Hydrogen–air energy storage gas-turbine system

被引:6
|
作者
Schastlivtsev A.I. [1 ]
Nazarova O.V. [1 ]
机构
[1] Joint Institute for High Temperatures, Russian Academy of Sciences, ul. Izhorskaya 13, str. 2, Moscow
基金
俄罗斯科学基金会;
关键词
energy storage; gas-turbine plant; hydrogen; recovery factor;
D O I
10.1134/S0040601516010109
中图分类号
学科分类号
摘要
A hydrogen–air energy storage gas-turbine unit is considered that can be used in both nuclear and centralized power industries. However, it is the most promising when used for power-generating plants based on renewable energy sources (RES). The basic feature of the energy storage system in question is combination of storing the energy in compressed air and hydrogen and oxygen produced by the water electrolysis. Such a process makes the energy storage more flexible, in particular, when applied to RES-based power-generating plants whose generation of power may considerably vary during the course of a day, and also reduces the specific cost of the system by decreasing the required volume of the reservoir. This will allow construction of such systems in any areas independent of the local topography in contrast to the compressed-air energy storage gas-turbine plants, which require large-sized underground reservoirs. It should be noted that, during the energy recovery, the air that arrives from the reservoir is heated by combustion of hydrogen in oxygen, which results in the gas-turbine exhaust gases practically free of substances hazardous to the health and the environment. The results of analysis of a hydrogen–air energy storage gas-turbine system are presented. Its layout and the principle of its operation are described and the basic parameters are computed. The units of the system are analyzed and their costs are assessed; the recovery factor is estimated at more than 60%. According to the obtained results, almost all main components of the hydrogen–air energy storage gas-turbine system are well known at present; therefore, no considerable R&D costs are required. A new component of the system is the H2–O2 combustion chamber; a difficulty in manufacturing it is the necessity of ensuring the combustion of hydrogen in oxygen as complete as possible and preventing formation of nitric oxides. © 2016, Pleiades Publishing, Inc.
引用
收藏
页码:107 / 113
页数:6
相关论文
共 50 条
  • [41] COMBUSTION PERFORMANCE OF HYDROGEN IN A SMALL GAS-TURBINE COMBUSTOR
    SAMPATH, P
    SHUM, F
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1985, 10 (12) : 829 - 837
  • [42] Systematically derived one-step kinetics for hydrogen-air gas-turbine combustion
    Carpio, Jaime
    Li, Brandon
    Fernandez-Galisteo, Daniel
    Sanchez, Antonio L.
    Williams, Forman A.
    COMBUSTION AND FLAME, 2023, 250
  • [43] Development and analysis of an integrated gas turbine system with compressed air energy storage for load leveling and energy management
    DinAli, Magd N.
    Dincer, Ibrahim
    ENERGY, 2018, 163 : 604 - 617
  • [44] GAS-TURBINE PROPULSION SYSTEM .2.
    RIDLEY, PWW
    TURBOMACHINERY INTERNATIONAL, 1983, 24 (08) : 29 - &
  • [45] SYSTEM MONITORS GAS-TURBINE MAINTENANCE.
    Temple, Terry W.
    Foltz, Floyd L.
    Jamalallail, Hashem R.
    Oil and Gas Journal, 1980, 78 (38): : 105 - 108
  • [46] Impact of compressed air energy storage demands on gas turbine performance
    Igie, Uyioghosa
    Abbondanza, Marco
    Szymanski, Artur
    Nikolaidis, Theoklis
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2021, 235 (04) : 850 - 865
  • [47] IMPROVEMENT OF GAS-TURBINE ENGINE PARAMETERS BY WATER INJECTION INTO TURBINE COOLING AIR
    GORELOV, GM
    DANILCHENKO, VP
    REZNIK, VE
    IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII AVIATSIONAYA TEKHNIKA, 1983, (03): : 66 - 70
  • [48] OPTIMIZATION OF HYDROGEN FUELED GAS-TURBINE STEAM-TURBINE COMBINED CYCLE
    TSUJIKAWA, Y
    TSUKAMOTO, Y
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1988, 13 (02) : 103 - 109
  • [49] Impact of thermal energy storage integration on the performance of a hybrid solar gas-turbine power plant
    Grange, B.
    Dalet, C.
    Falcoz, Q.
    Ferriere, A.
    Flamant, G.
    APPLIED THERMAL ENGINEERING, 2016, 105 : 266 - 275
  • [50] COMPLEX IMPROVEMENT IN ENERGY EFFICIENCY OF GAS-TURBINE DRIVES
    VADAS, Z
    BELCSAK, Z
    ENERGIA ES ATOMTECHNIKA, 1984, 37 (7-8): : 301 - 303