flow vorticity and rotation in peripheral hic dujuan wang 1 2014 cbcos, wuhan, 11/05/2014 university...

33
Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

Upload: lorraine-james

Post on 20-Jan-2016

214 views

Category:

Documents


0 download

TRANSCRIPT

Page 1: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

1

Flow Vorticity and Rotation in Peripheral HIC

Dujuan Wang

2014 CBCOS, Wuhan, 11/05/2014

University of Bergen, Norway

Page 2: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

2

• Introduction

• Vorticity for LHC, FAIR & NICA

• Rotation in an exact hydro model

• Summary

Outline

Page 3: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

3

1. Introduction

Pre-equilibrium stage

Initial state

Quark Gluon Plasma

FD/hydrodynamics

Particle In Cell (PIC) code

Freeze out, and simultaneously

“hadronization”

Phase transition on hyper-surface

Partons/hadrons

Page 4: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

4

Relativistic Fluid dynamics model

Relativistic fluid dynamics (FD) is based on the conservation laws and the assumption of local equilibrium ( EoS)

4-flow:

energy-momentum tensor: ),(0

3

pxfppp

pdT

),( jnN

PguuPeT )(

In Local Rest (LR) frame = (e, P, P, P);

For perfect fluid:

)1,1,1,1( diaggg

0]ˆ[

0]ˆ[

dT

dN

0,

0,

T

N

Page 5: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

5

tilted initial state, big initial angular momentum

Structure and asymmetries of I.S. are maintained in nearly perfect expansion.

[L.P.Csernai, V.K.Magas,H.Stoecker,D.D.Strottman, PRC 84,024914(2011)]

Flow velocity

Pressure gradient

Page 6: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

6

The rotation and Kelvin Helmholtz Instability (KHI)

[L.P.Csernai, D.D.Strottman, Cs.Anderlik, PRC 85, 054901(2012)]

More details in Laszlo’ talk

Straight line Sinusoidal wave for peripheral collisions

Page 7: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

7

Classical flow:

Relativistic flow:

2. Vorticity

The vorticity in [x,z]plane is considered.

Definitions:

[L.P. Csernai, V.K. Magas, D.J. Wang, PRC 87, 034906(2013)]

Page 8: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

8

Weights:

+0

0+

+++-

In [x,z] plane:

Etot: total energy in a y layerNcell: total num. ptcls. In this y layer

Corner cells

More details:

Page 9: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

9

In Reaction Plane t=0.17 fm/cVorticity @ LHC energy:

Page 10: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

10

In Reaction Plane t=3.56 fm/c

Page 11: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

11

In Reaction Plane t=6.94 fm/c

Page 12: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

12

All y layer added up at t=0.17 fm/c

b5

Page 13: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

13

All y layer added up at t=3.56 fm/c

b5

Page 14: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

14

Average Vorticity in summary

Decrease with timeBigger for more peripheral collisionViscosity damps the vorticity

Page 15: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

15

Circulation:

Page 16: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

16

Vorticity @ NICA , 9.3GeV:

Page 17: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

17

Vorticity @ FAIR, 8 GeV

Page 18: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

18

3, Rotation in an exact hydro modelHydrodynamic basic equations

Page 19: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

19

The variables:

Csorgo, arxiv: 1309.4390[nucl.-th]Scaling variable:

Page 20: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

20

cylindrical coordinates:

rhs:

More details:

y

Page 21: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

21

lhs:

Page 22: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

22

Expansion energy at the surface

Expansion energy at the longitudinal direction

Rotational energy at the surface

For infinity case:

Kinetic energy:

(α and β are independent of time)

sρM & syM:Boundary of spatial integral

Page 23: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

23

Internal energy:

Page 24: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

24

The solution:

Runge-Kutta method: Solve first order DE initial condition for R and Y is needed, and the constants Q and W

Solutions:

Page 25: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

25

Table 1 : data extracted fromL.P. Csernai, D.D Strottman and Cs Anderlik, PRC 85, 054901 (2012)

R : average transverse radius Y: the length of the system in the direction of the rotation axis θ : polar angle of rotation ω : anglar velocity

Page 26: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

26

Energy time dependence:

Energy conserved !

decreasing internal energy and rotational energy leads the increasing of kinetic energy .

Page 27: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

27

Smaller initial radius parameter

overestimates the radial expansion velocitydue to the lack of dissipation

Spatial expanding:

Page 28: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

28

In both cases the expansion in the radial direction is large.

Radial expansion increases faster, due to the centrifugal force from the rotation. It increases by near to 10 percent due to the rotation.

the expansion in the direction of the axis ofrotation is less.

Expansion Velocity:

Page 29: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

29

Summary

Thank you for your attention!

• High initial angular momentum exist for peripheral collisions and the presence of KHI is essential to generate rotation.

• Vorticity is significant even for NICA and FAIR energy.

• The exact model can be well realized with parameters extracted from our PICR FD model

Page 30: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

30

Page 31: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

31

Table 2 : Time dependence of characteristic parameters ofthe exact fuid dynamical model. Large extension in the beam direction is neglected.

Page 32: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

32

α and β

Page 33: Flow Vorticity and Rotation in Peripheral HIC Dujuan Wang 1 2014 CBCOS, Wuhan, 11/05/2014 University of Bergen, Norway

33