Biomedical Engineering Reference
In-Depth Information
Fargione, (2008). Land clearing and the biofuel carbon debt. Science, 319(5867): 1235.
Griffiths, M.J., and Harrison, S.T.L. (2009). Lipid productivity as a key characteristic for
choosing algal species for biodiesel production. Journal of Applied Phycology , 21(5):
493-507.
Griffiths, M.J., Van Hille, R.P., and Harrison, S.T.L. (2010). Selection of direct transesterification
as the preferred method for assay of fatty acid content of microalgae. Lipids, 45: 1053-1060.
Harding, K.G. (2009). A Generic Approach to Environmental Assessment of Microbial
Bioprocesses through Life Cycle Assessment. Ph.D. thesis, Department of Chemical
Engineering University of Cape Town, Cape Town, South Africa.
Harding, K.G., Dennis, J.S., and Harrison, S.T.L. (2012). Material and energy balance and
life cycle assessment study on Penicillin V production using a generic flowsheet model
approach for first estimate studies. Journal of Biotechnology (submitted).
Harding, K.G., Dennis, J.S., Von Blottnitz, H., and Harrison, S.T.L. (2008). A life-cycle
comparison between inorganic and biological catalysis for the production of biodiesel.
Journal of Cleaner Production, 16(13): 1368-1378.
International Association for Impact Assessment. (1999). Principle of Environmental Impact
Assessment Best Practice. IAIA, Fargo, ND.
ISO 14040: 2006 (2006). Environmental Management - Life Cycle Assessment - Principles
and Framework. International Organization for Standardization, Geneva, Switzerland.
Jorquera, O., Kiperstok, A., Sales, E.A., Embiruçu, M., and Ghirardi, M.L. (2010).
Comparative energy life-cycle analyses of microalgal biomass production in open ponds
and photobioreactors. Bioresource Technology, 101(4): 1406-1413.
Kadam, K.L. (2002). Environmental implications of power generation via coal-microalgae
cofiring. Energy. 27(10): 905-922.
Kaltschmitt, M., Reinhardt, G.A., and Stelzer, T. (1997). Life cycle analysis of biofuels under
different environmental aspects. Biomass and Bioenergy, 12(2): 121-134.
Kaparaju, P., Serrano, M., Thomsen, A.B., Kongjan, P., and Angelidaki, I. (2009). Bioethanol,
biohydrogen and biogas production from wheat straw in a biorefinery concept.
Bioresource Technology, 100(9): 2562-2568.
Kim, S., and Dale, B.E. (2005). Life cycle assessment of various cropping systems utilized for
producing biofuels: Bioethanol and biodiesel. Biomass and Bioenergy, 29(6): 426-439.
Lardon, L., Helias, A., Sialve, B., Steyer, J., and Bernard, O. (2009). Life-cycle assessment
of biodiesel production from microalgae. Environmental Science & Technology, 43(17):
6475-6481.
Molina Grima, E., Garcia Camacho, F., Sanchez Perez, J.A., Fernandez Sevilla, J.M., Ancien
Fernandez, F.G., and Contreras Gomez, A. (2004). A mathematical model of micro-
algal growth in light-limited chemostat culture. Journal of Chemical Technology and
Biotechnology , 61(2): 167-173.
Norsker, N.-H, Barbosa, M.J., Vermue, M.H., and Wijffels, R.H. (2011). Microalgal production
- A close look at the economics. Biotechnology Advances, 29: 24-27.
Razon, L.F., and Tan, R.R. (2011). Net energy analysis of the production of biodiesel and
biogas from the microalgae: Haematococcus pluvialis and Nannochloropsis. Applied
Energy, 88: 3507-3514.
Richardson, C. (2011). Investigating the Role of Reactor Design to Maximize the
Environmental Benefit of Algal Oil for Biodiesel. M.Sc. dissertation, Department of
Chemical Engineering, University of Cape Town, South Africa.
Richardson, C., Griffiths M.J., Von Blottnitz, H., and Harrison S.T.L. (2012a). Investigating
the role of reactor design for maximum environmental benefit of algal oil for biodiesel.
Bioresource Technology (submitted).
Richardson, J.W., Johnson M.D., and Outlaw J.L. (2012b). Economic comparison of open
pond raceways to photo bio-reactors for profitable production of algae for transportation
fuels in the Southwest. Algal Research 1(1): 95-100.
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