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    Performance Analysis of a Self-Decarbonizing Combustor

    Source: Journal of Engineering for Gas Turbines and Power:;2024:;volume( 147 ):;issue: 001::page 11013-1
    Author:
    Akojwar, Kartikeya S.
    ,
    Pawar, Samadhan A.
    ,
    Chaudhuri, Swetaprovo
    DOI: 10.1115/1.4066289
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Hydrogen is envisioned to be a key decarbonization solution for fossil fuel-dependent power generation and aviation industries. At present, a significant fraction of the generated electrical power is derived from natural gas. As such, the external energy needed for hydrogen generation, often sourced from fossil fuels, results in CO2 emissions, compromising overall carbon neutrality. Instead, the processes of hydrogen generation can be energetically coupled with the combustion process, in situ, to eliminate external energy requirements. To that end, a novel self-decarbonizing combustor (SDC) has been conceptualized, integrating methane pyrolysis with the combustion process that can in principle decarbonize many contemporary power generation technologies. The underpinning methane pyrolysis process enables in situ pre-combustion capture of solid carbon, while simultaneously generating hydrogen. Consequently, CO2 emissions resulting from the combustion of processed, hydrogen-enriched fuel are mitigated. This study provides a comprehensive analysis, delineating the operating principle and the effect of some of the important governing parameters on the performance of the self-decarbonizing combustor. These parameters, including fuel temperature, residence time, pressure, and catalysis, are studied in the context of potentially applying the proposed concept to natural gas-based decarbonized electrical power generation. Investigating fuel chemistry, combustion exhaust, and carbon structure and morphology under varying process parameters enhances our comprehension of the SDC. Additionally, its self-sufficient nature eliminates the need for separate hydrogen production, storage, and transportation infrastructure, highlighting its potential as a scalable and realizable technology.
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      Performance Analysis of a Self-Decarbonizing Combustor

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    contributor authorAkojwar, Kartikeya S.
    contributor authorPawar, Samadhan A.
    contributor authorChaudhuri, Swetaprovo
    date accessioned2025-04-21T10:23:06Z
    date available2025-04-21T10:23:06Z
    date copyright9/19/2024 12:00:00 AM
    date issued2024
    identifier issn0742-4795
    identifier othergtp_147_01_011013.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4306074
    description abstractHydrogen is envisioned to be a key decarbonization solution for fossil fuel-dependent power generation and aviation industries. At present, a significant fraction of the generated electrical power is derived from natural gas. As such, the external energy needed for hydrogen generation, often sourced from fossil fuels, results in CO2 emissions, compromising overall carbon neutrality. Instead, the processes of hydrogen generation can be energetically coupled with the combustion process, in situ, to eliminate external energy requirements. To that end, a novel self-decarbonizing combustor (SDC) has been conceptualized, integrating methane pyrolysis with the combustion process that can in principle decarbonize many contemporary power generation technologies. The underpinning methane pyrolysis process enables in situ pre-combustion capture of solid carbon, while simultaneously generating hydrogen. Consequently, CO2 emissions resulting from the combustion of processed, hydrogen-enriched fuel are mitigated. This study provides a comprehensive analysis, delineating the operating principle and the effect of some of the important governing parameters on the performance of the self-decarbonizing combustor. These parameters, including fuel temperature, residence time, pressure, and catalysis, are studied in the context of potentially applying the proposed concept to natural gas-based decarbonized electrical power generation. Investigating fuel chemistry, combustion exhaust, and carbon structure and morphology under varying process parameters enhances our comprehension of the SDC. Additionally, its self-sufficient nature eliminates the need for separate hydrogen production, storage, and transportation infrastructure, highlighting its potential as a scalable and realizable technology.
    publisherThe American Society of Mechanical Engineers (ASME)
    titlePerformance Analysis of a Self-Decarbonizing Combustor
    typeJournal Paper
    journal volume147
    journal issue1
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4066289
    journal fristpage11013-1
    journal lastpage11013-10
    page10
    treeJournal of Engineering for Gas Turbines and Power:;2024:;volume( 147 ):;issue: 001
    contenttypeFulltext
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