Uneingeschränkter Zugang

3 Key notions for road transport sustainability: Resilience, Climate action and Energy transition

   | 23. Aug. 2022

Zitieren

[1] Adger W. N., “Social and ecological resilience: are they related?,” Progress in Human Geography, pp. 347-364, 2000.10.1191/030913200701540465 Search in Google Scholar

[2] S. Royal, Résilience française, sauvons notre modèle social, Paris: Editions de l’Observatoire, 2020. Search in Google Scholar

[3] S. Cutter, L. Barnes, M. Berry, C. Burton, E. Evans, E. Tate and J. Webb, “A place-based model for understanding community resilience to natural disasters,” Global Environmental Change, pp. 598-606, 2008.10.1016/j.gloenvcha.2008.07.013 Search in Google Scholar

[4] D. Marchese, E. Reynolds, M. E. Bates, H. Morgan, S. S. Clark and I. Linkov, “Resilience and sustainability: Similarities and differences in environmental management applications,” Science of the Total Environment, pp. 1275-1283, 2018. Search in Google Scholar

[5] B. Lallau, “La résilience, moyen et fin d’un développement durable,” Ethics and Economics, 2011. Search in Google Scholar

[6] World Commission on Environment and Development, “Our Common Future,” UNO, New York, 1987. Search in Google Scholar

[7] A. Boutaud, “Le développement durable : penser le changement ou changer le pansement ? (Thèse),” École Supérieure des Mines de Saint-Étienne, Saint-Étienne, 2005. Search in Google Scholar

[8] J.-P. Marechal, “L’écologie de marché, un mythe dangereux,” Le Monde diplomatique, p. no 511, 1996. Search in Google Scholar

[9] OCDE, “Perspectives mondiales du financement du développement durable 2021,” OCDE, Paris, 2020. Search in Google Scholar

[10] J. Sachs, G. Schmidt-Traub, C. Kroll, G. Lafortune, G. Fuller and F. Woelm, “The Sustainable Development Goals and COVID-19,” Cambridge University Press, 2020.10.1017/9781009106559 Search in Google Scholar

[11] IEA, “Key World Energy Statistics,” IEA, Paris, 2020. Search in Google Scholar

[12] S. Luthar, “Resilience in development: A synthesis of research across five decades.,” in Developmental psychopathology: Risk, disorder, and adaptation, New York, Wiley, 2006, pp. 739-795. Search in Google Scholar

[13] A. S. Masten, “Ordinary magic: Resilience processes in development.,” American Psychol-ogist, p. 227–238, 2001.10.1037/0003-066X.56.3.227 Search in Google Scholar

[14] A. G. Bonanno, “Loss, trauma, and human resilience: Have we underestimated the human capacity to thrive after extremely aversive events?,” American Psychologist, pp. 20-28, 2004.10.1037/0003-066X.59.1.20 Search in Google Scholar

[15] S. Reeves, M. Winter, M. Leal and D. Hewitt, “Roads: An industry guide to enhancing resilience,” TRL and the Resilience Shift, UK., 2019. Search in Google Scholar

[16] M. Bruneau, S. Chang, R. Eguchi, G. Lee, T. O’Rourke, A. Reinhorn, M. Shinozuka, K. Tierney, W. Wallace and D. von Winterfeldt, “A Framework to Quantitatively Assess and Enhance the Seismic Resilience of Communities.,” Earthquake Spectra, pp. 737-738, 2003.10.1193/1.1623497 Search in Google Scholar

[17] T. Dijkstra and N. Dixon, “Climate change and slope stability in the UK: challenges and approaches,” Quarterly Journal of Engineering Geology and Hydrogeology, p. 371–385, 2010.10.1144/1470-9236/09-036 Search in Google Scholar

[18] J.-M. Blackmore and R. Plant, “Risk and resilience to enhance sustainability.,” J. Water Resour. Plan. Manag., pp. 224-233, 2008.10.1061/(ASCE)0733-9496(2008)134:3(224) Search in Google Scholar

[19] P. Bansal and M. R. Desjardine, “Business sustainability: It is about time,” Strategic Organization, pp. 70-78, 2014.10.1177/1476127013520265 Search in Google Scholar

[20] J.-M. Anderies, C. Folke, B. Walker and E. Ostrom, “Aligning key concepts for global change policy: robustness, resilience, and sustainability.,” Ecology and Society, p. 8–24, 2013.10.5751/ES-05178-180208 Search in Google Scholar

[21] B. Walker, L. Pearson, M. Harris, K.-G. Maler, C.-Z. Li, R. Biggs and T. Baynes, “Incorporating resilience in the assessment of inclusive wealth: an example from South East Australia,” Environmental and Ressource Economics, pp. 183-202, 2010.10.1007/s10640-009-9311-7 Search in Google Scholar

[22] M. Jarzebski, V. Tumilba and H. Yamamoto, “Application of a tri-capital community resilience framework for assessing the social–ecological system sustainability.,” Sustainability Science, pp. 307-320, 2016.10.1007/s11625-015-0323-7 Search in Google Scholar

[23] Ahern J., “Urban landscape sustainability and resilience: the promise and challenges of integrating ecology with urban planning and design.,” Landscape Ecology, pp. 1203-1212, 2013. Search in Google Scholar

[24] I. P.-O. J. Linkov, Risk and Resilience, Amsterdam: Springer, 2017. Search in Google Scholar

[25] W. Saunders and J. Becker, “A discussion of resilience and sustainability: land use planning recovery from the Canterburyearthquake sequence.,” International Journal of Disaster Risk Reduction, pp. 73-91, 2015.10.1016/j.ijdrr.2015.01.013 Search in Google Scholar

[26] C. De Perthuis, Et pour quelques degrés de plus, Nos choix économiques face au risque climatique., Paris: Pearson, 2009. Search in Google Scholar

[27] B. Smit, L. Burton, R. Klein and J. Wandel, “An Anatomy of Adaptation to Climate Change and Variability,” Climatic Change, pp. 223-251, 2000.10.1007/978-94-017-3010-5_12 Search in Google Scholar

[28] UKCIP, “UK Climate Impacts Programme; Climate adaptation: Risk, uncertainty and decision-making,” UKCIP Technical Report, Oxford, UK, 2003. Search in Google Scholar

[29] B. Mullan, D. Wratt, S. Dean, M. Hollis and S. Allan, Climate Change Effects and Impacts Assessment: A Guidance Manual for Local Government in New Zealand, Wellington, New Zealand: Ministry for the Environment, 2008. Search in Google Scholar

[30] UKHA, “Climate Change Adaptation Strategy and Framework,” UK Highways Agency, 2009. Search in Google Scholar

[31] SGI, “Risk Management for Roads in a Changing Climate. A Guidebook to the RIMAROCC Method,” ERA-NET ROAD, Sweden, 2010. Search in Google Scholar

[32] CEDR, “ROADAPT: Roads for Today, Adapted for Tomorrow Guidelines,” Transnational Road Research Programme ROADAPT Consortium, 2015. Search in Google Scholar

[33] ADB, “Guidelines for Climate Proofing Investment in the Transport Sector: Road Infrastructure Projects,” Asian Development Bank, Manila, Philippines, 2011. Search in Google Scholar

[34] FHA, “Climate Change & Extreme Weather Vulnerability Assessment Framework,” Us Department of Transportation, Federal Highway Administration, 2012. Search in Google Scholar

[35] USAID, “Climate-Resilient Development,” United States Agency for International Development, Washington, DC, 2014. Search in Google Scholar

[36] M. Kidnie, A. Marchese, C. Maruntu, H. Murphy, R. Sébille, S. Thomson and C. Toplis, “Cadre international d’adaptation au changement climatique pour les infrastructures routières,” PIARC, Paris, 2015. Search in Google Scholar

[37] E. Dimnet, G. Petcovic and F. Mendoza, “PIARC’s International Climate Change Adaptation Framework for Road Infrastructure — Elements of Analysis on Applicability and Refinement,” Routes/Roads no 380, pp. pp.35-39, 2019. Search in Google Scholar

[38] TCE1, “Refinement of PIARC’s International Climate Change Adaptation Framework for Road Infrastructure,” PIARC, Paris, 2019. Search in Google Scholar

[39] M. N. Taptich, A. Horvath and M. V. Chester, “Worldwide Greenhouse Gas Reduction Potentials in Transportation by 2050,” Journal of Industrial Ecology, p. 329–340, 2016.10.1111/jiec.12391 Search in Google Scholar

[40] D. Hidalgo and C. Huizenga, “Implementation of sustainable urban transport in Latin America.,” Research in transportation economics, pp. 66-77, 2013.10.1016/j.retrec.2012.06.034 Search in Google Scholar

[41] ETC, “Making Mission Possible – Delivering a Net-Zero Economy.,” Energy Transitions Commission, energy-transitions.org, 2020. Search in Google Scholar

[42] C. Brand, J. Anable, I. Ketsopoulou and J. Watson, “Road to zero or road to nowhere? Disrupting transport and energy in a zero carbon world,” Energy Policy, 2020.10.1016/j.enpol.2020.111334 Search in Google Scholar

[43] Ricardo Energy and Environment, “Determining the environmental impacts of conventional and alternatively fuelled vehicles through LCA,” European Commission, DG Climate Action, Brussels, 2020. Search in Google Scholar

[44] H. Lohse-Busch, K. Stutenberg, M. Duoba, X. Liu, A. Elgowainy, M. Wang and M. Christenson, “Automotive fuel cell stack and system efficiency and fuel consumption based on vehicle testing on a chassis dynamometer at minus 18° C to positive 35° C temperatures,” International Journal of Hydrogen Energy, pp. 861-872, 2020.10.1016/j.ijhydene.2019.10.150 Search in Google Scholar

[45] US DOE, “Class 8 Long Haul Truck Targets,” United States, Dept of.Energy, Washington DC, 2019. Search in Google Scholar

[46] J. Yates, R. Daiyan, R. Patterson, R. Egan, R. Amal, A. Ho-Baille and N. L. Chang, “Technoeconomic Analysis of Hydrogen Electrolysis from Off-Grid Stand-Alone Photovoltaics Incorporating Uncertainty Analysis,” Cell Reports Physical Science, p. 1(10), 2020.10.1016/j.xcrp.2020.100209 Search in Google Scholar

[47] B. Jacob, P. Pélata and E.-M. Marskar, “Hydrogen Among Other Solutions to Decarbonate Road Freight Transport,” Routes/Roads, p. No 338, 2020. Search in Google Scholar

[48] T. Seager, “The Sustainability Spectrum and the Sciences of Sustainability.,” Business Strategy and the Environment, pp. 444-453, 2008.10.1002/bse.632 Search in Google Scholar

eISSN:
2286-2218
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
2 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Wirtschaftswissenschaften, Betriebswirtschaft, Branchen, Umweltmanagement, Technik, Einführungen und Gesamtdarstellungen, andere, Materialwissenschaft