Novel thermoelectric generator heat exchanger for indirect heat recovery from molten CuCl in the thermochemical Cu-Cl cycle of hydrogen production

被引:19
作者
Mohammadi, Amir [1 ,2 ]
Jianu, Ofelia A. [1 ]
机构
[1] Univ Windsor, Mech Automot & Mat Engn Dept, Windsor, ON N9B 3P4, Canada
[2] Univ Windsor, Mech Automot & Mat Engn Dept, 401 Sunset Ave, Windsor, ON N9B 3P4, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Thermoelectric generator; Hydrogen; Thermolysis; Heat transfer; Casting; extrusion; HIGH-TEMPERATURE EXHAUST; PARAMETER OPTIMIZATION; NUMERICAL-MODEL; SALT DROPLETS; SOLIDIFICATION; WATER; FLOW; ELECTROLYSIS; ENERGY; TUBE;
D O I
10.1016/j.ijhydene.2022.10.251
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The looming threat of global warming has elicited efforts to develop reliable sustainable energy resources. Hydrogen as a clean fuel is deemed a potential solution to the problem of storage of power from renewable energy technologies. Among current thermochemical hydrogen generation methods, the thermochemical copper-chlorine (Cu-Cl) cycle is of high interest owing to lower temperature requirements. Present study investigates a novel heat exchanger comprising a thermoelectric generator (TEG) to recover heat from high temperature molten CuCl exiting the thermolysis reactor. Employing casting/extrusion method, the performance of the proposed heat exchanger is numerically examined using COMSOL Multiphysics. Results indicate that maximum generated power could exceed 40 W at the matching current of 4.5 A. Maximum energy conversion efficiency yields to 7.1%. Results demonstrate that TEG performance boosts with increasing the inlet Re number, particularly at the hot end. For the molten CuCl chamber, findings denote that there is a 36% discrepancy between highest and lowest Re numbers. Similarly, the highest efficiency value pertains to the case with the highest inlet velocity. Moreover, the highest temperature difference between inlet and outlet of the cooling water is about 28 degrees C and 10 degrees C for the lowest and highest inlet Re numbers, respectively. Average deviation from anticipated friction factor and Nusselt number are 0.31% and 12.62%, respectively. (c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:5001 / 5017
页数:17
相关论文
共 28 条
[21]   Safety Analysis of the Hydrolysis Reactor in the Cu-Cl Thermochemical Hydrogen Production Cycle-Part 1: Methodology and Selected Top Events [J].
Finney, Leonard ;
Gabriel, Kamiel .
ENERGIES, 2024, 17 (05)
[22]   High performance ceramic carbon electrode-based anodes for use in the Cu-Cl thermochemical cycle for hydrogen production [J].
Ranganathan, Santhanam ;
Easton, E. Bradley .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (03) :1001-1007
[23]   Exergoeconomic machine-learning method of integrating a thermochemical Cu-Cl cycle in a multigeneration combined cycle gas turbine for hydrogen production [J].
Strusnik, Dusan ;
Avsec, Jurij .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (39) :17121-17149
[24]   Waste heat recovery potential in the thermochemical copper-chlorine cycle for hydrogen production: Development of an efficient and cost-effective heat exchanger network [J].
Sadeghi, Shayan ;
Ghandehariun, Samane ;
Rosen, Marc A. .
ENERGY, 2023, 282
[25]   Experimental investigation of molten salt droplet quenching and solidification processes of heat recovery in thermochemical hydrogen production [J].
Ghandehariun, S. ;
Wang, Z. ;
Naterer, G. F. ;
Rosen, M. A. .
APPLIED ENERGY, 2015, 157 :267-275
[26]   Direct contact heat transfer from molten salt droplets in a thermochemical water splitting process of hydrogen production [J].
Ghandehariun, Samane ;
Rosen, Marc A. ;
Naterer, Greg F. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 96 :125-131
[27]   Waste heat recovery from exhausted gas of a proton exchange membrane fuel cell to produce hydrogen using thermoelectric generator [J].
Lan, Yuncheng ;
Lu, Junhui ;
Mu, Lianbo ;
Wang, Suilin ;
Zhai, Huixing .
APPLIED ENERGY, 2023, 334
[28]   Direct waste heat recovery from a solid oxide fuel cell through Kalina cycle, two-bed adsorption chiller, thermoelectric generator, reverse osmosis, and PEM electrolyzer: 4E analysis and ANN-assisted optimization [J].
Asadabadi, Mohammad Javad Raji ;
Moghimi, Mahdi .
APPLIED THERMAL ENGINEERING, 2024, 236