Numerical Implementation of Source Terms to Evaluate Active Porosity Control using a Transpiration Cooled Thermal Protection System

Caroline Anderson, Michael Kinzel, Andrew Brune

    Research output: Chapter in Book/Report/Conference proceedingConference contribution

    Abstract

    Transpiration cooling has renewed interest of study as a renewable system of thermal protection for atmospheric entry systems. The presence of coolant within the void space of a porous material changes its effective porosity and theorized to lend the external heatshield as a potential means of porous surface control. Effective porosity is explored in two forms: saturation of void space where exiting coolant creates ‘blowing’ over the surface, and partial evacuation of the void space where withdrawal of the coolant creates ‘suction’ on the surface. Thus this study evaluates using transpiration cooling as a as means of active aerodynamic control. The feasibility of the system is evaluated numerically using Reynolds-averaged Navier Stokes based computational fluid dynamics for the aerodynamic assessments by coding source terms of transpiration cooling products at a heat shield surface boundary at the wind side shoulder, creating an asymmetric scheme. Study results show induced moments about the pitch axis incurred following the source terms of a cooling fluid at a near-shoulder location on the heat shield. Lift and drag saw increasing modulation with increase in mass flux rate. Pitch moment was altered a total of 388 N-m between lowest and highest ‘suction’ rates and changed 194 N-m maximum between ‘blowing’ rates.

    Original languageEnglish (US)
    Title of host publicationAIAA Aviation Forum and ASCEND, 2024
    PublisherAmerican Institute of Aeronautics and Astronautics Inc, AIAA
    ISBN (Print)9781624107160
    DOIs
    StatePublished - 2024
    EventAIAA Aviation Forum and ASCEND, 2024 - Las Vegas, United States
    Duration: Jul 29 2024Aug 2 2024

    Publication series

    NameAIAA Aviation Forum and ASCEND, 2024

    Conference

    ConferenceAIAA Aviation Forum and ASCEND, 2024
    Country/TerritoryUnited States
    CityLas Vegas
    Period7/29/248/2/24

    All Science Journal Classification (ASJC) codes

    • Energy Engineering and Power Technology
    • Nuclear Energy and Engineering
    • Aerospace Engineering
    • Space and Planetary Science

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