Multi-field coupling numerical simulation heat accumulation zones in gob areas of the crossheading effect on oxidization and heat accumulation zones in gob areas
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摘要: 在U+L型通風條件下,聯絡巷的存在對采空區遺煤自燃有重要的影響.為保證礦井安全生產,并為預防遺煤自燃提供依據,根據煤體低溫氧化的反應機理,使用UDF將煤氧反應的機理編入FLUENT,對聯絡巷存在時采空區氧化升溫帶的分布規律進行多場耦合數值模擬研究.結果表明:聯絡巷的存在使采空區內風流場、氧濃度場及溫度場都發生變化,氧化升溫帶不僅向回風側偏移,而且向采空區深部移動且變寬;聯絡巷與工作面的距離影響氧化升溫帶的寬度,聯絡巷距工作面20 m時氧化升溫帶寬度最大約為25 m;反應進行10 d后,U+L型通風下采空區高溫點的升溫速率可達1.24 K·d-1,是U型通風的1.5倍,但聯絡巷相對工作面的位置對高溫點幾乎沒有影響;與U型通風時相比,U+L通風時回風側的溫度場中聯絡巷口溫度最高,而且比U型通風時相同坐標位置的溫度平均每天高出4 K,隨著聯絡巷與工作面距離的不斷增加,聯絡巷口升溫速率由0.1 K·d-1可升至0.9 K·d-1,這在整體溫度場中雖然不屬于高溫區域,但具有很好的升溫潛質.Abstract: Under the ventilation condition of U + L, a crossheading has important impact on spontaneous combustion of residual coal in a gob area. In order to ensure mine safety and obtain parameters to prevent spontaneous combustion of residual coal, on the basis of the mechanism of coal oxidation and using UDF to incorporate the reaction mechanism into FLUENT, multi-field coupling numerical simulation was performed to study the distribution law of the oxidization and heat accumulation zone in a gob with a cross-heading. The results show that the air flow field, oxygen concentration field and temperature field all change when the crossheading exists, the oxidization and heat aeeumulation zone not only offsets to the return-side but also becomes deeper and wider. The distance between the erossheading and working surface affects the width of the oxidization and heat accumulation zone, and when it is 20 m, the maximum width is approximately 25 m. After 10 d of reaetion, the heating rate at the high temperature point can reach 1.24K·d-1 in the U + L ventilation system, which is 1.5 times that in the U ventilation system. However, the position of the crossheading has little effect on the high temperature point. The temperature nearby the crossheading is the highest in the return-side temperature field of the U + L ventilation system, and the average temperature is d K higher than the same location temperature in the U system per day. With increasing distance from the crossheading to working face, the heating rate in the crossheading rim increases from 0.1 K·d-1 to 0.9 K·d-1. Although the crossheading does not belong to the high temperature region in the whole temperature field, it has good warming potential.
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Key words:
- crossheading /
- gob areas /
- oxidization /
- temperature rise /
- numerical simulation
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