Accurate Cartesian-grid simulations of near-body flows at intermediate Reynolds numbers

From MaRDI portal
Publication:1669308

DOI10.1016/j.cma.2014.09.007zbMath1423.76180OpenAlexW2102119254MaRDI QIDQ1669308

Gabriel D. Weymouth, Audrey P. Maertens

Publication date: 30 August 2018

Published in: Computer Methods in Applied Mechanics and Engineering (Search for Journal in Brave)

Full work available at URL: https://eprints.soton.ac.uk/369635/1/Maertens2014%2520CMAME.pdf



Related Items

Deep learning of the spanwise-averaged Navier-Stokes equations, Immersed boundary simulations of flows driven by moving thin membranes, Modelling entrainment volume due to surface-parallel vortex interactions with an air–water interface, Independent caudal fin actuation enables high energy extraction and control in two-dimensional fish-like group swimming, The boundary data immersion method for compressible flows with application to aeroacoustics, A VOS based immersed boundary-lattice Boltzmann method for incompressible fluid flows with complex and moving boundaries, Computation of three-dimensional multiphase flow dynamics by fully-coupled immersed flow (FCIF) solver, Inverse Lax-Wendroff boundary treatment for compressible Lagrange-remap hydrodynamics on Cartesian grids, Optimal undulatory swimming for a single fish-like body and for a pair of interacting swimmers, Drag cancellation by added-mass pumping, Universal scaling law for drag-to-thrust wake transition in flapping foils, Hierarchical geometry modelling using the immersed boundary method, Slug generation processes in co-current turbulent-gas/laminar-liquid flows in horizontal channels, Added mass energy recovery of octopus-inspired shape change, Influence of three-dimensionality on propulsive flapping, Deflected wake interaction of tandem flapping foils, Performance augmentation mechanism of in-line tandem flapping foils, Span effect on the turbulence nature of flow past a circular cylinder, Data-driven multi-grid solver for accelerated pressure projection



Cites Work