Abstract
AbstractMultidisciplinary design optimization has great potential to support the turbomachinery development process by improving designs at reduced time and cost. As part of the industrial compressor design process, we seek for a rotor blade geometry that minimizes stresses without impairing the aerodynamic performance. However, the presence of structural mechanics, aerodynamics, and their interdisciplinary coupling poses challenges concerning computational effort and organizational integration. In order to reduce both computation times and the required exchange between disciplinary design teams, we propose an inter- instead of multidisciplinary design optimization approach tailored to the studied optimization problem. This involves a distinction between main and side discipline. The main discipline, structural mechanics, is computed by accurate high-fidelity finite element models. The side discipline, aerodynamics, is represented by efficient low-fidelity models, using Kriging and proper-orthogonal decomposition to approximate constraints and the gas load field as coupling variable. The proposed approach is shown to yield a valid blade design with reasonable computational effort for training the aerodynamic low-fidelity models and significantly reduced optimization times compared to a high-fidelity multidisciplinary design optimization. Especially for expensive side disciplines like aerodynamics, the multi-fidelity interdisciplinary design optimization has the potential to consider the effects of all involved disciplines at little additional cost and organizational complexity, while keeping the focus on the main discipline.
Funder
Bayerische Staatsministerium für Wirtschaft, Landesentwicklung und Energie
Technische Universität München
Publisher
Springer Science and Business Media LLC
Subject
Control and Optimization,Computer Graphics and Computer-Aided Design,Computer Science Applications,Control and Systems Engineering,Software
Reference44 articles.
1. Aissa MH, Verstraete T (2019) Metamodel-assisted multidisciplinary design optimization of a radial compressor. Int J Turbomach Propuls Power 4(4):35. https://doi.org/10.3390/ijtpp4040035
2. Arsenyev I (2018) Efficient surrogate-based robust design optimization method. PhD thesis, Technische Universität München, Munich, Germany
3. atech GmbH (2022) Airfoil designer pdesk. http://www.atech.de/produkte/airfoil-designer-pdesk/. Accessed 21 Mar 2022
4. Benamara T, Breitkopf P, Lepot I, Sainvitu C (2017) LPC blade and non-axisymmetric hub profiling optimization using multi-fidelity non-intrusive POD surrogates. In: Proceedings of the ASME Turbo Expo, vol 2C-2017. American Society of Mechanical Engineers. https://doi.org/10.1115/gt2017-65106
5. Berthelin G, Dubreuil S, Salaün M, Bartoli N, Gogu C (2022) Disciplinary proper orthogonal decomposition and interpolation for the resolution of parameterized multidisciplinary analysis. Int J Numer Methods Eng. https://doi.org/10.1002/nme.6981
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