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Original Articles

Multi-effects of gravity and geometric flow channel on the performance of continuous microbial fuel cells

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References

  • Arunasri, K., M. Adil, K. Venu Charan, C. Suvro, S. Himabindu Reddy, and S. Shivaji. 2013. Effect of simulated microgravity on E. coli K12 MG1655 growth and gene expression. PloS one 8(3):e57860–10.
  • Baker, P. W., M. L. Meyer, and L. G. Leff. 2004. Escherichia coli growth under modeled reduced gravity. Microgravity-Science and Technology 15:39–44.
  • Baker, P. W., and L. Leff. 2004. The effect of simulated microgravity on bacteria from the Mir space station. Microgravity-Science and Technology 15:35–41.
  • Di Lorenzo, M., T. P. Curtis, I. M. Head, and K. Scott. 2009. A single-chamber microbial fuel cell as a biosensor for wastewaters. Water Research 43:3145–54.
  • Kjeang, E., R. Michel, D. A. Harrington, N. Djilali, and D. Sinton. 2008. A microfluidic fuel cell with flow-through porous electrodes. Journal of the American Chemical Society 130:4000–6.
  • Logan, B., S. Cheng, V. Watson, and G. Estadt. 2007. Graphite fiber brush anodes for increased power production in air-cathode microbial fuel cells. Environmental Science & Technology 41:3341–46.
  • Logan, B. E.2005. Simultaneous wastewater treatment and biological electricity generation. Water Science & Technology 52:31–37.
  • Logan, B. E., B. Hamelers, R. Rozendal, U. Schröder, J.Keller, S. Freguia, and K. Rabaey. 2006. Microbial fuel cells: methodology and technology. Environmental Science & Technology 40:5181–92.
  • Lal, S. A., and R. V. Reji. 2012. Numerical simulation of natural flow of air through a room. International Journal of Green Energy 9:540–52.
  • Min, B., and B. E. Logan. 2004. Continuous electricity generation from domestic wastewater and organic substrates in a flat plate microbial fuel cell. Environmental Science & Technology 38:5809–14.
  • Nguyen, N. T., and Z. Wu. 2005. Micromixers—a review. Journal of Micromechanics and Microengineering 15:R1–16.
  • Pharoah, J. G.2005. Fluid mechanics of serpentine flow fields on a porous media. International Journal of Green Energy 2:421–38.
  • Pasupuleti, S. B., S. Srikanth, S. V. Mohan, and D. Pant. 2015. Development of exoelectrogenicbioanode and study on feasibility of hydrogen production using abiotic VITO-CoRE™ and VITO-CASE™ electrodes in a single chamber microbial electrolysis cell (MEC) at low current densities. Bioresource Technology 195:131–8.
  • Rabaey, K., and W. Verstraete. 2005. Microbial fuel cells: novel biotechnology for energy generation. Trends in Biotechnology 23:291–8.
  • Sivertsen, B. R., and N. Djilali.2005. CFD-based modelling of proton exchange membrane fuel cells. Journal of Power Sources 141:65–78.
  • Strašák, L., V. Vetterl, and J. Šmarda.2002. Effects of low-frequency magnetic fields on bacteria Escherichia coli. Bioelectrochemistry 55:161–4.
  • Tsan, W. C., Y. C. Ming, C. Z. Sheng, and T. Shuai. 2011. Effect of biometric flow channel on the power generation at different Reynolds numbers in the single chamber of rumen microbial fuel cells (RMFCs). International Journal of Hydrogen Energy 36:9242–51.
  • Wang, C. T., Y. C. Hu, and T. Y. Hu. 2009. Biophysical micromixer. Sensors 9:5379–89.
  • Wang, C. T., Y. M. Chen, Z. Q. Qi, Y. T. Wang, and Y. C. Yang. 2014. Types of simplified flow channels without flow obstacles in microbial fuel cells. International Journal of Hydrogen Energy 39:14306–11.
  • Wen, Q., Y. Wu, D. Cao, L. Zhao, and Q. Sun. 2009. Electricity generation and modeling of microbial fuel cell from continuous beer brewery wastewater. Bioresource Technology 100:4171–75.
  • Wang, Z., C. Cao, Y. Zheng, S. Chen, and F. Zhao. 2014. Abiotic oxygen reduction reaction catalysts used in microbial fuel cells. ChemElectroChem 1:1813–21.
  • Zhang, X. C., and A. Halme. 1995. Modelling of a microbial fuel cell process. Biotechnology Letters 17:809–14.
  • Zhang, X., D. Pant, F. Zhang, J. Liu, W. He, and B. E. Logan.2014. Long‐term performance of chemically and physically modified activated carbons in air cathodes of microbial fuel cells. Chem ElectroChem 1:1859–66.
  • Zeng, Y., Y. F. Choo, B. H. Kim, and P. Wu. 2010. Modeling and simulation of two chamber microbial fuel cell. Journal of Power Sources 195:79–89

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