Advances in additive manufacturing of fuel cells: A review of technologies, materials, and challenges

被引:0
作者
Singh, Rohit [1 ]
Pratap, Rana [2 ]
Narayanan, Jinoop Arackal [3 ]
Thangamani, Geethapriyan [4 ]
Krishnan, Venkatesan Venkata [3 ]
Arjunan, Arun [5 ]
Hughes, David [3 ]
机构
[1] SR Univ, Dept Mech Engn, Warangal 506371, Telangana, India
[2] Vellore Inst Technol Chennai, Chennai 600127, Tamil Nadu, India
[3] Teesside Univ, Sch Comp Engn & Digital Technol, Middlesbrough TS1 3BX, England
[4] Politecn Torino, Dept Appl Sci & Technol DISAT, Turin, Italy
[5] Univ Wolverhampton, Addit Mfg Funct Mat AMFM Res Grp, Telford Innovat Campus, Telford TF2 9NT, England
关键词
Fuel cell; Additive manufacturing; Clean energy; 3D printing; Materials; Powder bed fusion; SOLID OXIDE FUEL; ZIRCONIA DENSE ELECTROLYTE; BIPOLAR PLATES; HYDROGEN-PRODUCTION; EXCHANGE MEMBRANES; FABRICATION; PERFORMANCE; LAYERS; CERAMICS; CATHODE;
D O I
10.1016/j.susmat.2025.e01317
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Fuel cells offer high-efficiency power production compared to internal combustion (IC) engines and gas/steam turbines. They are also very clean and come in several types, including PEM fuel cells, solid oxide fuel cells, direct methanol fuel cells, alkaline fuel cells, molten carbonate fuel cells, and phosphoric acid fuel cells. This diversity enables a broad market for decentralized power supply-both stationary and vehicular. In recent years, significant progress has been made in using additive manufacturing (AM) to fabricate fuel cell components such as electrolytes, electrodes, and casings. AM has revolutionised fuel cell fabrication by providing a sustainable process for producing parts with complex geometries, high material flexibility, and enhanced efficiency. This review aims to summarize the importance and current status of AM in fuel cell production. Various AM techniques (such as vat photopolymerization, material jetting, and powder bed fusion (PBF)) used in manufacturing different fuel cell components are discussed, along with recent advancements in materials and their corresponding properties. The review critically analyses the state of the art, highlighting the advantages and limitations of different techniques. Furthermore, this analysis extends to identifying suitable solutions to address challenges in fuel cell fabrication, providing valuable insights for researchers and engineers focused on clean energy production. This review article will benefit researchers interested in exploring the scope of AM in fuel cells.
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页数:23
相关论文
共 152 条
  • [31] The current status of fuel cell technology for mobile and stationary applications
    de Bruijn, F
    [J]. GREEN CHEMISTRY, 2005, 7 (03) : 132 - 150
  • [32] A small-scale air-cathode microbial fuel cell for on-line monitoring of water quality
    Di Lorenzo, Mirella
    Thomson, Alexander R.
    Schneider, Kenneth
    Cameron, Petra J.
    Ieropoulos, Ioannis
    [J]. BIOSENSORS & BIOELECTRONICS, 2014, 62 : 182 - 188
  • [33] Laser additive manufacturing of functional metallic components for solid oxide fuel cells
    Du, Ke
    Song, Chen
    Wang, Pi
    Dong, Dongdong
    Yuan, Bin
    Liu, Taikai
    Wen, Kui
    Yan, Xingchen
    Liu, Min
    Liao, Hanlin
    [J]. JOURNAL OF POWER SOURCES, 2025, 631
  • [34] Readily processed protonic ceramic fuel cells with high performance at low temperatures
    Duan, Chuancheng
    Tong, Jianhua
    Shang, Meng
    Nikodemski, Stefan
    Sanders, Michael
    Ricote, Sandrine
    Almansoori, Ali
    O'Hayre, Ryan
    [J]. SCIENCE, 2015, 349 (6254) : 1321 - 1326
  • [35] Rapid prototyping methods for the manufacture of fuel cells
    Dudek, Piotr
    Razniak, Andrzej
    Lis, Bartlomiej
    [J]. 1ST INTERNATIONAL CONFERENCE ON THE SUSTAINABLE ENERGY AND ENVIRONMENT DEVELOPMENT (SEED 2016), 2016, 10
  • [36] Dunwoody C., 2009, Fuel Cells Bull., V2009, P12, DOI [10.1016/S1464-2859(09)70375-X, DOI 10.1016/S1464-2859(09)70375-X]
  • [37] 3D Printing multifunctionality: structures with electronics
    Espalin, David
    Muse, Danny W.
    MacDonald, Eric
    Wicker, Ryan B.
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2014, 72 (5-8) : 963 - 978
  • [38] Fabrication of thin yttria-stabilized-zirconia dense electrolyte layers by inkjet printing for high performing solid oxide fuel cells
    Esposito, Vincenzo
    Gadea, Christophe
    Hjelm, Johan
    Marani, Debora
    Hu, Qiang
    Agersted, Karsten
    Ramousse, Severine
    Jensen, Soren Hojgaard
    [J]. JOURNAL OF POWER SOURCES, 2015, 273 : 89 - 95
  • [39] Review of in-situ process monitoring and in-situ metrology for metal additive manufacturing
    Everton, Sarah K.
    Hirsch, Matthias
    Stravroulakis, Petros
    Leach, Richard K.
    Clare, Adam T.
    [J]. MATERIALS & DESIGN, 2016, 95 : 431 - 445
  • [40] Extrusion-based 3D printing of ceramic components
    Faes, M.
    Valkenaers, H.
    Vogeler, F.
    Vleugels, J.
    Ferraris, E.
    [J]. 3RD CIRP GLOBAL WEB CONFERENCE - PRODUCTION ENGINEERING RESEARCH ADVANCEMENT BEYOND STATE OF THE ART (CIRPE2014), 2015, 28 : 76 - 81