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Heat conduction and thermal convection on thermal front movement during natural gas hydrate thermal stimulation exploitation

机译:天然气水合物热刺激剥削热前运动热导通和热对流

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摘要

Natural Gas Hydrate (NGH) has attracted increasing attention for its great potential as clean energy in the future. The main heat transfer mode that controls the thermal front movement in the process of NGH exploitation by heat injection was discussed through NGH thermal stimulation experiments, and whether it is reliable that most analytical models only consider the heat conduction but neglect the effect of thermal convection was determined by the comparison results between experiments and Selim’s thermal model. And the following findings were obtained. First, the movement rate of thermal front increases with the rise of hot water injection rate but changes little with the rise of the temperature of the injected hot water, which indicated that thermal convection is the key factor promoting the movement of thermal front. Second, the thermal front movement rates measured in the experiments are about 10 times that by the Selim’s thermal model, the reason for which is that the Selim’s thermal model only takes the heat conduction into account. And third, theoretical calculation shows that heat flux transferred by thermal convection is 15.56 times that by heat conduction. It is concluded that thermal convection is the main heat transfer mode that controls the thermal front movement in the process of NGH thermal stimulation, and its influence should never be neglected in those analytical models.
机译:天然气水合物(NGH)由于未来的清洁能源而受到巨大的关注。通过NGH热刺激实验讨论了通过NGH热喷射进行热注射过程中的热前运动的主传热模式,以及最可靠的是大多数分析模型只考虑导热,但忽略热对流的效果实验与塞利姆热模型之间的比较结果决定。并获得了以下发现。首先,热前沿的运动速率随着热水喷射率的升高而增加,但随着注入的热水温度的升高而变化几乎没有变化,这表明热对流是促进热前沿运动的关键因素。其次,在实验中测量的热前运动率是由Selim的热模型的约10倍,其原因是Selim的热模型仅考虑了热传导。第三,理论计算表明,通过热对流传递的热量通量是通过热传导的15.56倍。结论是,热对流是控制NGH热刺激过程中的热前运动的主要传热模式,并且在这些分析模型中不会忽略其影响。

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