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We present results for the ratios of mean ($M_B$), variance ($sigma_B^2$), skewness ($S_B)$ and kurtosis ($kappa_B$) of net baryon-number fluctuations obtained in lattice QCD calculations with a physical light to strange quark mass ratio. Using next-to-leading order Taylor expansions in baryon chemical potential we find that qualitative features of these ratios closely resemble the corresponding experimentally measured cumulants ratios of net proton-number fluctuations for beam energies down to $sqrt{s_{_{NN}}} ge 19.6$ GeV. We show that the difference in cumulant ratios for the mean net baryon-number, $M_B/sigma_B^2=chi_1^B(T,mu_B)/chi_2^B(T,mu_B)$ and the normalized skewness, $S_Bsigma_B=chi_3^B(T,mu_B)/chi_2^B(T,mu_B)$, naturally arises in QCD thermodynamics. Moreover, we establish a close relation between skewness and kurtosis ratios, $S_Bsigma_B^3/M_B=chi_3^B(T,mu_B)/chi_1^B(T,mu_B)$ and $kappa_Bsigma_B^2=chi_4^B(T,mu_B)/chi_2^B(T,mu_B)$, valid at small values of the baryon chemical potential.
We present new results on up to $6^{th}$ order cumulants of net baryon-number fluctuations at small values of the baryon chemical potential, $mu_B$, obtained in lattice QCD calculations with physical values of light and strange quark masses. Represen
The appearance of large, none-Gaussian cumulants of the baryon number distribution is commonly discussed as a signal for the QCD critical point. We review the status of the Taylor expansion of cumulant ratios of baryon number fluctuations along the f
We study the variance and kurtosis of the net-baryon number in a fluid dynamical model for heavy-ion collisions. It is based on an effective chiral model with dilatons for the strong coupling regime of QCD. Taking into account spinodal instabilities,
We study the density of states method as well as reweighting to explore the low temperature phase diagram of QCD at finite baryon chemical potential. We use four flavors of staggered quarks, a tree-level Symanzik improved gauge action and four stout
We explore the potential of net-baryon, net-proton and net-charge kurtosis measurements to investigate the properties of hot and dense matter created in relativistic heavy-ion collisions. Contrary to calculations in a grand canonical ensemble we expl