Today, there are still numerous phenomena of particulate flows in engineering and nature which are not fully understood. This results out of a lack of accurate and computationally efficient solvers in this field, especially when it comes to particles which deform to various shapes. The discontinuous Galerkin method can provide both, high accuracy and efficient parallelization due to its high order convergence and cell local formulations. Thus, it is a promising approach to better understand the underlying physics. In this work a cut cell discontinuous Galerkin method is developed for particles with non-spherical shape. It is based on an immersed boundary approach to avoid costly remeshing. For the fluid part the Navier-Stokes equations an...
A reconstruction-based discontinuous Galerkin method is presented for the solution of the compressib...
In this paper, an efficient ghost-cell based immersed boundary method is introduced to perform direc...
Talk: Plenary Abstract: Particulate flows are ubiquitous in environmental, geophysical and engineer...
Today, there are still numerous phenomena of particulate flows in engineering and nature which are n...
A generic particle–mesh method using a hybridized discontinuous Galerkin (HDG) framework is presente...
We propose several advances in the simulation of fluids for computer graphics. We concentrate on par...
Many flow problems involve the wakes of devices, which may have a significant impact on a downstream...
Computational Fluid Dynamics (CFD) is a useful tool that enables highly cost-effective numerical sol...
Multiphase flow plays a critical role in numerous industrial processes and engineering applications....
We introduce an immersed high-order discontinuous Galerkin method for solving the compressible Navie...
We present a higher order cut cell immersed boundary method (IBM) for the simulation of high Mach nu...
By combining concepts from particle-in-cell (PIC) and hybridized discontinuous Galerkin (HDG) method...
This paper presents a novel numerical approach based on the Particle-In-Cell (PIC) technique for the...
We introduce an immersed high-order discontinuous Galerkin method for solving the compressible Navie...
A coupling framework that leverages the advantages of the diffuse and sharp interface immersed bound...
A reconstruction-based discontinuous Galerkin method is presented for the solution of the compressib...
In this paper, an efficient ghost-cell based immersed boundary method is introduced to perform direc...
Talk: Plenary Abstract: Particulate flows are ubiquitous in environmental, geophysical and engineer...
Today, there are still numerous phenomena of particulate flows in engineering and nature which are n...
A generic particle–mesh method using a hybridized discontinuous Galerkin (HDG) framework is presente...
We propose several advances in the simulation of fluids for computer graphics. We concentrate on par...
Many flow problems involve the wakes of devices, which may have a significant impact on a downstream...
Computational Fluid Dynamics (CFD) is a useful tool that enables highly cost-effective numerical sol...
Multiphase flow plays a critical role in numerous industrial processes and engineering applications....
We introduce an immersed high-order discontinuous Galerkin method for solving the compressible Navie...
We present a higher order cut cell immersed boundary method (IBM) for the simulation of high Mach nu...
By combining concepts from particle-in-cell (PIC) and hybridized discontinuous Galerkin (HDG) method...
This paper presents a novel numerical approach based on the Particle-In-Cell (PIC) technique for the...
We introduce an immersed high-order discontinuous Galerkin method for solving the compressible Navie...
A coupling framework that leverages the advantages of the diffuse and sharp interface immersed bound...
A reconstruction-based discontinuous Galerkin method is presented for the solution of the compressib...
In this paper, an efficient ghost-cell based immersed boundary method is introduced to perform direc...
Talk: Plenary Abstract: Particulate flows are ubiquitous in environmental, geophysical and engineer...