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Assessment of carbon emissions and reduction potential in China's copper smelting industry

Author

Listed:
  • Rong Gao
  • Yao Shi
  • Chun Cao
  • Huiquan Li
  • Yuanbo Xie
  • Jingjing Shi
  • Chenmu Zhang
  • Xue Guan

Abstract

As the largest producer and consumer of copper, China is facing enormous challenges from carbon peaking and neutrality. This article adopts “bottom‐up” and “top‐down” methods to construct a more accurate model, to predict the CO2 emissions of China's copper smelting industry, and explores its potential for carbon reduction in the future from three scenarios as the baseline scenario (BAU), the general low‐carbon (NLC), and the enhanced low‐carbon (ELC). The results show that the CO2 emissions can achieve a peak in 2028 either in NLC or ELC scenarios, with a peak range of 14.9–16.88 million tonnes. Prior to reaching the peak, the contributions of energy adjustment, material substitution, and process selection to carbon reduction have significantly improved, and the contribution rates increased from 30.91%, 4.11%, and 1.46% to 42.7%, 32.07%, and 15.63% in ELC scenario. After the peak, the contribution of energy adjustment gradually slows down, while the material substitution continues to increase, and the contribution rates increased from 21.25% and 32.07% to 29.38% and 40.01% in NLC and ELC scenarios. In the future, concentrate oxygen‐enriched bottom‐blowing smelting and direct refining from waste copper anode furnaces show ideal potential for carbon reduction before 2025, increasing the proportion of recycled copper production, and adjusting energy structure will be more effective from 2025 to 2035. The conclusions of this study can provide a scientific basis for formulating policy recommendations for green and low‐carbon development of the copper industry in China and all over the world in the future.

Suggested Citation

  • Rong Gao & Yao Shi & Chun Cao & Huiquan Li & Yuanbo Xie & Jingjing Shi & Chenmu Zhang & Xue Guan, 2024. "Assessment of carbon emissions and reduction potential in China's copper smelting industry," Journal of Industrial Ecology, Yale University, vol. 28(6), pages 1626-1640, December.
  • Handle: RePEc:bla:inecol:v:28:y:2024:i:6:p:1626-1640
    DOI: 10.1111/jiec.13551
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    References listed on IDEAS

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    1. Rivera, Nilza & Guzmán, Juan Ignacio & Jara, José Joaquín & Lagos, Gustavo, 2021. "Evaluation of econometric models of secondary refined copper supply," Resources Policy, Elsevier, vol. 73(C).
    2. Wang, Minxi & Chen, Wu & Zhou, Yang & Li, Xin, 2017. "Assessment of potential copper scrap in China and policy recommendation," Resources Policy, Elsevier, vol. 52(C), pages 235-244.
    3. Nadine Rötzer & Mario Schmidt, 2020. "Historical, Current, and Future Energy Demand from Global Copper Production and Its Impact on Climate Change," Resources, MDPI, vol. 9(4), pages 1-31, April.
    4. Joanna Kulczycka & Łukasz Lelek & Anna Lewandowska & Herbert Wirth & Joseph D. Bergesen, 2016. "Environmental Impacts of Energy-Efficient Pyrometallurgical Copper Smelting Technologies: The Consequences of Technological Changes from 2010 to 2050," Journal of Industrial Ecology, Yale University, vol. 20(2), pages 304-316, April.
    5. Yanjia, Wang & Chandler, William, 2010. "The Chinese nonferrous metals industry--energy use and CO2 emissions," Energy Policy, Elsevier, vol. 38(11), pages 6475-6484, November.
    6. Ying Feng & Ching-Cheng Lu & I-Fang Lin & An-Chi Yang & Po-Chun Lin, 2022. "Total Factor Energy Efficiency of China’s Thermal Power Industry," Sustainability, MDPI, vol. 14(1), pages 1-16, January.
    7. Yue, Qiang & Chai, Xicui & Zhao, Feng & He, Junhao & Li, Yun & Wang, Heming, 2023. "Analysis of iron in-use stocks: Evidence from the provincial and municipal levels in China," Resources Policy, Elsevier, vol. 80(C).
    8. Alvarado, S & Maldonado, P & Barrios, A & Jaques, I, 2002. "Long term energy-related environmental issues of copper production," Energy, Elsevier, vol. 27(2), pages 183-196.
    9. Di Dong & Arnold Tukker & Ester Van der Voet, 2019. "Modeling copper demand in China up to 2050: A business‐as‐usual scenario based on dynamic stock and flow analysis," Journal of Industrial Ecology, Yale University, vol. 23(6), pages 1363-1380, December.
    10. Alvarado, Sergio & Maldonado, Pedro & Jaques, Iván, 1999. "Energy and environmental implications of copper production," Energy, Elsevier, vol. 24(4), pages 307-316.
    11. L. Rachel Ngai & Christopher A. Pissarides, 2007. "Structural Change in a Multisector Model of Growth," American Economic Review, American Economic Association, vol. 97(1), pages 429-443, March.
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