首页> 外文会议>ASME Turbo Expo vol.6 pt.B; 20050606-09; Reno-Tahoe,NV(US) >IMPROVING AERODYNAMIC MATCHING OF AXIAL COMPRESSOR BLADING USING A 3D MULTISTAGE INVERSE DESIGN METHOD
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IMPROVING AERODYNAMIC MATCHING OF AXIAL COMPRESSOR BLADING USING A 3D MULTISTAGE INVERSE DESIGN METHOD

机译:使用3D多阶段逆设计方法改善轴流压气机叶片的气动匹配

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摘要

Current turbomachinery design systems increasingly rely on multistage CFD as a means to diagnose designs and assess performance potential. However, design weaknesses attributed to improper stage matching are addressed using often ineffective strategies involving a costly iterative loop between blading modification, revision of design intent, and further evaluation of aerodynamic performance. A scheme is proposed herein which greatly simplifies the design point blade row matching process. It is based on a three-dimensional viscous inverse method that has been extended to allow blading analysis and design in a multi-blade row environment. For computational expediency, blade row coupling is achieved through an averaging-plane approximation. The proposed method allows improvement of design point blade row matching by direct regulation of the circulation capacity of the blading within a multistage environment. During the design calculation, blade shapes are adjusted to account for inflow and outflow conditions while producing a prescribed pressure loading. Thus, it is computationally ensured that the intended pressure-loading distribution is consistent with the derived blading geometry operating in a multi-blade row environment that accounts for certain blade row interactions. The viability of the method is explored in design exercises on a 2.5-stage, highly loaded compressor.
机译:当前的涡轮机械设计系统越来越依赖多级CFD作为诊断设计和评估性能潜力的手段。但是,使用通常无效的策略来解决归因于不正确的阶段匹配的设计缺陷,这些策略包括在叶片修改,设计意图的修改以及空气动力学性能的进一步评估之间进行昂贵的迭代循环。本文提出了一种方案,该方案极大地简化了设计点叶片行匹配过程。它基于三维粘性逆方法,该方法已得到扩展,可以在多叶片行环境中进行叶片分析和设计。为了便于计算,通过平均平面近似来实现叶片行耦合。所提出的方法允许通过直接调节多级环境中叶片的循环容量来改进设计点叶片排的匹配。在设计计算期间,调整叶片形状以考虑流入和流出条件,同时产生规定的压力负载。因此,通过计算确保了预期的压力载荷分布与在多叶片行环境中操作的导出叶片几何形状一致,该多叶片行环境考虑了某些叶片行的相互作用。在2.5级高负荷压缩机的设计练习中探讨了该方法的可行性。

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