Internal dynamics and particle acceleration in Tycho's SNR
H.J.Voelk, E.G.Berezhko, L.T.Ksenofontov

TL;DR
This paper investigates the internal dynamics and particle acceleration mechanisms in Tycho's supernova remnant using nonlinear kinetic theory, suggesting gamma-ray observations can determine key physical parameters and confirm nuclear cosmic ray acceleration.
Contribution
It introduces a consistent model linking explosion energy, gas dynamics, and gamma-ray data to confirm nuclear particle acceleration in Tycho's SNR.
Findings
Large radius ratio supports effective nuclear particle acceleration.
Source distance > 3.3 kpc is required for model consistency.
Future gamma-ray detection can confirm particle acceleration mechanisms.
Abstract
The consequences of a newly suggested value for the SN explosion energy 1.2x10^{51} erg are explored for the case of Tycho's supernova remnant (SNR). A nonlinear kinetic theory of cosmic ray (CR) acceleration in SNRs is employed to investigate the properties of Tycho's SNR and their correspondence to the existing experimental data. It is demonstrated that the large mean ratio between the radii of the contact discontinuity and the forward shock is consistent with the very effective acceleration of nuclear energetic particles at the forward shock. It is also argued that consistency of the value E_{sn} = 1.2x10^{51} erg with the gas dynamics, acceleration theory, and the existing gamma-ray measurements requires the source distance to be greater than 3.3 kpc. The corresponding ambient gas number density is lower than 0.4 cm^{-3}. Since the expected gamma-ray flux strongly depends on the…
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