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How Does the Frequency of Classifier Wheel Rotation Affect the Separation of Fine and Coarse Particles

The rotating classifier wheel is the core aerodynamic sorting component inside an air classifier. Its rotational frequency directly defines the centrifugal force applied to particles, determines the cut point (d50), and controls the partition between fine (protein-rich) and coarse (starch-rich) fractions during pulse protein dry fractionation. Airflow delivers particles toward the spinning wheel; particles experience a balance between inward drag force from air and outward centrifugal force generated by wheel rotation.

Fundamental Force Balance Principle

  • Inward air drag: Carries small, low-mass particles through the gaps between wheel blades into the fine product outlet.
  • Outward centrifugal force: Pushes larger, heavier particles away from the wheel, so they fall to the coarse discharge.
    Wheel rotation frequency dictates the magnitude of centrifugal force. Higher frequency = stronger centrifugal force.

Effect of Increasing Classifier Wheel Frequency

When wheel frequency rises:

  1. Centrifugal force increases. More mid-sized particles are rejected and routed to the coarse stream.
  2. The cut point (d50) shifts to a smaller particle size. Only finer particles can penetrate the wheel to become fines.
  3. Fine fraction mass yield decreases. Less material reports to the fine stream.
  4. Particle sharpness of separation improves in many cases; fewer coarse contaminants enter the fine product.
  5. For pulse protein applications: protein enrichment factor increases, but total protein recovery drops. More liberated fine protein particles are pushed into the coarse starch fraction, creating protein yield loss.

Practical case: Raising rotor frequency can push fine fraction protein content higher, but fine yield falls significantly.

Effect of Reducing Classifier Wheel Frequency

When wheel frequency drops:

  1. Centrifugal force weakens. Larger particles can now pass through the wheel openings.
  2. Cut point (d50) moves to a larger particle size.
  3. Fine mass yield increases; more material is collected as fine fraction.
  4. Coarse starch particles and agglomerates leak into fines, contaminating the protein concentrate.
  5. For pulse protein: protein enrichment factor declines, but protein recovery improves. More protein is captured in fines at the cost of lower protein purity.

Non-linear Behaviour & Operating Limits

The relationship is not perfectly linear:

  • At very low rotation speed: separation collapses. Nearly all feed becomes fine product, with minimal protein-starch sorting.
  • At excessively high rotation speed: very little fine material passes through the wheel. Fine yield becomes uneconomically low. High wheel speed also increases shear, which may break soft particle agglomerates and create new ultra-fines, altering PSD.

Interaction with Airflow

Rotation frequency never acts independently; it must be tuned together with primary airflow rate:

  • If airflow increases while wheel frequency stays constant: higher drag force pulls larger particles through wheel → cut point increases.
  • To maintain a target fixed cut point, airflow and wheel speed must be adjusted in tandem. Operators tune both parameters to hit the desired balance between protein enrichment and protein recovery.

Impact on Tromp Selectivity Curve

Wheel frequency shapes the Tromp curve:

  • Higher rotor speed: curve becomes steeper (sharper separation), smaller d50.
  • Lower rotor speed: curve flattens, larger d50, more cross-contamination between fractions.

Classifier wheel rotation frequency is the primary setpoint to adjust cut point. Increasing frequency makes fines finer and raises protein enrichment but reduces fine yield and protein recovery. Decreasing frequency boosts fine yield and protein recovery at the expense of lower protein purity. Optimisation targets a sweet spot balancing enrichment, yield and recovery for each pulse feedstock.

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