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A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage

Thesis (MEng)--Stellenbosch University, 2019.

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Bibliographic Details
Main Author: Ochabski, Thomas M.
Other Authors: Van der Spuy, S. J.
Format: Thesis
Language:en_ZA
Published: Stellenbosch : Stellenbosch University 2019
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access_status_str Open Access
author Ochabski, Thomas M.
author2 Van der Spuy, S. J.
author_browse Ochabski, Thomas M.
Van der Spuy, S. J.
author_facet Van der Spuy, S. J.
Ochabski, Thomas M.
author_sort Ochabski, Thomas M.
collection Thesis
dc_rights_str_mv Stellenbosch University
description Thesis (MEng)--Stellenbosch University, 2019.
format Thesis
id oai:scholar.sun.ac.za:10019.1/107298
institution Stellenbosch University (South Africa)
language en_ZA
last_indexed 2026-06-10T12:46:15.146Z
license_str Other — see source repository
provenance_str_mv Harvested via OAI-PMH from SUNScholar — Stellenbosch University Repository
publishDate 2019
publishDateRange 2019
publishDateSort 2019
publisher Stellenbosch : Stellenbosch University
publisherStr Stellenbosch : Stellenbosch University
record_format dspace
source_str SUNScholar — Stellenbosch University Repository
spelling oai:scholar.sun.ac.za:10019.1/107298 A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage Ochabski, Thomas M. Van der Spuy, S. J. Hildebrandt, T. Stellenbosch University. Faculty of Engineering. Dept. of Mechanical and Mechatronic Engineering. Computational fluid dynamics Optimization Compressors Turbomachines UCTD Thesis (MEng)--Stellenbosch University, 2019. ENGLISH ABSTRACT: This thesis presents a novel method of parametrization and optimization for a large design space exploration of a micro gas turbine compressor stage. 48 free parameters were used to control the meridional channel, blade camber, and structural geometric features. The optimization focused on determining the optimal impeller meridional discharge (mixed flow) angle, αz2, for a predetermined set of constraints. The influence of key geometric features on design performance was assessed using a Pearson correlation coefficient (rp) map. Stage total-to-static pressure ratio, PR(01−4),DP , and efficiency, η(01−4),DP, were strongly influenced (| rp |> 0,4) by diffuser outlet passage height and diffuser vane wrap angle. This was due to their control of flow separation magnitude at the diffuser hub in the radial-to-axial bend. A multidisciplinary workflow was scripted to incorporate the CalculiX CrunchiX structural analysis into the NUMECA FINETM/Design3D aerodynamic optimization package. Structural feasibility constraints were placed on maximum von Mises stress, blade tip displacement, and resonance frequencies of the impeller. A three-dimensional Pareto front was constructed to assist in selection of the final design. The final design achieved a PR(01−4),DP of 4,15 and η(01−4),DP of 86,24%, at a design mass flow rate of 1,089 kg/s. Choke and stall margins of 7,4% and 11,8% were achieved at the design speed of 73 000 RPM. AFRIKAANSE OPSOMMING: Hierdie tesis beskryf ’n nuwe metode van parametrisering en optimering vir groot ontwerpsgebiedontginning van ’n mikrogasturbine kompressor. 48 vrye parameters word vir die meridionale kanaal, lemkromming, en strukturele geometriese eienskappe gebruik. Klem word geplaas op die optimale meridionale rotorhoek, αz2, onderhevig aan ’n stel vooropgestelde beperkings. Die invloed van belangrike geometriese kenmerke word beskryf met ’n Pearson korrelasieko ¨effisi¨ent (rp) kaart. Kompressor totaal-tot-statiese drukverhouding, PR(01−4),DP , en benuttingsgraad, η(01−4),DP , word deur diffusoruitlaathoogte en diffusorvouhoek be¨ınvloed met | rp |> 0,4. Hierdie invloed was die gevolg van die hoogte en vouhoek se effek op diffusor wegbreking in die radiaaltot- aksiale draai. ’n Multidissiplinˆere Python kode is geskryf wat die CalculiX CrunchiX strukturele analise kode in die NUMECA FINETM/Design3D a¨erodinamiese analise kode inkorporeer. Strukturele uitvoerbaarheidsbeperkings is op die von Mises spanning, lem verplasing, en vibrasie toegepas. ’n drie-dimensionele Pareto grens word gebou om die finale ontwerp te kies. Die finale ontwerp het ’n PR(01−4),DP en η(01−4),DP van 4,15 en 86,24%, onderskeidelik, met ’n massavloeitempo van 1,089 kg/s. Die ontwerp het ’n smoor en staak marge van 7,4% en 11,8%, onderskeidelik, teen ’n spoed van 73 000 RPM. Masters 2019-11-27T14:43:59Z 2019-12-11T06:57:38Z 2019-11-27T14:43:59Z 2019-12-11T06:57:38Z 2019-12 Thesis http://hdl.handle.net/10019.1/107298 en_ZA Stellenbosch University 116 pages : illustrations application/pdf Stellenbosch : Stellenbosch University
spellingShingle Computational fluid dynamics
Optimization
Compressors
Turbomachines
UCTD
Ochabski, Thomas M.
A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage
title A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage
title_full A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage
title_fullStr A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage
title_full_unstemmed A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage
title_short A large design space multi-disciplinary optimization of a mixed flow micro gas turbine compressor stage
title_sort large design space multi disciplinary optimization of a mixed flow micro gas turbine compressor stage
topic Computational fluid dynamics
Optimization
Compressors
Turbomachines
UCTD
url http://hdl.handle.net/10019.1/107298
work_keys_str_mv AT ochabskithomasm alargedesignspacemultidisciplinaryoptimizationofamixedflowmicrogasturbinecompressorstage
AT ochabskithomasm largedesignspacemultidisciplinaryoptimizationofamixedflowmicrogasturbinecompressorstage