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首页> 外文期刊>International Journal of Heat and Mass Transfer >Heat transfer enhancement in a gas-solid suspension flow by applying electric field
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Heat transfer enhancement in a gas-solid suspension flow by applying electric field

机译:通过施加电场增强气固悬浮液中的传热

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Enhancing convective heat transfer is important for improving performance of heat exchangers. We studied the enhancement of heat transfer in a gas-solid suspension flow wherein the solid particle motions were controlled using an electric field. In the experiments, hollow glass particles suspended in air flowed vertically upward in a channel confined by parallel-plate electrodes, one of which served as a heat transfer surface. Particle trajectories, temperature profiles in the airflow, and heat transfer rates were measured. A theoretical study was also performed by considering the particle equations of motion, electric charge transfer at the walls, and heat exchange between particles and the gas phase using the particle source in cell model. As the results, we found that Coulomb forces acting on particles caused alternating one-sided motion in the flow direction through contact charging on the wall electrodes. Thus, particles repeatedly collided with both channel walls. Hence, heat transfer was enhanced, primarily due to heat transport by particles across thermal boundary layer at the heated wall. The simulation results of heat transfer rates were compared with the experimental results, and show quantitatively good agreement. On the basis of the results, the optimum particle diameter for enhancing heat transfer was determined by imposing the condition that the thermal relaxation time of a particle is equal to the contact-charging time of the particle on the wall.
机译:增强对流换热对于提高热交换器的性能非常重要。我们研究了气固悬浮流中传热的增强,其中使用电场控制了固体颗粒的运动。在实验中,悬浮在空气中的中空玻璃颗粒在由平行板电极限制的通道中垂直向上流动,其中一个平行板电极用作传热表面。测量了颗粒轨迹,气流中的温度分布以及传热速率。使用单元模型中的粒子源,还考虑了运动的粒子方程,壁上的电荷转移以及粒子与气相之间的热交换,从而进行了理论研究。结果,我们发现,作用在颗粒上的库仑力通过壁电极上的接触电荷在流动方向上引起交替的一侧运动。因此,颗粒反复与两个通道壁碰撞。因此,增强了热传递,这主要归因于颗粒通过热壁处的热边界层的热传递。将传热速率的模拟结果与实验结果进行了比较,并在定量上取得了良好的一致性。基于该结果,通过将粒子的热弛豫时间等于粒子在壁上的接触充电时间的条件来确定用于增强热传递的最佳粒径。

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