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Physical Simulation of Temperature and Pressure Evolvement in Coal by Different Refrigeration Modes for Freezing Coring

机译:不同制冷模式对凝固方式的温度和压力演化物理仿真

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Reduction of gas desorption capacity by cooling coal samples seems a feasible way to improve the accuracy of gas in place estimation. To find an efficient refrigeration mode for the freezing coring technology, the freezing tests for coal containing gas (at 0, 1.09, and 2.15 MPa) are separately conducted based on the precalculation of dry ice dose. The evolvement of coal temperature and gas pressure shows that under the catalysis of ethanol, the average cooling rate of coal gradually accelerates with the increased amount of ethanol (from 0 to 600 mL) in the early stage. Additionally when charging gas into the coal canister, the cooling rate of coal at each subzero temperature accelerates with the increased adsorption pressure of gas, and the low temperature preservation time (<0 °C) of coal is also prolonged. There is a good linear relationship between gas pressure and coal temperature, which indicates that the CH4 adsorption and desorption in coal are basically reversible; but the desorption hysteresis is extensively observed, associated with the occurrence of numerous ink-bottle type micropores.
机译:通过冷却煤样品降低气体解吸能力似乎是一种可行的方式来提高天然气的准确性。为了找到冷冻芯技术的有效制冷模式,基于干冰剂的预钙化,分别进行含煤气(0,1.09和2.15MPa)的冷冻试验。煤液和气体压力的演变表明,在乙醇的催化下,煤的平均冷却速率随着早期乙醇(从0至600毫升)的增加而逐渐加速。此外,当将气体充电到煤炭罐中时,每个分零温度的煤的冷却速率随着气体吸附压力的增加而加速,并且煤的低温保存时间(<0℃)也延长。气体压力和煤炭温度之间存在良好的线性关系,这表明煤中的CH 4吸附和解吸基本可逆;但是,与许多墨水瓶型微孔的发生相关,解吸滞后被广泛观察。

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