85
Newell, J. P., & Cousins, J. J. (2014). The boundaries of urban metabolism: Towards a political–
Industrial ecology. Progress in Human Geography , 1–27.
Niza, S., Rosado, L., & Ferrao, P. (2009). Urban metabolism methodological advances in urban
material fl ow accounting based on the Lisbon case study. Journal of Industrial Ecology, 13 (3),
384–405.
Odum, H. T. (1983). Systems ecology, an introduction . New York: Wiley-Interscience.
Olson, S. (1982). Urban metabolism and morphogenesis. Urban Geography, 3 (2), 87–109.
Pasqualino, J. C., Meneses, M., & Castells, F. (2011). Life cycle assessment of urban wastewater
reclamation and reuse alternatives. Journal of Industrial Ecology, 15 (1), 49–63.
Ramaswami, A., Weible, C., Main, D., Heikkila, T., Siddiki, S., Duvall, A., Pattison, A., & Bernard,
M. (2012a). A social-ecological-infrastructural systems framework for interdisciplinary study
of sustainable city systems: An integrative curriculum across seven major disciplines. Journal
of Industrial Ecology, 16 (6), 801–813.
Ramaswami, A., Chavez, A., & Chertow, M. (2012b). Carbon footprinting of cities and implications for analysis of urban material and energy fl ows. Journal of Industrial Ecology, 16 (6),
783–785.
Reiter, S., & Marique, A.-F. (2012). Toward low energy cities: A case study of the urban area of
Liége, Belgium toward low energy cities. Journal of Industrial Ecology, 16 (6), 829–838.
Richards, D. J., & Fullerton, A. B. (1994). Industrial ecology: U.S. – Japan perspectives .
Washington, DC: National Academy Press.
Shi, F., Huang, T., Tanikawa, H., Han, J., Hashimoto, S., & Moriguchi, Y. (2012). Toward a low
carbon-dematerialization society: Measuring the materials demand and CO2 emissions of
building and transport infrastructure construction in China. Journal of Industrial Ecology,
16 (4), 493–505.
Soares, S. R., Finotti, A. R., Prudêncio da Silva, V., & Alvarenga, R. A. F. (2013). Applications of
life cycle assessment and cost analysis in health care waste management. Waste Management,
33 (1), 175–183.
Socolow, R., Andrews, C., Berkhout, F., & Thomas, V. (Eds.). (1994). Industrial ecology and
global change . Cambridge/New York: Cambridge University Press.
Spilhaus, A. (1967). The experimental city. Daedalus, 96 (4), 1129–1141.
Spilhaus, A. (1968). The experimental city. Science, 159 (3816), 710–715.
Sugar, L., Kennedy, C., & Leman, E. (2012). Greenhouse gas emissions from Chinese cities.
Journal of Industrial Ecology, 16 (4), 552–563.
Van Berkel, R., Fujita, T., Hashimoto, S., & Geng, Y. (2009a). Industrial and urban symbiosis in
Japan: Analysis of the Eco-Town program 1997–2006. Journal of Environmental Management,
90 (3), 1544–1556.
Van Berkel, R., Fujita, T., Hashimoto, S., & Fujii, M. (2009b). Quantitative assessment of urban
and industrial symbiosis in Kawasaki, Japan. Environmental Science and Technology, 43 (5),
1271–1281.
VandeWeghe, J. R., & Kennedy, C. (2007). A spatial analysis of residential greenhouse gas emissions in the Toronto census metropolitan area. Journal of Industrial Ecology, 11 (2), 133–144.
Venkatesh, G. (2013). An analysis of stocks and fl ows associated with water consumption in Indian
households. Journal of Industrial Ecology, 17 (3), 472–481.
Venkatesh, G., & Brattebø, H. (2012). Assessment of environmental impacts of an aging and stagnating water supply pipeline network: City of Oslo, 1991–2006. Journal of Industrial Ecology,
16 (5), 722–734.
Venkatesh, G., Hammervold, J., & Brattebø, H. (2009). Combined MFA-LCA for analysis of
wastewater pipeline networks: Case study of Oslo, Norway. Journal of Industrial Ecology,
13 (4), 532–550.
Vernay, A.-L., Mulder, K. F., Kamp, L. M., & De Bruijn, H. (2013). Exploring the socio-technical
dynamics of systems integration-the case of sewage gas for transport in Stockholm, Sweden.
Journal of Cleaner Production, 44 , 190–199.
4 Industrial Ecology and Cities
Newell, J. P., & Cousins, J. J. (2014). The boundaries of urban metabolism: Towards a political–
Industrial ecology. Progress in Human Geography , 1–27.
Niza, S., Rosado, L., & Ferrao, P. (2009). Urban metabolism methodological advances in urban
material fl ow accounting based on the Lisbon case study. Journal of Industrial Ecology, 13 (3),
384–405.
Odum, H. T. (1983). Systems ecology, an introduction . New York: Wiley-Interscience.
Olson, S. (1982). Urban metabolism and morphogenesis. Urban Geography, 3 (2), 87–109.
Pasqualino, J. C., Meneses, M., & Castells, F. (2011). Life cycle assessment of urban wastewater
reclamation and reuse alternatives. Journal of Industrial Ecology, 15 (1), 49–63.
Ramaswami, A., Weible, C., Main, D., Heikkila, T., Siddiki, S., Duvall, A., Pattison, A., & Bernard,
M. (2012a). A social-ecological-infrastructural systems framework for interdisciplinary study
of sustainable city systems: An integrative curriculum across seven major disciplines. Journal
of Industrial Ecology, 16 (6), 801–813.
Ramaswami, A., Chavez, A., & Chertow, M. (2012b). Carbon footprinting of cities and implications for analysis of urban material and energy fl ows. Journal of Industrial Ecology, 16 (6),
783–785.
Reiter, S., & Marique, A.-F. (2012). Toward low energy cities: A case study of the urban area of
Liége, Belgium toward low energy cities. Journal of Industrial Ecology, 16 (6), 829–838.
Richards, D. J., & Fullerton, A. B. (1994). Industrial ecology: U.S. – Japan perspectives .
Washington, DC: National Academy Press.
Shi, F., Huang, T., Tanikawa, H., Han, J., Hashimoto, S., & Moriguchi, Y. (2012). Toward a low
carbon-dematerialization society: Measuring the materials demand and CO2 emissions of
building and transport infrastructure construction in China. Journal of Industrial Ecology,
16 (4), 493–505.
Soares, S. R., Finotti, A. R., Prudêncio da Silva, V., & Alvarenga, R. A. F. (2013). Applications of
life cycle assessment and cost analysis in health care waste management. Waste Management,
33 (1), 175–183.
Socolow, R., Andrews, C., Berkhout, F., & Thomas, V. (Eds.). (1994). Industrial ecology and
global change . Cambridge/New York: Cambridge University Press.
Spilhaus, A. (1967). The experimental city. Daedalus, 96 (4), 1129–1141.
Spilhaus, A. (1968). The experimental city. Science, 159 (3816), 710–715.
Sugar, L., Kennedy, C., & Leman, E. (2012). Greenhouse gas emissions from Chinese cities.
Journal of Industrial Ecology, 16 (4), 552–563.
Van Berkel, R., Fujita, T., Hashimoto, S., & Geng, Y. (2009a). Industrial and urban symbiosis in
Japan: Analysis of the Eco-Town program 1997–2006. Journal of Environmental Management,
90 (3), 1544–1556.
Van Berkel, R., Fujita, T., Hashimoto, S., & Fujii, M. (2009b). Quantitative assessment of urban
and industrial symbiosis in Kawasaki, Japan. Environmental Science and Technology, 43 (5),
1271–1281.
VandeWeghe, J. R., & Kennedy, C. (2007). A spatial analysis of residential greenhouse gas emissions in the Toronto census metropolitan area. Journal of Industrial Ecology, 11 (2), 133–144.
Venkatesh, G. (2013). An analysis of stocks and fl ows associated with water consumption in Indian
households. Journal of Industrial Ecology, 17 (3), 472–481.
Venkatesh, G., & Brattebø, H. (2012). Assessment of environmental impacts of an aging and stagnating water supply pipeline network: City of Oslo, 1991–2006. Journal of Industrial Ecology,
16 (5), 722–734.
Venkatesh, G., Hammervold, J., & Brattebø, H. (2009). Combined MFA-LCA for analysis of
wastewater pipeline networks: Case study of Oslo, Norway. Journal of Industrial Ecology,
13 (4), 532–550.
Vernay, A.-L., Mulder, K. F., Kamp, L. M., & De Bruijn, H. (2013). Exploring the socio-technical
dynamics of systems integration-the case of sewage gas for transport in Stockholm, Sweden.
Journal of Cleaner Production, 44 , 190–199.
4 Industrial Ecology and Cities
