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OverviewThis dissertation focuses on the calculation of transport coefficients in the matter created in a relativistic heavy-ion collision after chemical freeze-out. This matter can be well approximated using a pion gas out of equilibrium. We describe the theoretical framework needed to obtain the shear and bulk viscosities, the thermal and electrical conductivities and the flavor diffusion coefficients of a meson gas at low temperatures. To describe the interactions of the degrees of freedom, we use effective field theories with chiral and heavy quark symmetries. We subsequently introduce the unitarization methods in order to obtain a scattering amplitude that satisfies the unitarity condition exactly, then go on to calculate the transport properties of the low-temperature phase of quantum chromodynamics - the hadronic medium - which can be used in hydrodynamic simulations of a relativistic heavy-ion collision and its subsequent evolution. We show that the shear viscosity over entropy density exhibits a minimum in a phase transition by studying this coefficient in atomic Argon (around the liquid-gas phase transition) and in the linear sigma model in the limit of a large number of scalar fields (which presents a chiral phase transition). Finally, we provide an experimental method for estimating the bulk viscosity in relativistic heavy-ion collisions by performing correlations of the fluctuating components of the stress-energy tensor. Full Product DetailsAuthor: Juan M. Torres-RinconPublisher: Springer International Publishing AG Imprint: Springer International Publishing AG Edition: 2014 ed. Dimensions: Width: 15.50cm , Height: 1.80cm , Length: 23.50cm Weight: 4.794kg ISBN: 9783319004242ISBN 10: 3319004247 Pages: 215 Publication Date: 27 September 2013 Audience: Professional and scholarly , Professional & Vocational Format: Hardback Publisher's Status: Active Availability: Manufactured on demand ![]() We will order this item for you from a manufactured on demand supplier. Table of ContentsRelativistic Heavy Ion Collisions.- Boltzmann-Uehling-Uhlenbeck Equation.- Shear Viscosity and KSS Coefficient.- Bulk Viscosity.- Thermal and Electrical Conductivities.- Bhatnagar-Gross-Krook or Relaxation Time Approximation.- Strangeness Diffusion.- Charm Diffusion.- Linear Sigma Model and Phase Transitions.- Measurement of the Bulk Viscosity.ReviewsAuthor InformationTab Content 6Author Website:Countries AvailableAll regions |