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Pipeline engineering

Pipe Pressure Drop Calculator

Estimate liquid pipeline pressure drop from flow rate, internal diameter, pipe length, roughness, density, viscosity, fittings and elevation.

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Engineering guide

How to use this calculator

  1. 1

    Enter flow rate and pipe internal diameter.

  2. 2

    Enter straight length, roughness, density and viscosity.

  3. 3

    Add the combined fittings K factor and elevation difference.

  4. 4

    Select the pressure unit and calculate the estimated total pressure change.

About the calculation

Pipe pressure drop affects pump selection, flow stability, control-valve authority and available pressure at instruments or equipment. The Darcy–Weisbach method relates friction loss to pipe geometry, velocity, fluid density and friction factor.

This calculator also includes a combined fittings K factor and static elevation term. It is intended for incompressible single-phase liquids; gas, steam, flashing, two-phase and highly non-Newtonian services require a more appropriate method.

Common engineering calculations
pipe pressure drop calculatorDarcy Weisbach calculatorwater pressure loss calculatorpipeline friction lossReynolds number pressure drop
Calculation method

Formula and assumptions

ΔP = f(L/D)(ρv²/2) + K(ρv²/2) + ρgΔz

Darcy friction factor is 64/Re for laminar flow and uses the Swamee–Jain approximation for turbulent flow. Transitional flow remains uncertain.

Practical checks

Examples and guidance

  • Positive elevation means the outlet is above the inlet and adds static pressure requirement.
  • Enter the combined K values for valves, bends, tees, entrances and other fittings.
Calculator help

Questions and answers

Does the calculator support gases or steam?

No. It assumes incompressible, single-phase liquid flow with constant density and viscosity.

What is the fittings K factor?

K is the sum of dimensionless minor-loss coefficients for valves, bends, tees, entrances, exits and other components in the flow path.

What happens in the transitional Reynolds-number range?

Flow between approximately Re 2300 and 4000 is unstable. The displayed result is only an estimate and should not be used as a final design value.

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