Biomedical Engineering Reference
In-Depth Information
9. Huijbregts, M.A.J.; Norris, G.; Bretz, R.; Ciroth, A.; Maurice, B.; von Bahr, B.;
Weidema, B.; de Beaufort, A.S.H. Framework for modelling data uncertainty in
life cycle inventories. Int. J. Life Cycle Assess. 2001 , 6 , 127-132.
10. Hong, J.; Shaked, S.; Rosenbaum, R.K.; Jolliet, O. Analytical uncertainty propa-
gation in life cycle inventory and impact assessment: Application to an automo-
bile front panel. Int. J. Life Cycle Assess. 2010 , 15 , 499-510.
11. Jolliet, O.; Cotting, K.; Drexler, C.; Farago, S. Life-cycle analysis of biodegrad-
able packing materials compared with polystyrene chips: The case of popcorn.
Agric. Ecosyst. Environ. 1994 , 49 , 253-266.
12. Klöpffer, W.; Curran, M.A.; Frankl, P.; Heijungs, R.; Köhler, A.; Olsen, S.I.
Nanotechnology and Life Cycle Assessment—A Systems Approach to Nanotechnology
and the Environment , Woodrow Wilson International Center for Scholars—
Project on Emerging Nanotechnologies, Washington DC, 2007 .
13. International Organization for Standardization ISO 14044 International
Standard. In Environmental Management—Life Cycle Assessment—Requirements
and Guidelines . ISO, Geneva, Switzerland, 2006 .
14. Khanna, V.; Bakshi, B.R.; Lee, L.J. Carbon nanofiber production: Life cycle
energy consumption and environmental impact. J. Ind. Ecol. 2008 , 12 , 394-410.
15. Khanna, V. and Bakshi, B.R. Carbon nanofiber polymer composites: Evaluation
of life cycle energy use. Environ. Sci. Technol. 2009 , 43 , 2078-2084.
16. Merugula, L.A.; Khanna, V.; Bakshi, B.R. Comparative life cycle assessment:
Reinforcing wind turbine blades with carbon nanofibers. Proceedings of the 2010
IEEE International Symposium on Sustainable Systems and Technology (Arlington,
VA; 17-19 May 2010). 2010 , 1-6.
17. Healy, M.L.; Dahlben, L.J.; Isaacs, J.A. Environmental assessment of single-
walled carbon nanotube processes. J. Ind. Ecol. 2008 , 12 , 376-393.
18. Wender, B.A. and Seager, T.P. Towards prospective life cycle assessment: Single
wall carbon nanotubes for lithium-ion batteries. Proceedings of the 2011 IEEE
International Symposium on Sustainable Systems and Technology (Chicago, IL; 16-18
May 2011). 2011 , 1-4.
19. Kushnir, D. and Sanden, B.A. Energy requirements of carbon nanoparticle pro-
duction. J. Ind. Ecol. 2008 , 12 , 360-375.
20. Anctil, A.; Babbitt, C.; Landi, B.; Raffaelle, R.P. Life-cycle assessment of organic
solar cell technologies. Conference Record of the IEEE Photovoltaic Specialists
Conference 2010 , 742-747.
21. Anctil, A.; Babbitt, C.W.; Raffaelle, R.P.; Landi, B.J. Material and energy intensity
of fullerene production. Environ. Sci. Technol. 2011 , 45 , 2353-2359.
22. Grubb, G.F. and Bakshi, B.R. Life cycle of titanium dioxide nanoparticle produc-
tion impact of emissions and use of resources. J. Ind. Ecol. 2011 , 15, 81-95.
23. Kuck, A.; Steinfeldt, M.; Prenzel, K.; Swiderek, P.; von Gleich, A.; Thoming, J.
Green nanoparticle production using micro reactor technology. J. Phys. Conf. Ser.
2011 , 204, 1-10.
24. Walser, T.; Demou, E.; Lang, D.J.; Hellweg, S. Prospective environmental life
cycle assessment of nanosilver T-shirts. Environ. Sci. Technol. 2011 , 45, 4570-4578.
25. Roes, A.L.; Marsili, E.; Nieuwlaar, E.; Patel, M.K. Environmental and cost assess-
ment of a polypropylene nanocomposite. J. Polym. Environ. 2007 , 15, 212-226.
26. Joshi, S. and Joshi, S. Can nanotechnology improve the sustainability of bio-
based products? The case of layered silicate biopolymer nanocomposites. J. Ind.
Ecol. 2008 , 12, 474-489.
Search WWH ::




Custom Search