Life cycle assessment 291
towards sustainable cities: A review. Journal of Cleaner Production, 166, 939–951.
doi:10.1016/j.jclepro.2017.08.030.
Plevin, R. J., Delucchi, M. A. & Creutzig, F. (2014). Using attributional life cycle
assessment to estimate climate- change mitigation benefits misleads policy makers.
Journal of Industrial Ecology, 18, 73–83. doi:10.1111/jiec.12074.
Pradel, M., Aissani, L., Villot, J., Baudez, J. C. & Laforest, V. (2016). From waste to
added value product: Towards a paradigm shift in life cycle assessment applied to
wastewater sludge – A review. Journal of Cleaner Production, 131, 60–75. doi:10.1016/
j.jclepro.2016.05.076.
Raadal, H. L., Stensgård, A., Lyng, K.-A. & Hanssen, O. J. (2016). Vurdering av
virkemidler for økt utsortering av våtorganisk avfall og plastemballasje. Ostfoldforskning AS,
OR.01.16. Retrieved from Kråkerøy, Norway.
Reed, D. L. (2012). Life- Cycle Assessment in Government Policy in the United States
(Doctoral Dissertation, University of Tennessee).
Saavedra, Y. M. B., Iritani, D. R., Pavan, A. L. R. & Ometto, A. R. (2018). Theoretical contribution of industrial ecology to circular economy. Journal of Cleaner
Production, 170, 1514–1522. doi:10.1016/j.jclepro.2017.09.260.
Sala, S., Reale, F., Cristóbal, J. & Pant, R. (2016). Life Cycle Assessment for the Impact
Assessment of Policies. Luxembourg: Publications Office of the European Union.
Sandin, G., Røyne, F., Berlin, J., Peters, G. M. & Svanström, M. (2015). Allocation
in LCAs of biorefinery products: Implications for results and decision- making.
Journal of Cleaner Production, 93, 213–221. doi:10.1016/j.jclepro.2015.01.013.
Schrijvers, D. L., Loubet, P. & Sonnemann, G. (2016). Critical review of guidelines
against a systematic framework with regard to consistency on allocation procedures
for recycling in LCA. International Journal of Life Cycle Assessment, 21(7), 994–1008.
doi:10.1007/s11367-016-1069-x.
Searchinger, T., Heimlich, R., Houghton, R. A., Dong, F., Elobeid, A., Fabiosa, J.,
… Yu, T.-h. (2008). Use of U.S. croplands for biofuels increases greenhouse gases
through emissions from land- use change. Science, 319, 1238–1240.
Suh, S., & Yang, Y. (2014). On the uncanny capabilities of consequential LCA. The
International Journal of Life Cycle Assessment, 19, 1179–1184. doi:10.1007/s11367014-0739-9.
Sund, K., Utgård, B. & Christensen, N. S. (2017). Muligheter og Barrierer for Økt Bruk
av Biogass til Transport i Norge. Sund Energy, Oslo. Retrieved from http://presse.
enova.no/documents/muligheter- og-barrierer- for-oekt- bruk-av- biogass-til- transporti- norge-69550.
Svanes, E., Vold, M. & Hanssen, O. J. (2011). Effect of different allocation methods
on LCA results of products from wild- caught fish and on the use of such results.
International Journal of Life Cycle Assessment, 16(6), 512–521. doi:10.1007/s11367011-0288-4.
Syversen, F., Lyng, K.-A., Amland, E. N., Bjørnerud, S., Callewaert, P. & Prestrud, K.
(2018). Utsortering og materialgjenvinning av biologisk avfall og plastavfall. Utredning av konsekvenser av forslag til forskrift for avfall fra husholdninger og liknende avfall fra næringslivet
(2017/12503). Retrieved from www.miljodirektoratet.no/no/Publikasjoner/2018/
Oktober- 2018/Utsortering- og-materialgjenvinning- av-biologisk- avfall-og- plastavfall.
Tonini, D., Hamelin, L. & Astrup, T. F. (2016). Environmental implications of the
use of agro- industrial residues for biorefineries: Application of a deterministic
model for indirect land- use changes. Global Change Biology Bioenergy, 8(4), 690–706.
doi:10.1111/gcbb.12290.
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