Numerical study on heat transfer characteristics and performance evaluation of PEMFC based on multiphase electrochemical model coupled with cooling channel
暂无分享,去创建一个
Z. Tu | Ben Chen | Yonghua Cai | Qihao Deng | Wenshang Chen | Yu Zhou | Guanghua Yang
[1] Shixue Wang,et al. Effect of cooling surface temperature difference on the performance of high-temperature PEMFCs , 2023, International Journal of Hydrogen Energy.
[2] Haozhong Huang,et al. Evaluating the effect of refined flow channels in a developed biomimetic flow field on PEMFC performance , 2022, Energy.
[3] W. Zhuge,et al. Comparison of organic coolants for boiling cooling of proton exchange membrane fuel cell , 2022, Energy.
[4] Jun Shen,et al. A novel opposite sinusoidal wave flow channel for performance enhancement of proton exchange membrane fuel cell , 2022, Energy.
[5] E. Afshari,et al. Three-dimensional multiphase modeling of the performance of an open-cathode PEM fuel cell with additional cooling channels , 2022, Energy.
[6] E. Afshari,et al. Comparison of active and passive cooling of proton exchange membrane fuel cell using a multiphase model , 2022, Energy Conversion and Management.
[7] Jiang Xiaohui,et al. Characteristics of proton exchange membrane fuel cell considering “dot matrix” gas distribution zones and waveform staggered flow field with cooling channels , 2022, Energy Conversion and Management.
[8] Qifei Jian,et al. Cooling Efficiency Optimization on Air-Cooling Pemfc Stack with Thin Vapor Chambers , 2022, SSRN Electronic Journal.
[9] P. Ahmadi,et al. Lifecycle assessment of diesel, diesel-electric and fuel cell transit buses under real urban driving cycles with fuel cell degradation and battery aging using machine learning techniques , 2022, Energy.
[10] Chengzhi Zhang,et al. Numerical study on water transfer characteristics under joint effect of placement orientation and flow channel size for PEMFC with dead-ended anode , 2022, Energy.
[11] Z. Tu,et al. Evaluation of cooling flow field of proton exchange membrane fuel cell based on heat transfer performance enhancement , 2022, International Journal of Energy Research.
[12] P. Poramapojana,et al. Three‐dimensional simulations for counter‐flow proton exchange membrane fuel cells with thin catalyst‐coated membrane cooled by liquid water , 2022, International Journal of Energy Research.
[13] S. Chan,et al. Progress and perspectives of integrated thermal management systems in PEM fuel cell vehicles: A review , 2022, Renewable and Sustainable Energy Reviews.
[14] Qifei Jian,et al. A hybrid optimization strategy of electrical efficiency about cooling PEMFC combined with ultra-thin vapor chambers , 2022, Energy Conversion and Management.
[15] Huicui Chen,et al. Effects of temperature on the performance of fuel cell hybrid electric vehicles: A review , 2021 .
[16] Xiao-dong Wang,et al. Numerical study of a MIMO-shaped cooling plate in PEMFC stack for heat transfer enhancement , 2021, Energy Reports.
[17] Ben Chen,et al. Numerical simulation on purge strategy of proton exchange membrane fuel cell with dead-ended anode , 2021 .
[18] E. Afshari,et al. Three-dimensional simulation of different flow fields of proton exchange membrane fuel cell using a multi-phase coupled model with cooling channel , 2021 .
[19] Qifei Jian,et al. Rapid thermal response and sensitivity analysis of proton exchange membrane fuel cell stack with ultra-thin vapor chambers , 2021, Applied Thermal Engineering.
[20] Changhong Wang,et al. Study on the performance and characteristics of fuel cell coupling cathode channel with cooling channel , 2021, International Journal of Hydrogen Energy.
[21] N. Brandon,et al. Designing the next generation of proton-exchange membrane fuel cells , 2021, Nature.
[22] Kai Meng,et al. Dynamic current cycles effect on the degradation characteristic of a H2/O2 proton exchange membrane fuel cell , 2021, Energy.
[23] A. Olabi,et al. Advancements and prospects of thermal management and waste heat recovery of PEMFC , 2021, International Journal of Thermofluids.
[24] Gui-hua Wang,et al. Three-dimensional multi-phase simulation of cooling patterns for proton exchange membrane fuel cell based on a modified Bruggeman equation , 2020, Applied Thermal Engineering.
[25] Linfa Peng,et al. Numerical analysis of air-cooled proton exchange membrane fuel cells with various cathode flow channels , 2020 .
[26] Yun Wang,et al. Investigation of current density spatial distribution in PEM fuel cells using a comprehensively validated multi-phase non-isothermal model , 2020 .
[27] Young-Bae Kim,et al. Thermal management for an air coolant system of a proton exchange membrane fuel cell using heat distribution optimization , 2020 .
[28] Majid Siavashi,et al. Design optimization and thermal management of the PEMFC using artificial neural networks , 2019, Energy.
[29] Lingen Chen,et al. A review on the approaches applied for cooling fuel cells , 2019, International Journal of Heat and Mass Transfer.
[30] F. Barbir,et al. Coolant induced variable temperature flow field for improved performance of proton exchange membrane fuel cells , 2019, International Journal of Hydrogen Energy.
[31] Hüseyin Turan Arat,et al. Overview of the next quarter century vision of hydrogen fuel cell electric vehicles , 2019, International Journal of Hydrogen Energy.
[32] M. Ramadan,et al. Fuel cell membranes – Pros and cons , 2019, Energy.
[33] E. Afshari,et al. Three-dimensional multiphase model of proton exchange membrane fuel cell with honeycomb flow field at the cathode side , 2019, Journal of Cleaner Production.
[34] Mohsen Shakeri,et al. Heat transfer in PEM cooling flow field with high porosity metal foam insert , 2019, Applied Thermal Engineering.
[35] A. Ranjbar,et al. Numerical simulation based design for an innovative PEMFC cooling flow field with metallic bipolar plates , 2018, Applied Energy.
[36] B. Sundén,et al. Numerical study on thermal performance of non-uniform flow channel designs for cooling plates of PEM fuel cells , 2018, Numerical Heat Transfer, Part A: Applications.
[37] B. Sundén,et al. Numerical analysis on thermal performance of cooling plates with wavy channels in PEM fuel cells , 2018, International Journal of Numerical Methods for Heat & Fluid Flow.
[38] Shubo Wang,et al. Experimental study on cooling performance of microencapsulated phase change suspension in a PEMFC , 2017 .
[39] Guobin Zhang,et al. Characteristics of PEMFC operating at high current density with low external humidification , 2017 .
[40] M. Ziaei-Rad,et al. Numerical investigation on a novel zigzag-shaped flow channel design for cooling plates of PEM fuel cells , 2017 .
[41] A. Ranjbar,et al. A numerical study on thermal analysis and cooling flow fields effect on PEMFC performance , 2017 .
[42] A. Ranjbar,et al. Thermal investigation of a PEM fuel cell with cooling flow field , 2017 .
[43] J. Andrews,et al. Experimental investigation of using ZnO nanofluids as coolants in a PEM fuel cell , 2017 .
[44] E. Alizadeh,et al. A novel cooling flow field design for polymer electrolyte membrane fuel cell stack , 2016 .
[45] Edson Bazzo,et al. Flat heat pipes for potential application in fuel cell cooling , 2015 .
[46] R. Mamat,et al. Thermal Analysis of Heat Transfer Enhancement and Fluid Flow for Low Concentration of Al2O3 Water - Ethylene Glycol Mixture Nanofluid in a Single PEMFC Cooling Plate , 2015 .
[47] B. Shabani,et al. Metal foams application to enhance cooling of open cathode polymer electrolyte membrane fuel cells , 2015 .
[48] Ebrahim Afshari,et al. A study on using metal foam as coolant fluid distributor in the polymer electrolyte membrane fuel cell , 2014 .
[49] Benjamin D. Gould,et al. Assessing fuel-cell coolant flow fields with numerical models and infrared thermography , 2014 .
[50] Li Chen,et al. NUMERICAL INVESTIGATION OF THE COUPLED WATER AND THERMAL MANAGEMENT IN PEM FUEL CELL , 2013 .
[51] Arun S. Mujumdar,et al. Numerical evaluation of various gas and coolant channel designs for high performance liquid-cooled proton exchange membrane fuel cell stacks , 2012 .
[52] S. Kandlikar,et al. A critical review of cooling techniques in proton exchange membrane fuel cell stacks , 2012 .
[53] Seung Man Baek,et al. A numerical study on uniform cooling of large-scale PEMFCs with different coolant flow field designs , 2011 .
[54] T. Lim,et al. The effects of relative humidity on the performances of PEMFC MEAs with various Nafion® ionomer contents , 2010 .
[55] Jin Hyun Nam,et al. Numerical study to examine the performance of multi-pass serpentine flow-fields for cooling plates in polymer electrolyte membrane fuel cells , 2009 .
[56] Sangseok Yu,et al. Thermal management strategy for a proton exchange membrane fuel cell system with a large active cell area , 2008 .
[57] Jenn-Kun Kuo,et al. Evaluating the enhanced performance of a novel wave-like form gas flow channel in the PEMFC using the field synergy principle , 2006 .
[58] Jing Zeng,et al. Design and numerical investigation of multi-channel cooling plate for proton exchange membrane fuel cell , 2022, Energy Reports.
[59] Jihong Zhang,et al. Effect of the cooling water flow direction on the performance of PEMFCs , 2022, International Journal of Heat and Mass Transfer.