Dynamic Time Scales in Colored Glass Nuclear Matter

Slides:



Advertisements
Similar presentations
1 Eta production Resonances, meson couplings Humberto Garcilazo, IPN Mexico Dan-Olof Riska, Helsinki … exotic hadronic matter?
Advertisements

June 20, Back-to-Back Correlations in p+p, p+A and A+A Reactions 2005 Annual AGS-RHIC User's Meeting June 20, BNL, Upton, NY Ivan Vitev, LANL Ivan.
Questions and Probems. Matter inside protoneutron stars Hydrostatic equilibrium in the protoneutron star: Rough estimate of the central pressure is: Note.
HL-3 May 2006Kernfysica: quarks, nucleonen en kernen1 Outline lecture (HL-3) Structure of nuclei NN potential exchange force Terra incognita in nuclear.
HL-2 April 2004Kernfysica: quarks, nucleonen en kernen1 Outline lecture (HL-2) Quarkonium Charmonium spectrum quark-antiquark potential chromomagnetic.
Magnetized Strange- Quark-Matter at Finite Temperature July 18, 2012 Latin American Workshop on High-Energy-Physics: Particles and Strings MSc. Ernesto.
1 Transport and Hydrodynamic Model for Ultra-relativistic Heavy Ion Collisions Yu-Liang Yan China Institute of Atomic Energy Collaborators: Yun Cheng (CCNU,
The Phase Diagram of Nuclear Matter Oumarou Njoya.
The speed of sound in a magnetized hot Quark-Gluon-Plasma Based on: Neda Sadooghi Department of Physics Sharif University of Technology Tehran-Iran.
Quark recombination in high energy collisions for different energies Steven Rose Worcester Polytechnic Institute Mentor: Dr. Rainer Fries Texas A&M University.
January 16, 2001Physics 8411 Introduction to Feynman Diagrams and Dynamics of Interactions All known interactions can be described in terms of forces forces:
Workshop on Quark-gluon Thermalization Vienna, August 10-12, 2005 In collaboration with Zuo-tang Liang Xin-Nian Wang/LBNL Thermalization and Globally Polarized.
The Constituent Quark Models. Outline The Quark Model Original Quark Model Additions to the Original Quark Model Color Harmonic Potential Model Isgur-Karl.
\ String theory for Nuclear physics Sang-Jin Sin (Hanyang meeting
Monte Carlo 2005, Chattanooga Parton String Models in Geant4 Gunter Folger, Johannes-Peter Wellisch CERN PH/SFT.
Christina Markert Physics Workshop UT Austin November Christina Markert The ‘Little Bang in the Laboratory’ – Accelorator Physics. Big Bang Quarks.
Chapters 9, 11, 12 Concepts covered that will also be candidates for exam questions.
The 2004 Nobel Prize in Physics Sourendu Gupta (TIFR) St. Xavier’s College, 6/1/2005.
On Nuclear Modification of Bound Nucleons On Nuclear Modification of Bound Nucleons G. Musulmanbekov JINR, Dubna, Russia Contents.
Quark Correlations and Single Spin Asymmetry Quark Correlations and Single Spin Asymmetry G. Musulmanbekov JINR, Dubna, Russia Contents.
Lagrangian of QED: 8 9 fine-structure constant =
06-20,2005UH Teacher Workshop What’s New in Nu-clear Physics Ed V Hungerford University of Houston According to Pogo: “Nuclear Physics is not so new, and.
QGP and Hadrons in Dense medium: a holographic 2nd ATHIC based on works with X. Ge, Y. Matsuo, F. Shu, T. Tsukioka(APCTP), archiv:
Complex Plasmas as a Model for the Quark-Gluon-Plasma Liquid
Static interquark potentials from lattice QCD Toru T. Takahashi (Gunma College of Technology)
Chiral phase transition and chemical freeze out Chiral phase transition and chemical freeze out.
Calorimeters Chapter 21 Chapter 2 Interactions of Charged Particles - With Focus on Electrons and Positrons -
Deep Inelastic Scattering ep->eX. Structure of Matter  Stuff -> atoms.  Atoms -> nucleons  Nucleons -> ?  This is what deep-inelastic scattering is.
Introduction to QED Quantum Electrodynamics Part IV.
Wolfgang Cassing Erice Parton dynamics and hadronization from the sQGP.
Hadrons: color singlets “white states”
Single Spin Asymmetry in Correlated Quark Model Single Spin Asymmetry in Correlated Quark Model G. Musulmanbekov JINR, Dubna Contents.
SPIN STRUCTURE OF PROTON IN DYNAMICAL QUARK MODEL SPIN STRUCTURE OF PROTON IN DYNAMICAL QUARK MODEL G. Musulmanbekov JINR, Dubna, Russia
Study on ν-A Reaction Cross Sections within CRPA Jeong-Yeon LEE and Yeong-Duk KIM Sejong University, KOREA.
1 CONFINING INTERQUARK POTENTIALS FROM NON ABELIAN GAUGE THEORIES COUPLED TO DILATON Mohamed CHABAB LPHEA, FSSM Cadi- Ayyad University Marrakech, Morocco.
Korea-EU Alice 2004 Su Houng Lee Hungchong Kim, Taesoo Song, Yongjae Park, Yongshin Kwon (Osaka), Youngsoo Son, Kyungchul Han, Kyungil Kim Nuclear and.
Hydrodynamic Flow from Fast Particles Jorge Casalderrey-Solana. E. V. Shuryak, D. Teaney SUNY- Stony Brook.
Energy Basics. Part 1: The Relationship Between Matter and Energy 1.Define matter and energy Matter is anything that occupies space and has mass. Energy.
Particle Physics Particle Physics Chris Parkes Feynman Graphs of QFT QED Standard model vertices Amplitudes and Probabilities Forces from particle exchange.
Quarkonium Dissociation Temperature in Hot QCD medium within a quasi-particle model.
Elliptic flow from initial states of fast nuclei. A.B. Kaidalov ITEP, Moscow (based on papers with K.Boreskov and O.Kancheli) K.Boreskov and O.Kancheli)
SPIN OF THE PROTON IN CORRELATED QUARK MODEL G
into a quark-antiquark pair self-coupling of gluons
Travis Salzillo1,2, Rainer Fries1, Guangyao Chen1
Dynamical correlations & transport coefficients
ab initio Chemistry ab initio QCD = flops  10 Mflops
Workshop on Modeling of the Parton-Hadron Phase Transition The Summary
Quantum Chromo-Dynamics (QCD)
Raju Venugopalan Brookhaven National Laboratory
Puzzles in Quarkonium Hadronic Transition with Two Pion Emission
Today’s plan Collect homework QCD leftovers Weak Interaction.
Classical strongly coupled quark-gluon plasma
mesons as probes to explore the chiral symmetry in nuclear matter
Physics with Nuclei at an Electron-Ion Collider
Nuclear Physics: the Shell Model Magic Numbers (especially stable)
dark matter Properties stable non-relativistic non-baryonic
Aspects of the QCD phase diagram
Dynamical correlations & transport coefficients
Structure of Hadrons Hadrons baryons mesons quarks estimates based
Scattering in QM Consider a beam of particles scattering in potential V(r): NOTE: natural units The scattering rate is characterized by the interaction.
Kernfysica: quarks, nucleonen en kernen
The Color Charge & Bag Model
Section VII - QCD.
Lecture 2: Invariants, cross-section, Feynman diagrams
PHYS 3446 – Lecture #20 Elementary Particle Properties
Composite Weak Bosons LHC.
QCD at very high density
Quarks, Colors, and Confinement
PHYS 3446 – Lecture #23 Standard Model Wednesday, Apr 25, 2012
PHYS 3446 – Review Review Note Test deferred until Weds.
Presentation transcript:

Dynamic Time Scales in Colored Glass Nuclear Matter Vivek Parihar A. Widom Y. N. Srivastava NORTHEASTERN UNIVERSITY, BOSTON, UNIV.of PERUGIA & INFN, ITALY ISSP ‘06

4/14/2019 VIVEK PARIHAR

VIVEK PARIHAR

hydrodynamic expansion initial state pre-equilibrium QGP and hydrodynamic expansion hadronization hadronic phase and freeze-out VIVEK PARIHAR

Quarks and String Glass QED Vacuum QCD Vacuum Quark Potential and String Tension Rotating Strings Entropy of String Configurations Relaxation Time Scales Glass Laws High Energy Nuclear Scattering Conclusions 4/14/2019 VIVEK PARIHAR

Quantum Electrodynamic Vacuum Instability I Static Dielectric Screening of Coulomb’s Law at Short Distance Dynamic Conductivity s(w) of the Dissipative Vacuum 4/14/2019

Quantum Electrodynamic Vacuum Instability II Dissipative Vacuum Conductivity Yields a Landau Vacuum Ghost Instability at a Space-Like Wave Vector K 4/14/2019

Quantum Chromodynamic Vacuum Instability I Vacuum Fluctuations Derek B. Leinweber Dynamic Color Conductivity Re ss(w) < 0 Implies an “Amplifying Vacuum” Since es(Q2) > 0 is always true, there are no Landau QCD ghosts. 4/14/2019

Quantum Chromodynamic Vacuum Instability II Quark Potential Linear Potential and String Tension s Amplifying Vacuum Screening 4/14/2019

Bohr-Landau-Fermi Liquid Droplet Model of Nuclear Matter Spherical Droplet Radius Nucleons are in reality relativistic constituents of nuclei. The non-relativistic “shell model” must thereby be “patched up” by a strong LS- coupling for “simulating relativity”. Fermi Velocity R 4/14/2019

Quark-Anti-Quark Pairs Color Electric Flux Tube Quark-String Model I Quark Baryon Number A=3(Nu+Nd) Charge Z=(2Nu+Nd) N=(2Nd+Nu) Mesons Quark-Anti-Quark Pairs Color Electric Flux Tube “String” s = gEcolor Anti-Quark A=Z+N 4/14/2019

Quantum String “Trajectory” Experimental Tension s Quark-String Model II Rotating String c -R R -c Quantum String “Trajectory” Experimental Tension s 4/14/2019

Quark-String Model III Rotating and Vibrating Strings (Mesons) Entropy S(E) = kB ln W(N) Hardy-Ramanujan Formula 4/14/2019

Entropy of Rotating and Vibrating Strings Quark-String Model IV Entropy of Rotating and Vibrating Strings 4/14/2019

Quark-String Model V F = (7/2)kBTH Relaxation Times Obey the Glass Law 4/14/2019

String Fragmentation Model for Quark Pairs on Strings Quark-String Model VI m String Fragmentation Model for Quark Pairs on Strings m s m s m s m m 4/14/2019

High Energy Scattering I 4/14/2019

High Energy Scattering II Impact Parameter Representation b=l/k Inelastic Scattering Dominates Elastic Scattering as E Becomes Very Large and sel << sin 4/14/2019

High Energy Scattering III 4/14/2019

High Energy Scattering IV Nuclear Target String State Final Fragments with Constant Heat Capacity C 4/14/2019

Conclusion and Discussion QED Vacuum has been Compared with QCD Vacuum QCD Inspired “String Model” Glass-Like Entropy of String Configurations High Energy Nuclear Scattering Cross Sections 4/14/2019

4/14/2019