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利用自由基浓度研究盆地古地温的方法 被引量:1
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作者 邱楠生 汪集暘 涂建琪 《地球物理学报》 SCIE EI CAS CSCD 北大核心 1996年第S1期270-275,共6页
主要讨论了利用自由基浓度研究盆地古地温的三种方法,并结合实测的自由基浓度值估算了塔里木盆地TZ1井的古地温梯度和反演了琼东南盆地单井的热流变化历史.
关键词 自由基浓度 古地温 古热流 干酪根
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含油气盆地热史研究的电子顺磁共振(EPR)方法
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作者 邱楠生 汪集旸 《地质论评》 CAS CSCD 北大核心 1996年第S1期356-361,共6页
利用电子顺磁共振(EPR)技术可以简便地测定沉积有机质中干酪根的自由基。自由基浓度(Ng)是有机质热演化成熟的良好指标;本文根据新生代盆地内系列成熟度样品的自由基浓度值,利用拟合计算的方法,反演了盆地热流的变化历史;所得到的热流... 利用电子顺磁共振(EPR)技术可以简便地测定沉积有机质中干酪根的自由基。自由基浓度(Ng)是有机质热演化成熟的良好指标;本文根据新生代盆地内系列成熟度样品的自由基浓度值,利用拟合计算的方法,反演了盆地热流的变化历史;所得到的热流变化结果与用Ro方法反演所得结论一致。 展开更多
关键词 电子顺磁共振(EPR) 自由基 古热流 干酪根
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Lattice Boltzmann Simulation of CO_2 Transport in Kerogen Nanopores——An Evaluation of CO_2 Sequestration in Organic-Rich Shales 被引量:3
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作者 Sherifa Cudjoe Reza Barati 《Journal of Earth Science》 SCIE CAS CSCD 2017年第5期926-932,共7页
Organic-rich shale resources remain an important source of hydrocarbons considering their substantial contribution to crude oil and natural gas production around the world. Moreover, as part of mitigating the greenhou... Organic-rich shale resources remain an important source of hydrocarbons considering their substantial contribution to crude oil and natural gas production around the world. Moreover, as part of mitigating the greenhouse gas effects due to the emissions of carbon dioxide (CO2) gas, organic-rich shales are considered a possible alternate geologic storage. This is due to the adsorptive properties of organic ke- rogen and clay minerals within the shale matrix. Therefore, this research looks at evaluating the seques- tration potential of carbon dioxide (CO2) gas in kerogen nanopores with the use of the lattice Boltzmann method under varying experimental pressures and different pore sizes. Gas flow in micro/nano pores differ in hydrodynamics due to the dominant pore wall effects, as the mean free path (λ) of the gas molecules become comparable to the characteristic length (H) of the pores. In so doing, the traditional computational methods break down beyond the continuum region, and the lattice Boltzmann method (LBM) is employed. The lattice Boltzmann method is a mesoscopic numerical method for fluid system, where a unit of gas particles is assigned a discrete distribution function (/). The particles stream along de- fined lattice links and collide locally at the lattice sites to conserve mass and momentum. The effects of gas-wall collisions (Knudsen layer effects) is incorporated into the LBM through an effective-relaxation- time model, and the discontinuous velocity at the pore walls is resolved with a slip boundary condition. Above all, the time lag (slip effect) created by CO2 gas molecules due to adsorption and desorption over a time period, and the surface diffusion as a result of the adsorption-gradient are captured by an adsorption isotherm and included in our LBM. Implementing the Langmuir adsorption isotherm at the pore walls for both CO2 gas revealed the underlying flow mechanism for CO2 gas in a typical kerogen nano-pore is dominated by the slip flow regime. Increasing the equilibrium pressure, increases the mass flux due to ad- sorption. On the other hand, an increase in the nano-pore size caused further increase in the mass flux due to free gas and that due to adsorbed gas. Thus, in the kerogen nano-pores, CO2 gas molecules are more adsorptive indicating a possible multi-layer adsorption. Therefore, this study not only provides a clear un- derstanding of the underlying flow mechanism of CO2 in kerogen nano-pores, but also provides a potential alternative means to mitigate the greenhouse gas effect (GHG) by sequestering CO2 in organic-rich shales. 展开更多
关键词 kerogen NANOPORES lattice Boltzmann method CO2 sequestration slip flow Lang- muir isotherm.
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