17
Gierlinger, S., & Krausmann, F. (2011). The physical economy of the United States of America:
Extraction, trade, and consumption of materials from 1870 to 2005. Journal of Industrial
Ecology, 16 , 365–377.
Go, T. F., Wahab, D. A., Rahman, M. N. A., Ramli, R., & Azhari, C. H. (2011). Disassemblability
of end-of-life vehicle: A critical review of evaluation methods. Journal of Cleaner Production,
19 , 1536–1546.
Graedel, T. E. (2000). The evolution of industrial ecology. Environmental Science & Technology,
34 , 28A–31A.
Graedel, T. E., & Allenby, B. R. (1995). Industrial ecology (412 pp). Englewood Cliffs: Prentice
Hall.
Graedel, T. E., & Allenby, B. R. (1996). Design for environment (175 pp). Upper Saddle River:
Prentice Hall.
Graedel, T. E., & Allenby, B. R. (2003). Industrial ecology (2nd ed., 363 pp). Englewood Cliffs:
Prentice Hall.
Graedel, T. E., & Allenby, B. R. (2010). Industrial ecology and sustainable engineering (403 pp).
Englewood Cliffs: Prentice Hall.
Graedel, T. E., Allenby, B. R., & Comrie, P. R. (1995). Matrix approaches to abridged life cycle
assessment. Environmental Science & Technology, 29 , 134A–139A.
Guinée, J. (Ed.). (2002). Handbook on life cycle assessment – Operational guide to the ISO standards . Dordrecht: Kluwer Academic Publishers.
Hamilton, A., & Michael, J. A. (1992). The NCR 7731: Ecologically responsible design, business
& technology. Innovation (special issue), 21–23.
Harsch, M., Schukert, M., Eyerer, P., & Saur, K. (1996). Life-cycle assessment. Advanced
Materials & Processes, 6 , 43–46.
Hatcher, G. D., Ijomah, W. L., & Windmill, J. F. C. (2011). Design for remanufacture: A literature
review and future research needs. Journal of Cleaner Production, 19 , 2004–2014.
Heijungs, R., Guinée, J., Huppes, G., Lankreijer, R. M., Udo de Haas, H. A., Wegener Sleeswijk,
A., Ansems, A. M. M., Eggels, P. G., van Duin, R., & de Goede, H. P. (1992). Environmental
life cycle assessment of products: Guide and backgrounds . Leiden: CML, Leiden University.
Henstock, M. E. (1988). Design for recyclability (135 pp). London: The Institute of Metals.
Hilliard, H. E. (1994). The materials fl ow of vanadium in the United States (20 pp). Washington,
DC: U.S. Department of the Interior.
Hoffman, W. F. III. (1995). A tiered approach to design for environment. In Proceedings of the IEE
conference on clean electronic products and technology , London: Institution of Electrical
Engineers, Edinburgh.
Hoffman, W. F. (1997). Recent advances in design for environment at Motorola. Journal of
Industrial Ecology, 1 (1), 131–140.
Holusha, J. (1991, May 28). Making disposal easier, by design. New York Times , pp. D1, D3.
Horkeby, I. (1997). Environmental prioritization. In D. J. Richards (Ed.), The industrial green
game . Washington, DC: National Academy Press.
Hunt, R., & Welch, R. (1972). Resource and environmental profi le analysis of plastics and nonplastics containers . New York: The Society of the Plastics Industry.
Isenmann, R., & Von Hauff, M. (2007). Industrial ecology: konzeptionelle Grundlagen, zentrale
Handlungsfelder, Kernwerkzeuge und erfolgreiche Praxisbeispiele . Dordrecht: Elsevier.
Itsubo, N., Inaba, A., Matsuno, Y., Yasui, I., & Yamamoto, R. (2000). Current status of weighting
methodologies in Japan. International Journal of Life Cycle Assessment, 5 (1), 5–11.
Japanese Environment Agency. (1992). Quality of the environment in Japan 1992 . Tokyo: Ministry
of the Environment Japan.
Jolly, J. H. (1993). Materials fl ow of zinc in the United States, 1850–1990. Resources, Conservation
and Recycling, 9 , 1–30.
Kirby, J. R., & Pitts, D. (1994). Resource recovery strategies for end-of-life business machines. In
Proceedings of the IEEE international symposium on electronics and the environment
(pp. 167–170). Piscataway, NJ: IEEE.
Klausner, M., Grimm, W. M., & Hendrickson, C. (1998). Reuse of electric motors in consumer products: Design and analysis of an electronic data log. Journal of Industrial Ecology, 2 (2), 89–102.
1 Industrial Ecology’s First Decade
Gierlinger, S., & Krausmann, F. (2011). The physical economy of the United States of America:
Extraction, trade, and consumption of materials from 1870 to 2005. Journal of Industrial
Ecology, 16 , 365–377.
Go, T. F., Wahab, D. A., Rahman, M. N. A., Ramli, R., & Azhari, C. H. (2011). Disassemblability
of end-of-life vehicle: A critical review of evaluation methods. Journal of Cleaner Production,
19 , 1536–1546.
Graedel, T. E. (2000). The evolution of industrial ecology. Environmental Science & Technology,
34 , 28A–31A.
Graedel, T. E., & Allenby, B. R. (1995). Industrial ecology (412 pp). Englewood Cliffs: Prentice
Hall.
Graedel, T. E., & Allenby, B. R. (1996). Design for environment (175 pp). Upper Saddle River:
Prentice Hall.
Graedel, T. E., & Allenby, B. R. (2003). Industrial ecology (2nd ed., 363 pp). Englewood Cliffs:
Prentice Hall.
Graedel, T. E., & Allenby, B. R. (2010). Industrial ecology and sustainable engineering (403 pp).
Englewood Cliffs: Prentice Hall.
Graedel, T. E., Allenby, B. R., & Comrie, P. R. (1995). Matrix approaches to abridged life cycle
assessment. Environmental Science & Technology, 29 , 134A–139A.
Guinée, J. (Ed.). (2002). Handbook on life cycle assessment – Operational guide to the ISO standards . Dordrecht: Kluwer Academic Publishers.
Hamilton, A., & Michael, J. A. (1992). The NCR 7731: Ecologically responsible design, business
& technology. Innovation (special issue), 21–23.
Harsch, M., Schukert, M., Eyerer, P., & Saur, K. (1996). Life-cycle assessment. Advanced
Materials & Processes, 6 , 43–46.
Hatcher, G. D., Ijomah, W. L., & Windmill, J. F. C. (2011). Design for remanufacture: A literature
review and future research needs. Journal of Cleaner Production, 19 , 2004–2014.
Heijungs, R., Guinée, J., Huppes, G., Lankreijer, R. M., Udo de Haas, H. A., Wegener Sleeswijk,
A., Ansems, A. M. M., Eggels, P. G., van Duin, R., & de Goede, H. P. (1992). Environmental
life cycle assessment of products: Guide and backgrounds . Leiden: CML, Leiden University.
Henstock, M. E. (1988). Design for recyclability (135 pp). London: The Institute of Metals.
Hilliard, H. E. (1994). The materials fl ow of vanadium in the United States (20 pp). Washington,
DC: U.S. Department of the Interior.
Hoffman, W. F. III. (1995). A tiered approach to design for environment. In Proceedings of the IEE
conference on clean electronic products and technology , London: Institution of Electrical
Engineers, Edinburgh.
Hoffman, W. F. (1997). Recent advances in design for environment at Motorola. Journal of
Industrial Ecology, 1 (1), 131–140.
Holusha, J. (1991, May 28). Making disposal easier, by design. New York Times , pp. D1, D3.
Horkeby, I. (1997). Environmental prioritization. In D. J. Richards (Ed.), The industrial green
game . Washington, DC: National Academy Press.
Hunt, R., & Welch, R. (1972). Resource and environmental profi le analysis of plastics and nonplastics containers . New York: The Society of the Plastics Industry.
Isenmann, R., & Von Hauff, M. (2007). Industrial ecology: konzeptionelle Grundlagen, zentrale
Handlungsfelder, Kernwerkzeuge und erfolgreiche Praxisbeispiele . Dordrecht: Elsevier.
Itsubo, N., Inaba, A., Matsuno, Y., Yasui, I., & Yamamoto, R. (2000). Current status of weighting
methodologies in Japan. International Journal of Life Cycle Assessment, 5 (1), 5–11.
Japanese Environment Agency. (1992). Quality of the environment in Japan 1992 . Tokyo: Ministry
of the Environment Japan.
Jolly, J. H. (1993). Materials fl ow of zinc in the United States, 1850–1990. Resources, Conservation
and Recycling, 9 , 1–30.
Kirby, J. R., & Pitts, D. (1994). Resource recovery strategies for end-of-life business machines. In
Proceedings of the IEEE international symposium on electronics and the environment
(pp. 167–170). Piscataway, NJ: IEEE.
Klausner, M., Grimm, W. M., & Hendrickson, C. (1998). Reuse of electric motors in consumer products: Design and analysis of an electronic data log. Journal of Industrial Ecology, 2 (2), 89–102.
1 Industrial Ecology’s First Decade
