Rapid Variable Resolution Particle Initialization for Complex Geometries
By: Navaneet Villodi, Prabhu Ramachandran
Potential Business Impact:
Makes computer simulations of water flow better.
The accuracy of meshless methods like Smoothed Particle Hydrodynamics (SPH) is highly dependent on the quality of the particle distribution. Existing particle initialization techniques often struggle to simultaneously achieve adaptive resolution, handle intricate boundaries, and efficiently generate well-packed distributions inside and outside a boundary. This work presents a fast and robust particle initialization method that achieves these goals using standard SPH building blocks. Our approach enables simultaneous initialization of fluid and solid regions, supports arbitrary geometries, and achieves high-quality, quasi-uniform particle arrangements without complex procedures like surface bonding. Extensive results in both 2D and 3D demonstrate that the obtained particle distributions exhibit good boundary conformity, low spatial disorder, and minimal density variation, all with significantly reduced computational cost compared to existing approaches. This work paves the way for automated particle initialization to accurately model flow in and around bodies with meshless methods, particularly with SPH.
Similar Papers
Convergence analysis of SPH method on irregular particle distributions for the Poisson equation
Numerical Analysis
Makes computer simulations of liquids more accurate.
Corrected Riemann smoothed particle hydrodynamics method for multi-resolution fluid-structure interaction
Computational Engineering, Finance, and Science
Makes computer fluid simulations more accurate.
A weakly compressible SPH method for RANS simulation of wall-bounded turbulent flows
Fluid Dynamics
Simulates water flow around objects more accurately.