Theory and practice of flow field designs for fuel cell scaling-up: A critical review
暂无分享,去创建一个
[1] Xianguo Li,et al. Water transport in polymer electrolyte membrane fuel cells , 2011 .
[2] Xiaoxian Zhang,et al. Domain-decomposition method for parallel lattice Boltzmann simulation of incompressible flow in porous media. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[3] Bengt Sundén,et al. Review on modeling development for multiscale chemical reactions coupled transport phenomena in solid oxide fuel cells , 2010 .
[4] T. Lim,et al. Performance degradation and microstructure changes in freeze–thaw cycling for PEMFC MEAs with various initial microstructures , 2010 .
[5] K. S. Dhathathreyan,et al. Design and analysis of a proton exchange membrane fuel cells (PEMFC) , 2013 .
[6] Fang Ye,et al. Temperature distribution on anodic surface of membrane electrode assembly in proton exchange membrane fuel cell with interdigitated flow bed , 2015 .
[7] Yitung Chen,et al. Numerical modeling of three-dimensional two-phase gas–liquid flow in the flow field plate of a PEM electrolysis cell , 2010 .
[8] Matthew M. Mench,et al. Physical degradation of membrane electrode assemblies undergoing freeze/thaw cycling: Micro-structure effects , 2007 .
[9] I. Celik,et al. A numerical study of cell-to-cell variations in a SOFC stack , 2004 .
[10] Hao Yu,et al. Modeling of velocity distribution among microchannels with triangle manifolds , 2009 .
[11] Sung Hyun Kim,et al. Fabrication methods for low-Pt-loading electrocatalysts in proton exchange membrane fuel cell systems , 2007 .
[12] Geping Yin,et al. Understanding and Approaches for the Durability Issues of Pt-Based Catalysts for PEM Fuel Cell , 2007 .
[13] Junye Wang,et al. Discrete approach for flow field designs of parallel channel configurations in fuel cells , 2012 .
[14] L. L. Vasiliev,et al. Mini-Micro Fuel Cells , 2008 .
[15] Kevin Kendall,et al. Performance study of power density in PEMFC for power generation from solar energy , 2011 .
[16] Rui Chen,et al. Modeling Fluid Flow in the Gas Diffusion Layers in PEMFC Using the Multiple Relaxation‐time Lattice Boltzmann Method , 2012 .
[17] A. Acrivos,et al. Flow distributions in manifolds , 1959 .
[18] Seung Man Baek,et al. Pressure drop and flow distribution characteristics of single and parallel serpentine flow fields for polymer electrolyte membrane fuel cells , 2012 .
[19] Shanhai Ge,et al. In Situ Imaging of Liquid Water and Ice Formation in an Operating PEFC during Cold Start , 2006 .
[20] M. Leu,et al. Optimization of Parallel and Serpentine Configurations for Polymer Electrolyte Membrane Fuel Cells , 2014 .
[21] William W. Clark,et al. Effects of cell-to-cell fuel mal-distribution on fuel cell performance and a means to reduce mal-distribution using MEMS micro-valves , 2007 .
[22] Mathias Schulze,et al. Degradation of sealings for PEFC test cells during fuel cell operation , 2004 .
[23] Ay Su,et al. A three-dimensional full-cell CFD model used to investigate the effects of different flow channel designs on PEMFC performance , 2007 .
[24] P. Shen. The Effect of Friction on Flow Distribution in Dividing and Combining Flow Manifolds , 1992 .
[25] Chaoyang Wang,et al. Analytical model of flow maldistribution in polymer electrolyte fuel cell channels , 2010 .
[26] Satish G. Kandlikar,et al. Water management studies in PEM fuel cells, part IV: Effects of channel surface wettability, geometr , 2011 .
[27] Xianguo Li,et al. Life cycle analysis of vehicles powered by a fuel cell and by internal combustion engine for Canada , 2006 .
[28] Sirivatch Shimpalee,et al. The effect of serpentine flow-field designs on PEM fuel cell performance , 2008 .
[29] F. de Bruijn,et al. Review: Durability and Degradation Issues of PEM Fuel Cell Components , 2008 .
[30] Junye Wang,et al. Barriers of scaling-up fuel cells: Cost, durability and reliability , 2015 .
[31] Peng Hu,et al. Analysis and optimization of flow distribution in parallel-channel configurations for proton exchange membrane fuel cells , 2009 .
[32] R. Bajura,et al. Flow Distribution Manifolds , 1976 .
[33] Olli Himanen,et al. Modeling of flow field in polymer electrolyte membrane fuel cell , 2006 .
[34] Jc Jaap Schouten,et al. Single-phase fluid flow distribution and heat transfer in microstructured reactors , 2011 .
[35] Keith Scott,et al. Pressure drop modelling for liquid feed direct methanol fuel cells: Part 1. Model development , 1999 .
[36] Satish G. Kandlikar,et al. Measurement of flow maldistribution in parallel channels and its application to ex-situ and in-situ experiments in PEMFC water management studies , 2009 .
[37] Biao Zhou,et al. Liquid water flooding process in proton exchange membrane fuel cell cathode with straight parallel channels and porous layer , 2011 .
[38] N. Midoux,et al. The theory of parallel channels manifolds (Ladder networks) revisited part 1: Discrete mesoscopic modelling , 2014 .
[39] Shan-Tung Tu,et al. Simulation of creep and damage in the bonded compliant seal of planar solid oxide fuel cell , 2014 .
[40] Liejin Guo,et al. Comparison of current distributions in proton exchange membrane fuel cells with interdigitated and serpentine flow fields , 2009 .
[41] Xiaoxian Zhang. Performance evaluation of algorithms for domain decomposition in flow simulation , 2008 .
[42] Rangachary Mukundan,et al. Degradation of SS316L bipolar plates in simulated fuel cell environment: Corrosion rate, barrier film formation kinetics and contact resistance , 2015 .
[43] A. Morin,et al. 3 In situ and operando determination of the water content distribution in proton conducting membranes for fuel cells: a critical review , 2012 .
[44] Kurtis P. Recknagle,et al. Multiscale Electrochemistry Modeling of Solid Oxide Fuel Cells , 2005 .
[45] Ming-Chuan Leu,et al. Network based optimization model for pin-type flow field of polymer electrolyte membrane fuel cell , 2013 .
[46] P. Rodatz,et al. Operational aspects of a large PEFC stack under practical conditions , 2004 .
[47] Bengt Sundén,et al. Influence of Flow Maldistribution on the Pressure Drop and Water Condensation in a 100 kW PEM Fuel Cell Stack , 2007 .
[48] Lingai Luo,et al. Flow and pressure distribution in linear discrete “ladder-type” fluidic circuits: An analytical approach , 2011 .
[49] Jun Ni,et al. Design, Optimization, and Fabrication of Slotted-Interdigitated Thin Metallic Bipolar Plates for PEM Fuel Cells , 2011 .
[50] Navraj Hanspal,et al. Development of a predictive mathematical model for coupled Stokes–Darcy flows in cross-flow membrane filtration , 2009 .
[51] Junye Wang,et al. A theoretical model of uniform flow distribution for the admission of high-energy fluids to a surface steam condenser , 2001 .
[52] Peiwen Li,et al. Optimization of PEM fuel cell flow channel dimensions—Mathematic modeling analysis and experimental verification , 2013 .
[53] Daniel G. Strickland,et al. Current distribution in polymer electrolyte membrane fuel cell with active water management , 2007 .
[54] Asterios Gavriilidis,et al. Flow Distribution in Different Microreactors Scale-Out Geometries and the Effect on Manufacturing Tolerances and Channel Blocking , 2004 .
[55] Hongwei Wang,et al. Analysis of PEMFC freeze degradation at −20 °C after gas purging , 2006 .
[56] Технология. Springer Science+Business Media , 2013 .
[57] Minggao Ouyang,et al. Hydrogen pressure drop characteristics in a fuel cell stack , 2006 .
[58] Suresh G. Advani,et al. In situ comparison of water content and dynamics in parallel, single-serpentine, and interdigitated flow fields of polymer electrolyte membrane fuel cells , 2010 .
[59] Shahram Karimi,et al. A Review of Metallic Bipolar Plates for Proton Exchange Membrane Fuel Cells: Materials and Fabrication Methods , 2012 .
[60] S. S. Shy,et al. On flow uniformity in various interconnects and its influence to cell performance of planar SOFC , 2008 .
[61] D. Candusso,et al. A review on polymer electrolyte membrane fuel cell catalyst degradation and starvation issues: Causes, consequences and diagnostic for mitigation , 2009 .
[62] John S. McNown,et al. Mechanics of Manifold Flow , 1954 .
[63] C. Sung,et al. Durability improvement at high current density by graphene networks on PEM fuel cell , 2014 .
[64] Zhiqiang Ren,et al. Geometric optimization of a 10-cell modular planar solid oxide fuel cell stack manifold , 2013 .
[65] Huicui Chen,et al. Main factors affecting the lifetime of Proton Exchange Membrane fuel cells in vehicle applications: A review , 2014 .
[66] S. Y. Kim,et al. Effect of cathode inlet manifold configuration on performance of 10-cell proton-exchange membrane fuel cell , 2007 .
[67] Jian Colin Sun,et al. Degradation of a polymer exchange membrane fuel cell stack with Nafion® membranes of different thicknesses: Part I. In situ diagnosis , 2010 .
[68] Prakash C. Ghosh,et al. Diagnosis of scale up issues associated with planar solid oxide fuel cells , 2011 .
[69] F. Dundar,et al. Expanded Graphite–Epoxy–Flexible Silica Composite Bipolar Plates for PEM Fuel Cells , 2014 .
[70] Chao-Yang Wang,et al. Visualization and quantification of cathode channel flooding in PEM fuel cells , 2009 .
[72] C. Hochenauer,et al. Water droplet accumulation and motion in PEM (Proton Exchange Membrane) fuel cell mini-channels , 2012 .
[73] Xianguo Li,et al. An experimental and numerical investigation on the cross flow through gas diffusion layer in a PEM fuel cell with a serpentine flow channel , 2007 .
[74] Z. Shao,et al. Flow distribution in parallel-channel plate for proton exchange membrane fuel cells , 2008 .
[75] W. He,et al. Active gas management for PEM fuel cell stacks , 2004 .
[76] Xianguo Li,et al. A flow channel design procedure for PEM fuel cells with effective water removal , 2007 .
[77] M. Saber,et al. Methodology for multi-scale design of isothermal laminar flow networks , 2011 .
[78] H. Martin,et al. Flow distribution and pressure drop in plate heat exchangers—II Z-type arrangement , 1984 .
[79] François Lapicque,et al. Heterogeneous Aging Within PEMFC Stacks , 2014 .
[80] Shan-Jen Cheng,et al. Investigating the effects of operational factors on PEMFC performance based on CFD simulations using a three-level full-factorial design , 2012 .
[81] P. Ghosh,et al. Improvement in solid oxide fuel cell performance through design modifications: An approach based on root cause analysis , 2014 .
[82] Jun Shen,et al. A review of PEM fuel cell durability: Degradation mechanisms and mitigation strategies , 2008 .
[83] Yun Wang,et al. A review of polymer electrolyte membrane fuel cells: Technology, applications,and needs on fundamental research , 2011 .
[84] K. Matsuoka,et al. Degradation of Membrane Electrode Assemblies utilizing PtRu Catalysts under High Potential Conditions , 2013 .
[85] Arnaldo Visintin,et al. Advances in the development of a hydrogen/oxygen PEM fuel cell stack , 2008 .
[86] Serhat Yesilyurt,et al. Transient Analysis of Proton Electrolyte Membrane Fuel Cells (PEMFC) at Start‐Up and Failure , 2007 .
[87] Qing Du,et al. Effective removal and transport of water in a PEM fuel cell flow channel having a hydrophilic plate , 2014 .
[88] Natarajan Rajalakshmi,et al. Analysis of Flow Maldistribution of Fuel and Oxidant in a PEMFC , 2004 .
[89] D. Wilkinson,et al. A critical review of two-phase flow in gas flow channels of proton exchange membrane fuel cells , 2010 .
[90] R. A. Bajura,et al. A Model for Flow Distribution in Manifolds , 1971 .
[91] Nicola Zuliani,et al. Effect of flow field design on performances of high temperature PEM fuel cells: Experimental analysi , 2011 .
[92] Junye Wang. Comments on “Flow distribution in U-type layers or stacks of planar fuel cells” by W.H. Huang, Q.S. Zhu [J. Power Sources 178 (2008) 353–362] , 2009 .
[93] Bruno G. Pollet,et al. Polymer Electrolyte Membrane Fuel Cell (PEMFC) Flow Field Plate: Design, Materials and Characterisation , 2010 .
[94] Ramana G. Reddy,et al. Effect of gas flow-field design in the bipolar/end plates on the steady and transient state performance of polymer electrolyte membrane fuel cells , 2006 .
[95] Junye Wang,et al. Theory of flow distribution in manifolds , 2011 .
[96] Junye Wang,et al. Design method of flow distribution in nuclear reactor systems , 2013 .
[97] M. Mortazavi,et al. Liquid water breakthrough pressure through gas diffusion layer of proton exchange membrane fuel cell , 2014 .
[98] Viktor Hacker,et al. Experimental analysis of internal gas flow configurations for a polymer electrolyte membrane fuel cell stack , 2008 .
[99] Steven A. Soper,et al. Discrete geometry optimization for reducing flow non-uniformity, asymmetry, and parasitic minor loss pressure drops in Z-type configurations of fuel cells , 2014 .
[100] Wei-Mon Yan,et al. Effects of flow channel geometry on cell performance for PEM fuel cells with parallel and interdigitated flow fields , 2008 .
[101] Frano Barbir,et al. Relationship between pressure drop and cell resistance as a diagnostic tool for PEM fuel cells , 2005 .
[102] Jürgen Garche,et al. Encyclopedia of electrochemical power sources , 2009 .
[103] R. Kee,et al. A generalized model of the flow distribution in channel networks of planar fuel cells , 2002 .
[104] P. Pei,et al. Analysis on the PEM fuel cells after accelerated life experiment , 2010 .
[105] J. Wang,et al. Flow‐Field Designs of Bipolar Plates in PEM Fuel Cells: Theory and Applications , 2012 .
[106] Xabier Garikano,et al. Influence of geometric parameters of the flow fields on the performance of a PEM fuel cell. A review , 2012 .
[107] Martin S. Miller,et al. A review of polymer electrolyte membrane fuel cell stack testing , 2011 .
[108] Wenjie Lv,et al. Uniform distribution design and performance evaluation for UU-type parallel mini-hydrocyclones , 2014 .
[109] B. Wetton,et al. Flow distribution in proton exchange membrane fuel cell stacks , 2006 .
[110] Dai-jun Yang,et al. A review on water balance in the membrane electrode assembly of proton exchange membrane fuel cells , 2009 .
[111] Yongjin Sung,et al. Optimization of a fuel-cell manifold , 2006 .
[112] Hua Meng,et al. Numerical studies of liquid water behaviors in PEM fuel cell cathode considering transport across different porous layers , 2010 .
[113] M. G. Norton,et al. Gasoline-fueled solid oxide fuel cell using MoO2-Based Anode , 2014 .
[114] Pablo Cañizares,et al. Three-dimensional model of a 50 cm2 high temperature PEM fuel cell. Study of the flow channel geometry influence , 2010 .
[115] Lisa Grega,et al. Effects of Inlet Mass Flow Distribution and Magnitude on Reactant Distribution for PEM Fuel Cells , 2006 .
[116] D. Wilkinson,et al. Three-dimensional numerical simulation of water droplet emerging from a gas diffusion layer surface in micro-channels , 2010 .
[117] Robert Steinberger-Wilckens,et al. Gas Diffusion Layer Materials and their Effect on Polymer Electrolyte Fuel Cell Performance – Ex Situ and In Situ Characterization , 2014 .
[118] Jon T. Van Lew,et al. CFD STUDY ON FLOW DISTRIBUTION UNIFORMITY IN FUEL DISTRIBUTORS HAVING MULTIPLE STRUCTURAL BIFURCATIONS OF FLOW CHANNELS , 2010 .
[119] D. Hodgson,et al. A review of metal separator plate materials suitable for automotive PEM fuel cells , 2009 .
[120] Joongmyeon Bae,et al. Characterization of electrochemical reaction and thermo-fluid flow in metal-supported solid oxide fuel cell stacks with various manifold designs , 2012 .
[121] Thomas A. Trabold,et al. Water management studies in PEM fuel cells, Part I: Fuel cell design and in situ water distributions , 2009 .
[122] Chao-Yang Wang,et al. Fundamental models for fuel cell engineering. , 2004, Chemical reviews.
[123] J. Scholta,et al. Long‐Term Testing in Dynamic Mode of HT‐PEMFC H3PO4/PBI Celtec‐P Based Membrane Electrode Assemblies for Micro‐CHP Applications , 2010 .
[124] S. Tu,et al. Three-dimensional simulation to study the influence of foil thickness on residual stress in the bonded compliant seal design of planar solid oxide fuel cell , 2012 .
[125] X.-M. Zhang,et al. Impact of Compression on Effective Thermal Conductivity and Diffusion Coefficient of Woven Gas Diffusion Layers in Polymer Electrolyte Fuel Cells , 2014 .
[126] Frano Barbir,et al. Fuel Cell Stack Design Principles with Some Design Concepts of Micro-Mini Fuel Cells , 2008 .
[127] Chin-Hsiang Cheng,et al. Design for geometric parameters of PEM fuel cell by integrating computational fluid dynamics code with optimization method , 2007 .
[128] Jürgen Stumper,et al. Gas–liquid two-phase flow patterns in parallel channels for fuel cells , 2008 .
[129] Xuefeng Chen,et al. Numerical Analysis and Optimization on Flow Distribution and Heat Transfer of a U-Type Parallel Channel Heat Sink , 2015 .
[130] Ramin Roshandel,et al. SIMULATION OF AN INNOVATIVE FLOW-FIELD DESIGN BASED ON A BIO INSPIRED PATTERN FOR PEM FUEL CELLS , 2012 .
[131] Zhigang Shao,et al. The critical pressure drop for the purge process in the anode of a fuel cell , 2009 .
[132] A. Vahidi,et al. A review of the main parameters influencing long-term performance and durability of PEM fuel cells , 2008 .
[133] Guohui Gan,et al. Pressure drop and flow distribution in a group of parallel hydrocyclones: Z-Z-type arrangement , 2013 .
[134] C. Arcoumanis,et al. Degradation aspects of water formation and transport in Proton Exchange Membrane Fuel Cell: A review , 2013 .
[135] Mahlon Wilson,et al. Scientific aspects of polymer electrolyte fuel cell durability and degradation. , 2007, Chemical reviews.
[136] Brian J. Koeppel,et al. Comparative finite element analysis of the stress-strain states in three different bonded solid oxide fuel cell seal designs , 2008 .
[137] Hong Liu,et al. Experimental Study and Comparison of Various Designs of Gas Flow Fields to PEM Fuel Cells and Cell Stack Performance , 2014, Front. Energy Res..
[138] Cong Huang,et al. Pressure drop and flow distribution in a mini-hydrocyclone group: UU-type parallel arrangement , 2013 .
[139] K. Sharp,et al. Liquid droplet behavior and instability in a polymer electrolyte fuel cell flow channel , 2006 .
[140] Félix Barreras,et al. Flow distribution in a bipolar plate of a proton exchange membrane fuel cell : experiments and numerical simulation studies , 2005 .
[141] Sreenivas Jayanti,et al. Pressure drop and flow distribution in multiple parallel-channel configurations used in proton-exchange membrane fuel cell stacks , 2006 .
[142] Wei-Mon Yan,et al. Transient characteristics of proton exchange membrane fuel cells with different flow field designs , 2011 .
[143] S. Tu,et al. Effect of Al2O3 film on thermal stress in the bonded compliant seal design of planar solid oxide fuel cell , 2011 .
[144] Duu-Jong Lee,et al. Determination of the optimal active area for proton exchange membrane fuel cells with parallel, interdigitated or serpentine designs , 2009 .
[145] Rong Chen,et al. A novel direct ethanol fuel cell with high power density , 2011 .
[146] Sirivatch Shimpalee,et al. The impact of channel path length on PEMFC flow-field design , 2006 .
[147] Xianguo Li,et al. Multi-phase micro-scale flow simulation in the electrodes of a PEM fuel cell by lattice Boltzmann method , 2008 .
[148] Omar Z. Sharaf,et al. An overview of fuel cell technology: Fundamentals and applications , 2014 .
[149] Y. B. Kim,et al. Analyzing in-plane temperature distribution via a micro-temperature sensor in a unit polymer electrolyte membrane fuel cell , 2014 .
[150] M. G. Norton,et al. Gasoline-fueled solid oxide fuel cell with high power density , 2014 .
[151] Brant A. Peppley,et al. A Review of Mathematical Models for Hydrogen and Direct Methanol Polymer Electrolyte Membrane Fuel Cells , 2004 .
[152] Shou-Shing Hsieh,et al. Effect of pressure drop in different flow fields on water accumulation and current distribution for a micro PEM fuel cell , 2011 .
[153] Xinmin Lai,et al. Performance of a proton exchange membrane fuel cell stack using conductive amorphous carbon-coated 304 stainless steel bipolar plates , 2010 .
[154] Song-Yul Choe,et al. Dynamic modeling and analysis of a 20-cell PEM fuel cell stack considering temperature and two-phase effects , 2008 .
[155] Suk Won Cha,et al. Water management in proton exchange membrane fuel cells using integrated electroosmotic pumping , 2006 .
[156] Jiujun Zhang,et al. A review of water flooding issues in the proton exchange membrane fuel cell , 2008 .
[157] Abdul-Ghani Olabi,et al. Design of experiment study of the parameters that affect performance of three flow plate configurations of a proton exchange membrane fuel cell , 2010 .
[158] Hee Chun Lim,et al. Pressure and flow distribution in internal gas manifolds of a fuel-cell stack , 2003 .
[159] R. L. Pigford,et al. Flow distribution in piping manifolds , 1983 .
[160] K. Min,et al. Transient response of a unit proton-exchange membrane fuel cell under various operating conditions , 2008 .
[161] Rui Chen,et al. Modelling water intrusion and oxygen diffusion in a reconstructed microporous layer of PEM fuel cells , 2014 .
[162] Sirivatch Shimpalee,et al. Numerical studies on rib & channel dimension of flow-field on PEMFC performance , 2007 .
[163] Chung-Gil Kang,et al. Fabrication of Aluminum Bipolar Plates by Semi‐solid Forging Process and Performance Test of TiN Coated Aluminum Bipolar Plates , 2014 .
[164] Y. Nagumo,et al. Real-time visualization of oxygen partial pressures in straight channels of running polymer electrolyte fuel cell with water plugging , 2015 .
[165] Ned Djilali,et al. Computational modelling of polymer electrolyte membrane (PEM) fuel cells: Challenges and opportunities , 2007 .
[166] Sreenivas Jayanti,et al. A hydrodynamic network model for interdigitated flow fields , 2009 .
[167] Jürgen Stumper,et al. Gas–liquid two-phase flow distributions in parallel channels for fuel cells , 2009 .
[168] Jürgen Stumper,et al. Recent advances in fuel cell technology at Ballard , 2008 .
[169] Guohui Gan,et al. Analytical solution of flow coefficients for a uniformly distributed porous channel , 2001 .
[170] Xianguo Li,et al. Review of bipolar plates in PEM fuel cells: Flow-field designs , 2005 .
[171] Peiwen Li,et al. MAINTAINING EQUAL OPERATING CONDITIONS FOR ALL CELLS IN A FUEL CELL STACK USING AN EXTERNAL FLOW DISTRIBUTOR , 2013 .
[172] Christopher Hebling,et al. Experimental and numerical studies of portable PEMFC stack , 2009 .
[173] Pablo Martins Belchor,et al. Parallel serpentine-baffle flow field design for water management in a proton exchange membrane fuel cell , 2012 .
[174] Junye Wang,et al. Performance evaluation of the cell‐based algorithms for domain decomposition in flow simulation , 2008 .
[175] Second law analysis of a disturbed flow in a thin slit with wall suction or injection , 2008 .
[176] C. Sung,et al. Optimal Combination of Flow Field Channels, Gas Dif fusion Layers, and Catalyst Layers for Proton Exchange Membrane Fuel Cell , 2013 .
[177] In-Hwan Oh,et al. Effects of Water Removal on the Performance Degradation of PEMFCs Repetitively Brought to < 0 ° C , 2004 .
[178] Claudio Airoldi,et al. Removal of textile dyes from aqueous solution by babassu coconut epicarp (Orbignya speciosa) , 2011 .
[179] Chin-Hsiang Cheng,et al. CFD (computational fluid dynamics)-based optimal design of a micro-reformer by integrating computational a fluid dynamics code using a simplified conjugate-gradient method , 2014 .
[180] Duu-Jong Lee,et al. Flow field optimization for proton exchange membrane fuel cells with varying channel heights and widths , 2009 .
[181] J. Scholta,et al. Long Term Testing in Continuous Mode of HT‐PEMFC Based H3PO4/PBI Celtec‐P MEAs for μ‐CHP Applications , 2009 .
[182] T. Nguyen,et al. A liquid water management strategy for PEM fuel cell stacks , 2003 .
[183] Thirumalachari Sundararajan,et al. The effect of flow distributors on the liquid water distribution and performance of a PEM fuel cell , 2012 .
[184] Sreenivas Jayanti,et al. Flow distribution and pressure drop in parallel-channel configurations of planar fuel cells , 2005 .
[185] S. Kær,et al. Quantification of in situ temperature measurements on a PBI-based high temperature PEMFC unit cell , 2010 .
[186] P. Schmitz,et al. Laminar flow in channels with wall suction or injection: a new model to study multi-channel filtration systems , 2004 .
[187] Junye Wang,et al. Pressure drop and flow distribution in parallel-channel configurations of fuel cells: U-type arrangement , 2008 .
[188] S. Chan,et al. Optimal design and operation of polymer electrolyte membrane reactors for pure hydrogen production , 2013 .
[189] Wei-Mon Yan,et al. EXPERIMENTAL STUDIES ON OPTIMAL OPERATING CONDITIONS FOR DIFFERENT FLOW FIELD DESIGNS OF PEM FUEL CELLS , 2006 .
[190] Daniel Tondeur,et al. The theory of parallel channels manifolds (ladder networks) revisited part 2: Design for uniform cross‐flow distribution , 2015 .
[191] G. Li,et al. Residual stress and plastic strain analysis in the brazed joint of bonded compliant seal design in planar solid oxide fuel cell , 2010 .
[192] C. Sung,et al. A review of the performance and analysis of proton exchange membrane fuel cell membrane electrode assemblies , 2012 .
[193] L. Wang,et al. Investigation on Flow Distribution in an External Manifold SOFC Stack by Computational Fluid Dynamics Technique , 2015 .
[194] Evan J. See,et al. Two-phase flow in GDL and reactant channels of a proton exchange membrane fuel cell , 2014 .
[195] Zidong Wei,et al. A Review of Water Management in Polymer Electrolyte Membrane Fuel Cells , 2009 .
[196] Shan-Tung Tu,et al. Using short-time creep relaxation effect to decrease the residual stress in the bonded compliant seal of planar solid oxide fuel cell – A finite element simulation , 2014 .
[197] Yuhao Lu,et al. Performance of micro-PEM fuel cells with different flow fields , 2010 .
[198] O. Barbera,et al. Effect of operative conditions on a PEFC stack performance , 2008 .
[199] H.-J. Neef,et al. International overview of hydrogen and fuel cell research , 2009 .
[200] Andrej Debenjak,et al. Optimal selection of proton exchange membrane fuel cell condition monitoring thresholds , 2014 .
[201] Noriko Behling. Solving the fuel cell dilemma , 2012 .