Sustainable routes for acetic acid production: Traditional processes vs a low-carbon, biogas-based strategy

被引:28
作者
Martin-Espejo, Juan Luis [1 ]
Gandara-Loe, Jesus [1 ]
Odriozola, Jose Antonio [1 ,2 ]
Reina, T. R. [1 ,2 ]
Pastor-Perez, Laura [1 ,2 ]
机构
[1] Univ Seville, Inst Seville, Dept Inorgan Chem & Mat Sci, CSIC, Seville 41092, Spain
[2] Univ Surrey, Dept Chem & Proc Engn, Guildford GU2 7XH, Surrey, England
基金
欧盟地平线“2020”;
关键词
Acetic acid; Biogas; Dry reforming; Catalysis; Low-carbon chemicals; Non-thermal plasma; PHOTOCATALYTIC CONVERSION; HIGHER HYDROCARBONS; CATALYTIC-ACTIVITY; METHANE; DRY; DIOXIDE; CO2; SYNGAS; CARBONYLATION; CH4;
D O I
10.1016/j.scitotenv.2022.156663
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The conversion of biogas, mainly formed of CO2 and CH4, into high-value platform chemicals is increasing attention in a context of low-carbon societies. In this new paradigm, acetic acid (AA) is deemed as an interesting product for the chemical industry. Herein we present a fresh overview of the current manufacturing approaches, compared to potential low-carbon alternatives. The use of biogas as primary feedstock to produce acetic acid is an auspicious alternative, representing a step-ahead on carbon-neutral industrial processes. Within the spirit of a circular economy, we propose and analyse a new BIO-strategy with two noteworthy pathways to potentially lower the environmental impact. The generation of syngas via dry reforming (DRM) combined with CO2 utilisation offers a way to produce acetic acid in a two-step approach (BIO-Indirect route), replacing the conventional, petroleum-derived steam reforming process. The most recent advances on catalyst design and technology are discussed. On the other hand, the BIO-Direct route offers a ground-breaking, atom-efficient way to directly generate acetic acid from biogas. Nevertheless, due to thermodynamic restrictions, the use of plasma technology is needed to directly produce acetic acid. This very promising approach is still in an early stage. Particularly, progress in catalyst design is mandatory to enable low-carbon routes for acetic acid production.
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页数:16
相关论文
共 108 条
  • [1] A review on catalyst development for dry reforming of methane to syngas: Recent advances
    Abdulrasheed, Abdulrahman
    Jalil, Aishah Abdul
    Gambo, Yahya
    Ibrahim, Maryam
    Hambali, Hambali Umar
    Hamill, Muhamed Yusuf Shahul
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2019, 108 : 175 - 193
  • [2] Non-Thermal Plasma for Process and Energy Intensification in Dry Reforming of Methane
    Abiev, Rufat Sh
    Sladkovskiy, Dmitry A.
    Semikin, Kirin, V
    Murzin, Dmitry Yu
    Rebrov, Evgeny, V
    [J]. CATALYSTS, 2020, 10 (11) : 1 - 41
  • [3] Alipour Z, 2014, J IND ENG CHEM, V20, P2858
  • [4] [Anonymous], 2015, Energy Climate and Change: World Energy Outlook Special Report
  • [5] [Anonymous], 2020, Mordor Intelligence
  • [6] [Anonymous], [No title captured]
  • [7] [Anonymous], 2021, Glasgow Climate Pact
  • [8] Catalyst design for dry reforming of methane: Analysis review
    Aramouni, Nicolas Abdel Karim
    Touma, Jad G.
    Abu Tarboush, Belal
    Zeaiter, Joseph
    Ahmad, Mohammad N.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 82 : 2570 - 2585
  • [9] Atanda L, 2021, ENG SOLUTIONS CO2 CO, P335
  • [10] Bae J., 2015, Rh/WxC heterogeneous catalyst for prepar-ing acetic acid by carbonylation reaction, Patent No. [2016108389A1, 2016108389]