Aeroacoustic Optimization of the Bionic Leading Edge of a Typical Blade for Performance Improvement

New, innovative optimization approaches to improve turbomachine performance and reduce turbomachine noise are significant in engineering. In this paper, based on the bionic concept, a wave structure is used to shape the leading edge of the blade. Using an NACA0018 blade as the basic blade, a united...

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Veröffentlicht in:Machines (Basel) 2021-08, Vol.9 (8), p.175
Hauptverfasser: Liu, Haoran, Lu, Yeming, Yang, Jinguang, Wang, Xiaofang, Ju, Jinjun, Tu, Jiangang, Yang, Zongyou, Wang, Hui, Lai, Xide
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Sprache:eng
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Zusammenfassung:New, innovative optimization approaches to improve turbomachine performance and reduce turbomachine noise are significant in engineering. In this paper, based on the bionic concept, a wave structure is used to shape the leading edge of the blade. Using an NACA0018 blade as the basic blade, a united parametric approach controlled by three parameters is proposed to configure the wavy leading edge. Then, a new optimization strategy boosting design efficiency is established to output the optimal design results. Finally, the corresponding performance and flow mechanism are analyzed. Taking into account the existence of the hub wall and the shroud wall from the closed impeller, a near-wall adjustment factor is added, the significance of which is herein demonstrated. An optimal bionic blade is successfully obtained by the optimization strategy, which can reduce the mean drag coefficient by about 6% and the overall sound pressure level by about 3 dB, in relative to the original blade. Mechanism analysis revealed that the wave structure can induce spanwise velocity at the leading edge and cause a further delay in flow separation in the downstream region, synchronously reducing drag and noise.
ISSN:2075-1702
2075-1702
DOI:10.3390/machines9080175