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Formate-Dependent Microbial Conversion of CO 2 and the Dominant Pathways of Methanogenesis in Production Water of High-temperature Oil Reservoirs Amended with Bicarbonate

机译:碳酸氢盐修正的高温油藏生产用水中CO 2 的形态依赖性微生物转化和甲烷生成的主要途径

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CO_(2)sequestration in deep-subsurface formations including oil reservoirs is a potential measure to reduce the CO_(2)concentration in the atmosphere. However, the fate of the CO_(2)and the ecological influences in carbon dioxide capture and storage (CDCS) facilities is not understood clearly. In the current study, the fate of CO_(2)(in bicarbonate form; 0~90 mM) with 10 mM of formate as electron donor and carbon source was investigated with high-temperature production water from oilfield in China. The isotope data showed that bicarbonate could be reduced to methane by methanogens and major pathway of methanogenesis could be syntrophic formate oxidation coupled with CO_(2)reduction and formate methanogenesis under the anaerobic conditions. The bicarbonate addition induced the shift of microbial community. Addition of bicarbonate and formate was associated with a decrease of Methanosarcinales , but promotion of Methanobacteriales in all treatments. Thermodesulfovibrio was the major group in all the samples and Thermacetogenium dominated in the high bicarbonate treatments. The results indicated that CO_(2)from CDCS could be transformed to methane and the possibility of microbial CO_(2)conversion for enhanced microbial energy recovery in oil reservoirs.
机译:包括油藏在内的深地下地层中的CO_(2)固存是降低大气中CO_(2)浓度的一项潜在措施。然而,对于CO_(2)的命运以及二氧化碳捕集与封存(CDCS)设施的生态影响尚不清楚。本研究以中国油田的高温采出水为研究对象,以10 mM的甲酸作为电子给体和碳源,以碳酸氢盐形式(0〜90 mM)形成CO_(2)的去向。同位素数据表明,产甲烷菌可以将碳酸氢盐还原为甲烷,甲烷化的主要途径是在厌氧条件下,同养甲酸的氧化结合CO_(2)还原和甲酸的甲烷化。加入碳酸氢盐会引起微生物群落的转移。添加碳酸氢盐和甲酸盐与甲烷菌减少,但在所有处理中甲烷菌的促进。在所有样品中,热脱硫弧菌是主要的族群,而在高碳酸氢盐处理中,热产乙酸菌占主导。结果表明,CDCS的CO_(2)可以转化为甲烷,微生物CO_(2)转化的可能性提高了油藏中的微生物能量回收率。

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