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Shear Viscosity of hadronic matter at finite temperature and magnetic field

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arxiv 2204.01639 v2 pith:JTM63RED submitted 2022-04-04 hep-ph nucl-th

classification hep-phnucl-th
keywords magneticfieldpresencetemperatureviscosityrelaxationsheartime
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abstract

We calculate the transport coefficient of hadronic matter in the presence of temperature and magnetic field using the linear sigma model. In the relaxation time approximation, we estimate the shear viscosity over entropy density $\eta/s$. The point-like interaction rates of hadrons are evaluated through the $S$-matrix approach in the presence of a magnetic field to obtain the temperature and magnetic field-dependent relaxation time. We observe that the transport coefficients are anisotropic in the presence of the magnetic field. We calculate the temperature and magnetic field-dependent anisotropic shear viscosity coefficients by incorporating the estimated relaxation time. The value of viscosity over entropy density is lower in the presence of a magnetic field than the value of it in a thermal medium. The behavior of the perpendicular components of the shear-viscous coefficient is also discussed. We consider the temperature-dependent hadron masses from mean-field effects in this work.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Causality and stability of magnetohydrodynamics for an ultrarelativistic locally neutral two-component gas

    nucl-th 2025-05 conditional novelty 6.0 of 10

    Linear stability and causality of the second-order magnetohydrodynamics from Ref. [64] are verified for any magnetic field in a locally neutral two-component massless plasma.

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