Submitted:
03 November 2025
Posted:
05 November 2025
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Abstract
This paper presents the design and theoretical analysis of a 5-kW permanent magnet self-rotating motor featuring a novel dual rotation mechanism where both rotor and stator carry powerful permanent magnets and physically rotate in opposite directions at a 2:1 speed ratio. The motor eliminates conventional copper windings, relying solely on magnetic flux interactions to generate torque. This leads to improved efficiency, higher torque density through multi-pole design, and significant material savings in copper. The longevity of magnetism is addressed, showing negligible flux loss over decades under proper thermal and mechanical limits. To sustain continuous operation and overcome inevitable mechanical and magnetic losses, an auxiliary power input (e.g., from an IC engine, solar, or battery source) is necessary to maintain stator rotation; truly running without external power is not physically viable. The motor’s eco-friendly design supports global environmental goals by reducing fossil fuel dependence, lowering emissions, and enabling cleaner energy conversion. Deployment of 5-kW permanent magnet motors on a subsidy basis in residential homes has the potential to significantly alleviate power grid supply issues by decentralizing power generation and reducing peak demand on centralized grids. Widespread adoption of such motors for local generation can improve grid stability, lower transmission losses, and provide reliable clean energy access, contributing to resolving power shortages at community and national levels. This paper integrates electromagnetic theory, mechanical design, environmental context, and sustainability considerations toward a practical and innovative electric motor solution. Based on its conceptual and theoretical understanding and validation by the scientific community, we intend to proceed further with practical implementation, starting with prototype development. Interested research groups, institutes, and industry stakeholders with adequate funding are invited to collaborate on designing, prototyping, and refining such motors, and to openly share findings to contribute toward sustainable clean energy solutions in response to the escalating global power crisis.
Keywords:
1. Introduction
2. Theory and Design Principles
2.1. Magnet Selection and Specification
2.2. Mechanical Design
2.3. Electromagnetic Analysis
2.4. Magnet Longevity and Stability
2.5. Thermal Management
2.6. Control and Operation
3. Copper-Free Design and Material Savings
3.1. Benefits of Removing Copper Windings
- 1)
- Reduction in Copper Losses: Traditional stator windings contribute resistive (I²R) losses, which are a primary source of inefficiency in electric motors. Removing these windings eliminates such losses, improving overall motor efficiency.
- 2)
- Material Cost Savings: Copper is a relatively expensive material, and its elimination reduces raw material costs significantly. For a 5-kW motor, stator copper windings can account for several kilograms of copper, which translates into considerable cost and weight reductions.
- 3)
- Simplified Manufacturing and Maintenance: Without stator windings, the motor has a simpler construction, fewer failure points, and reduced maintenance costs related to insulation and winding integrity.
- 4)
- Thermal Management: Copper windings generate heat under current flow, necessitating complex cooling systems. Absence of copper windings eases thermal management challenges.
3.2. Estimated Copper Savings
- a)
- Stator and rotor design seems to be simple with permanent magnets.
- b)
- Winding issues will not come into picture.
3.3. Implications
- a)
- Advances in Material Science: Continuous research is leading to improved manufacturing techniques and alternative magnet compositions that reduce reliance on costly or scarce elements.
- b)
- Increased Production Scale: As demand for permanent magnet motors grows in electric vehicles, renewable energy, and industrial applications, larger-scale manufacturing drives down unit costs.
- c)
- Recycling Technologies: Enhanced recycling of rare-earth magnets and recovery of valuable materials contribute to lowering net raw material expenses.
- d)
- Market Diversification: Development of alternative magnet materials with less dependence on rare earths or optimized use of lower-grade magnets can decrease overall cost.
4. Key Reasons for Considering Permanent Magnet Self-Rotating Motors
- 1)
- Renewable and Clean Energy Integration: Our motor’s efficiency and versatility allow integration with renewable energy sources like solar or batteries, reducing reliance on fossil fuels.
- 2)
- Reduced Environmental Impact: Eliminating copper windings and using permanent magnets can lower resource extraction and waste, while improving energy conversion reduces overall emissions.
- 3)
- Durability and Maintenance: Long-lasting magnet-based designs minimize waste and resource consumption over lifecycle, supporting circular economy goals.
- 4)
- Energy Efficiency: Higher efficiency means less energy input required for the same output, helping curb greenhouse gas emissions and pollution.
- 5)
- Innovation for Climate Action: New motor technologies like ours foster green technologies essential for tackling global warming, sea-level rise, and air quality challenges.
4.1. Key Points of Interest:
- 1)
- In standard designs, the stator is fixed with either windings or permanent magnets, and the rotor also has permanent magnets (or vice versa). The interaction between the magnetic fields of stator and rotor produces torque that causes the rotor to rotate continuously.
- 2)
- The stator creates a rotating magnetic field (usually via energized windings), which interacts with the rotor magnet’s field to induce rotation without the need for physical stator movement.
- 3)
- If both stator and rotor have permanent magnets but the stator is fixed, the rotor will still experience magnetic attraction and repulsion forces producing continuous rotation once started, under proper electrical or mechanical excitation.
- 4)
- Our concept of rotating the stator in the opposite direction to the rotor adds a novel dimension: it increases the relative speed of magnetic interaction and flux cutting, potentially enhancing power output and efficiency beyond conventional fixed-stator designs.
4.2. Torque Enhancement with a Multi-Pole Permanent Magnet System
- 1)
- Increasing the number of poles increases the frequency of magnetic flux interactions between the rotor and stator, which enhances the torque production because torque is proportional to the rate of change of magnetic flux linkage.
- 2)
- More poles mean magnetic forces are distributed more evenly around the circumference of the motor, which reduces torque ripple and increases smoothness and reliability.
- 3)
- Multi-pole designs allow operation at lower mechanical speeds while achieving high electrical frequency, improving torque density for a given motor size.
- 4)
- Advanced multi-pole structures with optimized magnet shapes and placements (such as combined-pole or interior permanent magnet rotors) can enhance torque capability further while controlling losses and cogging torque.
5. Permanent Magnet Materials, Sizes, and Flux Characteristics
5.1. Types of Permanent Magnet Materials
- 1)
- Neodymium-Iron-Boron (NdFeB):
- 2)
- Samarium-Cobalt (SmCo):
- 3)
- Ferrite (Ceramic) Magnets:
- 4)
- Alnico Magnets:
5.2. Available Sizes and Forms
- 1)
- Common shapes include rectangular blocks, arc segments (for rotors), discs, rings, and custom-curved poles.
- 2)
- Sizes range from millimetre-scale small magnets for precision micro-motors to multi-centimetre for industrial power motors.
- 3)
- Magnet size affects flux output: larger volumes yield higher flux, but must be balanced with motor design constraints for weight and space.
5.3. Magnetic Flux Density and Pole Strength
- 1)
- The remanent flux density is a key metric indicating maximum field strength a magnet can provide. Higher translates to greater torque potential.
- 2)
- Flux density at the air gap depends on magnet material, geometry, and magnetic circuit design including pole shape and backing materials.
- 3)
- Optimized magnet shape (e.g., Halbach arrays, buried magnets) can enhance flux concentration and reduce demagnetization risks.
5.4. Specific Applications
- 1)
- Electric Vehicles (EVs): NdFeB magnets dominate EV motor designs due to their high energy product enabling lightweight, compact motors with strong torque and efficiency.
- 2)
- Industrial Automation: SmCo magnets are preferred in high-temperature motors for robotics and aerospace applications.
- 3)
- Consumer Appliances: Ferrite magnets are widely used in household motors where cost constraints and moderate performance suffice.
- 4)
- Renewable Energy: Large wind turbine generators employ various PM materials often in multi-pole configurations for high efficiency and reliability.
6. Discussion
7. Approximate Power Calculations Based on a Magnetic Flux Density
7.1. Energy Conversion and Rotor Material Considerations in Permanent Magnet Motors
7.2. Rotor Material Selection and Its Impact on Motor Performance
- 1)
- Reduced rotor mass,
- 2)
- Lower moment of inertia,
- 3)
- Increased achievable rotor angular velocity (RPM) for the same torque,
- 4)
- Improved dynamic response and acceleration.
8. Rotor Speed and Gearbox Integration
8.1. Power Generation and Torque Distribution in Dual Rotation
8.2. Rotor Speed and Gearbox Integration Based on Table 1 Data
8.3. Startup Torque and Auxiliary Mechanism
- 1)
- A low-voltage DC starter motor,
- 2)
- A small battery pack interfaced through a torque-assisting coupling, or
- 3)
- A solar- or engine-driven micro-generator.
8.4. Dynamic Interaction and System Losses
9. Essential Role of Stator Rotation in Enhancing Torque and Sustaining Power Output
9.1. Enhanced Magnetic Flux Interaction
9.2. Torque Production and Mechanical Power Output
9.3. Practical Considerations and Continuous Operation
9.4. Mechanical and Thermal Management
- 1)
- Stator rotation amplifies relative magnetic flux cutting, increasing torque and power density substantially.
- 2)
- It consumes part of the motor’s generated torque but yields a high overall mechanical output on the rotor.
- 3)
- Auxiliary power is essential to sustain stator rotation and overcome mechanical losses.
- 4)
- The rotating stator ensures stable, higher-performance motor operation beyond conventional fixed-stator designs.
- 5)
- Mechanical design must accommodate this rotation with proper components and controls.
10. Dual Shaft Power Extraction: Harnessing Mechanical Energy from Both Rotor and Stator
11. Integrated Household Power System with Permanent Magnet Self-Rotating Motor
13. Magnet Pole Configuration and Procurement Logic for Permanent Magnet Motor
13.1. Primary Magnet Arrangement (As per Current Drawing and Design)
- 1)
- The motor features 8 poles on the stator and 8 poles on the rotor.
- 2)
- Stator poles magnet shape: Inner arc segment magnets to fit the inner circumference of the stator ring.
- 3)
- Rotor poles magnet shape: Outer arc segment magnets to fit the outer circumference of the rotor.
- 4)
- Both stator and rotor magnets are currently designed with all poles as South polarity.
- 5)
- This arrangement leverages the dual counter-rotation mechanism, where the rotor and stator rotate in opposite directions at a 2:1 speed ratio.
- 6)
- The relative angular velocity of identical polarity poles (South/South) generates the required magnetic flux variation and torque for rotation by flux cutting.
- 7)
- This design eliminates the need for alternating pole polarity for torque generation.
13.2. Contingency Magnet Procurement Plan (If Motor Fails to Run)
- 1)
- Procure 4 South polarity + 4 North polarity inner arc magnets for the stator poles.
- 2)
- Procure the opposite for rotor poles: 4 North polarity + 4 South polarity outer arc magnets.
Summary Table of Magnet Procurement Strategy
| Component | Primary Design | Contingency Design |
| Stator poles | 8 inner arc magnets, all South polarity | 4 inner arc South + 4 inner arc North poles |
| Rotor poles | 8 outer arc magnets, all South polarity | 4 outer arc North + 4 outer arc South poles |
13.3. Additional Notes
- 1)
- The difference in magnet shape between inner arc (stator) and outer arc (rotor) is essential due to their concentric but different radii geometry.
- 2)
- Careful dimensioning and matching the arc length, thickness, and width of magnets to design drawings ensures optimal air gap and flux density.
- 3)
- Custom fabrication or special cutting of magnets may be required to achieve these inner and outer arc shapes.
- 4)
- The dual rotation mechanism with all same polarity poles requires auxiliary power input to overcome losses and sustain stator rotation.
- 5)
- Testing with the primary all-South pole design is recommended first; the alternating pole contingency plan provides flexibility for troubleshooting during prototyping.
14. Conclusion
Data availability statement
Acknowledgments
Conflicts of Interest
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| Flux Density (Tesla) | Pole strength (A.m) | Magnetic potential energy per pole (J) | Angular velocity per pole (rad/sec) | RPM per pole | Total Magnetic Torque (N.m) | Total Magnetic input Power (kW) | Stator Power Loss (kW) | Auxiliary Power Loss (kW) | Net Rotor Power (kW) |
| 0.10 | 143.24 | 1.54 | 1.89 | 18.03 | 12.89 | 0.02 | 0.01 | 0.00 | 0.01 |
| 0.15 | 214.86 | 3.46 | 2.83 | 27.05 | 29.01 | 0.08 | 0.04 | 0.01 | 0.03 |
| 0.20 | 286.48 | 6.16 | 3.78 | 36.07 | 51.57 | 0.19 | 0.10 | 0.02 | 0.08 |
| 0.25 | 358.10 | 9.62 | 4.72 | 45.09 | 80.57 | 0.38 | 0.19 | 0.04 | 0.15 |
| 0.30 | 429.72 | 13.85 | 5.67 | 54.10 | 116.02 | 0.66 | 0.33 | 0.07 | 0.26 |
| 0.35 | 501.34 | 18.85 | 6.61 | 63.12 | 157.92 | 1.04 | 0.52 | 0.10 | 0.42 |
| 0.40 | 572.96 | 24.62 | 7.55 | 72.14 | 206.26 | 1.56 | 0.78 | 0.16 | 0.62 |
| 0.45 | 644.58 | 31.16 | 8.50 | 81.16 | 261.05 | 2.22 | 1.11 | 0.22 | 0.89 |
| 0.50 | 716.20 | 38.47 | 9.44 | 90.17 | 322.29 | 3.04 | 1.52 | 0.30 | 1.22 |
| 0.55 | 787.82 | 46.55 | 10.39 | 99.19 | 389.97 | 4.05 | 2.03 | 0.41 | 1.62 |
| 0.60 | 859.44 | 55.40 | 11.33 | 108.21 | 464.10 | 5.26 | 2.63 | 0.53 | 2.10 |
| 0.65 | 931.06 | 65.01 | 12.28 | 117.23 | 544.67 | 6.69 | 3.34 | 0.67 | 2.67 |
| 0.70 | 1002.68 | 75.40 | 13.22 | 126.24 | 631.69 | 8.35 | 4.18 | 0.84 | 3.34 |
| 0.75 | 1074.30 | 86.56 | 14.16 | 135.26 | 725.15 | 10.27 | 5.14 | 1.03 | 4.11 |
| 0.80 | 1145.92 | 98.48 | 15.11 | 144.28 | 825.06 | 12.47 | 6.23 | 1.25 | 4.99 |
| 0.85 | 1217.54 | 111.18 | 16.05 | 153.29 | 931.41 | 14.95 | 7.48 | 1.50 | 5.98 |
| 0.90 | 1289.16 | 124.64 | 17.00 | 162.31 | 1044.22 | 17.75 | 8.87 | 1.77 | 7.10 |
| 0.95 | 1360.77 | 138.88 | 17.94 | 171.33 | 1163.46 | 20.87 | 10.44 | 2.09 | 8.35 |
| 1.00 | 1432.39 | 153.88 | 18.89 | 180.35 | 1289.16 | 24.35 | 12.17 | 2.43 | 9.74 |
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