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Exergy analysis of the life cycle of steel

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  • Michaelis, Peter
  • Jackson, Tim
  • Clift, Roland

Abstract

Exergy analysis has been applied to the life cycle of steel. Our model yields the estimate that the U.K. steel sector consumed 22GJ of exergy per tonne of steel delivered to product manufacture in 1994. The analysis shows that process improvement and increased recycling within the life cycle will reduce exergy consumption.

Suggested Citation

  • Michaelis, Peter & Jackson, Tim & Clift, Roland, 1998. "Exergy analysis of the life cycle of steel," Energy, Elsevier, vol. 23(3), pages 213-220.
  • Handle: RePEc:eee:energy:v:23:y:1998:i:3:p:213-220
    DOI: 10.1016/S0360-5442(97)00081-9
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    References listed on IDEAS

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    1. World Commission on Environment and Development,, 1987. "Our Common Future," OUP Catalogue, Oxford University Press, number 9780192820808.
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    Cited by:

    1. Costa, Márcio Macedo & Schaeffer, Roberto & Worrell, Ernst, 2001. "Exergy accounting of energy and materials flows in steel production systems," Energy, Elsevier, vol. 26(4), pages 363-384.
    2. Feng, Chao & Zhu, Rong & Wei, Guangsheng & Dong, Kai & Xia, Tao, 2023. "Typical case of CO2 capture in Chinese iron and steel enterprises: Exergy analysis," Applied Energy, Elsevier, vol. 336(C).
    3. Diener, Derek L. & Tillman, Anne-Marie, 2015. "Component end-of-life management: Exploring opportunities and related benefits of remanufacturing and functional recycling," Resources, Conservation & Recycling, Elsevier, vol. 102(C), pages 80-93.
    4. Rong, W. & Li, B. & Liu, P. & Qi, F., 2017. "Exergy assessment of a rotary kiln-electric furnace smelting of ferronickel alloy," Energy, Elsevier, vol. 138(C), pages 942-953.
    5. Zhang, Wei & Zhang, Juhua & Xue, Zhengliang, 2017. "Exergy analyses of the oxygen blast furnace with top gas recycling process," Energy, Elsevier, vol. 121(C), pages 135-146.
    6. Raúl Arango-Miranda & Robert Hausler & Rabindranarth Romero-López & Mathias Glaus & Sara Patricia Ibarra-Zavaleta, 2018. "An Overview of Energy and Exergy Analysis to the Industrial Sector, a Contribution to Sustainability," Sustainability, MDPI, vol. 10(1), pages 1-19, January.
    7. Domínguez, Adriana & Valero, Alicia & Valero, Antonio, 2013. "Exergy accounting applied to metallurgical systems: The case of nickel processing," Energy, Elsevier, vol. 62(C), pages 37-45.
    8. Lenzen, Manfred & Dey, Christopher, 2000. "Truncation error in embodied energy analyses of basic iron and steel products," Energy, Elsevier, vol. 25(6), pages 577-585.
    9. Diener, Derek L. & Tillman, Anne-Marie, 2016. "Scrapping steel components for recycling—Isn’t that good enough? Seeking improvements in automotive component end-of-life," Resources, Conservation & Recycling, Elsevier, vol. 110(C), pages 48-60.
    10. Becerra-Lopez, Humberto R. & Golding, Peter, 2007. "Dynamic exergy analysis for capacity expansion of regional power-generation systems: Case study of far West Texas," Energy, Elsevier, vol. 32(11), pages 2167-2186.
    11. Chen, Lingen & Yang, Bo & Feng, Huijun & Ge, Yanlin & Xia, Shaojun, 2020. "Performance optimization of an open simple-cycle gas turbine combined cooling, heating and power plant driven by basic oxygen furnace gas in China's steelmaking plants," Energy, Elsevier, vol. 203(C).

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