English

Conical Flow induced by Quenched QCD Jets

High Energy Physics - Phenomenology 2010-12-17 v2

Abstract

Quenching is a recently discovered phenomenon in which QCD jets created in heavy ion collisions deposit a large fraction or even all their energy and momentum into the produced matter. At RHIC and higher energies, where that matter is a strongly coupled Quark-Gluon Plasma (sQGP) with very small viscosity, we suggest that this energy/momentum propagate as a collective excitation or ``conical flow''. Similar hydrodynamical phenomena are well known, e.g. the so called sonic booms from supersonic planes. We solve the linearized relativistic hydrodynamic equations to detail the flow picture. We argue that for RHIC collisions the direction of this flow should make a cone at a specific large angle with the jet, of about 70o70^o, and thus lead to peaks in particle correlations at the angle Δϕ=π±1.2\Delta\phi=\pi\pm 1.2 rad relative to the large-ptp_t trigger. This angle happens to matchperfectly the position of the maximum in the angular distribution of secondaries associated with the trigger recently seen by the STAR and PHENIX collaborations. We also discuss briefly possible alternative explanations and suggest some further tests to clarify the mechanism.

Keywords

Cite

@article{arxiv.hep-ph/0411315,
  title  = {Conical Flow induced by Quenched QCD Jets},
  author = {J. Casalderrey-Solana and E. V. Shuryak and D. Teaney},
  journal= {arXiv preprint arXiv:hep-ph/0411315},
  year   = {2010}
}

Comments

Extended version submitted to Journal of Physics G: Conference Series, Workshop on Correlations and Fluctuations in Relativistic Nuclear Collisions, MIT, April 21-23, 2005

R2 v1 2026-07-22T13:58:46.276Z