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Design, modification and optimization of an ultra-high-load transonic low-reaction aspirated compressor

机译:超高负荷跨音速低反应吸气压缩机的设计,改进和优化

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摘要

Low-reaction (LR) aspirated compressor is a promising design methodology to enhance the work capacity substantially. However, for the high-load transonic compressor, to achieve LR design, the effect of different combinations of inlet pre-swirl and meridian contraction on performance has not been investigated. In addition, the quantitative advantage of LR design over convention-reaction (CR) design is also not available. This paper presents a series of aerodynamic designs of the high-load transonic compressor stage, including a CR stage and three LR stages with a comprehensive application of the LR design method and the aspiration technology. 3D calculation reveals that under the same tip speed and rotational speed and a total bleed flow fraction of 2.84% of the stage inlet mass flow, the preliminary LR design achieves a total pressure ratio of 2.34 and a throughflow adiabatic efficiency of 88.11%, which is respectively 30% and 0.19% higher over CR design. The corresponding loading coefficient rises from 0.45 to 0.66. Through the modified design of introducing non-uniform counter-swirl along the span and increasing the meridian contraction, the loading coefficient is further increased to 0.69. Due to the insufficient stall margin induced by ultra-high-load LR design, a further casing contraction of the optimized design relative to the modified one is conducted to decrease the loading and thus the stall margin is increased by 1%. (c) 2020 Elsevier Masson SAS. All rights reserved.
机译:低反应(LR)吸气式压缩机是一个有希望的设计方法,以提高工作能力。然而,对于高负载跨音速压缩机来实现LR设计,尚未研究进口前旋流和经络收缩的不同组合的效果。此外,LR设计过度常规反应(CR)设计的定量优势也是不可用的。本文介绍了一系列高负荷跨音速压缩机级的空气动力学设计,包括CR阶段和三个LR级,具有全面应用LR设计方法和抽吸技术。 3D计算显示,在相同的尖端速度和转速和2.84%的舞台入口质量流量的总出血流量分数下,初步LR设计实现了总压力比为2.34,通孔绝热效率为88.11%,即CR设计分别高30%和0.19%。相应的负载系数从0.45升至0.66。通过改进的设计沿跨度引入不均匀的反旋流并增加子午线收缩,加载系数进一步增加到0.69。由于超高负荷LR设计引起的失速裕度不足,因此进行了相对于改进的形式的优化设计的另一个套管收缩以降低负载,因此失速裕度增加1%。 (c)2020 Elsevier Masson SAS。版权所有。

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