Waste heat recovery from exhausted gas of a proton exchange membrane fuel cell to produce hydrogen using thermoelectric generator

被引:30
作者
Lan, Yuncheng [1 ]
Lu, Junhui [1 ]
Mu, Lianbo [1 ]
Wang, Suilin [1 ]
Zhai, Huixing [1 ]
机构
[1] Beijing Univ Civil Engn & Architecture, Sch Environm & Energy Engn, Beijing 100044, Peoples R China
关键词
Proton exchange membrane fuel cell; Thermoelectric generator; Water electrolysis cell; Hydrogen production; Heat recovery; POWER-GENERATION; PERFORMANCE; OPTIMIZATION; SYSTEM; MODEL; ELECTRICITY; DESIGN; COOLER; COST;
D O I
10.1016/j.apenergy.2023.120687
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Proton exchange membrane fuel cell (PEMFC) is an efficient (40-50%) carrier to utilize hydrogen, which means around 50-60% of waste heat dissipates into ambience. To recover waste heat, advance hydrogen production and system efficiency, a novel integrated system with power generation and hydrogen production is proposed in this paper. The system includes a PEMFC, the thermoelectric generator (TEG) modules and a water electrolysis cell. The effects of cooling-method, electrical array configuration, the outlet temperature of PEMFC on the output power, system efficiency, hydrogen production rate and payback period have been investigated by means of a sensitivity analysis. The life cycle climate performance method is applied to evaluate the environmental performance. The results show that the hydrogen production rate of the water-cooling method is 31.4-44.8% larger than that of the air-cooling method. The electrical array configuration has no obvious effect on system performance. Additionally, the outlet temperature of PEMFC has positive effect on hydrogen production per module, while TEG module number is opposed. Furthermore, for optimizing the system, six different objection functions have been developed and compared. After optimization, the optimal height, area and volume of the thermoelectric leg are 1.01-1.3 mm, 2.52-3.28 mm2 and 3.08-4.26 mm3 at range of outlet temperature within 50-100 degrees C. The net output power, system efficiency and hydrogen production are 31.8-39.4%, 3.7-31.5% and 22.1-34.5% higher than that of the commercial module. The payback period and the year achieving zero carbon emissions are 15.0-34.3% and 17.8-36.8% lower than that of commercial module.
引用
收藏
页数:17
相关论文
共 55 条
[1]   Equivalent electrical model for a proton exchange membrane (PEM) electrolyser [J].
Atlam, Ozcan ;
Kolhe, Mohan .
ENERGY CONVERSION AND MANAGEMENT, 2011, 52 (8-9) :2952-2957
[2]   Multi-objective design optimization of a solar based system for electricity, cooling, and hydrogen production [J].
Behzadi, Amirmohammad ;
Habibollahzade, Ali ;
Ahmadi, Pouria ;
Gholamian, Ehsan ;
Houshfar, Ehsan .
ENERGY, 2019, 169 :696-709
[3]   An available method exploiting the waste heat in a proton exchange membrane fuel cell system [J].
Chen, Xiaohang ;
Chen, Liwei ;
Guo, Juncheng ;
Chen, Jincan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (10) :6099-6104
[4]   Geometric optimization of thermoelectric coolers in a confined volume using genetic algorithms [J].
Cheng, YH ;
Lin, WK .
APPLIED THERMAL ENGINEERING, 2005, 25 (17-18) :2983-2997
[5]   Three-zone numerical modeling method for predicting system-level waste heat recovery performance of thermoelectric generator with various electrical array configurations [J].
Choi, Taeho ;
Kim, Tae Young .
ENERGY CONVERSION AND MANAGEMENT, 2021, 240
[6]  
Clarke Z, 2020, EQUITY RES, V2, P2
[7]  
Cockerill John, 2022, DQ 10 3 2
[8]   Cost optimization of thermoelectric materials for power generation: The case for ZT at (almost) any cost [J].
Dames, C. .
SCRIPTA MATERIALIA, 2016, 111 :16-22
[9]  
Deng W. L., 2017, CHIN AUT C CAC
[10]  
Dicks A., 2000, Fuel cell systems explained