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selimaj-dev 5d59cc413e Revise README for liquid-cooled BLDC motor research
Updated README.md to include detailed research on liquid-cooled small BLDC motors, focusing on internal channel cooling concepts and thermal performance expectations.
2026-04-24 15:36:16 +02:00

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Motor Research (Apr 24, 2026)

Liquid-Cooled Small BLDC Motor (≈30 mm) — Research Sheet

Focus: Internal Channel / Directed Cooling (Concept B)


🧠 1. Objective

Design a high power-density, continuous-duty BLDC motor (~30 mm class) for EDF/prop aircraft using:

Directed internal cooling channels through the stator (not full immersion)

Goal:

  • Maximize continuous power
  • Maintain high efficiency at very high RPM (30k–100k)
  • Avoid fluid drag losses from rotor immersion

⚙️ 2. Core Concept (B)

Definition

A motor where:

  • Coolant flows through engineered paths inside the stator
  • Heat is removed directly from windings and core
  • Rotor remains dry (air-filled cavity)

🧩 2.1 Cooling Architecture Types

A. Axial Channels (through stator stack)

  • Holes or ducts aligned with shaft axis
  • Coolant enters one end, exits the other

B. Slot-Integrated Cooling

  • Channels embedded near winding slots
  • Coolant flows alongside copper

C. Back-Iron Cooling

  • Channels placed in stator back iron
  • Lower impact on copper fill, but less direct

🔥 3. Thermal Model

Heat Sources

  • Copper losses:
    [ P_{cu} = I^2 R ]

  • Core losses:

    • hysteresis
    • eddy currents

Cooling Mechanism

Convective heat transfer: [ Q = h \cdot A \cdot \Delta T ]

Where:

  • ( h ) = heat transfer coefficient (high for liquid)
  • ( A ) = channel surface area
  • ( \Delta T ) = temp difference

📊 Expected Thermal Performance

Coolant Temp Winding Temp ΔT Notes
30°C 40–60°C ~10–30°C Moderate cooling
20°C 35–50°C ~10–25°C Strong
10°C 25–40°C ~10–20°C Very strong
5°C 20–35°C ~10–15°C Diminishing returns

⚡ 4. Electromagnetic Tradeoffs (Critical)

❗ 4.1 Reduced Copper Fill

Channels take space → less copper:

  • ↑ Resistance (R)
  • ↑ Copper losses
  • ↓ Torque per amp

❗ 4.2 Reduced Iron Cross-Section

Channels remove stator material:

  • ↓ Magnetic flux capacity
  • ↑ Risk of saturation
  • ↓ Maximum torque

⚖️ Tradeoff Summary

Parameter Effect
Cooling ↑↑
Resistance ↑
Torque density ↓
Efficiency (if optimized) ↑ overall

🌀 5. Fluid Design Considerations

✔️ Goals

  • Maximize heat extraction
  • Minimize pressure drop
  • Ensure uniform distribution

❗ Constraints

1. Channel Size

  • Too small → high pressure drop
  • Too large → weak stator + lost copper

2. Flow Regime

  • Laminar → predictable, less transfer
  • Turbulent → better cooling, higher loss

3. Pressure Drop

[ \Delta P \propto \frac{L \cdot v^2}{D} ]

Impacts:

  • pump requirements
  • system efficiency

🧲 6. Magnetic Design Constraints

Saturation Limit

Even with perfect cooling:

  • Core saturates at high flux
  • Current increase → diminishing torque

Design Implication

You must balance:

  • channel placement
  • iron thickness
  • slot geometry

⚙️ 7. Mechanical Constraints

7.1 Structural Integrity

Channels weaken stator:

  • risk of deformation
  • vibration issues at high RPM

7.2 Sealing

Unlike concept A:

  • sealing is localized (inlet/outlet)
  • not full rotor enclosure

7.3 Weight

Added:

  • coolant
  • tubing
  • pump

Must not exceed thrust gains


🚀 8. Performance Expectations

Compared to Air-Cooled Motor

Metric Improvement
Continuous current ~1.8–2.3×
Continuous power ~2.5–4×
Efficiency ↑ (if well designed)
Peak temp ↓ significantly

🧠 9. Key Design Strategy

🔑 Optimize for:

  • Minimal disruption of magnetic path
  • Maximum contact with windings
  • Controlled coolant flow

❌ Avoid:

  • Large voids in stator
  • Random channel placement
  • Overcomplicated routing

🧪 10. Recommended Cooling Fluids

Fluid Pros Cons
Dielectric oil Safe, good cooling Viscosity
Water-glycol Excellent heat capacity Conductive risk
Fluorinated fluids Ideal electrically Expensive

⚡ 11. System-Level Optimization

Important Shift:

Cooling allows higher current, but optimal design reduces current


Best Practices:

  • Lower KV motor
  • Higher voltage supply
  • Thicker windings
  • Maximize slot fill before adding channels

🧩 12. Hybrid Enhancement (Best Approach)

Combine:

  • Partial channel cooling (B)
  • Directed oil spray (controlled A)

Avoid:

  • full immersion

📌 13. Final Engineering Insight

Concept B does not give “free performance”

It trades:

  • electromagnetic efficiency
    for
  • thermal headroom

🏁 Conclusion

For ~30 mm EDF motors:

✔ Internal channel cooling is more viable than immersion
✔ Enables large continuous power gains
❗ Must be carefully balanced against magnetic losses


🔍 14. Future Exploration

  • Additive manufacturing stators
  • Micro-channel cooling
  • Slot liner cooling integration
  • Oil jet targeting windings only

Motor Research (Jul 20, 2025)

The research for better motor tech. We will be comparing between different kinds of motors in order to gain a better understanding of them.

Priorities

  • Efficiency: Current efficiency range (70/87%), goal (90-95%), efficiency is measured in output power (rpm/torque) per watt.
  • Reliability: Withstand a long duration of high throttle and extreme conditions of weather.

BLDC vs PMSM

Feature BLDC (Brush-less DC Motor) PMSM (Permanent Magnet Synchronous Motor)
Rotor Permanent magnets Permanent magnets
Stator winding Trapezoidal Sinusoidal
Back-EMF waveform Trapezoidal Sinusoidal
Control Typically 6-step (commutation) Field-Oriented Control (FOC) / sinusoidal
Torque ripple Higher (due to 6-step commutation) Lower (smooth sinusoidal control)
Efficiency (general) Slightly lower Slightly higher
Cost and complexity Lower cost, simpler control Higher cost, more complex control
Applications Fans, RC planes, e-bikes, hobby motors EVs, drones, industrial drives, high-end motors

BLDC - Brush-less DC motor

BLDC motor

PMSM - Permanent Magnet Synchronous Motor

PMSM motor