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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

A modified higher order Godunov’s scheme for stiff source conservative hydrodynamics

Journal of Computational Physics Elsevier 224:2 (2007) 519-538

Authors:

Francesco Miniati, Phillip Colella
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Fundamental differences between SPH and grid methods

Monthly Notices of the Royal Astronomical Society 380:3 (2007) 963-978

Authors:

O Agertz, B Moore, J Stadel, D Potter, F Miniati, J Read, L Mayer, A Gawryszczak, A Kravtsov, A Nordlund, F Pearce, V Quilis, D Rudd, V Springel, J Stone, E Tasker, R Teyssier, J Wadsley, R Walder

Abstract:

We have carried out a comparison study of hydrodynamical codes by investigating their performance in modelling interacting multiphase fluids. The two commonly used techniques of grid and smoothed particle hydrodynamics (SPH) show striking differences in their ability to model processes that are fundamentally important across many areas of astrophysics. Whilst Eulerian grid based methods are able to resolve and treat important dynamical instabilities, such as Kelvin-Helmholtz or Rayleigh-Taylor, these processes are poorly or not at all resolved by existing SPH techniques. We show that the reason for this is that SPH, at least in its standard implementation, introduces spurious pressure forces on particles in regions where there are steep density gradients. This results in a boundary gap of the size of an SPH smoothing kernel radius over which interactions are severely damped. © 2007 RAS.
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Ultrahigh energy cosmic rays as heavy nuclei from cluster accretion shocks

Proceedings of the 30th International Cosmic Ray Conference Icrc 2007 4:HE PART 1 (2007) 555-558

Authors:

S Inoue, G Sigl, F Miniati, E Armengaud

Abstract:

Large-scale accretion shocks around massive clusters of galaxies, generically expected in hierarchical scenarios of cosmological structure formation, are shown to be plausible sources of the observed ultrahigh energy cosmic rays (UHECRs) by accelerating a mixture of heavy nuclei including the iron group elements. Current observations can be explained if the source composition at injection for the heavier nuclei is somewhat enhanced from simple expectations for the accreting gas. The proposed picture should be clearly testable by current and upcoming facilities in the near future through characteristic features in the UHECR spectrum, composition and anisotropy, in particular the rapid increase of the average mass composition with energy from 1019 to 1020 eV. The associated X-ray and gamma-ray signatures are also briefly discussed.

A Puzzling Merger in A3266: The Hydrodynamic Picture from XMM-Newton

The Astrophysical Journal American Astronomical Society 643:2 (2006) 790-796

Authors:

A Finoguenov, MJ Henriksen, F Miniati, UG Briel, C Jones
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Deeper Chandra Follow-up of Cygnus TeV Source Perpetuates Mystery

The Astrophysical Journal American Astronomical Society 643:1 (2006) 238-244

Authors:

Yousaf M Butt, Jeremy Drake, Paula Benaglia, Jorge A Combi, Thomas Dame, Francesco Miniati, Gustavo E Romero
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