Numerical Investigation on the Flow Characteristics in a Cover-Plate Pre-Swirl System

Meng Jian, Xuesen Yang, Wei Dong
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Abstract

This paper presents a numerical investigation on the flow characteristics in a cover-plate pre-swirl system. The Reynolds-averaged Navier-Stokes equations, coupled with the standard k-ε turbulent model, are adopted and solved. With the inlet total pressure and total temperature being constant, the influences of the temperature reduction and flow resistance by changing pressure ratios and rotational Reynolds numbers were conducted. Flow features in the pre-swirl nozzle, pre-swirl cavity, receiver hole and cover-plate cavity were summarized. The results obtained in this study indicate that the pressure ratio and rotational Reynolds number have a significant influence on the vortex structure of the pre-swirl system. As the air is accelerated by the pre-swirl nozzle, the difference of circumferential velocity between the air and the rotational domain would be reduced, and the static temperature of the air would be decreased. The pressure drop in the pre-swirl system mainly occurs in the pre-swirl nozzle and the pre-swirl cavity. In addition, with the increase of the pressure ratio, the air mass flow rate and the circumferential velocity of the air out of the nozzle increased, thereby leading to an increment in temperature reduction. Moreover, with the increasing of the rotational Reynolds number, the dimensionless mass flow rate and temperature reduction of the pre-swirl system, which are mainly determined by the flow incidence angle of cooling air at the receiver hole, will first increase to a maximum and then decrease.
盖板预旋流系统流动特性的数值研究
本文对盖板预旋流系统的流动特性进行了数值研究。采用reynolds -average Navier-Stokes方程,结合标准k-ε湍流模型进行求解。在进口总压和总温一定的情况下,研究了改变压力比和旋转雷诺数对降温和流动阻力的影响。总结了预旋喷嘴、预旋腔、接收孔和盖板腔内的流动特征。研究结果表明,压力比和旋转雷诺数对预旋系统的涡结构有显著影响。在预旋喷嘴的加速作用下,空气的周向速度与旋转域的差会减小,空气的静态温度也会降低。预旋系统中的压降主要发生在预旋喷嘴和预旋腔内。此外,随着压比的增大,空气质量流量和出喷嘴空气的周向速度增大,从而导致降温幅度增大。随着旋转雷诺数的增大,预旋流系统的无因次质量流量和温度降度值先增大到最大值,后减小,这主要取决于接收孔处冷却气流的入射角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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