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Precision flow controlsales@vportballvalves.com
VPORTA
VPORTA / PROCESS VALVE SYSTEMS

A better starting point
for the engineering conversation.

Explore the V-port principle and estimate a clean-liquid capacity requirement. Final selection still needs a reviewed valve datasheet.

ENGINEERING DESK / 01

Start with the flow.
Then select the valve.

Estimate the required Kv and Cv for a clean, single-phase liquid under turbulent, non-choked conditions. This calculation does not select a valve size.

Excluded: gases, steam, flashing, cavitation, choked flow, viscous or non-Newtonian media and significant solids. Final sizing needs the selected trim curve, recovery factors and the complete operating envelope.

Required Kv 25.00Equivalent Cv 28.90

Kv = Q × √(SG / ΔP) · Cv ≈ Kv / 0.865

INSIDE THE V-PORT

A quarter turn.
A controlled opening.

Watch the V-notched segment rotate past the seat. A small opening appears first, then grows as the shaft turns toward the fully open position.

VPORTA / OPERATING PRINCIPLEThrottling
The shaft rotates the V-notched segment through 90 degrees. At 0 degrees it covers the seat; at intermediate travel the notch meters the opening; at 90 degrees it clears the principal flow path.
Rotating segment Fixed seat Open flow path
SHAFT TRAVEL30°

0° closed · 90° open

VIEW THROUGH THE SEAT

V-notch in control

The notch progressively exposes the seat opening as the segment rotates.

What the V does. Its shaped leading edge introduces a smaller opening at low travel, supporting gradual modulation. Actual capacity depends on the trim and operating conditions.

Illustration, not a sizing curve. This generic cutaway explains motion and opening. It does not predict Cv, leakage, velocity, or a specific model’s internal dimensions.

Let’s specify the right valve.

Share your operating conditions. We will review the valve, trim, actuator and documentation as one package.

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