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Atomic and Laser Physics
Credit: Jack Hobhouse

Dr Francesco Miniati

Researcher in Computational Physics

Sub department

  • Atomic and Laser Physics

Research groups

  • Quantum high energy density physics
francesco.miniati@physics.ox.ac.uk
Clarendon Laboratory, room Simon room
  • About
  • Publications

Cosmic rays and their radiative processes in numerical cosmology

Revista Mexicana De Astronomia Y Astrofisica Serie De Conferencias 9 (2000) 305-307

Authors:

D Ryu, F Miniati, TW Jones, H Kang

Abstract:

A cosmological hydrodynamic code is described, which includes a routine to compute cosmic ray acceleration and transport in a simplified way. The routine was designed to follow explicitly diffusive acceleration at shocks, and second-order Fermi acceleration and adiabatic loss in smooth ows. Synchrotron cooling of the electron population can also be followed. The updated code is intended to be used to study the properties of nonthermal synchrotron emission and inverse Compton scattering from electron cosmic rays in clusters of galaxies, in addition to the properties of thermal bremsstrahlung emission from hot gas. The results of a test simulation using a grid of 1283 cells are presented, where cosmic rays and magnetic field have been treated passively and synchrotron cooling of cosmic ray electrons has not been included.

Three-dimensional magnetohydrodynamic numerical simulations of cloud-wind interactions

Astrophysical Journal 543:2 PART 1 (2000) 775-786

Authors:

G Gregori, F Miniati, D Ryu, TW Jones

Abstract:

We present results from three-dimensional numerical simulations investigating the magnetohydrodynamics of cloud-wind interactions. The initial cloud is spherical, while the magnetic field is uniform and transverse to the cloud motion. A simplified analytical model that describes the magnetic energy evolution in front of the cloud is developed and compared with simulation results. In addition, it is found that the interaction of the cloud with a magnetized interstellar medium results in the formation of a highly structured magnetotail. The magnetic flux in the wake of the cloud organizes into flux ropes, and a reconnection current sheet is developed as field lines of opposite polarity are brought close together near the symmetry axis. At the same time magnetic pressure is strongly enhanced at the leading edge of the cloud from the stretching of the field lines that occurs there. This has an important dynamical effect on the subsequent evolution of the cloud, since some unstable modes tend to be strongly enhanced.
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Properties of Cosmic Shock Waves in Large‐Scale Structure Formation

The Astrophysical Journal American Astronomical Society 542:2 (2000) 608-621

Authors:

Francesco Miniati, Dongsu Ryu, Hyesung Kang, TW Jones, Renyue Cen, Jeremiah P Ostriker
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Properties of Cosmic Shock Waves in Large-Scale Structure Formation

The Astrophysical Journal American Astronomical Society 542:2 (2000) 608-621

Authors:

Francesco Miniati, Dongsu Ryu, Hyesung Kang, TW Jones, Renyue Cen, Jeremiah P Ostriker
More details from the publisher

Acceleration of CR at large scale shocks and their cosmological role for structure formation in the universe

COSMIC EVOLUTION AND GALAXY FORMATION: STRUCTURE, INTERACTIONS, AND FEEDBACK 215 (2000) 27-30

Authors:

F Miniati, DS Ryu, TW Jones, HS Kang
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