Assessment of the Sonic-Eddy Model in Hypersonic Turbulent Boundary Layers
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Abstract
Hypersonic turbulent boundary layers exhibit strong compressibility and acoustic effects that alterturbulent momentum transport and complicate the interpretation of near-wall structure. A central
unresolved question is how finite acoustic signaling speed limits the size, coherence, and
effectiveness of the eddies responsible for transferring momentum across the boundary layer. This
thesis evaluates the sonic-eddy transport model, in which turbulent transport is constrained by
eddies for which the acoustic communication time across the eddy is comparable to or shorter than
the eddy turnover time. Under this framework, the outer region of the boundary layer acts as a
bottleneck for momentum transfer from the freestream to the wall, leading to specific predictions
for eddy-size variation and skin-friction scaling with Mach number. Three-dimensional viscoussublayer-resolved Reynolds-stress-model computations of hypersonic turbulent boundary layers
were used to examine these predictions and to assess the extent to which the sonic-eddy model is
consistent with the computed mean flow behavior. The results are broadly consistent with the key
predictions of the sonic-eddy transport model and provide insight into its validity and limitations
for hypersonic wall-bounded turbulence.
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Thesis (Master's)--University of Washington, 2026
