Adjoint Complement to the Universal Momentum Law of the Wall
Niklas K\"uhl, Peter M. M\"uller, Thomas Rung

TL;DR
This paper develops an adjoint version of the universal Law of the Wall for fluid flow, enabling more efficient shape optimization and improved results in engineering applications.
Contribution
It introduces an adjoint turbulence closure consistent with the Law of the Wall, compatible with RANS models, and applicable to flow optimization tasks.
Findings
The adjoint closure accelerates optimization processes.
It provides improved optima over frozen turbulence methods.
The approach is validated for low- and high-Re flows.
Abstract
The paper is devoted to an adjoint complement to the universal Law of the Wall (LoW) for fluid dynamic momentum boundary layers. The latter typically follows from a strongly simplified, unidirectional shear flow under a constant stress assumption. We first derive the adjoint companion of the simplified momentum equation, while distinguishing between two strategies. Using mixing-length arguments, we demonstrate that the frozen turbulence strategy and a LoW-consistent (differentiated) approach provide virtually the same adjoint momentum equations, that differ only in a single scalar coefficient controlling the inclination in the logarithmic region. Moreover, it is seen that an adjoint LoW can be derived which resembles its primal counterpart in many aspects. The strategy is also compatible with wall-function assumptions for prominent RANS-type two-equation turbulence models, which ground…
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