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相关论文: Hard QCD probes to quark-gluon plasma

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Relativistic heavy ion physics studies the phenomena that occur when a very large (in units of QCD scale $\Lambda_{\rm QCD}$) amount of energy is deposited into a large (in units of $\Lambda^{-3}_{\rm QCD}$) volume, creating an extended in…

高能物理 - 唯象学 · 物理学 2010-02-25 D. E. Kharzeev

The most significant experimental results on hard processes in heavy-ion collisions at RHIC collider energies are reviewed. Emphasis is put on measurements that provide insights on strongly interacting media like the ``Quark Gluon Plasma''…

核实验 · 物理学 2007-05-23 David d'Enterria

Ultrarelativistic heavy ion collisions at the laboratory provide a unique chance to study quantum chromodynamics (QCD) under extreme temperature (${\approx}150\,\mathrm{MeV}$) and density (${\approx}1\,\mathrm{GeV}/\mathrm{fm}^3$)…

核实验 · 物理学 2020-10-30 Georgios Konstantinos Krintiras

The reach of collider energies in heavy-ion collisions has profoundly changed our understanding of QCD under extreme conditions. I review some these new developments and comment on the properties of the produced medium as extracted from…

高能物理 - 唯象学 · 物理学 2007-12-03 Carlos A. Salgado

Quantum Chromo Dynamics (QCD), the theory of strong interactions, predicts a transition of the usual matter to a new phase of matter, called Quark-Gluon Plasma (QGP), at sufficiently high temperatures. The non-perturbative technique of…

高能物理 - 唯象学 · 物理学 2015-05-13 Rajeev S. Bhalerao , Rajiv V. Gavai

This presentation discusses some recently active topics in the theoretical interpretation of high energy heavy ion collisions at the LHC and at RHIC. We argue that the standard paradigm for understanding the spacetime evolution of the bulk…

高能物理 - 唯象学 · 物理学 2016-09-20 T. Lappi

These lectures provide a modern introduction to selected topics in the physics of ultrarelativistic heavy ion collisions which shed light on the fundamental theory of strong interactions, the Quantum Chromodynamics. The emphasis is on the…

高能物理 - 唯象学 · 物理学 2015-02-27 Edmond Iancu

The main goals of relativistic heavy-ion experiments is to study the properties of QCD matter under extreme temperatures and densities. The focus of this talk is the studies that are underway at the Relativistic Heavy Ion Collider (RHIC),…

核实验 · 物理学 2009-11-18 Helen Caines

Lattice QCD predicts a phase transition between hadronic matter and a system of deconfined quarks and gluons (the Quark Gluon Plasma) at high energy densities. Recent results from the Brookhaven Relativistic Heavy Ion Collider (RHIC)…

核实验 · 物理学 2007-05-23 Raimond Snellings

Lattice QCD predicts a phase transition between hadronic matter and a system of deconfined quarks and gluons (the Quark Gluon Plasma) at high energy densities. Recent results from the Brookhaven Relativistic Heavy Ion Collider (RHIC)…

高能物理 - 实验 · 物理学 2007-05-23 Raimond Snellings

Hard probes are indispensable tools to study the hot and dense quark-gluon matter created in ultra-relativistic heavy ion collisions. These probes are created in the collision itself with a small cross section, and they serve as indicators…

高能物理 - 实验 · 物理学 2019-05-28 Gábor I. Veres

The future opportunities for high-density QCD studies with ion and proton beams at the LHC are presented. Four major scientific goals are identified: the characterisation of the macroscopic long wavelength Quark-Gluon Plasma (QGP)…

高能物理 - 唯象学 · 物理学 2019-02-26 Z. Citron , A. Dainese , J. F. Grosse-Oetringhaus , J. M. Jowett , Y. -J. Lee , U. A. Wiedemann , M. Winn , A. Andronic , F. Bellini , E. Bruna , E. Chapon , H. Dembinski , D. d'Enterria , I. Grabowska-Bold , G. M. Innocenti , C. Loizides , S. Mohapatra , C. A. Salgado , M. Verweij , M. Weber , J. Aichelin , A. Angerami , L. Apolinario , F. Arleo , N. Armesto , R. Arnaldi , M. Arslandok , P. Azzi , R. Bailhache , S. A. Bass , C. Bedda , N. K. Behera , R. Bellwied , A. Beraudo , R. Bi , C. Bierlich , K. Blum , A. Borissov , P. Braun-Munzinger , R. Bruce , G. E. Bruno , S. Bufalino , J. Castillo Castellanos , R. Chatterjee , Y. Chen , Z. Chen , C. Cheshkov , T. Chujo , Z. Conesa del Valle , J. G. Contreras Nuno , L. Cunqueiro Mendez , T. Dahms , N. P. Dang , H. De la Torre , A. F. Dobrin , B. Doenigus , L. Van Doremalen , X. Du , A. Dubla , M. Dumancic , M. Dyndal , L. Fabbietti , E. G. Ferreiro , F. Fionda , F. Fleuret , S. Floerchinger , G. Giacalone , A. Giammanco , P. B. Gossiaux , G. Graziani , V. Greco , A. Grelli , F. Grosa , M. Guilbaud , T. Gunji , V. Guzey , C. Hadjidakis , S. Hassani , M. He , I. Helenius , P. Huo , P. M. Jacobs , P. Janus , M. A. Jebramcik , J. Jia , A. P. Kalweit , H. Kim , M. Klasen , S. R. Klein , M. Klusek-Gawenda , M. Konyushikhin , J. Kremer , G. K. Krintiras , F. Krizek , E. Kryshen , A. Kurkela , A. Kusina , J. -P. Lansberg , R. Lea , M. van Leeuwen , W. Li , J. Margutti , A. Marin , C. Marquet , J. Martin Blanco , L. Massacrier , A. Mastroserio , E. Maurice , C. Mayer , C. Mcginn , G. Milhano , A. Milov , V. Minissale , C. Mironov , A. Mischke , N. Mohammadi , M. Mulders , M. Murray , M. Narain , P. Di Nezza , A. Nisati , J. Noronha-Hostler , A. Ohlson , V. Okorokov , F. Olness , P. Paakkinen , L. Pappalardo , J. Park , H. Paukkunen , C. C. Peng , H. Pereira Da Costa , D. V. Perepelitsa , D. Peresunko , M. Peters , N. E. Pettersson , S. Piano , T. Pierog , J. Pires , M. PS. Plumari , F. Prino , M. Puccio , R. Rapp , K. Redlich , K. Reygers , C. L. Ristea , P. Robbe , A. Rossi , A. Rustamov , M. Rybar , M. Schaumann , B. Schenke , I. Schienbein , L. Schoeffel , I. Selyuzhenkov , A. M. Sickles , M. Sievert , P. Silva , T. Song , M. Spousta , J. Stachel , P. Steinberg , D. Stocco , M. Strickland , M. Strikman , J. Sun , D. Tapia Takaki , K. Tatar , C. Terrevoli , A. Timmins , S. Trogolo , B. Trzeciak , A. Trzupek , R. Ulrich , A. Uras , R. Venugopalan , I. Vitev , G. Vujanovic , J. Wang , T. W. Wang , R. Xiao , Y. Xu , C. Zampolli , H. Zanoli , M. Zhou , Y. Zhou

Lattice quantum chromodynamics (QCD) predicts a new state of matter, called quark-gluon plasma (QGP), at sufficiently high temperatures or equivalently large energy densities. Relativistic heavy ion collisions are expected to produce such…

高能物理 - 唯象学 · 物理学 2007-05-23 R. V. Gavai

The RHIC program was intended to identify and study the quark-gluon plasma formed in the collision of heavy nuclei. The discovery of the "perfect liquid" is an essential step towards the understanding of the medium formed in these…

核实验 · 物理学 2010-02-25 Peter Steinberg

I review the main predictions for the heavy-ion programme at the Large Hadron Collider (LHC) at CERN, as available in early April 2009. I begin by remembering the standard claims made in view of the experimental data measured at the Super…

高能物理 - 唯象学 · 物理学 2016-12-21 N. Armesto

Hard processes in collider experiments typically produce QCD jets, which have long served as precision tests of QCD in the vacuum. More recently, heavy-ion programs at RHIC and the LHC have offered a novel perspective on jets, establishing…

高能物理 - 唯象学 · 物理学 2025-10-01 Yacine Mehtar-Tani

We analyze the possibilities for studying properties of dense QCD-matter, created in ultrarelativistic nuclear collisions, by hard QCD-production processes, so-called "hard" probes -- heavy quarkonia, hard jets, high mass dimuons. Special…

高能物理 - 唯象学 · 物理学 2016-09-06 I. P. Lokhtin

We provide an overview of the present understanding of the transition from hadrons to a quark-gluon plasma, its signatures, and the experimental results so far. We discuss results of numerical simulations of the lattice gauge theory and…

高能物理 - 唯象学 · 物理学 2011-07-18 John W. Harris , Berndt Müller

Heavy ion collisions at the Large Hadron Collider (LHC) will produce strongly interacting matter at unprecedented energy densities. At LHC collision energies, new hard probes of the dense initial collision system will become readily…

核实验 · 物理学 2019-08-14 Gunther Roland

We present the capabilities of the CMS experiment to explore the heavy-ion physics program offered by the CERN Large Hadron Collider (LHC). The prime goal of this research is to test the fundamental theory of the strong interaction (QCD) in…

核实验 · 物理学 2019-08-13 Olga Kodolova , Michael Murray