The effects of energy consumption of alumina production in the environmental impacts using life cycle assessment

被引:7
|
作者
Saez-Guinoa, Javier [1 ]
Garcia-Franco, Enrique [1 ]
Llera-Sastresa, Eva [1 ]
Romeo, Luis M. [1 ]
机构
[1] Univ Zaragoza, Sch Engn & Architecture, Campus Rio Ebro,Maria de Luna 3, Zaragoza 50018, Spain
来源
关键词
Alumina; Bayer process; Bauxite; Greenhouse gases; Global warming potential; LCA; Life cycle assessment; GHG EMISSIONS; METAL; CRADLE; DROSS; LCA;
D O I
10.1007/s11367-023-02257-8
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
PurposeAluminium industry emits around 1-2% of the world's total greenhouse gas emissions. Up to one-third of those are linked to the thermal energy consumed during its initial process: the alumina refining (Bayer process). Previous studies consider the Bayer process a single stage despite its being made of several reaction stages. This work presents a disaggregated energy analysis of the Bayer process that facilitates to find relationships between the main variables in regular alumina production and the environmental impacts.MethodsTwo different thermodynamic simulations of the Bayer process were carried out using Aspen V11 software. The results of these simulations were validated with referenced data, and afterwards, they were used to perform a life cycle assessment. ISO 14040 and 14,044 standards were followed during the analysis. LCA was implemented on SimaPro 9.0, and ReCiPe 2016 Midpoint (H) method was used to calculate environmental impacts. The influence of bauxite mineral form, type of fuel (energy input), and the distance from the mine to the plant was analysed throughout the study.Results and discussionAs expected, the type of fuel was revealed as the most crucial factor in the environmental impact of alumina production, with potential savings of up to 75.5% of CO2-equivalent emissions. Nonetheless, the tendency is diverse for other indicators, such as marine eutrophication or terrestrial acidification. On the other hand, while bauxite transportation always has the same impact on the different environmental indicators, bauxite mineral form affects differently depending on the fuel, causing variations in the CO2-eq emissions from 7.7 to 51.3%.ConclusionsResults indicated that the electrification of heat-demanding processes and the use of renewable power is the most effective approach for reducing environmental impacts. This strategy, however, must be considered in combination with others, as interdependent effects exist on the type of mineral used. These results provide strong evidence of the potential for environmentally friendly strategies in the metal industry, including new processes, alternative fuels, or mineral switching to promote more sustainable aluminium production.
引用
收藏
页码:380 / 393
页数:14
相关论文
共 50 条
  • [21] Life cycle assessment of lignocellulosic bioethanol: Environmental impacts and energy balance
    Morales, Marjorie
    Quintero, Julian
    Conejeros, Raul
    Aroca, German
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 42 : 1349 - 1361
  • [22] Life cycle energy analysis and environmental life cycle assessment of carbon nanofibers production
    Khanna, Vikas
    Bakshi, Bhavik R.
    Lee, L. James
    PROCEEDINGS OF THE 2007 IEEE INTERNATIONAL SYMPOSIUM ON ELECTRONICS & THE ENVIRONMENT, CONFERENCE RECORD, 2007, : 128 - +
  • [23] Carbon nanofiber production: Life cycle energy consumption and environmental impact
    Khanna, Vikas
    Bakshi, Bhavik R.
    Lee, L. James
    JOURNAL OF INDUSTRIAL ECOLOGY, 2008, 12 (03) : 394 - 410
  • [24] EVALUATION OF ENVIRONMENTAL IMPACTS AND GHG OF PALM POLYOL PRODUCTION USING LIFE CYCLE ASSESSMENT APPROACH
    Zolkarnain, Noorazah
    Yusoff, Sumiani
    Subramaniam, Vijaya
    Abd Maurad, Zulina
    Abu Bakar, Zailan
    Ghazali, Razmah
    Abu Hassan, Hazimah
    JOURNAL OF OIL PALM RESEARCH, 2015, 27 (02): : 144 - 155
  • [25] Evaluation of environmental impacts of cotton polo shirt production in Bangladesh using life cycle assessment
    Islam, Shafiqul
    Hasan, A. K. M. Mehedi
    Bhuiyan, Muhammad Abdur Rahman
    Bhat, Gajanan
    SCIENCE OF THE TOTAL ENVIRONMENT, 2024, 926
  • [26] Combined life cycle assessment and artificial intelligence for prediction of output energy and environmental impacts of sugarcane production
    Kaab, Ali
    Sharifi, Mohammad
    Mobli, Hossein
    Nabavi-Pelesaraei, Ashkan
    Chau, Kwok-wing
    SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 664 : 1005 - 1019
  • [27] Life cycle environmental impacts of fruits consumption in the UK
    Frankowska, Angelina
    Jeswani, Harish Kumar
    Azapagic, Adisa
    JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2019, 248
  • [28] A cradle-to-gate assessment of environmental impacts for production of mustard oil using life cycle assessment approach
    Khatri, Poonam
    Jain, Suresh
    Pandey, Suneel
    JOURNAL OF CLEANER PRODUCTION, 2017, 166 : 988 - 997
  • [29] Evaluating environmental impacts with life cycle assessment
    Pacanot, Vince Davidson J.
    NATURE REVIEWS EARTH & ENVIRONMENT, 2022, 3 (04) : 224 - 224
  • [30] Evaluating environmental impacts with life cycle assessment
    Vince Davidson J. Pacañot
    Nature Reviews Earth & Environment, 2022, 3 : 224 - 224