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M. Należyty

Publications and source records attributed to M. Należyty.

2 recordsLinked to original sources

Influence of the gravitational darkening effect on the spectrum of a hot, rapidly rotating neutron star

In this paper, we discuss the influence of the gravitational darkening effect on the emergent spectrum of a fast-rotating, flattened neutron star. Model atmosphere codes always calculate spectra of emergent intensities and fluxes emitted from the unit surface on the star in plane-parallel geometry. Here we took a step beyond that and calculated a small sample grid of theoretical spectra integrated over the distorted surface of a sample rotating neutron star seen by a distant observer at various inclination angles. We assumed parameters like two dimensionless angular velocities $\barΩ^2=0.30$ and 0.60, the effective temperature of a nonrotating star $T_{\rm eff}=2.20\times 10^7\,$K, the logarithm of the surface gravity of a spherical star $\log(g)=14.40$ (cgs), and inclination angles from $i=0^\circ$ to $i=90^\circ$ with step $Δi=10^\circ$. We assumed that the atmosphere consists of a mixture of hydrogen and helium with $M_{\rm H}=0.70$ and $M_{\rm He}=0.30$. At each point on the neutron star surface, we calculated true intensities for local values of parameters ($T_{\rm eff}$ and $\log(g)$), and these monochromatic intensities are next integrated over the whole surface to obtain the emergent spectrum. In this paper, we compute for the first time theoretical spectra of the fast-rotating neutron star. Our work clearly shows that the gravitational darkening effect strongly influences the spectrum and should be included in realistic models of the atmospheres of rotating neutron stars.

astro-ph.HE↗

On the Compton scattering redistribution function in plasma

Compton scattering is the dominant opacity source in hot neutron stars, accretion disks around black holes and hot coronae. We collected here a set of numerical expressions of the Compton scattering redistribution functions for unpolarized radiation (RF), which are more exact than the widely used Kompaneets equation. The principal aim of this paper is presentation of the RF by Guilbert (1981) which is corrected for the computational errors in the original paper. This corrected RF was used in the series of papers on model atmosphere computations of hot neutron stars. We have also organized four existing algorithms for the RF computations into a unified form ready to use in radiative transfer and model atmosphere codes. The exact method by Nagirner and Poutanen (1993) was numerically compared to all other algorithms in a very wide spectral range from hard X-rays to radio waves. Sample computations of the Compton scattering redistribution functions in thermal plasma were done for temperatures corresponding to the atmospheres of bursting neutron stars and hot intergalactic medium. Our formulae are also useful to the study Compton scattering of unpolarised microwave background radiation in hot intra-cluster gas and the Sunyaev-Zeldovich effect. We conclude, that the formulae by Guilbert (1981) and the exact quantum mechanical formulae yield practically the same redistribution functions for gas temperatures relevant to the atmospheres of X-ray bursting neutron stars, $T \le 10^8$ K.

astro-ph.HE↗