Magnetic Assemblies / Magnetic Couplings

Magnetic Couplings: Non-Contact Torque Across a Sealed Barrier

Magnetic couplings transmit torque without a mechanical shaft seal by synchronizing inner and outer magnet rotors across an air gap or containment can. Torque, slip behavior, eddy-current loss and mechanical containment must be designed together.

Permanent magnet coupling rotor

Geometry and Dimension Definition

Use functional datums and define the magnetization reference on the drawing. The table below provides the minimum geometry information for a practical manufacturing review.

ParameterHow to define itWhy it matters
Coupling OD / IDRotor and containment envelopeDefines available magnet volume and radial gap
Active lengthAxial overlap of magnetic rotorsControls torque capacity
Pole countAlternating pole pairs and angular referenceInfluences torque density and slip behavior
Barrier thicknessContainment can material and wallAdds magnetic gap and may create eddy-current loss

Design Considerations

Torque curve

Specify working torque, peak torque and allowable slip instead of one nominal value.

Containment can

Electrical conductivity, strength, corrosion resistance and thickness affect both safety and heating.

Thermal conditions

Eddy loss, fluid temperature and poor heat rejection can raise magnet temperature.


Manufacturing and Assembly Notes

  • Metallic barriers can overheat at speed due to eddy currents.
  • Loss of synchronism may create impact torque or heat.
  • Rotor concentricity and bearing deflection change the working gap.
  • Chemical exposure must be assessed for the entire wetted system.

Typical Applications

Sealless pumps

Leak-free torque transfer across a containment shell.

Mixers and reactors

Drive through vessel walls.

Vacuum systems

Motion without a dynamic shaft seal.

Instrumentation

Compact isolated rotary transmission.


Engineering Questions

How is coupling torque specified?

Provide operating, start-up and upset torque across the speed and temperature range.

Why does can material matter?

Conductive metal can create eddy-current heating; non-metallic barriers reduce loss but have different strength and compatibility.

What happens during overload?

The rotors may slip out of synchronism. Recovery behavior and thermal consequences should be validated.

Can the design be scaled by adding magnets?

Not linearly. Pole pitch, saturation, gap and rotor dimensions interact.


For a focused design review, share your drawing, operating temperature, air gap, target magnetic performance and annual volume through our enquiry page. You can also return to Magnetic Assemblies for material-level guidance.

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