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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bouwman et al., 2002b |2=A. F. Bouwman, D. P. Van Vuuren, R. G. Derwent, M. Posch (2002). A global analysis of acidification and eutrophication of terrestrial ecosystems. Water, Air, and Soil Pollution, 141(1-4), pp. 349-382, doi: http://dx.doi.org/10.1023/A:1021398008726.
Link to PBL-website: http://www.pbl.nl/en/publications/2002/AGlobalAnalysisofAcidificationandEutrophicationofTerrestrialEcosystems. |#=50 |#rownumber=51}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bouwman et al., 2005 |2=A. F. Bouwman, K. W. Van Der Hoek, B. Eickhout, I. Soenario (2005). Exploring changes in world ruminant production systems. Agricultural Systems, 84(2), pp. 121-153, doi: http://dx.doi.org/10.1016/j.agsy.2004.05.006.
Link to PBL-website: http://www.pbl.nl/en/publications/2005/Exploringchangesinworldruminantproductionsystems. |#=51 |#rownumber=52}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bouwman et al., 2006 |2=A.F. Bouwman, K.W. van der Hoek, G. Van Drecht, B. Eickhout (2006). World livestock and crop production systems, land use and environment between 1970 and 2030. In: F. BrouwerB. McCarl (eds.), Rural Lands, Agriculture and Climate beyond 2015: A new perspective on future land use patterns. Springer, Dordrecht, pp. 75-89, URL: http://www.pbl.nl/en/publications/2006/Worldlivestockandcropproductionsystemslanduseandenvironmentbetween1970and2030. |#=52 |#rownumber=53}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bouwman et al., 2011 |2=A. F. Bouwman, M. Paw?owski, C. Liu, A. H. W. Beusen, S. E. Shumway, P. M. Glibert, C. C. Overbeek (2011). Global Hindcasts and future projections of coastal nitrogen and phosphorus loads due to shellfish and seaweed aquaculture. Reviews in Fisheries Science, 19(4), pp. 331-357, doi: http://dx.doi.org/10.1080/10641262.2011.603849. |#=53 |#rownumber=54}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bouwman et al., 2013b |2=L. Bouwman, K. K. Goldewijk, K. W. Van Der Hoek, A. H. W. Beusen, D. P. Van Vuuren, J. Willems, M. C. Rufino, E. Stehfest (2013). Exploring global changes in nitrogen and phosphorus cycles in agriculture induced by livestock production over the 1900-2050 period. Proceedings of the National Academy of Sciences of the United States of America, 110(52), pp. 20882-20887, doi: http://dx.doi.org/10.1073/pnas.1012878108.
Link to PBL-website: http://www.pbl.nl/en/publications/2011/exploring-global-changes-in-nitrogen-and-phosphorus-cycles-in-agriculture-induced-by-livestock-production-over. |#=54 |#rownumber=55}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bouwman et al., 2013c |2=A. F. Bouwman, A. H. W. Beusen, C. C. Overbeek, D. P. Bureau, M. Pawlowski, P. M. Glibert (2013). Hindcasts and future projections of global inland and coastal nitrogen and phosphorus loads due to finfish aquaculture. Reviews in Fisheries Science, 21(2), pp. 112-156, doi: http://dx.doi.org/10.1080/10641262.2013.790340. |#=55 |#rownumber=56}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Braakhekke et al., 2019 |2=Braakhekke, M. C., Doelman, J. C., Baas, P., Müller, C., Schaphoff, S., Stehfest, E., van Vuuren, D. P. (2019). Modeling forest plantations for carbon uptake with the LPJmL dynamic global vegetation model. Earth System Dynamics, 10(4), pp. 617-630, doi: http://dx.doi.org/https://doi.org/10.5194/esd-10-617-2019.
Link to PBL-website: https://www.pbl.nl/en/publications/modeling-forest-plantations-for-carbon-uptake-with-the-lpjml-dynamic-global-vegetation-model. |#=56 |#rownumber=57}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Braspenning Radu et al., 2016 |2=O. Braspenning Radu, M. van den Berg, Z. Klimont, S. Deetman, G. Janssens-Maenhout, M. Muntean, C. Heyes, F. Dentener, D. P. van Vuuren (2016). Exploring synergies between climate and air quality policies using long-term global and regional emission scenarios. Atmospheric Environment, 140, pp. 577-591, doi: http://dx.doi.org/10.1016/j.atmosenv.2016.05.021.
Link to PBL-website: http://www.pbl.nl/en/publications/exploring-synergies-between-climate-and-air-quality-policies-using-long-term-global-and-regional-emission-scenarios. |#=57 |#rownumber=58}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Brinkman et al., 2005 |2=S. Brinkman, B. Strengers, J van Minnen, Nabuurs, G.J., E. Trines (2005). IMAGE 2.2 Carbon Cycle Analysis, Brinkman Climate Change Consultant(URL: http://www.brinkmanclimatechange.com/pdf/ReportIMAGEcarboncycleanalysis.pdf). |#=58 |#rownumber=59}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Britz, 2003 |2=W. Britz (2003). Major enhancements of @2030 Modelling system.URL: http://www.ilr1.uni-bonn.de/agpo/rsrch/at2030/@2030_2003.doc |#=59 |#rownumber=60}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Brown, 2000 |2=C. Brown (2000). The global outlook for future wood supply from forest plantations, Working Paper, FAO, Rome. |#=60 |#rownumber=61}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Bruinsma, 2003 |2=J. Bruinsma (2003). World agriculture: towards 2015/2030., An FAO perspective, Earthscan, London. |#=61 |#rownumber=62}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Burkhard et al., 2012 |2=B. Burkhard, F. Kroll, S. Nedkov, F. Müller (2012). Mapping ecosystem service supply, demand and budgets. Ecological indicators, 21, pp. 17-29. |#=62 |#rownumber=63}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Cairncross and Valdmanis, 2006 |2=S. Cairncross, V. Valdmanis (2006). Water supply, sanitation, and hygiene promotion, Disease control priorities in developing countries. Oxford University Press, New York, pp. 771-792. |#=63 |#rownumber=64}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Carle and Holmgren, 2008 |2=J. Carle, P. Holmgren (2008). Wood from Planted Forests. Forest Products Journal, 58(12), pp. 6-18. |#=64 |#rownumber=65}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Carpenter et al., 2006 |2=S.R. Carpenter, P. Pingali, E.M. Bennet, M.B. Zurek (2006). Ecosystems and human well-being: scenarios, Millennium Ecosystem Assessment - MA (2005) project (eds.), Island Press, Washington, D.C., 2. |#=65 |#rownumber=66}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Carson, 2010 |2=R.T. Carson (2010). The Environmental Kuznets Curve: Seeking Empirical Regularity and Theoretical Structure. Review of Environmental Economics and Policy, 4(1), pp. 3-23, doi: http://dx.doi.org/10.1093/reep/rep021. |#=66 |#rownumber=67}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Cengic et al., 2020 |2=Mirza Čengić, Jasmijn Rost, Daniela Remenska, Jan H. Janse, Mark A. J. Huijbregts, and Aafke M. Schipper (2020). On the importance of predictor choice, modelling technique, and number of pseudo‐absences for bioclimatic envelope model performance. Ecology and Evolution, 10(21), pp. 12307–12317, doi: http://dx.doi.org/10.1002/ece3.6859. |#=67 |#rownumber=68}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Chateau et al., 2013 |2=J. Chateau, R. Dellink, E. Lanzi, B. Magné (2013). An overview of the OECD ENV-Linkages model - version 3, OECD Environment Working paper 42, OECD Publishing, OECD, Paris. |#=68 |#rownumber=69}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Chen and Ravallion, 2008 |2=S. Chen, M. Ravallion (2008). The developing world Is poorer than we thought, but no less successful in the fight against poverty, World Bank Policy Research Working Paper, World Bank, Washington DC. |#=69 |#rownumber=70}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Chuwah et al., 2015 |2=C. Chuwah, T. van Noije, D. P. van Vuuren, E. Stehfest, W. Hazeleger (2015). Global impacts of surface ozone changes on crop yields and land use. Atmospheric Environment, 106, pp. 11-23, doi: http://dx.doi.org/10.1016/j.atmosenv.2015.01.062.
Link to PBL-website: http://www.pbl.nl/en/publications/global-impacts-of-surface-ozone-changes-on-crop-yields-and-land-use. |#=70 |#rownumber=71}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Cleveland et al., 1999 |2=C.C. Cleveland, A.R. Townsend, D.S. Schimel, H. Fisher, R.W. Howarth, L.O. Hedin, S.S. Perakis, E.F. Latty, J.C. Von Fisher, A. Elserod, M.F. Wasson (1999). Global patterns of terrestrial biological nitrogen (N2) fixation in natural ecosystems. Global Biogeochemical Cycles, 13, pp. 623-645. |#=71 |#rownumber=72}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Cofala et al., 2002 |2=J. Cofala, C. Heyes, Z. Klimont, M. Amann (2002). Acidification, eutrophication and tropospheric ozone impacts for five scenarios of greenhouse gases abatement in Europe, IIASA, Laxenburg, Austria. |#=72 |#rownumber=73}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Costanza et al., 1997 |2=R. Costanza, R. d'Arge, R.S. De Groot, S. Farber, M. Grasso, B. Hannon, K. Limburg, S. Naeem, R.V. O'Neil, J. Paruelo, R.G. Raskin, P. Sutton, M van den Belt (1997). The value of the world's ecosystem services and natural capital. Nature, 387, pp. 253-260. |#=73 |#rownumber=74}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Craig et al., 1999 |2=M. H Craig, R. W. Snow, D. le Sueur (1999). A climate-based distribution model of malaria transmission in Africa. Parasitology Today, 15(3), pp. 105-111. |#=74 |#rownumber=75}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Criqui et al., 2003 |2=P. Criqui, A. Kitous, M.M. Berk, M.G.J. den Elzen, B. Eickhout, P. Lucas, D.P. van Vuuren, N. Kouvaritakis, D. Vanregemorter (2003). Greenhouse gas reduction pathways in the UNFCCC Process up to 2025 - Technical Report, CNRS-IEPE, Grenoble, France. |#=75 |#rownumber=76}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Crossman et al., 2013 |2=N.D. Crossman, B. Burkhard, S. Nedkov, L. Willemen, K. Petz, I. Palomo, E.G. Drakou, B. Martín-Lopez, T. McPhearson, K. Boyanova, R. Alkemade, B. Egoh, M.B. Bunbar, J. Maes (2013). A blueprint for mapping and modelling ecosystem services. Ecosystem services, 4, pp. 4-14. |#=76 |#rownumber=77}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=DEA, 2018 |2=Danish Energy Agency (2018). Note on technology costs for offshore wind farms and the background for updating CAPEX and OPEX in the technology catalogue datasheets, Danish Ministry of Energy, Utilities and Climate(URL: https://ens.dk/sites/ens.dk/files/Analyser/havvindsnotat_translation_eng_final.pdf). |#=77 |#rownumber=78}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=DMA, 1992 |2=DMA (1992). Digital Chart of the World.Defense Mapping Agency.Fairfax, Virginia. |#=78 |#rownumber=79}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Dagnachew et al., 2018 |2=A.G. Dagnachew, P.L. Lucas, A.F. Hof, D.P. van Vuuren (2018). Trade-offs and synergies between universal electricity access and climate change mitigation in Sub-Saharan Africa. Energy Policy, 114, pp. 355-366, doi: http://dx.doi.org/10.1016/j.enpol.2017.12.023. |#=79 |#rownumber=80}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Dagnachew et al., 2020 |2=Anteneh G.Dagnachew, Andries F.Hof, Paul L.Lucas, Detlef P.van Vuuren (2020). Scenario analysis for promoting clean cooking in Sub-Saharan Africa: Costs and benefits. Energy, 192, doi: http://dx.doi.org/https://doi.org/10.1016/j.energy.2019.116641. |#=80 |#rownumber=81}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Daioglou et al., 2012 |2=V. Daioglou, B. J. van Ruijven, D. P. van Vuuren (2012). Model projections for household energy use in developing countries. Energy, 37(1), pp. 601-615, doi: http://dx.doi.org/10.1016/j.energy.2011.10.044. |#=81 |#rownumber=82}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Daioglou et al., 2014 |2=V. Daioglou, A. P. C. Faaij, D. Saygin, M. K. Patel, B. Wicke, D. P. Van Vuuren (2014). Energy demand and emissions of the non-energy sector. Energy and Environmental Science, 7(2), pp. 482-498, doi: http://dx.doi.org/10.1039/c3ee42667j.
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Daioglou et al., 2019 |2=V. Daioglou, J.C. Doelman, B. Wicke, A. Faaij, D.P. van Vuuren (2019). Integrated assessment of biomass supply and demand in climate change mitigation scenarios. Global Environmental Change, 54, pp. 88-101, doi: http://dx.doi.org/10.1016/j.gloenvcha.2018.11.012. |#=83 |#rownumber=84}}{{'''''
|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Daioglou et al., 2022 |2=Vassilis Daioglou, Efstratios Mikropoulos, David Gernaat, Detlef P.van Vuuren (2022). Efficiency improvement and technology choice for energy and emission reductions of the residential sector. Energy, 243, doi: http://dx.doi.org/https://doi.org/10.1016/j.energy.2021.122994. |#=84 |#rownumber=85}}{{'''''
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=De Boer and Van Vuuren, 2017 |2=H.S. de Boer and D.P. van Vuuren (2017). Representation of variable renewable energy source in TIMER, an aggregated energy system simulation model. Energy Economics, 64, pp. 600-611, doi: http://dx.doi.org/http://doi.org/10.1016/j.eneco.2016.12.006.
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=De Onis and Blossner, 2003 |2=M. De Onis, M. Blossner (2003). The world health organization global database on child growth and malnutrition: methodology and applications. International Journal Epidemiology, 32(4), pp. 518-526, doi: http://dx.doi.org/10.1093/ije/dyg099. |#=89 |#rownumber=90}}{{'''''
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Den Elzen and van Vuuren, 2007 |2=M.G.J. den Elzen, D.P. van Vuuren (2007). Peaking profiles for achieving long-term temperature targets with more likelihood at lower costs. Proceedings of the National Academy of Sciences of the United States of America (PNAS), 104(46), pp. 17931-17936, doi: http://dx.doi.org/10.1073/pnas.0701598104.
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Den Elzen et al., 2007 |2=M. den Elzen, M. Meinshausen, D. van Vuuren (2007). Multi-gas emission envelopes to meet greenhouse gas concentration targets: Costs versus certainty of limiting temperature increase. Global Environmental Change, 17(2), pp. 260-280, doi: http://dx.doi.org/10.1016/j.gloenvcha.2006.10.003.
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Den Elzen et al., 2008 |2=M. G. J. Den Elzen, P. L. Lucas, D. P. Van Vuuren (2008). Regional abatement action and costs under allocation schemes for emission allowances for achieving low CO2-equivalent concentrations. Climatic Change, 90(3), pp. 243-268, doi: http://dx.doi.org/10.1007/s10584-008-9466-1.
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|#querycondition= |#querylimit=50 |#resultoffset=50 |#rowcount=462 |1=Den Elzen et al., 2011a |2=M. G. J. Den Elzen, A. F. Hof, A. Mendoza Beltran, G. Grassi, M. Roelfsema, B. van Ruijven, J. van Vliet, D. P. van Vuuren (2011). The Copenhagen Accord: Abatement costs and carbon prices resulting from the submissions. Environmental Science and Policy, 14(1), pp. 28-39, doi: http://dx.doi.org/10.1016/j.envsci.2010.10.010.
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