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    Wave Reformer Channel Shape Design for Enhanced Hydrogen Pyrolysis

    Source: Journal of Engineering for Gas Turbines and Power:;2024:;volume( 147 ):;issue: 007::page 71010-1
    Author:
    Madiot, G.
    ,
    Tüchler, S.
    ,
    Akbari, P.
    ,
    Copeland, C. D.
    DOI: 10.1115/1.4066887
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A wave reformer utilizes shock-wave heating resulting from pressure exchange between a driver and a driven (reactant gas) to initiate a thermal decomposition reaction. Although widely applicable to many reactions, this paper will focus on the thermal pyrolysis of methane to produce hydrogen and solid (black) carbon. It uses wave rotor technology that has been applied to other applications but developed specifically here for high-temperature pyrolysis by New Wave Hydrogen, Inc. (NWH). This research uses a quasi-two-dimensional (Q2D) model implemented in ansysfluent to study the influence of new channel design features on the unsteady flow field and performance characteristics of the wave reformer. The primary objective of the work is to investigate the impact of variable area channel design on peak temperature (a proxy for thermal pyrolysis), which has received limited attention in existing literature. The model numerically solves the three-dimensional (3D), compressible, and unsteady Navier–Stokes equations, employing the k–ω SST turbulence model for closure. Additionally, it utilizes a cell-centered approach coupled to multispecies transport equations and a one-step finite-rate chemistry model. The channel's curvature is controlled with sigmoid functions to ensure a smooth area transition along the channel. The Q2D results reveal that as the fluid traverses the converging channel, its temperature increases due to the rising internal energy, necessary for enhancing hydrogen yields. However, an over-reduction in channel cross section results in a decrease in the driven mass flow rate, subsequently lowering the mass flow ratio. This work shows that, above a given threshold, there is a significant benefit to implementing converging channel designs in wave reformers for enhanced shock heating.
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      Wave Reformer Channel Shape Design for Enhanced Hydrogen Pyrolysis

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4306344
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    contributor authorMadiot, G.
    contributor authorTüchler, S.
    contributor authorAkbari, P.
    contributor authorCopeland, C. D.
    date accessioned2025-04-21T10:30:41Z
    date available2025-04-21T10:30:41Z
    date copyright12/23/2024 12:00:00 AM
    date issued2024
    identifier issn0742-4795
    identifier othergtp_147_07_071010.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4306344
    description abstractA wave reformer utilizes shock-wave heating resulting from pressure exchange between a driver and a driven (reactant gas) to initiate a thermal decomposition reaction. Although widely applicable to many reactions, this paper will focus on the thermal pyrolysis of methane to produce hydrogen and solid (black) carbon. It uses wave rotor technology that has been applied to other applications but developed specifically here for high-temperature pyrolysis by New Wave Hydrogen, Inc. (NWH). This research uses a quasi-two-dimensional (Q2D) model implemented in ansysfluent to study the influence of new channel design features on the unsteady flow field and performance characteristics of the wave reformer. The primary objective of the work is to investigate the impact of variable area channel design on peak temperature (a proxy for thermal pyrolysis), which has received limited attention in existing literature. The model numerically solves the three-dimensional (3D), compressible, and unsteady Navier–Stokes equations, employing the k–ω SST turbulence model for closure. Additionally, it utilizes a cell-centered approach coupled to multispecies transport equations and a one-step finite-rate chemistry model. The channel's curvature is controlled with sigmoid functions to ensure a smooth area transition along the channel. The Q2D results reveal that as the fluid traverses the converging channel, its temperature increases due to the rising internal energy, necessary for enhancing hydrogen yields. However, an over-reduction in channel cross section results in a decrease in the driven mass flow rate, subsequently lowering the mass flow ratio. This work shows that, above a given threshold, there is a significant benefit to implementing converging channel designs in wave reformers for enhanced shock heating.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleWave Reformer Channel Shape Design for Enhanced Hydrogen Pyrolysis
    typeJournal Paper
    journal volume147
    journal issue7
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4066887
    journal fristpage71010-1
    journal lastpage71010-11
    page11
    treeJournal of Engineering for Gas Turbines and Power:;2024:;volume( 147 ):;issue: 007
    contenttypeFulltext
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