Thermodynamic analysis of Ni-ferrite based solar thermochemical H2O splitting cycle for H2 production

被引:28
作者
Bhosale, Rahul R. [1 ]
机构
[1] Qatar Univ, Dept Chem Engn, Coll Engn, POB 2713, Doha, Qatar
关键词
Ni-ferrite; Water splitting; Hydrogen; Thermochemical; Solar energy; HYDROGEN-PRODUCTION; REDOX-PAIR; CERIA; NIXFE3-XO4; REDUCTION; SAMARIUM; FE;
D O I
10.1016/j.ijhydene.2018.03.145
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
In this paper, a comprehensive thermodynamic analysis of Ni-ferrite based H2O splitting cycle is performed using HSC Chemistry 7.1 software and its thermodynamic database. The influence of partial pressure of O-2(P-O2) in the inert N-2 and thermal reduction temperature (T-H) on delta (degree of nonstiochiometry) introduced in the Ni-ferrite crystal structure is investigated. With the increase in the P-O2 in the inert N-2 and T-H the delta increases, which results into higher levels of H-2 production via H2O splitting reaction. Variations in the other thermodynamic process parameters such as total amount of solar energy required to run the cycle ((Q) over dot(solar-cycle)), total amount of heat energy re-radiated from the cycle ((Q) over dot(re-rad-cycle)), amount of heat energy released by water splitting reactor ((Q) over dot(splitting-reactor)), cycle (eta(cycle)) and solar-to-fuel energy conversion efficiency (eta(solar-to-fuel)), and others as a function of P-O2 in the inert N-2, T-H, and water splitting temperature (T-L) are also researched. The eta(cycle) and eta(solar-to-fuel) upsurges with the reduction in the P-O2 in the inert N-2, T-H, and T-L. For instance, eta(cycle) = 29.5% and eta(solar-to-fuel) = 35.5% can be achieved at P-O2 in the inert N-2 = 10(-5) atm, T-H = 1600 K, T-L = 1000 K. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:61 / 71
页数:11
相关论文
共 50 条
[21]   Thermodynamic analysis of solar driven SnO2/SnO based thermochemical water splitting cycle [J].
Bhosale, Rahul R. ;
Kumar, Anand ;
Sutar, Parag .
ENERGY CONVERSION AND MANAGEMENT, 2017, 135 :226-235
[22]   Review of the Two-Step H2O/CO2-Splitting Solar Thermochemical Cycle Based on Zn/ZnO Redox Reactions [J].
Loutzenhiser, Peter G. ;
Meier, Anton ;
Steinfeld, Aldo .
MATERIALS, 2010, 3 (11) :4922-4938
[23]   Mn-ferrite based solar thermochemical water splitting cycle: A thermodynamic evaluation [J].
Bhosale, Rahul R. .
FUEL, 2019, 256
[24]   Thermochemical CO2 and CO2/H2O splitting over NiFe2O4 for solar fuels synthesis [J].
Lorentzou, S. ;
Karagiannakis, G. ;
Pagkoura, C. ;
Zygogianni, A. ;
Konstandopoulos, A. G. .
PROCEEDINGS OF THE SOLARPACES 2013 INTERNATIONAL CONFERENCE, 2014, 49 :1999-2008
[25]   Kinetics and mechanism of solar-thermochemical H2 and CO production by oxidation of reduced CeO2 [J].
Arifin, Darwin ;
Weimer, Alan W. .
SOLAR ENERGY, 2018, 160 :178-185
[26]   Principles of doping ceria for the solar thermochemical redox splitting of H2O and CO2 [J].
Muhich, Christopher ;
Steinfeld, Aldo .
JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (30) :15578-15590
[27]   Solar syngas production from CO2 and H2O in a two-step thermochemical cycle via Zn/ZnO redox reactions: Thermodynamic cycle analysis [J].
Loutzenhiser, Peter G. ;
Steinfeld, Aldo .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (19) :12141-12147
[28]   Characterization of Two-Step Tin-Based Redox System for Thermochemical Fuel Production from Solar-Driven CO2 and H2O Splitting Cycle [J].
Leveque, Gael ;
Abanades, Stephane ;
Jumas, Jean-Claude ;
Olivier-Fourcade, Josette .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (14) :5668-5677
[29]   H2O splitting via a two-step solar thermoelectrolytic cycle based on non-stoichiometric ceria redox reactions: Thermodynamic analysis [J].
Schieber, Garrett L. ;
Stechel, Ellen B. ;
Ambrosini, Andrea ;
Miller, James E. ;
Loutzenhiser, Peter G. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (30) :18785-18793
[30]   Hydrogen production via thermochemical H2O splitting using CaSO4 - CaO redox reactions [J].
Bhosale, Rahul R. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (05) :3444-3456