Environmental Life Cycle Assessment of Ammonia-Based Electricity

被引:30
|
作者
Boero, Andrea J. [1 ]
Kardux, Kevin [2 ]
Kovaleva, Marina [3 ]
Salas, Daniel A. [1 ]
Mooijer, Jacco [2 ]
Mashruk, Syed [3 ]
Townsend, Michael [1 ]
Rouwenhorst, Kevin [2 ,4 ,5 ]
Valera-Medina, Agustin [3 ]
Ramirez, Angel D. [1 ]
机构
[1] ESPOL, Escuela Super Politecn Litoral, Fac Ingn Mecan & Ciencias Prod, Campus Gustavo Galindo,Km 30-5 Via Perimetral, Guayaquil 090902, Ecuador
[2] Proton Ventures, Karel Doormanweg 5, NL-3115 JD Schiedam, Netherlands
[3] Cardiff Univ, Coll Phys Sci & Engn, Cardiff CF24 3AA, Wales
[4] Ammonia Energy Assoc, 77 Sands St,6th Floor, Brooklyn, NY 11201 USA
[5] Univ Twente, Catalyt Proc & Mat, MESA Inst Nanotechnol, POB 217, NL-7500 AE Enschede, Netherlands
关键词
ammonia; hydrogen; LCA; carbon footprint; environmental impact; green ammonia; blue ammonia; pink ammonia; gray ammonia; energy; HYDROGEN; FUEL; TRANSPORTATION; OPTIONS; CHILE;
D O I
10.3390/en14206721
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In recent years, several researchers have studied the potential use of ammonia (NH3) as an energy vector, focused on the techno-economic advantages and challenges for full global deployment. The use of ammonia as fuel is seen as a strategy to support decarbonization; however, to confirm the sustainability of the shift to ammonia as fuel in thermal engines, a study of the environmental profile is needed. This paper aims to assess the environmental life cycle impacts of ammonia-based electricity generated in a combined heat and power cycle for different ammonia production pathways. A cradle-to-gate assessment was developed for both ammonia production and ammonia-based electricity generation. The results show that electrolysis-based ammonia from renewable and nuclear energy have a better profile in terms of global warming potential (0.09-0.70 t CO2-eq/t NH3), fossil depletion potential (3.62-213.56 kg oil-eq/t NH3), and ozone depletion potential (0.001-0.082 g CFC-11-eq/t NH3). In addition, surplus heat for district or industrial applications offsets some of the environmental burden, such as a more than 29% reduction in carbon footprint. In general, ammonia-based combined heat and power production presents a favorable environmental profile, for example, the carbon footprint ranges from -0.480 to 0.003 kg CO2-eq/kWh.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Benchmarking Environmental Impacts of Peat Use for Electricity Generation in Ireland-A Life Cycle Assessment
    Murphy, Fionnuala
    Devlin, Ger
    McDonnell, Kevin
    SUSTAINABILITY, 2015, 7 (06): : 6376 - 6393
  • [42] Life cycle assessment of solar PV based electricity generation systems: A review
    Sherwani, A. F.
    Usmani, J. A.
    Varun
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (01): : 540 - 544
  • [43] Dynamic life cycle assessment of European electricity generation based on a retrospective approach
    Naumann, Gabriel
    Famiglietti, Jacopo
    Schropp, Elke
    Motta, Mario
    Gaderer, Matthias
    ENERGY CONVERSION AND MANAGEMENT, 2024, 311
  • [44] Cost combined life cycle assessment of lignite-based electricity generation
    Zhao, Jian
    Hong, Jinglan
    Song, Zhanlong
    Wang, Qingsong
    Zhao, Xiqiang
    Ma, Chunyuan
    FUEL, 2015, 159 : 666 - 674
  • [45] Backing for an ammonia-based fuel economy
    Watson, John
    NEW SCIENTIST, 2019, 244 (3250) : 26 - 26
  • [46] Smart temperature difference management in summer desert enabled by ammonia-based resorption cycle
    Wu, S. F.
    An, G. L.
    Wang, L. W.
    Zhang, C.
    ENERGY CONVERSION AND MANAGEMENT, 2022, 254
  • [47] Environmental Life Cycle Assessment of linoleum
    Gorrée, M
    Guinée, JB
    Huppes, G
    van Oers, L
    INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2002, 7 (03): : 158 - 166
  • [48] Environmental life-cycle assessment
    Kirchain, Randolph E., Jr.
    Gregory, Jeremy R.
    Olivetti, Elsa A.
    NATURE MATERIALS, 2017, 16 (07) : 693 - 697
  • [49] Environmental life-cycle assessment
    Randolph E. Kirchain Jr
    Jeremy R. Gregory
    Elsa A. Olivetti
    Nature Materials, 2017, 16 : 693 - 697
  • [50] Environmental Life cycle assessment of linoleum
    M. Gorree
    J. B. Guinée
    G. Huppes
    L. van Oers
    The International Journal of Life Cycle Assessment, 2000, 5 (4) : 238 - 238