A shape optimisation method of a body located in adiabatic flows
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Publication:5071127
DOI10.1080/10618562.2013.828049OpenAlexW2094116857MaRDI QIDQ5071127
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Publication date: 20 April 2022
Published in: International Journal of Computational Fluid Dynamics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1080/10618562.2013.828049
finite element methodshape optimisationoptimal control theoryadiabatic flowweighted gradient methodfluid force
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Cites Work
- SUPG finite element method for adiabatic flows
- Shape determination of wind-resistant wings attached to an oscillating bridge using adjoint equation method
- Two dimensional shape optimization using partial control and finite element method for compressible flows
- Optimal shape determination of a body located in incompressible viscous fluid flow
- Aerodynamic design via control theory
- Optimum aerodynamic design using the Navier-Stokes equations
- Shape optimization of a body in compressible inviscid flows
- Shape optimization of a body located in incompressible flow using adjoint method and partial control algorithm
- A SMOOTHING METHOD FOR SHAPE OPTIMIZATION: TRACTION METHOD USING THE ROBIN CONDITION
- Shape optimization of body located in incompressible viscous flow
- Shape optimisation of an oscillating body in fluid flow by adjoint equation and ALE finite element methods
- Airfoil Design by an All-at-once Method*
- A New Stable Bubble Element for Incompressible Fluid Flow Based on a Mixed Petrov–Galerkin Finite Element Formulation
- A finite element method for high Reynolds number viscous fluid flow using two step explicit scheme
- Shape optimization of a body located in low Reynolds number flow
- Solution to shape optimization problems of viscous flow fields
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