A NEW NUMERICAL CODE FOR HYDRODYNAMICAL 3D SIMULATIONS OF SUPERNOVA REMNANTS

被引:1
|
作者
Kostic, P. [1 ]
机构
[1] Astron Observ, Volgina 7, Belgrade 11060, Serbia
关键词
Methods: numerical; ISM: supernova remnants; SIGMA-D RELATION; MOLECULAR-CLOUD; INTERSTELLAR CLOUDS; DENSITY STRUCTURE; EXPLOSIONS; EVOLUTION; SHOCKS; WAVES;
D O I
10.2298/SAJ1999065K
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We develop a 3D hydrodynamical code written in C programming language to study the expansion of supernova remnants (SNRs) in the surrounding medium. It is based on the MUSCL-Hancock finite volume scheme with the HLLC Riemann solver. The code initiates the supernova remnant already in the Sedov phase and simulates hydrodynamics of the subsequent remnant expansion. The simulation is optimized for studies of large scale interaction of a supernova remnant with the interstellar medium (ISM). After a detailed description of the code, and three tests of hydrodynamics, we present the results for a single remnant expanding into a uniform and fractally structured ISM, as the first application of the code. The simulation of SNR expanding in a uniform medium is compared with the Sedov law of expansion and Sedov self-similar solution to density, velocity and pressure profiles. The results indicate that the simulation presented here reproduces well the hydrodynamics of the supernova remnant expansion and is very practical due to its simplicity and speed. The SNR evolution in fractal ISM shows that clumps disturb the blast wave and produce interference of bow shocks, resulting in turbulent motions and inhomogenities inside the remnant.
引用
收藏
页码:65 / 82
页数:18
相关论文
共 50 条
  • [31] 3D numerical simulations of oscillations in solar prominences
    Adrover-González, A.
    Terradas, J.
    Astronomy and Astrophysics, 2020, 633
  • [32] 3D numerical simulations of hypervapotron cooling concept
    Pascal-Ribot, S.
    Saroji, A. -F.
    Grandotto, M.
    Spitz, P.
    Escourbiac, F.
    FUSION ENGINEERING AND DESIGN, 2007, 82 (15-24) : 1781 - 1785
  • [33] 3D Accretion Discs Dynamics: Numerical Simulations
    Bisikalo, D. V.
    CHAOS IN ASTRONOMY, CONFERENCE 2007, 2009, : 387 - 398
  • [34] Numerical simulations of 3D micro-resonators
    Benson, T. M.
    Vukovic, A.
    Wykes, J. G.
    Al-Jarro, A.
    Sewell, P.
    ICTON 2008: PROCEEDINGS OF 2008 10TH ANNIVERSARY INTERNATIONAL CONFERENCE ON TRANSPARENT OPTICAL NETWORKS, VOL 4, 2008, : 54 - 57
  • [35] 3D numerical simulations of oscillations in solar prominences
    Adrover-Gonzalez, A.
    Terradas, J.
    ASTRONOMY & ASTROPHYSICS, 2020, 633
  • [36] A REVIEW OF WAVE MAKERS FOR 3D NUMERICAL SIMULATIONS
    Schmitt, Pal
    Elsaesser, Bjorn
    COMPUTATIONAL METHODS IN MARINE ENGINEERING VI (MARINE 2015), 2015, : 437 - 446
  • [37] EXPERIMENTAL AND NUMERICAL SIMULATIONS OF 3D GRAVITY CURRENTS
    Lombardi, Valentina
    Adduce, Claudia
    La Rocca, Michele
    Morganti, Mario
    PROCEEDINGS OF THE 36TH IAHR WORLD CONGRESS: DELTAS OF THE FUTURE AND WHAT HAPPENS UPSTREAM, 2015, : 4295 - 4303
  • [38] 3D Numerical simulations of elastomeric bearings for bridges
    Forcellini D.
    Innovative Infrastructure Solutions, 2016, 1 (1)
  • [39] 3D numerical simulations of photodissociated and photoionized disks
    Vasconcelos, M. J.
    Cerqueira, A. H.
    Raga, A. C.
    ASTRONOMY & ASTROPHYSICS, 2011, 527
  • [40] Numerical Simulations of 3D Compressible Vortex Ring
    Dora, C. L.
    De, A.
    Das, D.
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON NUMERICAL ANALYSIS AND APPLIED MATHEMATICS 2016 (ICNAAM-2016), 2017, 1863