首页> 外文期刊>Journal of natural gas science and engineering >TOUGHREACT-CO2Bio-A new module to simulate geological carbon storage under biotic conditions (Part 2): The bio-geochemical reactive transport of CO2-CH4-H-2-H2S gas mixtures
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TOUGHREACT-CO2Bio-A new module to simulate geological carbon storage under biotic conditions (Part 2): The bio-geochemical reactive transport of CO2-CH4-H-2-H2S gas mixtures

机译:TAGHREACT-CO2BIO-A新模块,用于模拟生物条件下的地质碳储存(第2部分):CO2-CH4-H-2-2-H2S气体混合物的生物地球化学反应性

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The capabilities of TOUGHREACT-CO2Bio to simulate the multiphase flow of CO2-CH4-H-2-H2S gas mixtures and brine in deep geological formations were presented in Shabani and Vilcaez (2019) [Journal of Natural Gas Science and Engineering. 63, 85-94]. Here we present the capabilities of CO2Bio to simulate bio-geochemical reactive transport of CO2-CH4-H-2-H2S gas mixtures and brine in depleted oil reservoirs under biotic conditions where CO2 and/or crude oil can be converted to CH4. In CO2Bio, the microbial production/consumption of gases (CO2, CH4, H-2, and H2S) is coupled with the multiphase flow of CO2-CH4-H-2-H2S gas mixtures and brine through a sequential iterative method. The kinetic model used to represent rates of crude oil biodegradation and microbial production/consumption of gases accounts for the different response of microbial species to changes in pH derived from the dissolution of CO2 into the aqueous phase and water-rock reactions. To verify the microbial capabilities of CO2Bio, we simulate batch experiments conducted to analyze the stimulation effect of CO2 and a nutrient package on the microbial conversion of CO 2 and crude oil to CH4 . To confirm the capabilities of CO2Bio to simulate the multiphase bio-geochemical reactive transport of CO2-CH4-H-2-H2S gas mixtures and brine in deep geological formations under biotic conditions, we conducted a 3D field-scale simulation of alternate injection of CO2 and produced water into a section of the Cushing oilfield of Oklahoma. Overall, simulation results show that CO2Bio can simulate the complex multiphase-multicomponent reactive transport of CO2-CH4-H2S-H-2 gas mixtures and brine under biotic conditions.
机译:Shabani和Vilcaez(2019年)介绍了抗硬化-CO2BIO以模拟CO 2 -CH4-2-2-H2S气体混合物和盐水的多相流动的能力[天然气科学与工程学报。 63,85-94]。在这里,我们介绍了CO2BIO的能力,以模拟CO 2 -CH4-H-2-H2S气体混合物和盐水中的生物地球化学反应转运在生物条件下的耗尽油储存器中,其中CO 2和/或原油可以转化为CH4。在CO2BIO中,通过序贯迭代方法与CO 2 -CH4-H-2-2-H2S气体混合物和盐水的多相流动的微生物生产/消耗偶联。用于代表原油生物降解和气体微生物生产/消费的速率的动力学模型占微生物物种对来自CO 2溶解到水相和水岩反应的pH的变化的不同响应。为了验证CO2BIO的微生物能力,我们模拟进行的分批实验,分析CO 2的刺激效果和营养包装对CO 2和原油至CH4的微生物转化率。为了确认CO2BIO的能力模拟生物条件下的DE2-CH4-2-2-2-2-H2S气体混合物和盐水的多相生物地球化学反应性和盐水中的盐水混合物,我们进行了替代注射二氧化碳的3D场测定模拟并生产水进入俄克拉荷马州的库孔油田的一部分。总体而言,仿真结果表明,CO2BIO可以在生物条件下模拟CO 2 -CH4-H2S-H-2气体混合物和盐水的复杂多相多组分反应转运。

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