An Improved Multipole Approximation for Self-Gravity and Its Importance for Core-Collapse Supernova Simulations
arXiv:1307.3135 · doi:10.1088/0004-637X/778/2/181
Abstract
Self-gravity computation by multipole expansion is a common approach in problems such as core-collapse and Type Ia supernovae, where single large condensations of mass must be treated. The standard formulation of multipole self-gravity suffers from two significant sources of error, which we correct in the formulation presented in this article. The first source of error is due to the numerical approximation that effectively places grid cell mass at the central point of the cell, then computes the gravitational potential at that point, resulting in a convergence failure of the multipole expansion. We describe a new scheme that avoids this problem by computing gravitational potential at cell faces. The second source of error is due to sub-optimal choice of location for the expansion center, which results in angular power at high multipole values in the gravitational field, requiring a high --- and expensive --- value of multipole cutoff \lmax. By introducing a global measure of angular power in the gravitational field, we show that the optimal coordinate for the expansion is the square-density-weighted mean location. We subject our new multipole self-gravity algorithm to two rigorous test problems: MacLaurin spheroids for which exact analytic solutions are known, and core-collapse supernovae. We show that key observables of the core-collapse simulations, particularly shock expansion, proto-neutron star motion, and momentum conservation, are extremely sensitive to the accuracy of the multipole gravity, and the accuracy of their computation is greatly improved by our reformulated solver.
13 pages, 4 figures, accepted by ApJ
References in corpus (4)
Cited by in corpus (59)
- Mass Loss: Its Effect on the Evolution and Fate of High-Mass Stars
- A Comparison of Two- and Three-dimensional Neutrino-hydrodynamics simulations of Core-collapse Supernovae
- The Role of Turbulence in Neutrino-Driven Core-Collapse Supernova Explosions
- Hydrodynamics of core-collapse supernovae and their progenitors
- Three-dimensional simulations of rapidly rotating core-collapse supernovae: finding a neutrino-powered explosion aided by non-axisymmetric flows
- High-Resolution Three-Dimensional Simulations of Core-Collapse Supernovae in Multiple Progenitors
- Anisotropic emission of neutrino and gravitational-wave signals from rapidly rotating core-collapse supernovae
- Equation of State Dependent Dynamics and Multimessenger Signals from Stellar-mass Black Hole Formation
- Two-Dimensional Core-Collapse Supernova Simulations with the Isotropic Diffusion Source Approximation for Neutrino Transport
- Turbulence in Core-Collapse Supernovae
- Three Dimensional Core-Collapse Supernova Simulations with 160 Isotopic Species Evolved to Shock Breakout
- Chimera: A massively parallel code for core-collapse supernova simulation
- Stellar Mass Black Hole Formation and Multi-messenger Signals from Three Dimensional Rotating Core-Collapse Supernova Simulations
- Double-Degenerate Carbon-Oxygen and Oxygen-Neon White Dwarf Mergers: A New Mechanism for Faint and Rapid Type Ia Supernovae
- A purely hyperbolic discontinuous Galerkin approach for self-gravitating gas dynamics
- Kicks and Induced Spins of Neutron Stars at Birth
- Thermonuclear detonations ensuing white dwarf mergers
- Spiral Disk Instability Can Drive Thermonuclear Explosions in Binary White Dwarf Mergers
- Pair-Instability Supernova Simulations: Progenitor Evolution, Explosion, and Light Curves
- Core-collapse supernovae in the hall of mirrors. A three-dimensional code-comparison project
- Three-Dimensional Hydrodynamic Simulations of Convective Nuclear Burning In Massive Stars Near Iron Core Collapse
- Features of Accretion-phase Gravitational-wave Emission from Two-dimensional Rotating Core-collapse Supernovae
- Flash-X, a multiphysics simulation software instrument
- The Impact of Different Neutrino Transport Methods on Multidimensional Core-collapse Supernova Simulations
- On The Development of Multidimensional Progenitor Models For Core-collapse Supernovae
- Determining the Structure of Rotating Massive Stellar Cores with Gravitational Waves
- Multimessenger Asteroseismology of Core-Collapse Supernovae
- Light Curves and Spectra from a Thermonuclear Explosion of a White Dwarf Merger
- Constraining The Single-Degenerate Channel of Type Ia Supernovae With Stable Iron-Group Elements in SNR 3C 397
- Asymmetric core collapse of rapidly rotating massive star
- Near-Chandrasekhar-Mass Type Ia Supernovae from the Double-Degenerate Channel
- Post-explosion evolution of core-collapse supernovae
- A GPU accelerated Barnes-Hut Tree Code for FLASH4
- 3D Hydrodynamical Simulations of Helium-Ignited Double-degenerate White Dwarf Mergers
- Non-ideal MHD simulations of subcritical prestellar cores with non-equilibrium chemistry
- One-Armed Spiral Instability in Double-Degenerate Post-Merger Accretion Disks
- An Extension of the Athena++ Framework for Fully Conservative Self-Gravitating Hydrodynamics
- Delayed Detonation Thermonuclear Supernovae With An Extended Dark Matter Component
- Hyperbolic Self-Gravity Solver for Large Scale Hydrodynamical Simulations
- Evolution of Main-Sequence-like Surviving Companions in Type Ia Supernova Remnants
- Unveiling the Nature of Gravitational-Wave Emission in Core-collapse Supernovae with Perturbative Analysis
- Exploring the Observability of Surviving Companions of Stripped-Envelope Supernovae: A Case Study of Type Ic SN 2020oi
- The Neutrino Signal From Pair Instability Supernovae
- Impact of Rotation on the Multimessenger Signatures of a Hadron-quark Phase Transition in Core-collapse Supernovae
- The Impact of Resolution on Double-Detonation Models for Type Ia Supernovae
- Energy conserving and well-balanced discontinuous Galerkin methods for the Euler-Poisson equations in spherical symmetry
- An FFT-based Solution Method for the Poisson Equation on 3D Spherical Polar Grids
- The Intrinsic Stochasticity of the Ni Distribution of Single-Degenerate Type Ia Supernovae
- Accretion-induced Collapse of Dark Matter-admixed Rotating White Dwarfs: Dynamics and Gravitational-wave Signals
- A self-gravity module for the PLUTO code
- Fundamental parameters of RR Lyrae stars from multicolour photometry and Kurucz atmospheric models -- III. SW And, DH Peg, CU Com, DY Peg
- 3D and Some Other Things Missing from the Theory of Massive Star Evolution
- A simple and efficient solver for self-gravity in the DISPATCH astrophysical simulation framework
- No dilute core produced in simulations of giant impacts on to Jupiter
- Can helium envelopes change the outcome of direct white dwarf collisions?
- A Generalized Solution Method for Parallelized Computation of the Three-dimensional Gravitational Potential on a Multi-patch grid in Spherical Geometry
- Towards Higher Order Accuracy in Self-Gravitating Hydrodynamics
- Resolving the fastest ejecta from binary Neutron Star mergers: implications for electromagnetic counterparts
- GenASiS: General Astrophysical Simulation System. II. Self-gravitating Baryonic Matter