Ammonia as a Fuel for Gas-Turbine Units with Thermochemical Recuperation of Exhaust Gas Heat

IF 0.9 Q4 ENERGY & FUELS
D. I. Pashchenko
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Abstract

The prospects are examined for application of ammonia-fired gas turbine units (GTUs) with thermochemical recuperation of the exhaust gas heat. Examples of operating ammonia-fired gas turbine units are given, and the main operating restrictions for the use of existing gas turbine units are specified. A thermodynamic analysis of a simple gas turbine unit with thermochemical heat recuperation (TCR) was performed in a wide range of operating conditions: the gas temperature at the turbine inlet varied from 700 to 1300°C and the compressor pressure ratio from 5 to 20. It has been established that the thermochemical heat recuperation can increase the GTU efficiency by as much as 9%. The effectiveness of TCR application has been demonstrated to depend on such operating parameters as pressure and temperature. At a temperature above 500°C, the enthalpy of the ammonia decomposition reaction reaches a value close to the maximum of approximately 3.0 MJ/kg NH3. Thermochemical recuperation leads to the decomposition of ammonia with production of a hydrogen-rich gas (up to 75% (by volume)), which is burned in the combustion chamber, thereby changing the combustion process characteristics. The flame propagation velocity in a gas mixture consisting of hydrogen, nitrogen, and ammonia in different proportions was calculated on the basis of the GRI-Mech 3.0 list of elementary reactions in the Chemkin-Pro module. It has been found that the products of complete thermochemical decomposition of ammonia have a flame propagation velocity that is approximately two times higher than that for methane and more than ten times higher than that for ammonia. Thus, the implementation of the thermochemical heat recuperation in ammonia-fired gas turbine units is expected to increase the energy efficiency and improve the combustion process stability.

Abstract Image

氨作为废气热化学回收燃气轮机机组的燃料
展望了烟气热化学回收氨燃气轮机的应用前景。给出了运行氨燃气轮机机组的实例,并说明了使用现有燃气轮机机组的主要运行限制。对具有热化学热回收(TCR)功能的简单燃气轮机机组在多种工况下进行了热力学分析:涡轮入口气体温度从700°C变化到1300°C,压缩机压力比从5到20。热化学热回收可使GTU效率提高9%。TCR应用的有效性已被证明取决于诸如压力和温度等操作参数。在温度高于500℃时,氨分解反应的焓值接近最大值,约为3.0 MJ/kg NH3。热化学回收导致氨分解,产生富氢气体(高达75%(体积)),在燃烧室中燃烧,从而改变燃烧过程特性。根据Chemkin-Pro模块中的GRI-Mech 3.0基本反应表,计算了不同比例的氢、氮、氨混合气体中火焰的传播速度。研究发现,氨完全热化学分解产物的火焰传播速度约为甲烷的两倍,比氨的火焰传播速度高十倍以上。因此,在氨燃气轮机机组中实施热化学热回收有望提高能源效率,改善燃烧过程的稳定性。
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来源期刊
CiteScore
1.30
自引率
20.00%
发文量
94
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