超临界CO2涡轮转子轴冷却新型射流冷却器冷却性能的数值研究

IF 1.2 4区 工程技术 Q3 ENGINEERING, MECHANICAL Mechanics & Industry Pub Date : 2021-01-01 DOI:10.1051/meca/2021049
Jun Li, H. Gurgenci, Jishun Li, Z. Guan, Lun Li, Y. Xue
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引用次数: 0

摘要

采用数值模拟的方法,研究了在极小间隙下,单列圆射流冲击高速旋转圆柱表面的传热特性。研究了在不同喷嘴距靶面间距H和质量流量条件下,流体密度、流速和半径间隙的努塞尔数分布等参数对换热的影响。结果表明,流体密度是影响燃气射流传热性能的主要因素,速度是影响燃气射流传热性能的次要因素。在给定的进口质量流量边界条件下,随着喷嘴数量的减少,总体传热得到改善。H/di (di,喷嘴直径)的减小可能对撞击表面的换热性能产生积极或消极的影响。减小半径间隙H,肯定会增加间隙中流体的平均密度,这在提高传热性能的应用中是理想的。但当半径间隙(H)足够小时,增大di可能会对换热产生负面影响。
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Numerical investigation on the cooling performance of a novel jet cooler design for a supercritical CO2 turbine rotor shaft cooling
Numerical investigation was carried out to study the heat transfer performance for a high-speed rotating cylindrical surface subjected to single row array round jets impingement, under a very small gap spacing. Various parameters that affect heat transfer, such as the fluid density, flow velocity and Nusselt number distributions of the radius clearance were studied based on varied nozzle to target surface spacing H and mass flow rate. It has been found that the fluid density was a dominant factor and the velocity was the secondary factor for the gas jet heat transfer performances. The overall heat transfer was improved with a reduction in the number of nozzles, for given inlet mass flow rate boundary conditions. The decrease of H/di (di, nozzle diameter) may have positive or negative effects on the heat transfer performance from the impingement surface. Reducing the radius gap H, for a certainty, increases the average density of the fluid in the clearance, which is desirable in applications that enhance heat transfer performance. But when the radius gap (H) is small enough, increasing di may have a negative impact on heat transfer.
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来源期刊
Mechanics & Industry
Mechanics & Industry ENGINEERING, MECHANICAL-MECHANICS
CiteScore
2.80
自引率
0.00%
发文量
25
审稿时长
>12 weeks
期刊介绍: An International Journal on Mechanical Sciences and Engineering Applications With papers from industry, Research and Development departments and academic institutions, this journal acts as an interface between research and industry, coordinating and disseminating scientific and technical mechanical research in relation to industrial activities. Targeted readers are technicians, engineers, executives, researchers, and teachers who are working in industrial companies as managers or in Research and Development departments, technical centres, laboratories, universities, technical and engineering schools. The journal is an AFM (Association Française de Mécanique) publication.
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