The performance of automotive turbocharger turbines has long been realized to be quite different under pulsating flow conditions compared to that under the equivalent steady and quasi-steady conditions on which the conventional design concept is based. However, the mechanisms of this phenomenon are still intensively investigated nowadays. This paper presents an investigation of the response of a stand-alone rotor to inlet pulsating flow conditions by using a validated unsteady Reynolds-averaged Navier–Stokes solver (URANS). The effects of the frequency, the amplitude, and the temporal gradient of pulse waves on the instantaneous and cycle integrated performance of a radial turbine rotor in isolation were studied, decoupled from the upstream turbine volute. A numerical method was used to help gain the physical understanding of these effects. A validation of the numerical method against the experiments on a full configuration of the turbine was performed prior to the numerical tool being used in the investigation. The rotor was then taken out to be studied in isolation. The results show that the turbine rotor alone can be treated as a quasi-steady device only in terms of cycle integrated performance; however, instantaneously, the rotor behaves unsteadily, which increasingly deviates from the quasi-steady performance as the local reduced frequency of the pulsating wave is increased. This deviation is dominated by the effect of quasi-steady time lag; at higher local reduced frequency, the transient effects also become significant. Based on this study, an interpretation and a model of estimating the quasi-steady time lag have been proposed; a criterion for unsteadiness based on the temporal local reduced frequency concept is developed, which reduces to the Λ criterion proposed in the published literature when cycle averaged. This in turn emphasizes the importance of the pressure wave gradient in time.
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July 2014
Research-Article
Radial Turbine Rotor Response to Pulsating Inlet Flows
Liping Xu,
Liping Xu
Whittle Laboratory,
Department of Engineering,
Cambridge
Department of Engineering,
University of Cambridge
,Cambridge
CB3 0DY
, UK
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Ricardo F. Martinez-Botas
Ricardo F. Martinez-Botas
Dept. of Mechanical Engineering,
London
Imperial College London
,London
SW72AZ
, UK
Search for other works by this author on:
Teng Cao
e-mail: tc367@cam.ac.uk
Liping Xu
Whittle Laboratory,
Department of Engineering,
Cambridge
Department of Engineering,
University of Cambridge
,Cambridge
CB3 0DY
, UK
Ricardo F. Martinez-Botas
Dept. of Mechanical Engineering,
London
Imperial College London
,London
SW72AZ
, UK
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNAL OF TURBOMACHINERY. Manuscript received July 30, 2013; final manuscript received August 6, 2013; published online December 27, 2013. Editor: Ronald Bunker.
J. Turbomach. Jul 2014, 136(7): 071003 (10 pages)
Published Online: December 27, 2013
Article history
Received:
July 30, 2013
Revision Received:
August 6, 2013
Citation
Cao, T., Xu, L., Yang, M., and Martinez-Botas, R. F. (December 27, 2013). "Radial Turbine Rotor Response to Pulsating Inlet Flows." ASME. J. Turbomach. July 2014; 136(7): 071003. https://doi.org/10.1115/1.4025948
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