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DOE OSTI · 3365798

Implementation of a High-Mach Integral Boundary Layer Method for Arbitrary Streamlined Body Geometry

Abstract

The Momentum-Energy Integral Technique (MEIT) is an integral boundary layer method for the high-Mach flow regime used to approximate heat transfer and viscous force quantities of interest along streamlines of an inviscid flow solution on the surface of a flight vehicle. This method allows rapid mid-fidelity estimation of these quantities which would otherwise require a much more expensive viscous flow solution to produce. Integral boundary layer methods like MEIT have been around for decades, though usually only formulated for simple geometries such as 2-dimensional wing shapes or axi-symmetric nose shapes. The implementation discussed herein has been generalized to apply to any 3-dimensional streamlined body geometry through correct treatment of the curvilinear axes (streamline attached) momentum and energy entrainment terms, and handling of arbitrary stagnation region geometry. This implementation is provided as a software package for the Python environment, along with readers for common inviscid flow solution providers such as NASA’s CART3D flow solver.

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BibTeXRIS

Murray, Jonathan Coke [Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)] (ORCID:0009000056083595). 2026-05-01. Implementation of a High-Mach Integral Boundary Layer Method for Arbitrary Streamlined Body Geometry. https://doi.org/10.2172/3365798

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