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arXiv · 1207.5737

Specific shear viscosity in hot rotating systems of paired fermions

Abstract

The specific shear viscosity $\barη$ of a classically rotating system of nucleons that interact via a monopole pairing interaction is calculated including the effects of thermal fluctuations and coupling to pair vibrations within the selfconsistent quasiparticle random-phase approximation. It is found that $\barη$ increases with angular momentum $M$ at a given temperature $T$. In medium and heavy systems, $\barη$ decreases with increasing $T$ at $T\geq$ 2 MeV and this feature is not affected much by angular momentum. But in lighter systems (with the mass number $A\leq$ 20), $\barη$ increases with $T$ at a value of $M$ close to the maximal value $M_{max}$, which is defined as the limiting angular momentum for each system. The values of $\barη$ obtained within the schematic model as well as for systems with realistic single-particle energies are always larger than the universal lower-bound conjecture $\hbar/(4πk_B)$ up to $T$=5 MeV.

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N. Quang Hung, N. Dinh Dang. 2012-07-24. Specific shear viscosity in hot rotating systems of paired fermions. https://doi.org/10.1103/physrevc.86.024302

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