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Convective Heat Transfer and Particle Motion in an Obstructed Duct with Two Side by Side Obstacles by Means of DPM Model

机译:DPM模型在具有两个并排障碍物的阻塞管道中对流传热和颗粒运动

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In this research, a two-way coupling of discrete phase model is developed in order to track the discrete nature of aluminum oxide particles in an obstructed duct with two side-by-side obstacles. Finite volume method and trajectory analysis are simultaneously utilized to solve the equations for liquid and solid phases, respectively. The interactions between two phases are fully taken into account in the simulation by considering the Brownian, drag, gravity, and thermophoresis forces. The effects of space ratios between two obstacles and particle diameters on different parameters containing concentration and deposition of particles and Nusselt number are studied for the constant values of Reynolds number ( Re = 100) and volume fractions of nanoparticles ( Φ = 0.01). The obtained results indicate that the particles with smaller diameter ( d p = 30 nm) are not affected by the flow streamline and they diffuse through the streamlines. Moreover, the particle deposition enhances as the value of space ratio increases. A comparison between the experimental and numerical results is also provided with the existing literature as a limiting case of the reported problem and found in good agreement.
机译:在这项研究中,建立了离散相模型的双向耦合,以便跟踪带有两个并排障碍物的阻塞管道中氧化铝颗粒的离散性。同时利用有限体积法和轨迹分析法分别求解了液相和固相方程。在模拟中,通过考虑布朗力,阻力,重力和热泳力,可以充分考虑两相之间的相互作用。研究了雷诺数(Re = 100)和纳米粒子的体积分数(Φ= 0.01)的常数,研究了两个障碍物之间的空间比和粒径对不同参数的影响,这些参数包括粒子的浓度和沉积以及Nusselt数。所得结果表明,直径较小(d p = 30 nm)的颗粒不受流线影响,而是通过流线扩散。此外,随着空间比的值增加,颗粒沉积增加。实验和数值结果之间的比较也与现有文献进行了比较,作为所报告问题的限制性案例,并且发现了很好的一致性。

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