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    Optimizing the Design and Deployment of Stationary Combined Heat and Power Fuel Cell Systems for Minimum Costs and Emissions—Part I: Model Design

    Source: Journal of Fuel Cell Science and Technology:;2011:;volume( 008 ):;issue: 002::page 21001
    Author:
    Whitney G. Colella
    ,
    Stephen H. Schneider
    ,
    Daniel M. Kammen
    ,
    Aditya Jhunjhunwala
    ,
    Nigel Teo
    DOI: 10.1115/1.4001756
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Stationary combined heat and power (CHP) fuel cell systems (FCSs) can provide electricity and heat for buildings and can reduce greenhouse gas (GHG) emissions significantly if they are configured with an appropriate installation and operating strategy. The maximizing emission reduction and economic saving simulator (MERESS) is an optimization tool that was developed to evaluate novel strategies for installing and operating CHP FCSs in buildings. These novel strategies include networking, load following, and the use of variable heat-to-power ratios, all of which industry typically has not implemented. A primary goal of models like MERESS is to use relatively inexpensive simulation studies to identify more financially and environmentally effective ways to design and install FCSs. Models like MERESS can incorporate the pivotal choices that FCS manufacturers, building owners, emission regulators, competing generators, and policy makers make, and empower them to evaluate the effect of their choices directly. MERESS directly evaluates trade-offs among three key goals: GHG reductions, energy cost savings for building owners, and high sales revenue for FCS manufacturers. MERESS allows one to evaluate these design trade-offs and to identify the optimal control strategies and building load curves for installation based on either (1) maximum GHG emission reductions or (2) maximum cost savings to building owners. Part I discusses the motivation and key assumptions behind MERESS model development. Part II discusses run results from MERESS for a California town and makes recommendations for further FCS installments (, 2011, “Optimizing the Design and Deployment of Stationary Combined Heat and Power Fuel Cell Systems for Minimum Costs and Emissions—Part II: Model Results,” ASME J. Fuel Cell Sci. Technol., 8(2), p. 021002).
    keyword(s): Heat , Structures , Stress , Design , Fuel cells , Optimization , Combined heat and power , Generators , Networks , Heating , Emissions , Model development , Fuels , Power stations AND Carbon ,
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      Optimizing the Design and Deployment of Stationary Combined Heat and Power Fuel Cell Systems for Minimum Costs and Emissions—Part I: Model Design

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    contributor authorWhitney G. Colella
    contributor authorStephen H. Schneider
    contributor authorDaniel M. Kammen
    contributor authorAditya Jhunjhunwala
    contributor authorNigel Teo
    date accessioned2017-05-09T00:44:40Z
    date available2017-05-09T00:44:40Z
    date copyrightApril, 2011
    date issued2011
    identifier issn2381-6872
    identifier otherJFCSAU-28947#021001_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/146494
    description abstractStationary combined heat and power (CHP) fuel cell systems (FCSs) can provide electricity and heat for buildings and can reduce greenhouse gas (GHG) emissions significantly if they are configured with an appropriate installation and operating strategy. The maximizing emission reduction and economic saving simulator (MERESS) is an optimization tool that was developed to evaluate novel strategies for installing and operating CHP FCSs in buildings. These novel strategies include networking, load following, and the use of variable heat-to-power ratios, all of which industry typically has not implemented. A primary goal of models like MERESS is to use relatively inexpensive simulation studies to identify more financially and environmentally effective ways to design and install FCSs. Models like MERESS can incorporate the pivotal choices that FCS manufacturers, building owners, emission regulators, competing generators, and policy makers make, and empower them to evaluate the effect of their choices directly. MERESS directly evaluates trade-offs among three key goals: GHG reductions, energy cost savings for building owners, and high sales revenue for FCS manufacturers. MERESS allows one to evaluate these design trade-offs and to identify the optimal control strategies and building load curves for installation based on either (1) maximum GHG emission reductions or (2) maximum cost savings to building owners. Part I discusses the motivation and key assumptions behind MERESS model development. Part II discusses run results from MERESS for a California town and makes recommendations for further FCS installments (, 2011, “Optimizing the Design and Deployment of Stationary Combined Heat and Power Fuel Cell Systems for Minimum Costs and Emissions—Part II: Model Results,” ASME J. Fuel Cell Sci. Technol., 8(2), p. 021002).
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOptimizing the Design and Deployment of Stationary Combined Heat and Power Fuel Cell Systems for Minimum Costs and Emissions—Part I: Model Design
    typeJournal Paper
    journal volume8
    journal issue2
    journal titleJournal of Fuel Cell Science and Technology
    identifier doi10.1115/1.4001756
    journal fristpage21001
    identifier eissn2381-6910
    keywordsHeat
    keywordsStructures
    keywordsStress
    keywordsDesign
    keywordsFuel cells
    keywordsOptimization
    keywordsCombined heat and power
    keywordsGenerators
    keywordsNetworks
    keywordsHeating
    keywordsEmissions
    keywordsModel development
    keywordsFuels
    keywordsPower stations AND Carbon
    treeJournal of Fuel Cell Science and Technology:;2011:;volume( 008 ):;issue: 002
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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