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A study of vorticity formation in high energy nuclear collisions

F. BecattiniDipartimento di Fisica e Astronomia, Università di Firenze, Via G. Sansone 1, 50019, Sesto F.no (Firenze), ItalyG. InghiramiDipartimento di Fisica e Astronomia, Università di Firenze, Via G. Sansone 1, 50019, Sesto F.no (Firenze), ItalyV. RolandoDipartimento di Fisica e Scienze della Terra, Università di Ferrara, Via Saragat 1, 44100, Ferrara, ItalyA. BeraudoINFN, Sezione di Torino, Via P. Giuria 1, 10125, Turin, ItalyL. Del ZannaDipartimento di Fisica e Astronomia, Università di Firenze, Via G. Sansone 1, 50019, Sesto F.no (Firenze), ItalyA. De PaceINFN, Sezione di Torino, Via P. Giuria 1, 10125, Turin, ItalyM. NardiINFN, Sezione di Torino, Via P. Giuria 1, 10125, Turin, ItalyG. PagliaraDipartimento di Fisica e Scienze della Terra, Università di Ferrara, Via Saragat 1, 44100, Ferrara, ItalyV. ChandraIndian Institute of Technology Gandhinagar, Ahmedabad, Gujrat, 382424, India
2015en
ABI

Annotatsiya

We present a quantitative study of vorticity formation in peripheral ultrarelativistic heavy-ion collisions at $${\sqrt{s}_\mathrm{NN}}= 200$$ GeV by using the ECHO-QGP numerical code, implementing relativistic dissipative hydrodynamics in the causal Israel–Stewart framework in $$3+1$$ dimensions with an initial Bjorken flow profile. We consider different definitions of vorticity which are relevant in relativistic hydrodynamics. After demonstrating the excellent capabilities of our code, which proves to be able to reproduce Gubser flow up to 8 fm/c, we show that, with the initial conditions needed to reproduce the measured directed flow in peripheral collisions corresponding to an average impact parameter $$b=11.6$$ fm and with the Bjorken flow profile for a viscous Quark Gluon Plasma with $$\eta /s=0.1$$ fixed, a vorticity of the order of some $$10^{-2}\,c$$ /fm can develop at freeze-out. The ensuing polarization of $$\Lambda $$ baryons does not exceed 1.4 % at midrapidity. We show that the amount of developed directed flow is sensitive to both the initial angular momentum of the plasma and its viscosity.

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