Integrating a gas turbine system and a flameless boiler to make steam for hydrogen production in a solid oxide steam electrolyzer

被引:16
作者
Hosseini, Seyed Ehsan [1 ]
机构
[1] Arkansas Tech Univ, Combust & Sustainable Energy Lab ComSEL, Dept Mech Engn, 1811 N Boulder Ave, Russellville, AR 72801 USA
关键词
Hydrogen; Gas turbine; Flameless combustion; Solid oxide steam electrolyzer; POWER-GENERATION; POLARIZATION BEHAVIOR; FUEL-CELL; COMBUSTION; MODEL; PERFORMANCE; ENERGY; OPTIMIZATION; BIOGAS; BURNER;
D O I
10.1016/j.applthermaleng.2020.115890
中图分类号
O414.1 [热力学];
学科分类号
摘要
Solid oxide steam electrolyzer (SOSE) uses both electricity and steam to produce hydrogen in a large scale. Considering losses in the electrical power transmission and significant amounts of fuel for steam making, it is affordable to integrate the gas turbine (GT) system to the SOSE in the power plant to generate hybrid electrical power-hydrogen fuel. In this paper, design and performance of a hybrid electrical power generation-hydrogen production system are analytically analyzed. To make steam, a flameless boiler is coupled to the GT system using the GT extremely hot exhaust gases as the oxidizer. The results revealed that the turbine inlet temperature (TIT) should be kept more than 1314 K to obtain GT exhaust gases at temperatures higher than 870 K (auto-ignition temperature of methane) to maintain flameless combustion mode in the boiler. By increasing the flameless boiler temperature and consequently enhancing the SOSE steam temperature from 950 K to 1350 K, the rate of overall fuel consumption in the flameless boiler slightly increases, however the hydrogen production rate escalates from 2.2 mol/s to 10.2 mol/s. The novelty of this paper lies on the using the GT exhaust gases enthalpy to run a flameless boiler to drastically mitigate fuel consumption in hydrogen production system. The presented model in this paper can be used to perform more thermochemical analyses to attain insightful understanding of the hybrid electrical power-hydrogen production systems.
引用
收藏
页数:12
相关论文
共 55 条
[21]   A macro-level model for determining the performance characteristics of solid oxide fuel cells [J].
Hernández-Pacheco, E ;
Singh, D ;
Hutton, PN ;
Patel, N ;
Mann, MD .
JOURNAL OF POWER SOURCES, 2004, 138 (1-2) :174-186
[22]   Hydrogen as a battery for a rooftop household solar power generation unit [J].
Hosseini, Seyed Ehsan ;
Butler, Brayden ;
Wahid, Mazlan Abdul .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (48) :25811-25826
[23]   Hydrogen from solar energy, a clean energy carrier from a sustainable source of energy [J].
Hosseini, Seyed Ehsan ;
Wahid, Mazlan Abdul .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2020, 44 (06) :4110-4131
[24]   Modelling and exergoeconomic-environmental analysis of combined cycle power generation system using flameless burner for steam generation [J].
Hosseini, Seyed Ehsan ;
Barzegaravval, Hasan ;
Ganjehkaviri, Abdolsaeid ;
Wahid, Mazlan Abdul ;
Jaafar, M. N. Mohd .
ENERGY CONVERSION AND MANAGEMENT, 2017, 135 :362-372
[25]   Hydrogen production from renewable and sustainable energy resources: Promising green energy carrier for clean development [J].
Hosseini, Seyed Ehsan ;
Wahid, Mazlan Abdul .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2016, 57 :850-866
[26]   Utilization of biogas released from palm oil mill effluent for power generation using self-preheated reactor [J].
Hosseini, Seyed Ehsan ;
Wahid, Mazlan Abdul .
ENERGY CONVERSION AND MANAGEMENT, 2015, 105 :957-966
[27]   Biogas Flameless Combustion: A Review [J].
Hosseini, Seyed Ehsan ;
Wahid, Mazlan A. ;
Abuelnuor, A. A. Ali .
ADVANCES IN THERMOFLUIDS, 2013, 388 :273-279
[28]   Challenges in the development of reversible solid oxide cell technologies: a mini review [J].
Jiang, San Ping .
ASIA-PACIFIC JOURNAL OF CHEMICAL ENGINEERING, 2016, 11 (03) :386-391
[29]   Modeling and multi-objective exergy based optimization of a combined cycle power plant using a genetic algorithm [J].
Kaviri, Abdolsaeid Ganjeh ;
Jaafar, Mohammad Nazri Mohd ;
Lazim, Tholudin Mat .
ENERGY CONVERSION AND MANAGEMENT, 2012, 58 :94-103
[30]   High temperature air combustion boiler for low BTU gas [J].
Kawai, K ;
Yoshikawa, K ;
Kobayashi, H ;
Tsai, JS ;
Matsuo, M ;
Katsushima, H .
ENERGY CONVERSION AND MANAGEMENT, 2002, 43 (9-12) :1563-1570