An adaptive and distributed-memory parallel implementation of the immersed boundary (IB) method
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Updated
Sep 1, 2026 - C++
An adaptive and distributed-memory parallel implementation of the immersed boundary (IB) method
PetIBM - toolbox and applications of the immersed-boundary method on distributed-memory architectures
CP3d is a comprehensive Euler-Lagrange solver for the direct numerical simulations of particle-laden flows.
Public-facing repository for the open-source project Lattice-Boltzmann @ The University of Manchester (LUMA).
OpenFOAM library for fully coupled particle laden flows with arbitrarily shaped solids
CFD pre- and post-processing python modules
Direct Numerical Simulation of Fluid Flow with IBM Using Python
Unstructured 2D multiphase solver with immersed boundary methods.
🚀 A hybrid implementation of loosely-coupled solvers for Fluid-Structure Interaction (FSI) using the Immersed Boundary Method (IBM) — built on top of foam-extend-5.0.
Massively-parallelised Navier-Stokes solver with an immersed boundary method for moving bodies
Scalable One-stop Platform for Hydroelastic Things (SOPHT)
Immersed Boundary method fast Test Facility based OpenAcc
ABM framework for small organisms within fluid flow around immersed structures
Navier-Stokes Solver with moving elliptic bodies
A julia-based implementation of the Generalized Shifted Boundary Method using Gridap.jl.
Computational Fluid Dynamics Framework Based on the Immersed Boundary Method (IBM) and PETSc
This code deals with incompressible fluids and implements the collocated grid MAC method using a uniform cartesian grid. It discretizes space using second-order central differencing and time using a first-order explicit Euler method. For pressure calculation, it implements the Red-Black SOR method.
A highly parallel application for Blade Vortex Interactions (BVI).
Simulation of soft tissues using an innovative non-conforming Finite Element Method (PhiFEM).
MIcrorobotics Multiphysics Engine (MIME), Differentiable physics for medical microrobots (currently focused on magnetically actuated and in confined biological flows). Stokeslet BEM, IB-LBM, and DiFVM inspired FVM-IBM (with optional GNN correction); built on MADDENING.
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