Optimal control of turbulent flows requires a detailed prediction of the unsteady, three-dimensional turbulent structures that govern quantities of interest like noise, drag, and mixing efficiency. There is a need for physics-based, reduced-order models of turbulent structure for those cases where direct simulation of the flow would be computationally prohibitive. In this thesis, we explore resolvent analysis as a framework for such models. Based on a linearization about the turbulent mean flow field, the resolvent finds optimal (highest gain) forcing functions that give rise, through linear amplification mechanisms, to energetic coherent structures. The forcing functions represent the nonlinear interactions between the coherent structures ...
Informed by large-eddy simulation (LES) data and resolvent analysis of the mean flow, we examine the...
A flow reconstruction methodology is presented for incompressible, statistically stationary flows us...
A flow reconstruction methodology is presented for incompressible, statistically stationary flows us...
Response modes computed via linear resolvent analysis of the turbulent mean-flow field have been sho...
Response modes computed via linear resolvent analysis have shown promising results for qualitatively...
Response modes computed via linear resolvent analysis have shown promising results for qualitatively...
Response modes computed via linear resolvent analysis have shown promising results for qualitatively...
This thesis concerns three key aspects of reduced-order modeling for turbulent shear flows. They are...
Three amplification mechanisms present in turbulent jets, namely lift-up, Kelvin–Helmholtz and Orr, ...
Large scale, elongated structures, similar those ones widely studied in wall-bounded flows, are also...
Linear resolvent analysis has demonstrated encouraging results for modeling coherent structures in j...
Large scale, elongated structures, similar those ones widely studied in wall-bounded flows, are also...
A linear analysis of the mean flow of an isothermal ideally-expanded Mach 1.5 turbulent jet is condu...
A linear analysis of the mean flow of an isothermal ideally-expanded Mach 1.5 turbulent jet is condu...
Informed by large-eddy simulation (LES) data and resolvent analysis of the mean flow, we examine the...
Informed by large-eddy simulation (LES) data and resolvent analysis of the mean flow, we examine the...
A flow reconstruction methodology is presented for incompressible, statistically stationary flows us...
A flow reconstruction methodology is presented for incompressible, statistically stationary flows us...
Response modes computed via linear resolvent analysis of the turbulent mean-flow field have been sho...
Response modes computed via linear resolvent analysis have shown promising results for qualitatively...
Response modes computed via linear resolvent analysis have shown promising results for qualitatively...
Response modes computed via linear resolvent analysis have shown promising results for qualitatively...
This thesis concerns three key aspects of reduced-order modeling for turbulent shear flows. They are...
Three amplification mechanisms present in turbulent jets, namely lift-up, Kelvin–Helmholtz and Orr, ...
Large scale, elongated structures, similar those ones widely studied in wall-bounded flows, are also...
Linear resolvent analysis has demonstrated encouraging results for modeling coherent structures in j...
Large scale, elongated structures, similar those ones widely studied in wall-bounded flows, are also...
A linear analysis of the mean flow of an isothermal ideally-expanded Mach 1.5 turbulent jet is condu...
A linear analysis of the mean flow of an isothermal ideally-expanded Mach 1.5 turbulent jet is condu...
Informed by large-eddy simulation (LES) data and resolvent analysis of the mean flow, we examine the...
Informed by large-eddy simulation (LES) data and resolvent analysis of the mean flow, we examine the...
A flow reconstruction methodology is presented for incompressible, statistically stationary flows us...
A flow reconstruction methodology is presented for incompressible, statistically stationary flows us...