Design, Analysis, and Prototyping of a Formula SAE Application Flux-Switching Permanent Magnet Motor
Abstract
1. Introduction
- Electromagnetic performance (torque, flux linkage, power capability).
- High-speed mechanical integrity.
- Mass reduction.
- Manufacturing feasibility.
1.1. Objective of This Work
1.2. Contributions of This Paper
- Demonstration of the analytical model as a reliable tool for preliminary FSPM motor sizing, with relative errors below compared to linear FEA for air-gap flux density, no-load flux linkage, and electromagnetic torque.
- Electromagnetic and mechanical performance improvements, including laminated permanent magnets for eddy-current loss reduction and rotor mass reduction, validated through structural stress analysis at 20 .
- Description of the adopted manufacturing procedures and practical considerations encountered during prototyping, leading to the realization of a active-mass prototype.
2. Flux-Switching Permanent Magnet Motor
2.1. General Structure
- U-shaped stator laminations, with non-overlapping concentrated windings.
- Circumferentially magnetized PMs with alternate polarity, sandwiched between stator laminations.
- Rotor made of iron with a mechanically robust structure, similar to that of switched reluctance motors.
2.2. Working Principle
3. Analytical Model
3.1. Limitations
3.2. Requirements
3.3. Model Description
3.3.1. Stator Equivalent Air-Gap Function
3.3.2. Rotor Permanence Distributions
3.3.3. Magnets MMF
3.3.4. Windings MMF
4. Analytical and FEM Results Comparison
4.1. Geometry
4.2. Comparison
5. Design Improvement and Validation
5.1. Magnet Slot Design
5.2. Magnet Design: Eddy-Current Mitigation and Demagnetization Analysis
5.2.1. Eddy-Current Mitigation
5.2.2. Demagnetization Analysis
5.3. Rotor Geometry Improvement
5.4. Performance Evaluation
- Continuous torque: .
- Base speed: .
- Maximum power: .
- Continuous torque: .
- Base speed: .
- Maximum power: .
6. Manufacturing Aspects
6.1. Iron Laminations
- Temperature ramp: 19 min at a controlled heating rate of 10 .
- Dwelling phase: 30 for the rotor stack and 40 for the stator stack, in order to ensure full curing of the adhesive layer.
- In-oven cooling: 30 for the rotor and 50 for the stator stack, allowing gradual temperature reduction under controlled conditions.
- Open-air cooling until ambient temperature was reached.
6.2. Stator Windings
6.3. Design Improvement Summary
7. Conclusions and Future Developments
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
Appendix A.1

Appendix A.2




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| Parameter | Value | Unit |
|---|---|---|
| Machine type | 3-phase/IPM | - |
| Max. battery voltage | 565 | Vdc |
| Rated voltage | 350 | Vrms |
| Rated current | 41 | Arms |
| Peak current | 105 | Arms |
| Rated power | ||
| Peak power (1.24 s) | 35 | |
| Rated torque | ||
| Peak torque (1.24 s) | 21 | |
| Rated speed | 12,000 | |
| Max. speed | 20,000 |
| Parameter | Symbol | Value | Unit |
|---|---|---|---|
| Outer diameter | 123 | ||
| Inner diameter | 70 | ||
| Stack length | 48 | ||
| Stator teeth width | |||
| Magnet grade | - | N45UH | - |
| Magnet thickness | |||
| Magnet height | |||
| Air-gap length | g | ||
| Rotor teeth angle | 15 | deg | |
| Rotor inner diameter | 53 |
| Parameter | Value | Unit |
|---|---|---|
| Stator Iron Mass | ||
| Rotor Iron Mass | ||
| Copper Mass | ||
| Magnet Mass | ||
| Total Mass |
| Feature | Effect |
|---|---|
| Magnet slot design | Optimized magnet slots and reinforced stator core, facilitating magnet insertion and winding manufacturing. |
| Laminated permanent magnets | Magnet losses heavily reduced (e.g., from 544 to at 10 ). |
| Rotor weight reduction | ≈27% rotor mass reduction (270 ) while ensuring mechanical robustness at 20 |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Crescenzio, F.; Bianchi, N. Design, Analysis, and Prototyping of a Formula SAE Application Flux-Switching Permanent Magnet Motor. Machines 2026, 14, 332. https://doi.org/10.3390/machines14030332
Crescenzio F, Bianchi N. Design, Analysis, and Prototyping of a Formula SAE Application Flux-Switching Permanent Magnet Motor. Machines. 2026; 14(3):332. https://doi.org/10.3390/machines14030332
Chicago/Turabian StyleCrescenzio, Filippo, and Nicola Bianchi. 2026. "Design, Analysis, and Prototyping of a Formula SAE Application Flux-Switching Permanent Magnet Motor" Machines 14, no. 3: 332. https://doi.org/10.3390/machines14030332
APA StyleCrescenzio, F., & Bianchi, N. (2026). Design, Analysis, and Prototyping of a Formula SAE Application Flux-Switching Permanent Magnet Motor. Machines, 14(3), 332. https://doi.org/10.3390/machines14030332

