Aerodynamic Optimization Design of a Multistage Centrifugal Steam Turbine and Its Off-Design Performance Analysis

IF 0.9 Q4 ENGINEERING, MECHANICAL
Hui Li, Diangui Huang
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引用次数: 5

Abstract

Centrifugal turbine which has less land occupation, simple structure, and high aerodynamic efficiency is suitable to be used as small to medium size steam turbines or waste heat recovery plant. In this paper, one-dimensional design of a multistage centrifugal steam turbine was performed by using in-house one-dimensional aerodynamic design program. In addition, three-dimensional numerical simulation was also performed in order to analyze design and off-design aerodynamic performance of the proposed centrifugal steam turbine. The results exhibit reasonable flow field and smooth streamline; the aerodynamic performance of the designed turbine meets our initial expectations. These results indicate that the one-dimensional aerodynamic design program is reliable and effective. The off-design aerodynamic performance of centrifugal steam turbine was analyzed, and the results show that the mass flow increases with the decrease of the pressure ratio at a constant speed, until the critical mass flow is reached. The efficiency curve with the pressure ratio has an optimum efficiency point. And the pressure ratio of the optimum efficiency agrees well with that of the one-dimensional design. The shaft power decreases as the pressure ratio increases at a constant speed. Overall, the centrifugal turbine has a wide range and good off-design aerodynamic performance.
多级离心汽轮机气动优化设计及其非设计性能分析
离心式水轮机占地少、结构简单、空气动力学效率高,适合作为中小型汽轮机或余热回收装置使用。本文采用自行编制的一维气动设计程序对多级离心式汽轮机进行了一维设计。此外,还进行了三维数值模拟,以分析所提出的离心式汽轮机的设计和非设计气动性能。结果表明:流场合理,流线流畅;设计的涡轮机的空气动力学性能符合我们最初的期望。这些结果表明,一维气动设计程序是可靠和有效的。对离心式汽轮机的非设计气动性能进行了分析,结果表明,在恒定转速下,质量流量随着压力比的减小而增加,直到达到临界质量流量。具有压力比的效率曲线具有最佳效率点。最佳效率的压力比与一维设计的压力比吻合良好。轴功率随着压力比以恒定速度增加而减小。总的来说,离心式涡轮机具有广泛的范围和良好的非设计空气动力学性能。
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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来源期刊
CiteScore
2.40
自引率
0.00%
发文量
10
审稿时长
25 weeks
期刊介绍: This comprehensive journal provides the latest information on rotating machines and machine elements. This technology has become essential to many industrial processes, including gas-, steam-, water-, or wind-driven turbines at power generation systems, and in food processing, automobile and airplane engines, heating, refrigeration, air conditioning, and chemical or petroleum refining. In spite of the importance of rotating machinery and the huge financial resources involved in the industry, only a few publications distribute research and development information on the prime movers. This journal is the first source to combine the technology, as it applies to all of these specialties, previously scattered throughout literature.
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