Laminar periodic flow and heat transfer in square channel with 30° inclined baffles

S. Kwankaomeng, W. Jedsadaratanachai, P. Promvonge
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引用次数: 5

Abstract

A numerical investigation has been carried out to study laminar flow and heat transfer characteristics in a three-dimensional isothermal wall square-channel with 30° staggered angled-baffles. The computations are based on the finite volume method, and the SIMPLE algorithm has been implemented. The fluid flow and heat transfer characteristics are presented for Reynolds numbers based on the hydraulic diameter of the channel ranging from 100 to 1200. To generate a pair of streamwise counter-rotating vortex (P-vortex) flows through the tested channel, the baffles (like rectangular winglet) with the attack angle of 30° are mounted in tandem and staggered arrangement on both upper and lower walls of the test channel. Effects of different baffle heights at a single pitch ratio (PR=3) on heat transfer and pressure loss in the channel are studied. It is found that P-vortex flows created by the 30° baffle exist and help to induce impinging jets on a side wall and the upper and lower wall leading to drastic increase in heat transfer rate over the test channel. In addition, the increase in the baffle height results in the rise of Nusselt number and friction factor values. The computational results reveal that the optimum thermal enhancement factor of the baffle is about 2.9 at height of 0.15 times of the channel height.
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30°斜挡板方形通道内层流周期性流动与换热
对具有30°交错折流板的三维等温方形壁面通道内的层流流动和换热特性进行了数值研究。计算基于有限体积法,并实现了SIMPLE算法。在100 ~ 1200雷诺数范围内,给出了流体的流动和换热特性。为了在试验通道中产生一对顺流反旋涡(p涡),将攻角为30°的折流板(矩形小翼)串联错开布置在试验通道的上下壁上。研究了单节距比(PR=3)下不同挡板高度对通道内传热和压力损失的影响。研究发现,30°挡板产生的p涡流动有助于诱导侧壁和上下壁面上的撞击射流,导致试验通道上的换热率急剧增加。此外,挡板高度的增加导致努塞尔数和摩擦系数值的升高。计算结果表明,当挡板高度为通道高度的0.15倍时,挡板的最佳热增强系数约为2.9。
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