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Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation

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dc.contributor.author Bergh, J
dc.contributor.author Snedden, Glen
dc.contributor.author Dunn, Dwain
dc.date.accessioned 2021-03-29T08:53:51Z
dc.date.available 2021-03-29T08:53:51Z
dc.date.issued 2020-04
dc.identifier.citation Bergh, J., Snedden, G. & Dunn, D. 2020. Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation. <i>Journal of turbomachinery, 142(4).</i> http://hdl.handle.net/10204/11917 en_ZA
dc.identifier.issn 0889-504X
dc.identifier.issn 1528-8900
dc.identifier.uri http://hdl.handle.net/10204/11917
dc.description.abstract This paper presents the predicted, as well as final experimental results for the design of an automatically optimized non-axisymmetric endwall and as such, attempts to close the loop between design and practice, providing additional information to other groups involved in the design of endwall contours. The contours designed in this investigation were manufactured using the direct laser sintering rapid prototyping method and installed and tested in the low-speed, 112-stage turbine at the CSIR’s test turbine facility (TTF) in Pretoria, South Africa. Steady-state 5-hole pressure probe traverses were used to characterize the performance and flow profiles upstream, immediately downstream and in a quasi-“mixed-out” sense downstream of the rotor. In addition to the datum (annular) case, both the computed as well as experimental results were compared to the corresponding results generated for a “generically” contoured rotor which was originally designed for a linear cascade test case, but one which used the same blade profile to the current case. The results show that in general both sets of contours performed well, although the added emphasis on flow correction for the contours produced in this investigation resulted in slightly worse performance in terms of loss at the rotor exit (X3) but greatly improved performance in terms of the efficiency and flow angles at the “mixed-out” (X4) measurement plane. en_US
dc.format Abstract en_US
dc.language.iso en en_US
dc.relation.uri https://doi.org/10.1115/1.4045988 en_US
dc.relation.uri https://asmedigitalcollection.asme.org/turbomachinery/article-abstract/142/4/041006/1072596/Optimization-of-Non-axisymmetric-Endwall-Contours?redirectedFrom=fulltext en_US
dc.source Journal of turbomachinery, 142(4) en_US
dc.subject Computational fluid dynamics en_US
dc.subject CFD en_US
dc.subject Endwall contouring en_US
dc.subject Secondary flow en_US
dc.subject Turbine aerodynamic design en_US
dc.title Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation en_US
dc.type Article en_US
dc.description.pages 12 en_US
dc.description.note Copyright © 2020 by ASME. Due to copyright restrictions, the attached PDF file contains the abstract of the full-text item. For access to the full-text item, please consult the publisher's website: https://doi.org/10.1115/1.4045988 en_US
dc.description.cluster Defence and Security en_US
dc.identifier.apacitation Bergh, J., Snedden, G., & Dunn, D. (2020). Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation. <i>Journal of turbomachinery, 142(4)</i>, http://hdl.handle.net/10204/11917 en_ZA
dc.identifier.chicagocitation Bergh, J, Glen Snedden, and Dwain Dunn "Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation." <i>Journal of turbomachinery, 142(4)</i> (2020) http://hdl.handle.net/10204/11917 en_ZA
dc.identifier.vancouvercitation Bergh J, Snedden G, Dunn D. Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation. Journal of turbomachinery, 142(4). 2020; http://hdl.handle.net/10204/11917. en_ZA
dc.identifier.ris TY - Article AU - Bergh, J AU - Snedden, Glen AU - Dunn, Dwain AB - This paper presents the predicted, as well as final experimental results for the design of an automatically optimized non-axisymmetric endwall and as such, attempts to close the loop between design and practice, providing additional information to other groups involved in the design of endwall contours. The contours designed in this investigation were manufactured using the direct laser sintering rapid prototyping method and installed and tested in the low-speed, 112-stage turbine at the CSIR’s test turbine facility (TTF) in Pretoria, South Africa. Steady-state 5-hole pressure probe traverses were used to characterize the performance and flow profiles upstream, immediately downstream and in a quasi-“mixed-out” sense downstream of the rotor. In addition to the datum (annular) case, both the computed as well as experimental results were compared to the corresponding results generated for a “generically” contoured rotor which was originally designed for a linear cascade test case, but one which used the same blade profile to the current case. The results show that in general both sets of contours performed well, although the added emphasis on flow correction for the contours produced in this investigation resulted in slightly worse performance in terms of loss at the rotor exit (X3) but greatly improved performance in terms of the efficiency and flow angles at the “mixed-out” (X4) measurement plane. DA - 2020-04 DB - ResearchSpace DP - CSIR J1 - Journal of turbomachinery, 142(4) KW - Computational fluid dynamics KW - CFD KW - Endwall contouring KW - Secondary flow KW - Turbine aerodynamic design LK - https://researchspace.csir.co.za PY - 2020 SM - 0889-504X SM - 1528-8900 T1 - Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation TI - Optimization of nonaxisymmetric endwall contours for the rotor of a low speed, 1½ -stage research turbine with unshrouded blades— optimization and experimental validation UR - http://hdl.handle.net/10204/11917 ER - en_ZA
dc.identifier.worklist 24414 en_US


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