Reducing the Carbon Footprint: Primary Production of Aluminum and Silicon with Changing Energy Systems

被引:35
|
作者
Saevarsdottir, Gudrun [1 ]
Magnusson, Thordur [2 ]
Kvande, Halvor [3 ]
机构
[1] Reykjavik Univ, Reykjavik, Iceland
[2] Normi Ehf, Kopavogur, Russia
[3] Norwegian Univ Sci & Technol, Trondheim, Norway
关键词
Aluminum production; Silicon production; Carbon footprint; Indirect emissions; Energy related emissions; REDUCTION;
D O I
10.1007/s40831-021-00429-0
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The world now pushes for a low-carbon future, and international goals for greenhouse gas emission reductions have been set. Industrial processes, including metallurgical processes, make up more than a fifth of the total global emissions, and those have been rising with infrastructure development and the expansion of the middle-class worldwide. This paper focuses on two energy-intensive processes, aluminum production and metallurgical grade silicon production, and how the carbon footprints from these industrial processes have developed in recent decades. The main trend is that the increased demand for these metals has led to expanding primary production for both of them, based on energy with an increasing share of fossil-based electric power. In fact, the average carbon footprint of the energy used in aluminum and silicon production has increased by 38% and 43%, respectively, from 2000 to 2019. The change in energy mix offsets any progress in process efficiencies. This work addresses this and discusses opportunities for improvements.
引用
收藏
页码:848 / 857
页数:10
相关论文
共 50 条
  • [41] Systems Approach to Reducing Waste and Carbon Footprint in the Fresh Produce Supply Chain
    Nitzan, N.
    Ward, G.
    INTERNATIONAL CIPA CONFERENCE 2012 ON PLASTICULTURE FOR A GREEN PLANET, 2014, 1015 : 131 - 136
  • [42] Energy payback time and carbon footprint of commercial photovoltaic systems
    de Wild-Scholten, M. J.
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2013, 119 : 296 - 305
  • [43] Enhancing energy efficiency and reducing carbon footprint in organic soybean production through no-tillage and rye cover crop integration
    Huang, Qiliang
    Gong, Yingting
    Dewi, Ratih Kemala
    Li, Peiran
    Wang, Xiaolong
    Hashimi, Rahmatullah
    Komatsuzaki, Masakazu
    JOURNAL OF CLEANER PRODUCTION, 2023, 419
  • [44] Evaluating the application of water footprint methods to primary metal production systems
    Northey, S.A.
    Haque, N.
    Lovel, R.
    Cooksey, M.A.
    Minerals Engineering, 2014, 69 : 65 - 80
  • [45] Evaluating the application of water footprint methods to primary metal production systems
    Northey, S. A.
    Hague, N.
    Lovel, R.
    Cooksey, M. A.
    MINERALS ENGINEERING, 2014, 69 : 65 - 80
  • [46] Evaluating the application of water footprint methods to primary metal production systems
    Northey, S.A.
    Haque, N.
    Lovel, R.
    Cooksey, M.A.
    Minerals Engineering, 2014, 69 : 65 - 80
  • [47] Reducing carbon footprint in cement material making: Characterizing costs of conserved energy and reduced carbon emissions
    Xu, Tengfang
    Galama, Tjebbe
    Sathaye, Jayant
    SUSTAINABLE CITIES AND SOCIETY, 2013, 9 : 54 - 61
  • [48] Energy Gain and Carbon Footprint in the Production of Bioelectricity and Wood Pellets in Croatia
    Pandur, Zdravko
    Bacic, Marin
    Susnjar, Marijan
    Landekic, Matija
    Sporcic, Mario
    Istok, Iva
    SUSTAINABILITY, 2024, 16 (09)
  • [49] Energy and carbon footprint assessment of production of hemp hurds for application in buildings
    Scrucca, Flavio
    Ingrao, Carlo
    Maalouf, Chadi
    Moussa, Tala
    Polidori, Guillaume
    Messineo, Antonio
    Arcidiacono, Claudia
    Asdrubali, Francesco
    ENVIRONMENTAL IMPACT ASSESSMENT REVIEW, 2020, 84 (84)
  • [50] ENERGY AND MATERIALS REQUIREMENTS OF PRIMARY ALUMINUM PRODUCTION IN THE UK
    BOUSTEAD, I
    HANCOCK, GF
    RESOURCE RECOVERY AND CONSERVATION, 1981, 5 (04): : 303 - 318