4.7 Article

Numerical study of high temperature proton exchange membrane fuel cell (HT-PEMFC) with a focus on rib design

Related references

Note: Only part of the references are listed.
Article Chemistry, Physical

Water management characteristics of electrospun micro-porous layer in PEMFC under normal temperature and cold start conditions

Chaoming Li et al.

Summary: Electrospun MPL showed better performance under high relative humidities at 70 degrees Celsius, reducing mass transport losses and improving fuel cell efficiency. In cold start conditions, electrospun MPL may facilitate water removal from the catalyst layer, leading to longer electricity generation in fuel cells.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2021)

Article Chemistry, Physical

Life-cycle assessment of hydrogen technologies with the focus on EU critical raw materials and end-of-life strategies

Andrej Lotric et al.

Summary: The study presents the life-cycle assessment of various fuel-cell and hydrogen technologies, highlighting the significant reduction in environmental impacts during the manufacturing phase through the use of recycled materials and alternative strategies for platinum-group metals. Further analyses of the end-of-life phase reveal increased environmental impacts when PGM recycling is not implemented, especially in fuel-cell systems with larger quantities of PGMs.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2021)

Article Chemistry, Physical

CO tolerance and durability study of PtMe (Me = Ir or Pd) electrocatalysts for H2-PEMFC application

Angeliki Brouzgou et al.

Summary: In this study, carbon supported PtMe (Me = Ir or Pd) electrocatalysts with different atomic ratios were investigated for their CO tolerance and durability. It was found that Pd/C showed higher CO tolerance than Pt/C, while PtPd3/C exhibited the highest CO tolerance ability. Pt3Ir/C showed higher CO tolerance ability than Pt/C but could not resist at such high CO concentrations for more than 6 hours.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2021)

Article Thermodynamics

THERMAL MANAGEMENT OF HIGH TEMPERATURE POLYMER ELECTROLYTE MEMBRANE FUEL CELLS BY USING FLATTENED HEAT PIPES

Krerkkiat Sasiwimonrit et al.

Summary: High temperature polymer electrolyte membrane fuel cell operates at around 160 degrees Celsius, and the heating and cooling mechanisms are critical for maintaining optimal working conditions and preventing cell degradation. The use of heat pipe heating and cooling technique was found to provide a more uniform temperature distribution and current density across the fuel cells stack.

THERMAL SCIENCE (2021)

Article Chemistry, Physical

Investigation of PEMFC performance for cruising hybrid powered fixed-wing electric UAV in different temperatures

Zehra Ural Bayrak et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2020)

Article Chemistry, Physical

Study of the impact of water management on the performance of PEMFC commercial stacks by impedance spectroscopy

P. Mocoteguy et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2020)

Editorial Material Multidisciplinary Sciences

Fuel cells that operate at 300° to 500°C

Meng Ni et al.

SCIENCE (2020)

Article Thermodynamics

A 3 dimensional numerical model to study the effect of GDL porosity on high temperature PEM fuel cells

Vikalp Jha et al.

INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER (2020)

Article Chemistry, Physical

Thermodynamic analysis of methanol steam reforming to produce hydrogen for HT-PEMFC: An optimization study

Orhan Ozcan et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2019)

Article Thermodynamics

Channel to rib width ratio influence with various flow field designs on performance of PEM fuel cell

Youcef Kerkoub et al.

ENERGY CONVERSION AND MANAGEMENT (2018)

Review Green & Sustainable Science & Technology

High Temperature Polymer Electrolyte Membrane Fuel Cells for Integrated Fuel Cell - Methanol Reformer Power Systems: A Critical Review

Jin Zhang et al.

ADVANCED SUSTAINABLE SYSTEMS (2018)

Article Chemistry, Physical

A review of high-temperature proton exchange membrane fuel cell (HT-PEMFC) system

R. E. Rosli et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2017)

Article Electrochemistry

Phosphoric Acid Invasion in High Temperature PEM Fuel Cell Gas Diffusion Layers

N. Bevilacqua et al.

ELECTROCHIMICA ACTA (2017)

Article Chemistry, Physical

Application of metal foams to high temperature PEM fuel cells

Chung-Jen Tseng et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2016)

Article Thermodynamics

Parametric investigation to enhance the performance of a PBI-based high-temperature PEMFC

Y. M. Ferng et al.

ENERGY CONVERSION AND MANAGEMENT (2014)

Article Chemistry, Physical

Modeling of high temperature proton exchange membrane fuel cells with novel sulfonated polybenzimidazole membranes

Yan Yin et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2014)

Article Electrochemistry

Effect of Spiral Flow Field Design on Performance and Durability of HT-PEFCs

Fang Liu et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2013)

Article Thermodynamics

Thermal management strategies for a 1 kWe stack of a high temperature proton exchange membrane fuel cell

E. Harikishan Reddy et al.

APPLIED THERMAL ENGINEERING (2012)

Article Chemistry, Physical

Modeling and simulation of a 100 kWe HT-PEMFC subsystem integrated with an absorption chiller subsystem

Alexandros Arsalis

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2012)

Article Chemistry, Physical

Effect of flow field design on performances of high temperature PEM fuel cells: Experimental analysis

Rodolfo Taccani et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2011)

Article Chemistry, Physical

High temperature PEM fuel cell performance characterisation with CO and CO2 using electrochemical impedance spectroscopy

Soren Juhl Andreasen et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2011)

Review Chemistry, Multidisciplinary

Proton-conducting membranes based on benzimidazole polymers for high-temperature PEM fuel cells. A chemical quest

Juan Antonio Asensio et al.

CHEMICAL SOCIETY REVIEWS (2010)

Article Electrochemistry

Modelling of CO Poisoning and its Dynamics in HTPEM Fuel Cells

A. Bergmann et al.

FUEL CELLS (2010)

Article Chemistry, Physical

Three-dimensional model of a 50 cm2 high temperature PEM fuel cell. Study of the flow channel geometry influence

Justo Lobato et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2010)

Article Electrochemistry

Three-Dimensional Modeling and Experimental Study of a High Temperature PBI-Based PEM Fuel Cell

E. U. Ubong et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2009)

Article Chemistry, Physical

Modelling and evaluation of heating strategies for high temperature polymer electrolyte membrane fuel cell stacks

Soren Juhl Andreasen et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2008)

Article Chemistry, Physical

Part one:: A novel model of HTPEM-based micro-combined heat and power fuel cell system

Anders R. Korsgaard et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2008)

Article Chemistry, Physical

Transient analysis of carbon monoxide poisoning and oxygen bleeding in a PEM fuel cell anode catalyst layer

Nada Zamel et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2008)

Article Chemistry, Physical

Numerical studies on rib & channel dimension of flow-field on PEMFC performance

S. Shimpalee et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2007)

Article Chemistry, Physical

Preparation of a low proton resistance PBI/PTFE composite membrane

Hsiu-Li Lin et al.

JOURNAL OF POWER SOURCES (2007)

Article Chemistry, Physical

The stability of Pt/C catalyst in H3PO4/PBI PEMFC during high temperature life test

Yunfeng Zhai et al.

JOURNAL OF POWER SOURCES (2007)

Article Chemistry, Physical

Numerical simulation of proton exchange membrane fuel cells at high operating temperature

Jie Peng et al.

JOURNAL OF POWER SOURCES (2006)

Review Chemistry, Physical

Review of bipolar plates in PEM fuel cells: Flow-field designs

XG Li et al.

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY (2005)

Article Electrochemistry

The CO poisoning effect in PEMFCs operational at temperatures up to 200 degrees C

QF Li et al.

JOURNAL OF THE ELECTROCHEMICAL SOCIETY (2003)