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MICROMIXERS AND HYDROGEN ENRICHMENT: THE FUTURE COMBUSTION TECHNOLOGY IN ZERO-EMISSION POWER PLANTS

机译:微混合器和氢气浓缩:零排放发电厂的未来燃烧技术

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The stable and flexible micromixer (MM) gas-turbine technology is coupled with hydrogen (H_2) enrichment to present an oxy-methane combustor that can sustain highly diluted flames for application in the Allam cycle for zero-emission power production. MMs have never been tested under oxy-fuel conditions, which highlights the novelty of the present study. The operability window was quantified over ranges of fuel hydrogen fraction (HF) and oxidizer oxygen fraction OF. The MM showed superior stability, allowing for reducing OF down to 21% (by vol.) without H_2 enrichment, which satisfies the dilution requirements (23%) of the primary reaction zone within the Allam-cycle combustor. By comparison, swirl-based burners from past studies exhibited a ~30% minimum threshold. Enriching the fuel with H_2 boosted flame stability and allowed for reducing OF further down to a record-low value of 13% at HF=65% (by vol.) in fuel mixture. Under these highly diluted conditions, the adiabatic flame temperature is 990°C (1800℉). which is substantially lower than the lean blowout limit of most known technologies of lean premixed air-fuel combustion in gas-turbine applications. The results also showed that H_2 enrichment has minimal effect on the adiabatic flame temperature and combustor power density (MW/m~3/atm). which facilitates great operational flexibility in adjusting HF to sustain flame stability without influencing the Allam cycle peak temperature or affecting the turbine health. MM combustion with H_2 enrichment is thus a recommended technology for controlled-emission, fuel/oxidizer-flexible combustion in gas turbines.
机译:稳定且柔性的微混合器(MM)燃气轮机技术与氢气(H_2)富集偶联,以呈现氧 - 甲烷燃烧器,其可以在ALLAM循环中施加高度稀释的火焰以进行零排放电力产生。 MMS从未在氧气燃料条件下进行过测试,突出了本研究的新颖性。通过燃料氢馏分(HF)和氧化剂氧馏分的范围量化可操作性窗口。 MM显示出优异的稳定性,允许在没有H_2富集的情况下降低至21%(通过Vol。),其满足Allam-循环燃烧器内的初级反应区的稀释要求(23%)。相比之下,来自过去研究的旋流式燃烧器表现出〜30%的最小阈值。富含H_2的燃料提高了火焰稳定性,并允许在燃料混合物中以115%(通过Vol。)在HF = 65%(通过Vol.)中进一步降低到记录低值13%。在这些高度稀释的条件下,绝热火焰温度为990°C(1800℉)。这基本上低于气 - 涡轮机应用中精益预混空气燃料燃烧的最着名的技术的贫爆出极限。结果还表明,H_2富集对绝热火焰温度和燃烧器功率密度(MW / M〜3 / ATM)具有最小的影响。这促进了调整HF以维持火焰稳定性的巨大操作灵活性,而不会影响阿拉姆循环峰值温度或影响涡轮机健康。因此,与H_2富集的MM燃烧是用于燃气轮机中的受控排放,燃料/氧化剂柔性燃烧的推荐技术。

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