Life-Cycle Assessment of Adsorbents for Biohydrogen Production

被引:6
|
作者
Seo, Yuna [1 ]
Suzuki, Masaya [2 ]
Takagi, Tetsuichi [2 ]
Dowaki, Kiyoshi [1 ]
机构
[1] Tokyo Univ Sci, Fac Sci & Technol, 2641 Yamazaki, Noda, Chiba 2788510, Japan
[2] Natl Inst Adv Ind Sci & Technol, Inst Georesources & Environm, 1-1-1 Higashi, Tsukuba, Ibaraki 3058567, Japan
来源
RESOURCES-BASEL | 2019年 / 8卷 / 01期
基金
日本学术振兴会;
关键词
biohydrogen; adsorbents; zeolite A; Has-Clay; Kanuma clay; LCA; PRESSURE SWING ADSORPTION; HYDROGEN-PRODUCTION; PURIFICATION; PSA; SYSTEM; LCA;
D O I
10.3390/resources8010052
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Adsorbents are used to remove impurities such as carbon monoxide, carbon dioxide, methane, and hydrogen sulfide in the pressure swing adsorption process of biohydrogen production. These impurities are present in the produced gas along with hydrogen and often cause voltage reduction in fuel cells and shorten the lifespan of catalysts. Zeolite A is a typical adsorbent, and more recently, hydroxyl aluminum silicate clay (Has-Clay) and Kanuma clay have been suggested as alternatives. We conducted a life-cycle assessment (LCA) of zeolite A, Has-Clay, and Kanuma clay, and evaluated their environmental impact based on the ReCiPe midpoint method. Kanuma clay had the least impact in all of the environmental categories. The largest contributions for zeolite A and Has-Clay were in the categories of climate change and fossil depletion. In the climate change category, production of 1 kg of Has-Clay and zeolite A was estimated to emit 17.142 kg CO2 eq and 2.352 kg CO2 eq, respectively. In the fossil depletion category, the values were estimated to be 3.999 kg oil eq and 1.039 kg oil eq, respectively. These LCA results will be useful in designing and using adsorbents in pressure swing adsorption processes to meet environmental challenges associated with sustainable biohydrogen production.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Recent updates in biohydrogen production strategies and life-cycle assessment for sustainable future
    Morya, Raj
    Raj, Tirath
    Lee, Youngkyu
    Pandey, Ashutosh Kumar
    Kumar, Deepak
    Singhania, Reeta Rani
    Singh, Saurabh
    Verma, Jay Prakash
    Kim, Sang-Hyoun
    [J]. BIORESOURCE TECHNOLOGY, 2022, 366
  • [2] Life cycle assessment of biohydrogen production in photosynthetic processes
    Romagnoli, Francesco
    Blumberga, Dagnija
    Pilicka, Iluta
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (13) : 7866 - 7871
  • [3] LIFE-CYCLE ASSESSMENT FOR SUSTAINABLE WINE PRODUCTION
    Pandelieva, Ivanka
    [J]. GEOCONFERENCE ON ECOLOGY, ECONOMICS, EDUCATION AND LEGISLATION, SGEM 2014, VOL III, 2014, : 239 - 243
  • [4] Life cycle assessment of biohydrogen production as a transportation fuel in Germany
    Wulf, Christina
    Kaltschmitt, Martin
    [J]. BIORESOURCE TECHNOLOGY, 2013, 150 : 466 - 475
  • [5] Life-cycle assessment modelling and life-cycle assessment evaluation of a triboelement
    Wani, M. F.
    Anand, A.
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART J-JOURNAL OF ENGINEERING TRIBOLOGY, 2010, 224 (J11) : 1209 - 1220
  • [6] LIFE-CYCLE ASSESSMENT
    WEISSMAN, AB
    [J]. ISSUES IN SCIENCE AND TECHNOLOGY, 1994, 11 (01) : 18 - 18
  • [7] Life-cycle assessment
    Riebel, P
    [J]. PULP & PAPER-CANADA, 2002, 103 (04) : 57 - 57
  • [8] Life-cycle assessment
    Harsch, M
    Schuckert, M
    Eyerer, P
    Saur, K
    [J]. ADVANCED MATERIALS & PROCESSES, 1996, 149 (06): : 43 - 46
  • [9] Life-Cycle Assessment of the Production of Swiss Road Materials
    Gschoesser, Florian
    Wallbaum, Holger
    Boesch, Michael E.
    [J]. JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2012, 24 (02) : 168 - 176
  • [10] Production of copper-64: Life-cycle assessment
    Jeffery, Charmaine M.
    Smith, Suzanne V.
    Asad, Ali H.
    Chan, Sun
    Cryer, David
    Price, Roger I.
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245