Novel Modeling Methodology for Thermal Evaluation of an Electrically Assisted High-Speed Turbomachine †
Abstract
:1. Introduction
1.1. Broader Context of Climate Change
1.2. Background of a Charged Fuel-Cell System
1.3. Electric Machine Topologies for Electric Turbo-Compressors
1.4. Forced-Air Cooling Concept
1.5. Thermal Evaluation Scheme
2. Electromagnetic Simulation
3. Computational Fluid Dynamics Analysis
3.1. Mesh Independence Study
3.2. Near-Wall Modeling Methodology and Numerical Heat Transfer Calculation
3.3. Cooling Capacity Case Study
4. Solid Thermal Model
4.1. Model Setup
4.2. Thermal Model Results
5. Conclusions
5.1. Electromagnetic Model
5.2. Computational Fluid Dynamics Model
5.3. Thermal Model
5.4. Virtual Proof of Concept
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Arvithis, G.S.; Iosifidis, G.; DeSantis, R.; Rode, M.; Burgmair, R.; Kalfas, A.I. Novel Modeling Methodology for Thermal Evaluation of an Electrically Assisted High-Speed Turbomachine. Eng. Proc. 2025, 90, 48. https://doi.org/10.3390/engproc2025090048
Arvithis GS, Iosifidis G, DeSantis R, Rode M, Burgmair R, Kalfas AI. Novel Modeling Methodology for Thermal Evaluation of an Electrically Assisted High-Speed Turbomachine. Engineering Proceedings. 2025; 90(1):48. https://doi.org/10.3390/engproc2025090048
Chicago/Turabian StyleArvithis, Georgios S., Georgios Iosifidis, Roberto DeSantis, Martin Rode, Raphael Burgmair, and Anestis I. Kalfas. 2025. "Novel Modeling Methodology for Thermal Evaluation of an Electrically Assisted High-Speed Turbomachine" Engineering Proceedings 90, no. 1: 48. https://doi.org/10.3390/engproc2025090048
APA StyleArvithis, G. S., Iosifidis, G., DeSantis, R., Rode, M., Burgmair, R., & Kalfas, A. I. (2025). Novel Modeling Methodology for Thermal Evaluation of an Electrically Assisted High-Speed Turbomachine. Engineering Proceedings, 90(1), 48. https://doi.org/10.3390/engproc2025090048