101 research outputs found

    The Interacting Gluon Model: a review

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    The Interacting Gluon Model (IGM) is a tool designed to study energy flow, especially stopping and leading particle spectra, in high energy hadronic collisions. In this model, valence quarks fly through and the gluon clouds of the hadrons interact strongly both in the soft and in the semihard regime. Developing this picture we arrive at a simple description of energy loss, given in terms of few parameters, which accounts for a wide variety of experimental data. This text is a survey of our main results and predictions.Comment: 22 pages, 21 figure

    Hadronic form factors and the J/ψJ/\psi secondary production cross section: an update

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    Improving previous calculations, we compute the D+Dˉ→J/ψ+πD + \bar{D} \to J/\psi + \pi cross section using the most complete effective lagrangians available. The new crucial ingredients are the form factors on the charm meson vertices, which are determined from QCD sum rules calculations. Some of them became available only very recently and the last one, needed for our present purpose, is calculated in this work.Comment: 12 pages, 9 eps figure

    Does the D−/D+D^-/D^+ production asymmetry decrease at large xFx_F?

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    We have applied the meson cloud model (MCM) to calculate the asymmetries in DD and DsD_s meson production in high energy Σ−\Sigma^--nucleus and π−\pi^--nucleus collisions. We find a good agreement with recent data. Our results suggest that the asymmetries may decrease at large xFx_F.Comment: revised version with new figures and added references to appear in Phys. Rev. Let

    Meson Cloud and SU(3) Symmetry Breaking in Parton Distributions

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    We apply the Meson Cloud Model to the calculation of nonsinglet parton distributions in the nucleon sea, including the octet and the decuplet cloud baryon contributions. We give special attention to the differences between nonstrange and strange sea quarks, trying to identify possible sources of SU(3) flavor breaking. A analysis in terms of the κ\kappa parameter is presented, and we find that the existing SU(3) flavor asymmetry in the nucleon sea can be quantitatively explained by the meson cloud. We also consider the Σ+\Sigma^+ baryon, finding similar conclusions.Comment: 17 pages, LaTeX, 8 figures in .ps file

    On the rapidity dependence of the average transverse momentum in hadronic collisions

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    The energy and rapidity dependence of the average transverse momentum ⟨pT⟩\langle p_T \rangle in pppp and pApA collisions at RHIC and LHC energies are estimated using the Colour Glass Condensate (CGC) formalism. We update previous predictions for the pTp_T - spectra using the hybrid formalism of the CGC approach and two phenomenological models for the dipole - target scattering amplitude. We demonstrate that these models are able to describe the RHIC and LHC data for the hadron production in pppp, dAudAu and pPbpPb collisions at pT≤20p_T \le 20 GeV. Moreover, we present our predictions for ⟨pT⟩\langle p_T \rangle and demonstrate that the ratio ⟨pT(y)⟩/⟨pT(y=0)⟩\langle p_{T}(y)\rangle / \langle p_{T}(y = 0)\rangle decreases with the rapidity and has a behaviour similar to that predicted by hydrodynamical calculations.Comment: 11 pages, 7 figures; revised version: new results for the average transverse momentum at partonic level added in fig. 4; Results and Discussion section has been improved and enlarge

    Testing the running coupling kTk_{T}-factorization formula for the inclusive gluon production

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    The inclusive gluon production at midrapidities is described in the Color Glass Condensate formalism using the kTk_T - factorization formula, which was derived at fixed coupling constant considering the scattering of a dilute system of partons with a dense one. Recent analysis demonstrated that this approach provides a satisfactory description of the experimental data for the inclusive hadron production in pp/pA/AApp/pA/AA collisions. However, these studies are based on the fixed coupling kTk_T - factorization formula, which does not take into account the running coupling corrections, which are important to set the scales present in the cross section. In this paper we consider the running coupling corrected kTk_T - factorization formula conjectured some years ago and investigate the impact of the running coupling corrections on the observables. In particular, the pseudorapidity distributions and charged hadrons multiplicity are calculated considering pppp, dAu/pPbdAu/pPb and AuAu/PbPbAuAu/PbPb collisions at RHIC and LHC energies. We compare the corrected running coupling predictions with those obtained using the original kTk_T - factorization assuming a fixed coupling or a prescription for the inclusion of the running of the coupling. Considering the Kharzeev - Levin - Nardi unintegrated gluon distribution and a simplified model for the nuclear geometry, we demonstrate that the distinct predictions are similar for the pseudorapidity distributions in pp/pA/AApp/pA/AA collisions and for the charged hadrons multiplicity in pp/pApp/pA collisions. On the other hand, the running coupling corrected kTk_T - factorization formula predicts a smoother energy dependence for dN/dηdN/d\eta in AAAA collisions.Comment: 9 pages and 4 figure

    Charm and longitudinal structure functions with the Kharzeev-Levin-Nardi model

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    We use the Kharzeev-Levin-Nardi model of the low xx gluon distributions to fit recent HERA data on charm and longitudinal structure functions. Having checked that this model gives a good description of the data, we use it to predict F2cF^c_2 and FLF_L to be measured in a future electron-ion collider. The results interpolate between those obtained with the de Florian-Sassot and Eskola-Paukkunen-Salgado nuclear gluon distributions. The conclusion of this exercise is that the KLN model, simple as it is, may still be used as an auxiliary tool to make estimates both for heavy ion and electron-ion collisions.Comment: 6 pages, 7 figure
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