NE X US hep-ph/0007198 Physics Reports 350 (2001) 93-289 Guideline: theoretical consistency hep-ph/0102194 Phys. Rev. Lett. 86 (2001) 3506 Hajo Drescher,

Slides:



Advertisements
Similar presentations
Max-Planck-Institut für Kernphysik, Heidelberg Two scales of the hadronic structure Search for clean signatures in the data Bogdan Povh.
Advertisements

Zi-Wei Lin (ECU) 28th WWND, Puerto Rico April 10, Update of Initial Conditions in A Multiple Phase Transport (AMPT) Model Zi-Wei Lin Department.
Eccentricity and v2 in proton-proton collisions at the LHC
Elliptic flow of thermal photons in Au+Au collisions at 200GeV QNP2009 Beijing, Sep , 2009 F.M. Liu Central China Normal University, China T. Hirano.
Initial and final state effects in charmonium production at RHIC and LHC. A.B.Kaidalov ITEP, Moscow Based on papers with L.Bravina, K.Tywoniuk, E.Zabrodin.
Direct Photon Production in pp collisions at the LHC Théorie LHC France 06 April 2010 IPN Lyon F.M. Liu IOPP/CCNU, Wuhan, China K. Werner Subatech, Nantes,
1 Transport and Hydrodynamic Model for Ultra-relativistic Heavy Ion Collisions Yu-Liang Yan China Institute of Atomic Energy Collaborators: Yun Cheng (CCNU,
Minimum bias and the underlying event: towards the LHC I.Dawson, C.Buttar and A.Moraes University of Sheffield Physics at LHC - Prague July , 2003.
Strange Particles from NE X US 3 NEXUS 3 : Consistent treatment of multiple scattering (Basic ideas, baryon production in pp) hep-ph/ Physics Reports.
Soft physics at the LHC Alan Martin (Durham) October 2007 A brief survey of diffraction New model for high energy proton-proton interactions, based on.
Direct-Photon Production in PHENIX Oliver Zaudtke for the Collaboration Winter Workshop on Nuclear Dynamics 2006.
Diffractive Quarkonium Production at High Energies Mairon Melo Machado a, Maria Beatriz Gay Ducati a, Magno Valério Trindade Machado b High Energy Phenomenology.
Direct photon production in RHIC and LHC energies Xiao-Mei Li, Shou-Ping Li, Shou-Yang Hu, Ben-Hao Sa China Institute of Atomic Energy Dai-Mei Zhou, Zhi-Guang.
Interjet Energy Flow at ZEUS. Patrick Ryan. Univ. of Wisconsin DPF, Aug. 27, Patrick Ryan University of Wisconsin Aug. 27, 2004 Interjet Energy.
Diffractive J/ψ+γ Production at Collider Energies Mairon Melo Machado High Energy Phenomenology Group, GFPAE IF – UFRGS, Porto Alegre
Nuclear Modifications in Saturated Glauber Model from SPS to LHC Energies Szilveszter Miklós Harangozó Zimányi Winter School 2013 Consultant: Dr. Gábor.
November 1999Rick Field - Run 2 Workshop1 We are working on this! “Min-Bias” Physics: Jet Evolution & Event Shapes  Study the CDF “min-bias” data with.
Monte Carlo 2005, Chattanooga Parton String Models in Geant4 Gunter Folger, Johannes-Peter Wellisch CERN PH/SFT.
Event Simulation Tools in ALICE Andreas Morsch Generator Mini-Workshop CERN, Geneva June 20, 2003.
Parton Production in nn and AA collision 신기량 안동대학교 물리학과 Sept. 3, 2005 APCTP.
1 Methods of Experimental Particle Physics Alexei Safonov Lecture #14.
Glauber shadowing at particle production in nucleus-nucleus collisions within the framework of pQCD. Alexey Svyatkovskiy scientific advisor: M.A.Braun.
21th Epiphany Conference, Cracow, Poland, 2015/01/09 Csörgő, T. 1 Total, inelastic and elastic cross-sections of high energy pp, pA and eA collisions in.
As one evolves the gluon density, the density of gluons becomes large: Gluons are described by a stochastic ensemble of classical fields, and JKMMW argue.
Longitudinal de-correlation of anisotropic flow in Pb+Pb collisions Victor Roy ITP Goethe University Frankfurt In collaboration with L-G Pang, G-Y Qin,
Introduction 2. 2.Limitations involved in West and Yennie approach 3. 3.West and Yennie approach and experimental data 4. 4.Approaches based on.
Testing saturation with diffractive jet production in DIS Cyrille Marquet SPhT, Saclay Elastic and Diffractive Scattering 2005, Blois, France based on.
Monday, Jan. 27, 2003PHYS 5326, Spring 2003 Jae Yu 1 PHYS 5326 – Lecture #4 Monday, Jan. 27, 2003 Dr. Jae Yu 1.Neutrino-Nucleon DIS 2.Formalism of -N DIS.
Luan Cheng (Institute of Particle Physics, Huazhong Normal University) I.Introduction II. Potential Model with Flow III.Flow Effects on Parton Energy Loss.
Factorization Breaking in Diffractive Photoproduction of Dijets Motivation Diffractive parton densities Multipomeron exchanges Direct and resolved photoproduction.
The CGC and Glasma: Summary Comments The CGC, Shadowing and Scattering from the CGC Inclusive single particle production J/Psi Two Particle Correlations.
Diffractive structure functions in e-A scattering Cyrille Marquet Columbia University based on C. Marquet, Phys. Rev. D 76 (2007) paper in preparation.
LISHEP Rio de Janeiro1 Factorization in diffraction Alice Valkárová Charles University, Prague On behalf of H1 and ZEUS collaborations.
Sarah Porteboeuf*, Klaus Werner, Tanguy Pierog Rencontres de Moriond, La Thuile, March 13th-20th 2010 Producing hard processes regarding the complete event:
Pp and d-Au at RHIC Contents: Interesting data from RHIC High parton densities pp and d-Au results Conclusion Fuming LIU (IOPP, Wuhan), Tanguy Pierog,
Ultra-peripheral Collisions at RHIC Spencer Klein, LBNL for the STAR collaboration Ultra-peripheral Collisions: What and Why Interference in Vector Meson.
Recent results in Ultra-Peripheral Collisions from STAR What are ultra-peripheral collisions? Exclusive  0 production  0 interferometry e + e - pair.
Inclusive Diffraction at HERA Marcella Capua – INFN and Calabria University Small X and Diffraction FNAL Chicago (USA) 17 – 20 September 2003 on behalf.
Ridge Formation and Long Range Correlations in pp Collisions at CMS C.B. Yang Institute of Particle Physics Central China Normal University Wuhan ,
Charged Particle Multiplicity and Transverse Energy in √s nn = 130 GeV Au+Au Collisions Klaus Reygers University of Münster, Germany for the PHENIX Collaboration.
Seminários GFPAE – 02/ Diffractive heavy quark production at the LHC Mairon Melo Machado
Nucleon-Nucleon collisions. Nucleon-nucleon interaction at low energy Interaction between two nucleons: basic for all of nuclear physics Traditional goal.
HERA Physics and Gustav Kramer Alice Valkárová, Charles University, Prague 2nd April 2013Festkolloquium - G.Kramer1.
CGC Glasma Initial Singularity sQGPHadron Gas Theory Summary* QM 2006 Shanghai, China Art due to Tetsuo Hatsuda and Steffen Bass (with some artistic interpretation)
Lecture 07: particle production in AA collisions
07/27/2002Federica Messer High momentum particle suppression in Au-Au collisions at RHIC. Federica Messer ICHEP th international Conference on high.
Understanding forward particle production Opportunities for Drell-Yan Physics at RHIC May 13 th, 2011 Roman Pasechnik Uppsala University, THEP group 1.
Results on Inclusive Diffraction From The ZEUS Experiment Data from the running period The last period with the ZEUS Forward Plug Calorimeter.
Overview of low-x and diffraction at HERA Henri Kowalski DESY Rencontres de Moriond La Thuile, March 2006.
Isabell-A. Melzer-Pellmann DIS 2007 Charm production in diffractive DIS and PHP at ZEUS Charm production in diffractive DIS and PHP at ZEUS Isabell-Alissandra.
1 Diffractive heavy quark production in AA collisions at the LHC at NLO* Mairon Melo Machado GFPAE – IF – UFRGS
Hyperon Polarization in Heavy ion Collisions C. C. Barros Jr. Universidade Federal de Santa Catarina Brasil Strangeness in Quark Matter 2013 University.
Mila Panduroviċ Vinča Institute of Nuclear Sciences,Srbija Deep inside a proton - structure functions F2 for heavy flavors.
Kirill Filimonov, ISMD 2002, Alushta 1 Kirill Filimonov Lawrence Berkeley National Laboratory Anisotropy and high p T hadrons in Au+Au collisions at RHIC.
The high-energy limit of DIS and DDIS cross-sections in QCD Cyrille Marquet Service de Physique Théorique CEA/Saclay based on Y. Hatta, E. Iancu, C.M.,
Quarkonia and open heavy flavours in event generators New observables in quarkonium production workshop ECT*, Trento, 29/ /03 OUTLINE  Why event.
Production, energy loss and elliptic flow of heavy quarks at RHIC and LHC Jan Uphoff with O. Fochler, Z. Xu and C. Greiner Hard Probes 2010, Eilat October.
Suppression of high P T hadron spectra in p+A collisions Wei-Tian Deng In Collaboration with: Rong Xu & Xin-Nian Wang arXiv:
Running Coupling Corrections to Nonlinear Evolution for Diffractive Dissociation Yuri Kovchegov The Ohio State University.
Zimanyi-School, Budapest, 03/12/2014 A. Ster, Wigner-RCP, Hungary 1 Total, elastic and inelastic cross sections of high energy pp, pA and  * A reactions.
1 Proton Structure Functions and HERA QCD Fit HERA+Experiments F 2 Charged Current+xF 3 HERA QCD Fit for the H1 and ZEUS Collaborations Andrew Mehta (Liverpool.
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)
DVCS and exclusive vector meson production in DIS Particle days 08 Christoffer Flensburg (continuing Emil Avsars work) PhD under Leif Lönnblad and Gösta.
Is Strangeness production different in the Bulk and in Jets ?
String Parton Models in Geant4
Observation of Diffractively Produced W- and Z-Bosons
Diffraction in ep collisions
Charmonium dissociation and recombination at RHIC and LHC
Observation of Diffractively Produced W- and Z-Bosons
Hadron Multiplicity from Color Glass Condensate at LHC
Presentation transcript:

NE X US hep-ph/ Physics Reports 350 (2001) Guideline: theoretical consistency hep-ph/ Phys. Rev. Lett. 86 (2001) 3506 Hajo Drescher, Fuming Liu Sergej Ostapchenko, Tanguy Pierog Klaus Werner

1 Parton-based Gribov-ReggeTheory Aim: connecting properly parton model and Gribov-Regge Theory Extending work by Gribov, Kaidalov, Capella...

Reminder (Basic QM)

Symbols: full and dashed line  elastic and cut diagram Very useful for nucleus-nucleus

soft hardsemihard (one of three) The elastic amplitude: Soft: parameterization - hard: pQCD - semihard: convolution soft/hard

Inelastic scattering in pp: Amplitude: Squared amplitude => interference terms: => Symbolic notation

Inelastic scattering in AB: Squaring amplitude  sum over many interference terms expressed via cut and uncut elementary diagrams full energy conservation!! (Elastic and inelastic elem. Interactions)

We sum all terms in a class =>  (K). The inelastic cross section is a sum over classes: Symbol b = impact parameter + nuclear coordinates - Number of cut diagrams for kth NN pair - Momentum fractions of elementary interactions Classes of interference terms:

Interpretation: One can show: with

 serves clearly as basis to calculate (topological) cross sections but also particle production conserving energy in both cases !! (the only model which does so) Consistency problem solved !!

Pomeron number distribution narrower than in conv. appr. Considerably less multiplicity fluctuations in pp comparison with data: not so great Comparing with conventional approach Dashed: conventional Full: new approach

2 Pomeron-Pomeron Interactions Shadowing Saturation Diffraction Screening Increasing mult. fluctuations Solving F 2 -  tot puzzle One additional parameter: triple Pomeron coupling. Fixed from HERA diffractive data 

Parton language: Consider a cut Pomeron as a succession of parton emissions = parton cascade At high energies, more and more parton cascades contribute They overlap and interact

Energy dependence With increasing energy, higher and higher orders have to be considered We fix a maximal energy (so far LHC) and consider all contributing orders

Cutting diagrams

Elastic scattering: Cut diagrams: Reduces increase of cross section with energy (screening) Increases multiplicity fluctuations Some consequences

No effect on inclusive spectra: relative weight of diagrams 1 : -4 : 2  the three contributions cancel Inclusive spectra The diagrams do not cancel. The middle one is dominant.  negative contribution  softening of inclusive spectra

Consider the different contributions to inclusive particle production in pp scattering at given rapidity (  )  factorizable non-factorizable Contribution zero (complete cancellation)  inclusive cross section is factorizable

The different contributions to F 2 in deep inelastic scattering (DIS) are as well factorizable: So does this mean one can hide all these complicated diagrams in a simple measurable function f ? with the same function f as in pp scattering 

YES - if one is only interested in inclusive spectra NO - if one is interested in total cross sections:  tot = factorizable + non-factorizable diagrams Very important! NO - if one is interested in Monte Carlo applications topological cross sections = factorizable + non-factorizable diagrams Very important!

Structure function F 2 Red: complete calculation Blue: calculation without Pomeron-Pomeron interactions Little difference !!!! because of many cancellations

Total and elastic cross section in pp Red: complete calculation Blue: calculation without Pomeron-Pomeron interactions Big difference!!! Important contributions from nonfactorizable diagrams

3 NE X US + Hydro Nucleus-nucleus collisions: particle densities are too high for independent string fragmentation Use NEXUS for the initial stage (  0 ) Calculate energy density and velocity field at  =  0 Apply hydro evolution for  0 (event by event!) Efficient hydro code = SPHERIO C.E. Aguiar, T. Kodama U.F. Rio de Janeiro T. Osada,Y. Hama U. São Paulo Coupling: O. Socolowski, KW Nantes

Summary Final stage: hydro-evolution Considerable improvement of the GRT approach by considering energy conservation properly Pomeron-Pomeron interactions are crucial but contribute differently for inclusive spectra and cross sections (eikonal approach does not work)