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    Design and Development of a Sheet Metal Plastic Backed Proton Exchange Membrane Fuel Cell

    Source: Journal of Fuel Cell Science and Technology:;2011:;volume( 008 ):;issue: 005::page 54501
    Author:
    Shashank Sharma
    ,
    Mayank Gupta
    ,
    Shaswat Anand
    ,
    Naveen Kumar
    DOI: 10.1115/1.4003772
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The high costs associated with fuel cell manufacturing have precluded its production on a large scale. The major emphasis of the present wok is to bring down the overall cost of an independent fuel cell unit. The manufacturing cost can be reduced using commonly available and corrosion resistant materials into the fuel cell assembly. Bipolar plates usually employed in proton exchange membrane fuel cells are fabricated from conducting graphite. Graphite owing to its conductivity, corrosion resistance and easy machinability, is the preferred material in static systems. However, due to its brittle characteristics and failure under bending loads, graphite is inferior in its mechanical properties as compared to metals and their alloys. Dimensional stability is also compromised due to wear and friction. In the present work, an attempt is made to assemble a fuel cell stack which would have durability and sustainability in dynamic conditions, where the setup would be able to withstand periodic shocks, vibrations, and fatigue loads. Instead of employing graphite as the bipolar plate which serves the dual purpose of a current collector and area for flow fields, graphite foil protected aluminum as the current collector and machined plastic slabs on which the flow fields are carved, have been employed. Both the substitutes are easily available owing to mass production and have a small processing cost associated with them. Further, the technique employed for processing of Nafion and hot pressing of the catalyst loaded gas diffusion layer onto the proton exchange membrane have been elaborated in the present paper along with the systematic approach followed by the research group eliminating various current collector candidates for fuel cell applications. The various stages attained towards the final fabrication of the foil protected lightweight current collector, has also been highlighted in the present work.
    keyword(s): Aluminum , Manufacturing , Sheet metal , Aluminum plate , Fuel cells , Catalysts , Graphite , Membranes , Proton exchange membrane fuel cells , Gas diffusion layers , Textiles , Carbon , Hot pressing , Design , Hydrogen , Corrosion resistance , Flow (Dynamics) , Slabs , Plates (structures) , Metals , Water , Temperature , Stress AND Conductivity ,
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      Design and Development of a Sheet Metal Plastic Backed Proton Exchange Membrane Fuel Cell

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    contributor authorShashank Sharma
    contributor authorMayank Gupta
    contributor authorShaswat Anand
    contributor authorNaveen Kumar
    date accessioned2017-05-09T00:44:36Z
    date available2017-05-09T00:44:36Z
    date copyrightOctober, 2011
    date issued2011
    identifier issn2381-6872
    identifier otherJFCSAU-28950#054501_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/146453
    description abstractThe high costs associated with fuel cell manufacturing have precluded its production on a large scale. The major emphasis of the present wok is to bring down the overall cost of an independent fuel cell unit. The manufacturing cost can be reduced using commonly available and corrosion resistant materials into the fuel cell assembly. Bipolar plates usually employed in proton exchange membrane fuel cells are fabricated from conducting graphite. Graphite owing to its conductivity, corrosion resistance and easy machinability, is the preferred material in static systems. However, due to its brittle characteristics and failure under bending loads, graphite is inferior in its mechanical properties as compared to metals and their alloys. Dimensional stability is also compromised due to wear and friction. In the present work, an attempt is made to assemble a fuel cell stack which would have durability and sustainability in dynamic conditions, where the setup would be able to withstand periodic shocks, vibrations, and fatigue loads. Instead of employing graphite as the bipolar plate which serves the dual purpose of a current collector and area for flow fields, graphite foil protected aluminum as the current collector and machined plastic slabs on which the flow fields are carved, have been employed. Both the substitutes are easily available owing to mass production and have a small processing cost associated with them. Further, the technique employed for processing of Nafion and hot pressing of the catalyst loaded gas diffusion layer onto the proton exchange membrane have been elaborated in the present paper along with the systematic approach followed by the research group eliminating various current collector candidates for fuel cell applications. The various stages attained towards the final fabrication of the foil protected lightweight current collector, has also been highlighted in the present work.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDesign and Development of a Sheet Metal Plastic Backed Proton Exchange Membrane Fuel Cell
    typeJournal Paper
    journal volume8
    journal issue5
    journal titleJournal of Fuel Cell Science and Technology
    identifier doi10.1115/1.4003772
    journal fristpage54501
    identifier eissn2381-6910
    keywordsAluminum
    keywordsManufacturing
    keywordsSheet metal
    keywordsAluminum plate
    keywordsFuel cells
    keywordsCatalysts
    keywordsGraphite
    keywordsMembranes
    keywordsProton exchange membrane fuel cells
    keywordsGas diffusion layers
    keywordsTextiles
    keywordsCarbon
    keywordsHot pressing
    keywordsDesign
    keywordsHydrogen
    keywordsCorrosion resistance
    keywordsFlow (Dynamics)
    keywordsSlabs
    keywordsPlates (structures)
    keywordsMetals
    keywordsWater
    keywordsTemperature
    keywordsStress AND Conductivity
    treeJournal of Fuel Cell Science and Technology:;2011:;volume( 008 ):;issue: 005
    contenttypeFulltext
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