A new approach to modeling the effects of a solid wall in one-point second-moment (Reynolds-stress) turbulence closures is presented. The model is based on the relaxation of an inhomogeneous (near-wall) formulation of the pressure–strain tensor towards the chosen conventional homogeneous (far-from-a-wall) form using the blending function ?, for which an elliptic equation is solved. The approach preserves the main features of Durbin’s Reynolds-stress model, but instead of six elliptic equations (for each stress component), it involves only one, scalar elliptic equation. The model, called “the elliptic blending model,” offers significant simplification, while still complying with the basic physical rationale for the elliptic relaxation concep...
A new one equation turbulence model is developed based on the two equation model. In order to improv...
This report describes two projects. Firstly, a Reynolds stress closure for near-wall turbulence is d...
A formulation to include the effects of wall-proximity in a second moment closure model is presented...
A new approach to modeling the effects of a solid wall in one-point second-moment (Reynolds-stress) ...
A new explicit algebraic Reynolds stress model is derived based on the elliptic blending strategy to...
International audienceThe Elliptic Blending Reynolds Stress Model (EB-RSM), originally proposed by M...
International audienceAdaptive wall functions for the Low-Reynolds Number second moment closure turb...
ACTInternational audienceModifications of a low-Reynolds number Reynolds-stress model, based on the ...
A formulation to include the effects of wall proximity in a second-moment closure model that utilize...
Over the past twenty-five years, there has been considerable research devoted to the development of ...
The paper presents near-wall turbulence models which incorporate the idea of elliptic relaxation. Th...
International audienceThe present paper addresses the issue of the reproduction of rotating flows wi...
A new turbulence model based on elliptic blending, termed as k − ω − ϕ − α model, is developed. This...
The elliptic-blending, lag parameter approach is developed for the conventional k — ω, linear eddy v...
National audienceThe implementation and validation of the second-moment Elliptic Blending Reynolds S...
A new one equation turbulence model is developed based on the two equation model. In order to improv...
This report describes two projects. Firstly, a Reynolds stress closure for near-wall turbulence is d...
A formulation to include the effects of wall-proximity in a second moment closure model is presented...
A new approach to modeling the effects of a solid wall in one-point second-moment (Reynolds-stress) ...
A new explicit algebraic Reynolds stress model is derived based on the elliptic blending strategy to...
International audienceThe Elliptic Blending Reynolds Stress Model (EB-RSM), originally proposed by M...
International audienceAdaptive wall functions for the Low-Reynolds Number second moment closure turb...
ACTInternational audienceModifications of a low-Reynolds number Reynolds-stress model, based on the ...
A formulation to include the effects of wall proximity in a second-moment closure model that utilize...
Over the past twenty-five years, there has been considerable research devoted to the development of ...
The paper presents near-wall turbulence models which incorporate the idea of elliptic relaxation. Th...
International audienceThe present paper addresses the issue of the reproduction of rotating flows wi...
A new turbulence model based on elliptic blending, termed as k − ω − ϕ − α model, is developed. This...
The elliptic-blending, lag parameter approach is developed for the conventional k — ω, linear eddy v...
National audienceThe implementation and validation of the second-moment Elliptic Blending Reynolds S...
A new one equation turbulence model is developed based on the two equation model. In order to improv...
This report describes two projects. Firstly, a Reynolds stress closure for near-wall turbulence is d...
A formulation to include the effects of wall-proximity in a second moment closure model is presented...