Pump Engineering Updated 2026-07-29 Engineering Guide

Positive Displacement Pumps

Guide to positive displacement pump types — gear, screw, diaphragm, peristaltic, progressive cavity — with selection and application guidance.

PD vs Centrifugal Pumps

Positive Displacement (PD) pumps move fluid by trapping a fixed volume and mechanically forcing it into the discharge pipe. Unlike centrifugal pumps, PD pumps produce flow directly proportional to speed and relatively independent of discharge pressure.

CharacteristicCentrifugalPositive Displacement
Flow vs pressureFlow drops as head increasesFlow constant regardless of pressure
Suitable viscosityLow (<500 cP)High (up to 1,000,000 cP)
ShearHigh shearLow shear (many types)
Self-primingPoorExcellent
Dry runningWill damage sealsSome types tolerate it
NPSH requirementIncreases with flowRelatively constant
Max pressureLower (typically <40 bar)Can be very high (to 700+ bar)

Never Dead-Head a PD Pump!

Unlike centrifugal pumps where head limits at shut-off, PD pumps keep producing flow against closed discharge. Pressure builds until something breaks — pipe, pump, motor, or relief valve. ALWAYS install a pressure relief valve on PD pump discharge.

Gear Pumps

Two meshing gears create voids that fill with liquid and carry it from suction to discharge around the casing.

  • Types: External gear (two identical gears), internal gear (gerotor, gear within gear)
  • Flow: Smooth, low-pulsation
  • Pressure: Up to ~250 bar (external gear)
  • Viscosity: 1 to 1,000,000 cSt
  • Best for: Oils, polymers, fuels, hydraulic systems, high-pressure metering
  • Not for: Solids/abrasives (close clearances wear quickly)

Progressive Cavity Pumps (Moyno)

A single helix rotor turns inside a double-helix elastomeric stator, forming cavities that progress from suction to discharge.

  • Flow: Very smooth, non-pulsating
  • Pressure: Up to 60+ bar (multiple stages)
  • Viscosity: 1 to 1,000,000+ cSt
  • Best for: Sludge, slurry, high solids, shear-sensitive polymers, food products
  • Advantages: Gentle on product, handles large solids, self-priming
  • Cannot run dry — stator elastomer burns out instantly without liquid lubrication

Screw Pumps

One, two, or three helical screws move fluid axially along the screw axis.

  • Types: Three-screw (most common, for clean lube oil), twin-screw (handles some entrained gas), single-screw
  • Flow: Very smooth, extremely quiet
  • Pressure: Up to 300+ bar
  • Best for: High-viscosity oils, fuel oil transfer, multi-phase (oil/gas/water)
  • Advantages: Low noise, high reliability, handles gas entrainment

Diaphragm Pumps

Flexible diaphragm reciprocates to draw in and expel fluid; check valves control direction.

  • Air-Operated Double Diaphragm (AODD): Compressed air drives two diaphragms; stall under pressure; intrinsically safe
  • Mechanically actuated: For metering/dosing
AttributeValue
FlowTo 100+ m³/h
PressureTo 20 bar (air limited)
ViscosityTo 50,000 cSt
Best forChemicals, slurries, abrasives, hazardous areas, shear-sensitive fluids
AdvantagesCan run dry, self-priming, sealless, handles solids, air-operated = explosion-proof

AODD for Versatility

Air-operated diaphragm pumps are the "workhorse of tough applications" — they pump almost anything from clean water to abrasive slurry, run dry without damage, are intrinsically safe for flammable fluids, and require no electricity.

Peristaltic (Hose) Pumps

A rotating shoe/roller compresses a flexible tube, pushing fluid along. Liquid only touches the inside of the hose.

  • Flow: Pulsating (multiple rollers reduce this)
  • Pressure: Up to 15 bar
  • Best for: Corrosive chemicals, food/pharmaceutical, abrasive slurry, metering
  • Advantages: Complete fluid isolation (no seals), self-priming, reversible, can run dry
  • Limitations: Hose life is the maintenance item; flow pulsation; not for high flow rates

Piston/Plunger Pumps

Reciprocating piston or plunger displaces fluid through check valves.

  • Flow: Pulsating (triplex designs smooth this with three cylinders)
  • Pressure: Up to 700+ bar (high-pressure water blasting, hydrotesting)
  • Best for: High-pressure cleaning, water jetting, high-pressure injection, metering
  • Advantages: Highest pressure capability, very high efficiency, accurate metering
  • Limitations: Pulsation requires dampeners; check valves wear in dirty service

Metering/Dosing Pumps

Small, precise PD pumps for accurate chemical addition:

  • Diaphragm metering: Most common; adjustable stroke length/frequency; to ~1000 L/h
  • Plunger metering: Higher pressure; to 500+ bar
  • Peristaltic metering: Simple, for low-pressure dosing

Typical applications: Chlorine injection, pH adjustment, corrosion inhibitors, polymer dosing.

PD Pump Selection Guide

NeedBest PD Pump Type
High-viscosity oilGear or screw pump
Slurry with solidsProgressive cavity or diaphragm
Shear-sensitive fluidsProgressive cavity or peristaltic
Hazardous/explosive areaAODD (air-operated diaphragm)
High pressure (>100 bar)Plunger or gear pump
Metering/dosingDiaphragm metering
Completely leak-free/seallessDiaphragm, peristaltic, mag-drive gear
Abrasive slurryPeristaltic or heavy-duty diaphragm

Key Sizing Considerations for PD Pumps

  1. Slip factor: Internal leakage (clearances) reduces net flow as pressure increases — more significant at low viscosity
  2. Viscosity correction: At very high viscosity, flow decreases and power increases; must derate speed
  3. NPSH: PD pumps generally have lower NPSHr than centrifugal, but suction line losses still matter
  4. Pulsation dampening: Most PD pumps produce flow pulsations that require dampeners on both suction and discharge
  5. Relief valve: Mandatory on discharge to protect against overpressure
  6. Speed reduction: For high viscosity, run slower (consult viscosity vs speed curves)

Power Calculation for PD Pumps

Pump Power Calculator

Open pump-power-calculator

Hydraulic power is similar to centrifugal:

Phydraulic = Q (m³/s) × ΔP (Pa) / 1000 (kW)

Brake power = hydraulic power / efficiency. PD pump efficiencies:

  • Gear pumps: 70-90%
  • Progressive cavity: 60-75%
  • Screw pumps: 70-85%
  • Diaphragm (AODD): 50-70% (and they consume compressed air!)
  • Plunger/piston: 80-95%

Air Consumption of AODD Pumps

AODD pumps are inefficient in energy terms — they consume significant compressed air, which is expensive to generate. Use them where their unique capabilities are needed, not for general transfer duty.

Summary

Positive displacement pumps excel at high viscosity, high pressure, solids handling, and metering where centrifugal pumps cannot operate. Gear pumps for clean oils, progressive cavity for slurries, AODD for versatility/safety, peristaltic for chemical isolation, plunger for ultra-high pressure. Always include a pressure relief valve on PD pump discharge — this is not optional.

Related Guides & Tools

Disclaimer: This guide is for educational purposes only. Always consult qualified engineering professionals and applicable codes/standards (ASME, API, ASTM) for engineering design. See full disclaimer.