Geometrical on-the-fly shock detection in SPH
arXiv:1511.07444 · doi:10.1093/mnras/stw487
Abstract
We present an on-the-fly geometrical approach for shock detection and Mach number calculation in simulations employing smoothed particle hydrodynamics (SPH). We utilize pressure gradients to select shock candidates and define up- and downstream positions. We obtain hydrodynamical states in the up- and downstream regimes with a series of normal and inverted kernel weightings parallel and perpendicular to the shock normals. Our on-the-fly geometrical Mach detector incorporates well within the SPH formalism and has low computational cost. We implement our Mach detector into the simulation code GADGET and alongside many SPH improvements. We test our shock finder in a sequence of shock-tube tests with successively increasing Mach numbers exceeding by far the typical values inside galaxy clusters. For all shocks, we resolve the shocks well and the correct Mach numbers are assigned. An application to a strong magnetized shock-tube gives stable results in full magnetohydrodynamic set-ups. We simulate a merger of two idealized galaxy clusters and study the shock front. Shock structures within the merging clusters as well as the cluster shock are well-captured by our algorithm and assigned correct Mach numbers.
9 pages, 9 figures, accepted to MNRAS
References in corpus (12)
- SPLASH: An interactive visualisation tool for Smoothed Particle Hydrodynamics simulations
- Shocks and cold fronts in galaxy clusters
- Smoothed Particle Hydrodynamics and Magnetohydrodynamics
- Particle Acceleration on Megaparsec Scales in a Merging Galaxy Cluster
- Detecting shock waves in cosmological smoothed particle hydrodynamics simulations
- Shock Waves in Eulerian Cosmological Simulations: Main Properties and Acceleration of Cosmic Rays
- Cosmological Shocks in Adaptive Mesh Refinement Simulations and the Acceleration of Cosmic Rays
- Simulating cosmic rays in clusters of galaxies - I. Effects on the Sunyaev-Zel'dovich effect and the X-ray emission
- Cosmic ray physics in calculations of cosmological structure formation
- Diffuse radio emission from clusters in the MareNostrum Universe simulation
- Shock finding on a moving-mesh: I. Shock statistics in non-radiative cosmological simulations
- An improved SPH scheme for cosmological simulations
Cited by in corpus (15)
- Tidal disruptions by rotating black holes: effects of spin and impact parameter
- A large H survey of star formation in relaxed and merging galaxy cluster environments at
- The Cosmological Simulation Code OpenGadget3 -- Implementation of Meshless Finite Mass
- CRESCENDO: An on-the-fly Fokker-Planck Solver for Spectral Cosmic Rays in Cosmological Simulations
- Euclid preparation. XXXII. Evaluating the weak lensing cluster mass biases using the Three Hundred Project hydrodynamical simulations
- Insights on the origin of ORCs from cosmological simulations
- A multifiltering study of turbulence in a large sample of simulated galaxy clusters
- Simulations of the Galaxy Cluster CIZA J2242.8+5301 I: Thermal Model and Shock Properties
- A formation mechanism for "Wrong Way" Radio Relics
- Simulating the LOcal Web (SLOW) -- III: Synchrotron emission from the local cosmic web
- Simulations of the merging cluster of galaxies Cygnus A
- Turbulent Pressure Support in Galaxy Clusters -- Impact of the Hydrodynamical Solver
- Vortex-p: a Helmholtz-Hodge and Reynolds decomposition algorithm for particle-based simulations
- Exploring the role of cosmological shock waves in the Dianoga simulations of galaxy clusters
- Cosmological Zoom-In Simulation of Odd Radio Circles as Merger-Driven Shocks in Galaxy Groups