PaperPanorama

Nuclear Theory·nucl-th

Wednesday·February 7, 2018

9 papers5 primary·4 cross-listed

  1. 06

    Semi-inclusive production of two back-to-back hadron pairs in annihilation revisited

    Hrayr H. Matevosyan🇦🇺 · Alessandro Bacchetta🇮🇹 · Daniël Boer🇳🇱 · Aurore Courtoy🇲🇽 · Aram Kotzinian🇦🇲 · Marco Radici🇮🇹 · Anthony W. Thomas🇦🇺

    The cross section for back-to-back hadron pair production in annihilation provides access to the dihadron fragmentation functions (DiFF) needed to extract nucleon parton distribution functions from the semi-inclusive deep inelastic scattering (SIDIS) experiments with two detected final state hadrons. Particular attention is given to the so-called interference DiFF (IFF), which makes it possible to extract the transversity parton distribution of the nucleon in the collinear framework. However, previously unnoticed discrepancies were recently highlighted between the definitions of the IFFs appearing in the collinear kinematics when reconstructed from DiFFs entering the unintegrated fully differential cross sections of SIDIS and annihilation processes. In this work, to clarify this problem we rederive the fully differential cross section for annihilation at the leading-twist approximation. We find a mistake in the definition of the kinematics in the original expression that systematically affects a subset of terms and that leads to two significant consequences. First, the discrepancy between the IFF definitions in the cross sections for SIDIS and annihilation is resolved. Second, the previously derived azimuthal asymmetry for accessing the helicity dependent DiFF in annihilation vanishes, which explains the nonobservation of this asymmetry in the recent experimental searches by the Collaboration. We discuss the recently proposed alternative option to extract .

    hep-phhep-exnucl-thPRD(2018)·32 citations
  2. 07

    Quantum anomaly and thermodynamics of one-dimensional fermions with three-body interactions

    Joaquín E. Drut · Joshua R. McKenney · Wilder S. Daza · Chris L. Lin · Carlos R. Ordóñez

    We show that a system of three species of one-dimensional fermions, with an attractive three-body contact interaction, features a scale anomaly directly related to the anomaly of two-dimensional fermions with two-body forces. We show, furthermore, that those two cases (and their multi species generalizations) are the only non-relativistic systems with contact interactions that display a scale anomaly. While the two-dimensional case is well-known and has been under study both experimentally and theoretically for years, the one-dimensional case presented here has remained unexplored. For the latter, we calculate the impact of the anomaly on the equation of state, which appears through the generalization of Tan's contact for three-body forces, and determine the pressure at finite temperature. In addition, we show that the third-order virial coefficient is proportional to the second-order coefficient of the two-dimensional two-body case.

    cond-mat.quant-gashep-thnucl-thquant-phPRL(2018)·40 citations
  3. 08

    Transmutation of Minor Actinides and Power Flattening in PWR MOX Fuel

    Shengli Chen · Cenxi Yuan

    In order to transmute long-lived MAs and flatten power distribution in a PWR MOX fuel assembly, the authors have proposed to replace some high power fuel rods by MAs loaded fuel rods. The present work proves the high efficiency of long-lived MAs transmutation in a PWR MOX assembly with 92 fuel rods with 3% MAs loaded. The power and the burnup distribution have been flatted by using the MAs loading method proposed by authors. The 237Np loading method is expected for the transmutation by comparing with natural decay time to achieve the same reduction. The mixed MAs loading has better behaviors on power flattening and negative contribution of reactivity. In addition, the mixed MAs loading can largely reduce the quantity of 241Am, while the addition of other MAs has no influence on the transmutation efficiency of 237Np.

    physics.app-phnucl-th0 citations
  4. 09

    Hadron resonance gas EoS and the fluidity of matter produced in HIC

    Guruprasad Kadam🇮🇳 · Swapnali Pawar🇮🇳

    We study the equation of state (EoS) of the hot and dense hadron gas by incorporating the excluded volume corrections into the ideal hadron resonance gas model (HRG). The total hadron mass spectrum of the model is the sum of discrete mass spectrum consisting all the experimentally known hadrons and the exponentially rising continuous Hagedorn states. We confront the EoS of the model with lattice quantum chromodynamics (LQCD) results at finite baryon chemical potential. We find that this modified HRG model reproduce the LQCD results up to T = 160 MeV at zero as well as finite baryon chemical potential. We further estimate the shear viscosity coefficient within ambit of this model in the context of heavy-ion collision experiments.

    hep-phnucl-thAdv.High Energy Phys.(2019)·11 citations

Affiliations

first authorsco-authorsvia INSPIRE