首页> 外文期刊>Nuclear Physics, A: Journal Devoted to the Experimental Study of the Fundamental Constituents of Matter and Their Actions >A relativistic dissipative hydrodynamic description for systems including particle number changing processes
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A relativistic dissipative hydrodynamic description for systems including particle number changing processes

机译:相对论的耗散流体力学描述,包括粒子数变化过程

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Relativistic dissipative hydrodynamic equations are extended by taking into account particle number changing processes in a gluon system, which expands in one dimension boost-invariantly. Chemical equilibration is treated by a rate equation for the particle number density based on Boltzmann equation and Grad's ansatz for the off-equilibrium particle phase space distribution. We find that not only the particle production, but also the temperature and the momentum spectra of the gluon system, obtained from the hydrodynamic calculations, are sensitive to the rates of particle number changing processes. Comparisons of the hydrodynamic calculations with the transport ones employing the parton cascade BAMPS show the inaccuracy of the rate equation at large shear viscosity to entropy density ratio. To improve the rate equation, Grad's ansatz has to be modified beyond the second moments in momentum.
机译:相对论耗散流体力学方程是通过考虑胶子系统中粒子数变化过程而扩展的,该系统在一维上不变地扩展。通过基于Boltzmann方程的粒子数密度的速率方程和用于非平衡粒子相空间分布的Grad's ansatz来处理化学平衡。我们发现,不仅通过水动力计算获得的胶子系统的颗粒产生,而且胶子系统的温度和动量谱都对颗粒数目变化过程的速率敏感。使用parton级联BAMPS进行的水动力计算与输运计算的比较表明,在大剪切粘度与熵密度比的情况下,速率方程的准确性不高。为了改善速率方程,必须在动量的第二时刻以外修改Grad的ansatz。

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