932 research outputs found
Exact solution of the Percus-Yevick integral equation for fluid mixtures of hard hyperspheres
Structural and thermodynamic properties of multicomponent hard-sphere fluids
at odd dimensions have recently been derived in the framework of the rational
function approximation (RFA) [Rohrmann and Santos, Phys. Rev. E \textbf{83},
011201 (2011)]. It is demonstrated here that the RFA technique yields the exact
solution of the Percus-Yevick (PY) closure to the Ornstein-Zernike (OZ)
equation for binary mixtures at arbitrary odd dimensions. The proof relies
mainly on the Fourier transforms of the direct correlation
functions defined by the OZ relation. From the analysis of the poles of
we show that the direct correlation functions evaluated by
the RFA method vanish outside the hard core, as required by the PY theory.Comment: 6 page
Equation of state of sticky-hard-sphere fluids in the chemical-potential route
The coupling-parameter method, whereby an extra particle is progressively
coupled to the rest of the particles, is applied to the sticky-hard-sphere
fluid to obtain its equation of state in the so-called chemical-potential route
( route). As a consistency test, the results for one-dimensional sticky
particles are shown to be exact. Results corresponding to the three-dimensional
case (Baxter's model) are derived within the Percus-Yevick approximation by
using different prescriptions for the dependence of the interaction potential
of the extra particle on the coupling parameter. The critical point and the
coexistence curve of the gas-liquid phase transition are obtained in the
route and compared with predictions from other thermodynamics routes and from
computer simulations. The results show that the route yields a general
better description than the virial, energy, compressibility, and
zero-separation routes.Comment: 13 pages, 7 figures; v2: Results from the zero-separation route have
been adde
Chemical-potential route for multicomponent fluids
The chemical potentials of multicomponent fluids are derived in terms of the
pair correlation functions for arbitrary number of components, interaction
potentials, and dimensionality. The formally exact result is particularized to
hard-sphere mixtures with zero or positive nonadditivity. As a simple
application, the chemical potentials of three-dimensional additive hard-sphere
mixtures are derived from the Percus-Yevick theory and the associated equation
of state is obtained. This Percus-Yevick chemical-route equation of state is
shown to be more accurate than the virial equation of state. An interpolation
between the chemical-potential and compressibility routes exhibits a better
performance than the well-known Boubl\'ik-Mansoori-Carnahan-Starling-Leland
equation of state.Comment: 9 pages, 1 figure; v2: minor change
Hydrogen model atmospheres for white dwarf stars
We present a detailed calculation of model atmospheres for DA white dwarfs.
Our atmosphere code solves the atmosphere structure in local thermodynamic
equilibrium with a standard partial linearization technique, which takes into
account the energy transfer by radiation and convection. This code incorporates
recent improved and extended data base of collision induced absorption by
molecular hydrogen. We analyse the thermodynamic structure and emergent flux of
atmospheres in a range 2500 < Teff < 60000$ K and 6.5 < log g < 9.0. Bolometric
correction and colour indices are provided for a subsample of the model grid.
Comparison of the colours is made with published observational material and
results of other recent model calculations. Motivated by the increasing
interest on helium core white dwarfs, we analyse the photometric
characteristics of these stars during their cooling, using evolutionary models
recently available. Effective temperatures, surface gravities, masses and ages
have been determined for some helium core white dwarf candidates, and their
possible binary nature is briefly discussed.Comment: 12 pages, 13 figures. Accepted for publication in MNRA
Equation of state for five-dimensional hyperspheres from the chemical-potential route
We use the Percus-Yevick approach in the chemical-potential route to evaluate
the equation of state of hard hyperspheres in five dimensions. The evaluation
requires the derivation of an analytical expression for the contact value of
the pair distribution function between particles of the bulk fluid and a solute
particle with arbitrary size. The equation of state is compared with those
obtained from the conventional virial and compressibility thermodynamic routes
and the associated virial coefficients are computed. The pressure calculated
from all routes is exact up to third density order, but it deviates with
respect to simulation data as density increases, the compressibility and the
chemical-potential routes exhibiting smaller deviations than the virial route.
Accurate linear interpolations between the compressibility route and either the
chemical-potential route or the virial one are constructed.Comment: 9 pages, 6 figures; v2: Change in one referenc
Evolution and colours of helium-core white dwarf stars: the case of low metallicity progenitors
The present work is designed to explore the evolution of helium-core white
dwarf (HeWD) stars for the case of metallicities much lower than the solar one
(Z=0.001 and Z=0.0002). Evolution is followed in a self-consistent way with the
predictions of detalied and new non-grey atmospheres, time-dependent element
diffusion and the history of the white dwarf progenitor. Reliable initial
models for low mass HeWDs are obtained by applying mass loss rates to a 1msun
stellar model. The loss of angular momentum caused by gravitational wave
emission and magnetic stellar wind braking are considered. Model atmospheres,
based on a detailed treatment of the microphysics entering the WD atmosphere
enable us to provide accurate colours and magnitudes at both early and advanced
evolutionary stages. We find that most of our evolutionary sequences experience
several episodes of hydrogen thermonuclear flashes. In particular, the lower
the metallicity, the larger the minimum stellar mass for the occurrence fo
flashes induced by CNO cycle reactions. The existence of a mass-threshold for
the occurrence of diffusion-induced CNO flashes leadss to a marked dichotomy in
the age of our models. Another finding of this study is that our HeWD models
experience unstable hydrogen burning via PP nuclear reactions at late cooling
stages as a result of hydrogen chemically diffusing inwards. Such PP flashes
take place in models with very low metal content. We also find that models
experiencing CNO flashes exhibit a pronouncede turn-off in most of their
colours at M_V=16 approximately. Finally, colour-magnitude diagrams for our
models are presented and compared with recent observational data of HeWD
candidates in the globular clusters NGC 6397 and 47 Tucanae.Comment: 14 pages, 10 figures. Accepted for publication in MNRA
Lyman-alpha wing absorption in cool white dwarf stars
Kowalski & Saumon (2006) identified the missing absorption mechanism in the
observed spectra of cool white dwarf stars as the Ly-alpha red wing formed by
the collisions between atomic and molecular hydrogen and successfully explained
entire spectra of many cool DA-type white dwarfs. Owing to the important
astrophysical implications of this issue, we present here an independent
assessment of the process. For this purpose, we compute free-free
quasi-molecular absorption in Lyman-alpha due to collisions with H and H2
within the one-perturber, quasi-static approximation. Line cross-sections are
obtained using theoretical molecular potentials to describe the interaction
between the radiating atom and the perturber. The variation of the
electric-dipole transition moment with the interparticle distance is also
considered. Six and two allowed electric dipole transitions due to H-H and H-H2
collisions, respectively, are taken into account. The new theoretical
Lyman-alpha line profiles are then incorporated in our stellar atmosphere
program for the computation of synthetic spectra and colours of DA-type white
dwarfs. Illustrative model atmospheres and spectral energy distributions are
computed, which show that Ly-alpha broadening by atoms and molecules has a
significant effect on the white dwarf atmosphere models. The inclusion of this
collision-induced opacity significantly reddens spectral energy distributions
and affects the broadband colour indices for model atmospheres with Teff<5000
K. These results confirm those previously obtained by Kowalski & Saumon (2006).
Our study points out the need for reliable evaluations of H3 potential energy
surfaces covering a large region of nuclear configurations, in order to obtain
a better description of H-H2 collisions and a more accurate evaluation of their
influence on the spectrum of cool white dwarfs.Comment: 11 pages, 12 figures, 1 table, to be published in MNRA
Multicomponent fluids of hard hyperspheres in odd dimensions
Mixtures of hard hyperspheres in odd space dimensionalities are studied with
an analytical approximation method. This technique is based on the so-called
Rational Function Approximation and provides a procedure for evaluating
equations of state, structure factors, radial distribution functions, and
direct correlations functions of additive mixtures of hard hyperspheres with
any number of components and in arbitrary odd-dimension space. The method gives
the exact solution of the Ornstein--Zernike equation coupled with the
Percus--Yevick closure, thus extending to arbitrary odd dimension the solution
for hard-sphere mixtures [J. L. Lebowitz, Phys.\ Rev.\ \textbf{133}, 895
(1964)]. Explicit evaluations for binary mixtures in five dimensions are
performed. The results are compared with computer simulations and a good
agreement is found.Comment: 16 pages, 8 figures; v2: slight change of notatio
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