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FLOW INTERACTIONS IN LOW BYPASS RATIO MULTI-SPOOL TURBOFAN ENGINES

机译:低旁通比多齿涡轮风扇发动机中的流动相互作用

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Multi-spool compression systems are characterized by two or more compressor stages running at different rotational speeds. The response of an individual component can be different from an integrated system. Limiting operating conditions such as choke and stall points could have substantially different effects. The present paper explores the interactions and coupling significance between different stages of a multi-spool compression system. Further, an attempt is made by modifying the shape of the inter-compressor duct (ICD) to improve the system performance. The multi-spool system in this study comprises of the NASA stage 67 as the fan followed by in-house core and bypass ducts and a single stage booster. It is observed that the flow pattern in an ICD is entirely different in stand-alone modeling than in the integrated system modeling, owing to fan wakes and booster upstream influences. The booster performance is dependent on the duct exit flow pattern. The shape of the baseline ICD is tailored to reduce extra losses which is generated due to reduction in the length of the ICD and hence making the system more compact. It is shown that the shape tailoring optimization of ICD done independently result in a significant improvement in the duct exit flow pattern and hence an improvement in the booster performance. However, this gain in the performance is reduced to marginal values for an integrated system. This happens due to a strong coupling of the ICD flow pattern with the fan wakes and highly three dimensional nature of the ICD flow pattern. Therefore, it is found that component level optimization may not give rise to an equivalent system-level improvement.
机译:多阀芯压缩系统的特征是两个或多个压缩机级以不同的转速运行。单个组件的响应可能与集成系统不同。诸如扼流圈和失速点之类的限制运行条件可能会产生实质上不同的影响。本文探讨了多阀芯压缩系统不同阶段之间的相互作用和耦合意义。此外,尝试通过修改压缩机间导管(ICD)的形状来改善系统性能。本研究中的多阀芯系统包括NASA阶段67(作为风扇),内部核心和旁路管道以及单阶段增压器。可以观察到,由于风扇尾流和助力器上游的影响,ICD中的流动模式在独立模型中与在集成系统模型中完全不同。增压器的性能取决于风管出口的流型。调整基线ICD的形状可减少因ICD长度减少而产生的额外损耗,从而使系统更加紧凑。结果表明,ICD的形状调整优化是独立完成的,从而显着改善了风道出口流型,从而提高了助力器的性能。但是,对于集成系统而言,这种性能提升降低到了边际值。这是由于ICD流型与风扇尾流之间的强耦合以及ICD流型的高度三维特性造成的。因此,发现组件级优化可能不会引起等效的系统级改进。

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