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Simulation of Mono- and Bidisperse Gas-Particle Flow in a Riser with a Third-Order Quadrature-Based Moment Method

机译:用三阶正交的矩法在提升管中模拟单次和平衡气体颗粒流动

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摘要

Gas-particle flows can be described by a kinetic equation for the particle phase coupled with the Navier−Stokes equations for the fluid phase through a momentum exchange term. The direct solution of the kinetic equation is prohibitive for most applications due to the high dimensionality of the space of independent variables. A viable alternative is represented by moment methods, where moments of the velocity distribution function are transported in space and time. In this work, a fully coupled third-order, quadrature-based moment method is applied to the simulation of mono- and bidisperse gas-particle flows in the riser of a circulating fluidized bed. Gaussian quadrature formulas are used to model the unclosed terms in the moment transport equations. A Bhatnagar−Gross−Krook (BGK) collision model is used in the monodisperse case, while the full Boltzmann integral is adopted in the bidisperse case. The predicted values of mean local phase velocities, rms velocities, and particle volume fractions are compared with the Euler−Lagrange simulations and experimental data from the literature. The local values of the time-average Stokes, Mach, and Knudsen numbers predicted by the simulation are reported and analyzed to justify the adoption of high-order moment methods as opposed to models based on hydrodynamic closures.
机译:可以通过动量交换项通过粒子相的动力学方程与流体相的Navier-Stokes方程相结合来描述气体粒子的流动。由于自变量空间的高维性,动力学方程式的直接解在大多数应用中都是被禁止的。力矩方法代表了一种可行的替代方法,其中速度分布函数的力矩在时空中传递。在这项工作中,将完全耦合的基于阶跃的三阶矩方法应用于模拟循环流化床提升管中单分散和双分散的气体颗粒流动。高斯正交公式用于对矩传输方程中的未封闭项建模。在单分散情况下使用Bhatnagar-Gross-Krook(BGK)碰撞模型,而在双分散情况下使用完整的玻尔兹曼积分。将平均局部相速度,均方根速度和颗粒体积分数的预测值与Euler-Lagrange模拟和文献中的实验数据进行了比较。报告并分析了通过模拟预测的时间平均Stokes,Mach和Knudsen数的局部值,以证明采用高阶矩方法的合理性,而不是基于流体动力闭合的模型。

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