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Simulation of coal low-temperature oxidation heating process in gob with “U+L” ventilation

机译:“ U + L”通风模拟采空区煤低温氧化加热过程

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In a gob with U + L ventilation, a tail roadway exists, which has important effects on the oxidation heating process and gas concentration in gob areas. Research on the heating process and gas concentration in the “U+L” ventilation can provide the basis for the prevention of spontaneous combustion, thus, the regularities of the oxidation heating process and gas concentration in gob areas were researched by simulation. Results showed that compared with U ventilation, U + L ventilation caused the high temperature zone and high temperature points in the gob areas to increase in depth and width and to be influenced by the distance between the crossheading of the tail roadway and workface. The heating rate of the high-temperature point in the gob with tail roadway was 1.5 times of that in gob without tail roadway, but was unaffected by the location of the tail roadway. Tail roadway had diversion effects on the airflow, especially near return side and the maximum reduction of gas concentration can be 0.36%.
机译:在采用U + L通风的采空区中,存在尾部巷道,这对氧化加热过程和采空区中的气体浓度具有重要影响。研究“ U + L”通风中的加热过程和气体浓度可以为防止自燃提供基础,因此,通过模拟研究了氧化加热过程和采空区气体浓度的规律。结果表明,与U型通风相比,U + L型通风导致采空区的高温区和高温点的深度和宽度增加,并且受尾巷横梁与工作面之间距离的影响。带尾巷的采空区中高温点的加热速率是不带尾巷的采空区中高温点的1.5倍,但不受尾巷位置的影响。尾部巷道对气流有转移作用,尤其是在回风口附近,瓦斯浓度的最大降低幅度为0.36%。

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