渐扩式湍流气固流动的数值模拟

IF 1.1 4区 工程技术 Q4 MECHANICS
A. Benavides-Moran, S. Lain
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引用次数: 0

摘要

有关湍流气固流动的建模工作主要集中在研究通道和管道中的颗粒流动。尽管气固流在工业应用中具有重要意义,但对突然或逐渐膨胀的气固流的研究在文献中并不多见。本文挑战了当前的两相流模型,计算了垂直方向 12° 锥形扩散器中的稀释湍流气固流。固体相有两种建模方法:一种是双流体模型方法,其中包含从颗粒流动动力学理论中得出的闭合关系;另一种是具有双向耦合的欧拉-拉格朗日颗粒跟踪模型。在这两种情况下,气相中的湍流都是通过雷诺应力模型估算的,并带有额外的调制项,以考虑颗粒对气相湍流的影响。不仅气体轴向速度,而且流向和径向湍流强度的模拟结果都与实验基准数据进行了验证,因为以前的研究没有详细比较过这些湍流变量。然而,由于缺乏用于验证的实验数据,固体轴向速度剖面只进行了数值比较。扩散器区域的湍流动能和颗粒温度等值线显示,高剪切区域是两相湍流产生的原因。此外,欧拉-拉格朗日模型得出的结果表明,在扩散器下游的流向方向上,颗粒的波动速度很大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulations of Turbulent Gas-solid Flow in a Gradual Expansion
Modeling efforts on turbulent gas-solid flows have mainly focused on studying particle-laden flows in channels and pipes. Despite its significance for industrial applications, the study of gas-solid flows in sudden or gradual expansions is less common in the literature. This paper challenges current two-phase flow models to compute the dilute turbulent gas-solid flow in a vertically oriented 12° conical diffuser. The solids phase is modeled in two ways: the Two-Fluid Model approach that incorporates closure relations derived from the kinetic theory of granular flow, and the Euler-Lagrange particle tracking model with two-way coupling. In both cases, turbulence in the gas phase is estimated by the Reynolds stress model with additional modulation terms that account for the effect of the particles on the gas-phase turbulence. Simulation results are validated versus experimental benchmark data not only for gas axial velocity but also for streamwise and radial turbulence intensity, as comparison with such turbulent variables has not been detailed in previous studies. Nevertheless, due to the lack of experimental data for validation, profiles of solids axial velocity are only compared numerically. Contours of turbulence kinetic energy and granular temperature in the diffuser region reveal a high shear area responsible for the production of turbulence in both phases. Moreover, results obtained from the Euler-Lagrange model show an intense particle fluctuating velocity in the streamwise direction downstream of the diffuser.
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来源期刊
Journal of Applied Fluid Mechanics
Journal of Applied Fluid Mechanics THERMODYNAMICS-MECHANICS
CiteScore
2.00
自引率
20.00%
发文量
138
审稿时长
>12 weeks
期刊介绍: The Journal of Applied Fluid Mechanics (JAFM) is an international, peer-reviewed journal which covers a wide range of theoretical, numerical and experimental aspects in fluid mechanics. The emphasis is on the applications in different engineering fields rather than on pure mathematical or physical aspects in fluid mechanics. Although many high quality journals pertaining to different aspects of fluid mechanics presently exist, research in the field is rapidly escalating. The motivation for this new fluid mechanics journal is driven by the following points: (1) there is a need to have an e-journal accessible to all fluid mechanics researchers, (2) scientists from third- world countries need a venue that does not incur publication costs, (3) quality papers deserve rapid and fast publication through an efficient peer review process, and (4) an outlet is needed for rapid dissemination of fluid mechanics conferences held in Asian countries. Pertaining to this latter point, there presently exist some excellent conferences devoted to the promotion of fluid mechanics in the region such as the Asian Congress of Fluid Mechanics which began in 1980 and nominally takes place in one of the Asian countries every two years. We hope that the proposed journal provides and additional impetus for promoting applied fluids research and associated activities in this continent. The journal is under the umbrella of the Physics Society of Iran with the collaboration of Isfahan University of Technology (IUT) .
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