54 research outputs found

    Energy-momentum tensor correlation function in Nf=2+1 full QCD at finite temperature

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    We measure correlation functions of the nonperturbatively renormalized energy-momentum tensor in Nf=2+1N_f=2+1 full QCD at finite temperature by applying the gradient flow method both to the gauge and quark fields. Our main interest is to study the conservation law of the energy-momentum tensor and to test whether the linear response relation is properly realized for the entropy density. By using the linear response relation we calculate the specific heat from the correlation function. We adopt the nonperturbatively improved Wilson fermion and Iwasaki gauge action at a fine lattice spacing =0.07=0.07 fm. In this paper the temperature is limited to a single value T=232T=232 MeV. The uu, dd quark mass is rather heavy with mπ/mρ=0.63m_\pi/m_\rho=0.63 while the ss quark mass is set to approximately its physical value.Comment: 9 pages, 4 figures. Talk presented at the 35th International Symposium on Lattice Field Theory (LATTICE 2017), 18-24 June 2017, Granada, Spai

    Equation of state in (2+1)-flavor QCD at physical point with improved Wilson fermion action using gradient flow

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    We study the energy-momentum tensor and the equation of state as well as the chiral condensate in (2+1)-flavor QCD at the physical point applying the method of Makino and Suzuki based on the gradient flow. We adopt a nonperturbatively O(a)-improved Wilson quark action and the renormalization group-improved Iwasaki gauge action. At Lattice 2016, we have presented our preliminary results of our study in (2+1)-flavor QCD at a heavy u, d quark mass point. We now extend the study to the physical point and perform finite-temperature simulations in the range T \simeq 155--544 MeV (Nt = 4--14 including odd Nt's) at a \simeq 0.09 fm. We show our final results of the heavy QCD study and present some preliminary results obtained at the physical point so far.Comment: 8 pages, 15 figures, talk presented at the 35th International Symposium on Lattice Field Theory (LATTICE 2017), 18-24 June 2017, Granada, Spai
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