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Proceedings Papers
In This Volume
ASME 2010 8th International Fuel Cell Science, Engineering and Technology Conference: Volume 2
Modeling, Design, and Optimization for High Temperature Fuel Cells
Three-Dimensional Numerical Analysis of Gas Flow and Heat Transfer in SOFCs With Honeycomb-Like Channels
FUELCELL 2010; 35-41https://doi.org/10.1115/FuelCell2010-33028
Topics:
Gas flow
,
Heat transfer
,
Honeycomb structures
,
Numerical analysis
,
Solid oxide fuel cells
,
Design
,
Hydrogen
,
Anodes
,
Flow (Dynamics)
,
Pressure drop
Modeling Analysis of Different Renewable Fuels in an Anode Supported SOFC
FUELCELL 2010; 43-54https://doi.org/10.1115/FuelCell2010-33044
Topics:
Anodes
,
Biogas
,
Ethanol
,
Fuels
,
Methanol
,
Modeling analysis
,
Natural gas
,
Solid oxide fuel cells
Dynamic Modeling of a Solid Oxide Fuel Cell System in Modelica
FUELCELL 2010; 65-72https://doi.org/10.1115/FuelCell2010-33053
Topics:
Dynamic modeling
,
Solid oxide fuel cells
,
Methane
,
Modeling
,
Simulation
,
Electrolytes
,
Flow (Dynamics)
,
Fuel cells
,
Steam reforming
,
Water
Gasified Biomass Fueled Hybrid SOFC Based Power Cycle: Impacts of Carbon Monoxide Fraction in Inlet Fuel
FUELCELL 2010; 73-82https://doi.org/10.1115/FuelCell2010-33064
Topics:
Biomass
,
Carbon
,
Fuels
,
Solid oxide fuel cells
,
Thermodynamic power cycles
,
Cycles
,
Biogas
,
Methane
,
Anodes
,
Exhaust systems
Steady-State Modeling of Methane Fueled SOFC-GT System: Variation of Operational Parameters Throughout the Cycle
FUELCELL 2010; 83-92https://doi.org/10.1115/FuelCell2010-33066
Topics:
Cycles
,
Methane
,
Modeling
,
Solid oxide fuel cells
,
Steady state
,
Anodes
,
Chemical reactions
,
Compressors
,
Computer software
,
Flow (Dynamics)
Effect of Flow Channel Design on Planar SOFC Performance
FUELCELL 2010; 93-102https://doi.org/10.1115/FuelCell2010-33077
Topics:
Design
,
Flow (Dynamics)
,
Solid oxide fuel cells
,
Fuels
,
Channel flow
,
Computer simulation
,
Friction
,
Geometry
,
Heat
,
Manifolds
Combination of a Nonlinear Static and a Linear Dynamic Model of the NETL HyPer System
FUELCELL 2010; 129-140https://doi.org/10.1115/FuelCell2010-33111
Topics:
Dynamic models
,
Fuel cells
,
Modeling
,
Control systems
,
Gas turbines
,
Steady state
,
Circuits
,
Control equipment
,
Dynamic modeling
,
Flow (Dynamics)
Cathode Temperature Management During Hybrid System Startup
FUELCELL 2010; 141-146https://doi.org/10.1115/FuelCell2010-33121
Topics:
Air flow
,
Anodes
,
Compressors
,
Fuel cells
,
Gas turbines
,
Modeling
,
Pressure
,
Simulation
,
Solid oxide fuel cells
,
Steady state
Anode Structure Degradation Model for Planar-SOFC Configuration Under Fuel Gas Contaminants
Gulfam Iqbal, Suryanarayana R. Pakalapati, Francisco Elizalde-Blancas, Huang Guo, Ismail Celik, Bruce Kang
FUELCELL 2010; 147-152https://doi.org/10.1115/FuelCell2010-33183
Topics:
Anodes
,
Gaseous fuels
,
Solid oxide fuel cells
,
Fuels
,
Coal
,
Flow (Dynamics)
,
Syngas
,
Thermomechanics
,
Durability
,
Electrolytes
Plasticity of Nanoporous Ni/YSZ Anode: A Numerical Analysis
FUELCELL 2010; 153-158https://doi.org/10.1115/FuelCell2010-33194
Topics:
Anodes
,
Numerical analysis
,
Plasticity
,
Deformation
,
Rotation
,
Temperature
,
Crystal lattices
,
Design
,
Dislocation motion
,
Durability
Dynamic Analysis of a Planar SOFC Stack Fuelled by Biogas
FUELCELL 2010; 221-228https://doi.org/10.1115/FuelCell2010-33255
Topics:
Biogas
,
Dynamic analysis
,
Solid oxide fuel cells
,
Fuels
,
Methane
,
Transients (Dynamics)
,
Steady state
,
Stress
,
Anodes
,
Carbon dioxide
Reference Based Fuel Cell Stack Simulator
FUELCELL 2010; 249-255https://doi.org/10.1115/FuelCell2010-33315
Topics:
Fuel cells
,
Stress
,
Solid oxide fuel cells
,
Durability
,
Performance characterization
,
Steady state
Novel Dynamic Quasi-3-Dimensional High Temperature Fuel Cell Model With Internal Manifolding
FUELCELL 2010; 257-268https://doi.org/10.1115/FuelCell2010-33328
Topics:
Fuel cells
,
High temperature
,
Temperature
,
Transients (Dynamics)
,
Dynamics (Mechanics)
,
Fuels
,
Air flow
,
Dynamic response
,
Emissions
,
Fluctuations (Physics)
Thermodynamic Modeling and Energy Analysis of a SOFC-PEMFC Combination in a Gas Turbine Cycle
FUELCELL 2010; 283-294https://doi.org/10.1115/FuelCell2010-33339
Topics:
Cycles
,
Gas turbines
,
Modeling
,
Proton exchange membrane fuel cells
,
Solid oxide fuel cells
,
Carbon dioxide
,
Cooling
,
Design
,
Energy consumption
,
Entropy
Materials for Low Temperature Fuel Cells
Effect of Platinum Particle Size on Catalyst Activity in Practical Gas-Phase PEFC MEAs
FUELCELL 2010; 317-320https://doi.org/10.1115/FuelCell2010-33076
Topics:
Catalysts
,
Membrane electrode assemblies
,
Particle size
,
Platinum
,
Oxygen
,
Particulate matter
,
Electrolytes
,
Fuel cells
,
Polymers
,
Surface science
Effect of PTFE Loading on the Performance of the GDL in Water Removal
FUELCELL 2010; 321-326https://doi.org/10.1115/FuelCell2010-33081
Topics:
Gas diffusion layers
,
Water
,
Porous materials
,
Darcy's law
,
Drops
,
Flow (Dynamics)
,
Fluid dynamics
,
Fluids
,
Fuel cells
,
Modeling
Anisotropic Porosity Profiles of PEMFC GDLs
FUELCELL 2010; 335-341https://doi.org/10.1115/FuelCell2010-33118
Start/Stop Induced Carbon Corrosion in Polymer Electrolyte Fuel Cells
FUELCELL 2010; 357-362https://doi.org/10.1115/FuelCell2010-33190
Topics:
Carbon
,
Corrosion
,
Electrolytes
,
Fuel cells
,
Polymers
,
Platinum
,
Water
,
Anodes
,
Carbon dioxide
,
Exhaust systems
Materials for High Temperature Fuel Cells
Performance and Stability of Carbonate Fuel Cell Electrodes
FUELCELL 2010; 375-379https://doi.org/10.1115/FuelCell2010-33109
Topics:
Electrodes
,
Fuel cells
,
Stability
,
Electrolytes
,
Anodes
,
Design
,
Low temperature
,
Polarization (Electricity)
,
Polarization (Light)
,
Polarization (Waves)
Catalytic Material Development for a SOFC Reforming System: Application of an Oxidative Steam Reforming Catalyst to a Monolithic Reactor
FUELCELL 2010; 399-403https://doi.org/10.1115/FuelCell2010-33198
Topics:
Catalysts
,
Solid oxide fuel cells
,
Steam reforming
,
Oxygen
,
Diesel
,
Fuels
,
Syngas
,
Biodiesel
,
Manufacturing
,
Oxidation
Metal-Supported SOFC on Compressed Ni-Al Foam Substrates
Alevtina Smirnova, Vladislav Sadykov, Natalia Mezentseva, Vladimir Usoltsev, Oleg Smorygo, Oleg Bobrenok, Nikolai Uvarov
FUELCELL 2010; 411-416https://doi.org/10.1115/FuelCell2010-33268
Topics:
Metals
,
Solid oxide fuel cells
,
Alloys
,
Anodes
,
Design
,
Grain size
,
Metalorganic chemical vapor deposition
,
Nanocomposites
,
Porosity
,
Power density
Development of In-Situ Mechanical Testing Method for SOFC Components
Satoshi Watanabe, Kazuhisa Sato, Yohei Takeyama, Fumitada Iguchi, Keiji Yashiro, Toshiyuki Hashida, Junichiro Mizusaki, Tatsuya Kawada
FUELCELL 2010; 417-420https://doi.org/10.1115/FuelCell2010-33294
Topics:
Mechanical testing
,
Solid oxide fuel cells
,
Elastic moduli
,
Fracture toughness
,
Reliability
,
Oxygen
,
Pressure
,
Stoichiometry
,
Stress
,
Temperature
Flame Deposition of the Electrolyte and Cathode for High and Stable Performance of Low-Temperature SOFCs
FUELCELL 2010; 433-438https://doi.org/10.1115/FuelCell2010-33342
Topics:
Electrolytes
,
Flames
,
Low temperature
,
Solid oxide fuel cells
,
Ceramics
,
Anodes
,
Chain
,
Coating processes
,
Coatings
,
Density
Production and Scale-up for Fuel Cell Technologies
A New Generation of Fuel Cell Hybrid Powertrain for Public Traffic
FUELCELL 2010; 445-450https://doi.org/10.1115/FuelCell2010-33008
Topics:
Fuel cells
,
Traffic
,
Batteries
,
Electric motors
,
Buses
,
Vehicles
,
Algorithms
,
Collaboration
,
Energy management
,
Feedback
Integrated 5 kWe + 5 kWt PEM-FC Generator From Bioethanol: A Demonstrative Project
Ilenia Rossetti, Cesare Biffi, Lucio Forni, Gian Franco Tantardini, Giuseppe Faita, Mario Raimondi, Edoardo Vitto, Davide Alberti
FUELCELL 2010; 465-471https://doi.org/10.1115/FuelCell2010-33049
Topics:
Generators
,
Proton exchange membrane fuel cells
,
Ethanol
,
Biomass
,
Catalysts
,
Water
,
Chemistry
,
Collaboration
,
Electrochemistry
,
Energy generation
Novel Approaches for the Integration of High Temperature PEM Fuel Cells Into Aircrafts
FUELCELL 2010; 479-487https://doi.org/10.1115/FuelCell2010-33090
Topics:
Aircraft
,
High temperature
,
Proton exchange membrane fuel cells
,
Fuel cells
,
Cooling
,
Emergencies
,
Emergency power
,
Emissions
,
Generators
,
Temperature
Automated Fuel Cell Stack Assembly: Lessons in Design-for-Manufacture
FUELCELL 2010; 497-503https://doi.org/10.1115/FuelCell2010-33222
Topics:
Design for Manufacturing
,
Fuel cells
,
Manufacturing
,
Robotics
,
Design
,
Stack design
,
Fasteners
,
Fuel cell technology
,
Liabilities
,
Membranes
Development of a Proof-of-Concept Series-Hybrid Vehicle Utilizing Multiple Power Sources
Peter Strahs, Luis Breziner, Jordan Weaver, Christophe Garant, Georgiy Diloyan, Keith Shaffer, Parsaoran Hutapea
FUELCELL 2010; 531-535https://doi.org/10.1115/FuelCell2010-33235
Topics:
Vehicles
,
Gasoline
,
Economics
,
Hydrogen
,
Bridges (Structures)
,
Corporate average fuel economy
,
Electric vehicles
,
Fuel efficiency
,
Fuels
,
Highways
Fuels and Infrastructure
Effective Sulfur Control for Fuel Cells: FCE Experience
FUELCELL 2010; 555-561https://doi.org/10.1115/FuelCell2010-33192
Topics:
Fuel cells
,
Sulfur
,
Fuels
,
Liquefied natural gas
,
Natural gas
,
Sulfur compounds
,
Anodes
,
Catalysts
,
Design
,
Desulfurization
Integrating Catalytic Coal Gasifiers With Solid Oxide Fuel Cells
FUELCELL 2010; 563-570https://doi.org/10.1115/FuelCell2010-33206
Topics:
Coal
,
Solid oxide fuel cells
,
Fuel gasification
,
Exergy
,
Methane
,
Steam
,
Carbon dioxide
,
Catalysts
,
High temperature
,
Syngas
Markets, Applications, and Policy Issues
Optimal Design and Control Strategies for Novel Combined Heat and Power (CHP) Fuel Cell Systems: Part I of II—Datum Design Conditions and Approach
FUELCELL 2010; 571-585https://doi.org/10.1115/FuelCell2010-33146
Topics:
Combined heat and power
,
Design
,
Fuel cells
,
Carbon dioxide
,
Emissions
,
Energy generation
,
Governments
,
Heat
,
Heating
,
Optimization
Optimizal Design and Control Strategies for Novel Combined Heat and Power (CHP) Fuel Cell Systems: Part II of II—Case Study Results
FUELCELL 2010; 587-603https://doi.org/10.1115/FuelCell2010-33147
Topics:
Combined heat and power
,
Design
,
Fuel cells
,
Heat
,
Stress
,
Structures
,
Central heating
,
Electricity distribution
,
Optimization
Projected Cost, Energy Use, and Emissions of Hydrogen Technologies for Fuel Cell Vehicles
FUELCELL 2010; 605-614https://doi.org/10.1115/FuelCell2010-33185
Topics:
Emissions
,
Energy consumption
,
Fuel cell vehicles
,
Hydrogen
,
Hydrogen production
,
Vehicles
,
Gasoline
,
Manufacturing
,
Tradeoffs
,
Transportation systems
Design and Analysis of a Direct Borohydride Fuel Cell DC-DC Converter for Portable Applications
FUELCELL 2010; 615-621https://doi.org/10.1115/FuelCell2010-33279
Topics:
Design
,
Fuel cells
,
Stress
,
Transients (Dynamics)
,
Circuits
,
Engineering prototypes
,
Frequency response
,
Fuels
,
Hydrogen
,
Power density
Posters
Ni-Co-Zn-Al Catalysts From Hydrotalcite-Like Precursors for Hydrogen Production by Ethanol Steam Reforming
FUELCELL 2010; 649-654https://doi.org/10.1115/FuelCell2010-33034
Topics:
Catalysts
,
Ethanol
,
Hydrogen production
,
Steam reforming
,
Cobalt
,
Hydrogen
,
Carbon dioxide
,
Methane
,
Temperature
,
Flow (Dynamics)
R&D Status on Hydrogen Production, Storage, and Utilization Technologies in Korea
FUELCELL 2010; 667-678https://doi.org/10.1115/FuelCell2010-33052
Topics:
Hydrogen production
,
Storage
,
Hydrogen
,
Economics
,
Fossil fuels
,
Governments
,
Education
,
Engines
,
Fuel cell technology
,
Fuel cells
An Optimization Study of an Evaporator in a Fuel Cell System Adopting Oxygen as a Fuel
FUELCELL 2010; 679-684https://doi.org/10.1115/FuelCell2010-33085
Topics:
Fuel cells
,
Fuels
,
Optimization
,
Oxygen
,
Flow (Dynamics)
,
Storage tanks
,
Design
,
Heat
,
Heat transfer
,
Temperature
Performance Analysis of Butane Direct Internal Reforming SOFC at Intermediate Temperature
FUELCELL 2010; 697-703https://doi.org/10.1115/FuelCell2010-33155
Topics:
Solid oxide fuel cells
,
Temperature
,
Anodes
,
Carbon
,
Fuels
,
Steam
,
Catalysts
,
Steam reforming
,
Zirconium
Hydrocarbon Fueled Operation of Metal-Supported Solid Oxide Fuel Cell
FUELCELL 2010; 705-709https://doi.org/10.1115/FuelCell2010-33157
Topics:
Metals
,
Solid oxide fuel cells
,
Diesel
,
High temperature
,
Power density
,
Damage
,
Hydrogen
,
Joining
,
Oxidation
,
Sinter (Metallurgy)
Analysis of the Membrane Humidifier Fault Modes and Its Effects on the Performance of PEMFC
FUELCELL 2010; 711-716https://doi.org/10.1115/FuelCell2010-33159
Topics:
Humidifiers
,
Membranes
,
Proton exchange membrane fuel cells
,
Durability
,
Fuel cells
,
Automobiles
,
Energy resources
,
Heat
,
Heating
,
Numerical analysis
Changed Heat and Mass Transfer Evaluation of a Gas-to-Gas Type Membrane Humidifier by Mass Collection
FUELCELL 2010; 717-720https://doi.org/10.1115/FuelCell2010-33234
Topics:
Heat
,
Humidifiers
,
Mass transfer
,
Membranes
,
Transients (Dynamics)
,
Air flow
,
Experimental analysis
,
Heat transfer
,
Pressure
,
Sensors
Washcoating Copper Catalyst With Various Metal Oxides Sol Onto Microchannel Reactor for Steam Reforming of Methanol
FUELCELL 2010; 723-727https://doi.org/10.1115/FuelCell2010-33305
Topics:
Catalysts
,
Copper
,
Metals
,
Methanol
,
Microchannels
,
Steam reforming
,
Binders (Materials)
,
Slurries
,
Temperature
,
Adhesion
Fuel Cells and Hydrogen Education at Michigan Technological University
Abhijit Mukherjee, Jason M. Keith, Daniel A. Crowl, David W. Caspary, Jeff Allen, Jeff Naber, Dennis Desheng Meng, John Lukowski, Jay Meldrum, Barry Solomon
FUELCELL 2010; 729-733https://doi.org/10.1115/FuelCell2010-33343
Topics:
Education
,
Fuel cells
,
Hydrogen
,
Students
,
Design
,
Engineering disciplines
,
Engineering education
,
Engineers
,
Fuel cell vehicles
,
Fuels