中部区域形成“惰化盲区”;当进风侧注CO2、回风侧注N2混合惰化时,随着N2注入位置距工作面距离的增加,氧化带面积呈先减小后增大的趋势;随着N2注入量的增加,氧化带面积呈减小的趋势,N2运移形状呈“波浪状”,采空区“惰化盲区”的面积减小。当CO2注入位置为距工作面40 m、注入量为750 m3/h,N2注入位置为距工作面50 m、注入量为750 m3/h时,回风巷CO2体积分数未超过1.5%,此时CO2−N2混合惰化效果最佳,氧化带面积从4 100.445 m2降至2 463.205 m2,较单一CO2惰化条件下氧化带面积减少了14.84%,并在采空区中部形成了“隔离带”,有效抑制了O2向采空区深处运移。

       

      Abstract: To address the problem of spontaneous combustion of residual coal in goaf of gently inclined coal seams, a numerical model of gas migration in goaf was established based on the porous medium model and gas component transport equation. The influences of injection position and flow rate of pure CO2 and CO2-N2 mixture on the distribution range of the “three zones” in goaf were investigated, and the gas migration law under CO2-N2 mixed inertization was analyzed. The results show that when CO2 is injected from the intake air side to inertize the goaf, the area of the oxidation zone first decreases and then increases with the increase of the distance between the CO2 injection position and the working face. With the increase of CO2 injection rate, the oxidation zone area decreases, and the CO2 migration pattern presents a “trumpet shape”, forming “inertization blind zones” near the working face on the intake air side and in the middle of the goaf. When CO2 is injected on the intake air side and N2 on the return air side for mixed inertization, the oxidation zone area first decreases and then increases with the increase of the distance between the N2 injection position and the working face. With the increase of N2 injection rate, the oxidation zone area decreases, and the N2 migration pattern shows a “wave shape”, which reduces the area of the “inertization blind zone” in the goaf. The optimal inertization effect is achieved when the CO2 injection position is 40 m from the working face with an injection rate of 750 m3/h, and the N2 injection position is 50 m from the working face with an injection rate of 750 m3/h. Under these conditions, the CO2 volume fraction in the return airway does not exceed 1.5%, the oxidation zone area decreases from 4 100.445 m2 to 2 463.205 m2, which is 14.84% lower than that under single CO2 inertization. An “isolation zone” is formed in the middle of the goaf, which effectively restrains the migration of O2 to the deep goaf.

       

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