Page 307 - Industrial Wastewater Treatment, Recycling and Reuse
P. 307

Reorienting Waste Remediation Towards Harnessing Bioenergy  281


              Yu, H., Zhu, Z., Hu, W., Zhang, H., 2002. Hydrogen production from rice winery waste-
                 water in an upflow anaerobic reactor by using mixed anaerobic cultures. Int. J. Hydrogen
                 Energ. 27, 1359–1365.
              Zhang, Y., Dub, M.A., McLean, D.D., Kates, M., 2003. Biodiesel production from waste
                 cooking oil: 2. Economic assessment and sensitivity analysis. Bioresour. Technol.
                 90, 229–240.
              Zhang, Y.F., Liu, G.Z., Shen, J.Q., 2005. Hydrogen production in batch culture of mixed
                 bacteria with sucrose under different iron concentrations. Int. J. Hydrogen Energ.
                 30, 855–860.
              Zhu, H., Beland, M., 2006. Evaluation of alternative methods of preparing hydrogen pro-
                 ducing seeds from digested wastewater sludge. Int. J. Hydrogen Energ. 31, 1980–1988.
              Zhu, H., Stadnyk, A., Beland, M., Seto, P., 2008. Co-production of hydrogen and methane
                 from potato waste using a two-stage anaerobic digestion process. Bioresour. Technol.
                 99, 5078–5084.
              Zhu, H., Parker, W., Basnar, R., Proracki, A., Falletta, P., Be ´landa, M., Seto, P., 2009.
                 Buffer requirements for enhanced hydrogen production in acidogenic digestion of food
                 wastes. Bioresour. Technol. 100 (21), 5097–5102.
              Zhu, H., Parker, W., Conidi, D., Basnar, R., Seto, P., 2011. Eliminating methanogenic
                 activity in hydrogen reactor to improve biogas production in a two-stage anaerobic
                 digestion process co-digesting municipal food waste and sewage sludge. Bioresour.
                 Technol. 102 (14), 7086–7092.


              FURTHER READING
              Becker, E.W., 1994. Microalgae—Biotechnology and Microbiology. Cambridge University
                 Press, Cambridge.
              Becker, W., 2004. Microalgae in human and animal nutrition. In: Richmond, A. (Ed.),
                 Handbook of Microalgal Culture: Biotechnology and Applied Phycology. Blackwell
                 Science, Oxford, pp. 312–351.
              Blackader, W., Rensfelt, E., 1984. Synthesis gas from wood and peat: the mino process.
                 In: Bridgwater, A.V. (Ed.), Thermochemical Processing of Biomass. Butterworth,
                 London, pp. 137–149.
              Hallenbeck, P.C., Abo-Hashesh, M., Ghosh, D., 2012. Strategies for improving biological
                 hydrogen production. Bioresour. Technol. 110, 1–9.
              Logan, B.E., Call, D., Cheng, S., Hamelers, H.V.M., Sleutels, T.J.A., Jeremiasse, A.W.,
                 Rozendal, R.A., 2008. Microbial electrolysis cells for high yield hydrogen gas produc-
                 tion from organic matter. Environ. Sci. Technol. 42 (23), 8630–8640.
              Mohanakrishna, G., Subhash, G.V., Venkata Mohan, S., 2011. Adaptation of biohydrogen
                 producing reactor to higher substrate load: redox controlled process integration strategy
                 to overcome limitations. Int. J. Hydrogen Energ. 36, 8943–8952.
              Momirlan, M., Veziroglu, T.N., 2002. Current status of hydrogen energy. Renew. Sust.
                 Energ. Rev. 6, 141–179.
              Venkata Mohan, S., Devi, M.P., Mohanakrishna, G., Amarnath, N., Lenin Babu, M.,
                 Sarma, P.N., 2011c. Potential of mixed microalgae to harness biodiesel from ecological
                 water-bodies with simultaneous treatment. Bioresour. Technol. 102, 1109–1117.
   302   303   304   305   306   307   308   309   310   311   312