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在5兆帕、55°C条件下产生甲烷的高压嗜热产电产甲烷系统。

High-pressure thermophilic electromethanogenic system producing methane at 5 MPa, 55°C.

作者信息

Kobayashi Hajime, Nagashima Ayano, Kouyama Miki, Fu Qian, Ikarashi Masayuki, Maeda Haruo, Sato Kozo

机构信息

Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan; Engineering for Sustainable Carbon Cycle (INPEX Corporation) Social Cooperation Program, Frontier Research Center for Energy and Resource (FRCER), The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan.

出版信息

J Biosci Bioeng. 2017 Sep;124(3):327-332. doi: 10.1016/j.jbiosc.2017.04.001. Epub 2017 Apr 22.

Abstract

Toward applications of bio-electrochemical systems in industrial processes and extreme environments, electromethanogenesis under high-pressure conditions was examined. Stainless-steel single-chamber reactors specifically designed to examine bio-electrochemical reactions under pressurized conditions were inoculated with thermophilic microorganisms originated from an oilfield formation water. The reactors were incubated at 5 MPa, 55°C in fed-batch operational mode with an applied voltage of 0.7 V. In the first few fed-batch cycles, hydrogen was mainly produced. After the third cycle, however, the reactors produced only methane simultaneously with current generation. The methane-production rate of the reactors showed an applied-voltage dependence and increased from 34.9 to 168.4 mmol m day with an increase in the applied voltage from 0.4 to 0.9 V. The efficiency of capturing electrons in the produced methane on average exceeded 70% with the applied voltage of 0.4 V or higher. Cyclic voltammetry further confirmed abilities of the bioelectrodes to catalyze electrochemical reactions at 5 MPa. Performance of the electromethanogenesis system was not altered under lower pressure conditions (1.2 and 2.5 MPa). An exoelectrogenic bacterium affiliated with the genus Thermincola and a methanogen belonging to the genus Methanothermobacter were detected as the dominant species in the bioanode and biocathode microbiotas, respectively. Thus, our results indicated that electromethanogenesis systems could be developed and operated under highly-pressurized conditions, suggesting that applications of the bio-electrochemical system in high-pressure environments (including high-temperature subsurface reservoirs) can be technically feasible.

摘要

针对生物电化学系统在工业过程和极端环境中的应用,研究了高压条件下的电产甲烷过程。专门设计用于在加压条件下检测生物电化学反应的不锈钢单室反应器接种了源自油田地层水的嗜热微生物。反应器在5兆帕、55℃下以分批补料操作模式培养,施加电压为0.7伏。在最初的几个分批补料循环中,主要产生氢气。然而,在第三个循环之后,反应器仅在产生电流的同时产生甲烷。反应器的甲烷产生速率显示出对施加电压的依赖性,随着施加电压从0.4伏增加到0.9伏,甲烷产生速率从34.9增加到168.4毫摩尔/米²/天。当施加电压为0.4伏或更高时,所产生甲烷中电子捕获的平均效率超过70%。循环伏安法进一步证实了生物电极在5兆帕下催化电化学反应的能力。在较低压力条件(1.2和2.5兆帕)下,电产甲烷系统的性能没有改变。分别检测到与嗜热栖热菌属相关的产电细菌和属于嗜热甲烷杆菌属的产甲烷菌作为生物阳极和生物阴极微生物群落中的优势物种。因此,我们的结果表明,可以在高压条件下开发和运行电产甲烷系统,这表明生物电化学系统在高压环境(包括高温地下储层)中的应用在技术上是可行的。

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