冻结和未冻结气饱和土的热导率

IF 2.4 Q2 GEOSCIENCES, MULTIDISCIPLINARY
Evgeny Chuvilin, Dinara Davletshina, Boris Bukhanov, Sergey Grebenkin
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引用次数: 0

摘要

北极永久冻土层通常包含天然气饱和层。冻土区和冻土中的气体成分可以在不同压力下存在,预计会影响其性质和行为。在低于水合物形成条件的压力下,观察了孔隙气体压力对饱和甲烷或二氧化碳的冻结和未冻结粉土导热系数的影响。可变气体压力和温度条件在一个特殊设计的压力电池中模拟,它允许在正温度和负温度下测量加压样品的导热系数。利用亚马尔半岛气体喷发坑附近的天然样品进行的实验表明,即使在高含水率下,热导率对孔隙气体压力也很敏感。当气体压力从0.1 MPa增加到2 MPa时,冻结和未冻结甲烷饱和土的导热系数分别提高了4%和6%。在CO2饱和的情况下,当压力从0.1 MPa变化到0.9 MPa时,冷冻和未冷冻样品的导热系数分别增加了25%和15%。这一结果激发了进一步的专门研究气体类型和压力对封闭气饱和岩热性能的影响,其中孔隙压力在冻结过程中增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Conductivity of Frozen and Unfrozen Gas-Saturated Soils
Arctic permafrost often contains gas-saturated horizons. The gas component in freezing and frozen soils can exist under different pressures, which are expected to affect their properties and behavior. The effect of pore gas pressure on the thermal conductivity of frozen and unfrozen silt loam saturated with methane or carbon dioxide at pressures below the hydrate formation conditions is observed in the current study. The variable gas pressure and temperature conditions are simulated in a specially designed pressure cell, which allows thermal conductivity measuring in pressurized samples at positive and negative temperatures. The experiments using natural samples collected near the gas emission crater (Yamal Peninsula) show that thermal conductivity is sensitive to pore gas pressure even at high moisture contents. The thermal conductivity of methane-saturated soil becomes 4% and 6% higher in frozen and unfrozen samples, respectively, as the gas pressure increases from 0.1 MPa to 2 MPa. In the case of CO2 saturation, the respective thermal conductivity increase in frozen and unfrozen samples reaches 25% and 15% upon pressure change from 0.1 to 0.9 MPa. The results stimulate further special studies of the effects of gas type and pressure on the thermal properties of closed gas-saturated taliks, of which the pore pressure is increasing during freezing up.
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来源期刊
Geosciences (Switzerland)
Geosciences (Switzerland) Earth and Planetary Sciences-Earth and Planetary Sciences (all)
CiteScore
5.30
自引率
7.40%
发文量
395
审稿时长
11 weeks
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