Total Dynamic Head (TDH)

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Tecnobosque Wildfire Knowledge Graph · Water Systems

Reference Concept · v1.0

Definition → relationship → calculation → evidence context

Technical definition

Total Dynamic Head (TDH) is the total head a pump must overcome at a specified flow, combining elevation change, friction and minor losses, and any required residual discharge pressure.

Also searched as

TDH

SymbolTDH · H
Unitm or ft of head
Depends onFlow + system geometry
UsePump operating-point selection

What is total dynamic head (tdh)?

TDH is an energy-per-unit-weight representation of everything the pump must overcome. Because friction loss rises strongly with flow, TDH is not one fixed property of a hose system.

Pump operating flow is found where the system requirement meets the pump performance curve. Quoting only a pump’s headline maximum flow or maximum head can therefore be misleading.

Why it matters

For independent wildfire-preparation water systems, pump flow and head must be evaluated together. A pump’s maximum flow at zero head is not the flow it will deliver through a real hose network.

In plain language

A pump does not only lift water uphill. It must also overcome energy losses through hose, fittings and valves and still deliver useful pressure at the sprinkler or nozzle.

Engineering relationshipH_TDH = H_static + h_f + Σh_minor + H_pressure

All terms must be expressed as compatible head units, such as metres or feet of water. Pump selection then uses the manufacturer’s performance curve at the required flow.

H_staticStatic elevation headm or ft

Elevation difference between source and discharge.

h_fPipe / hose friction lossm or ft

Distributed energy loss along hose or pipe.

Σh_minorMinor lossesm or ft

Losses through fittings, valves, entrances and other local components.

H_pressureRequired pressure headm or ft

Head equivalent of the residual pressure needed at the outlet.

Simplified pump-head requirement

A system requires 12 m of elevation lift, 8 m of hose/fitting loss at the target flow and 20 m of residual pressure head.

TDH = 12 + 8 + 20TDH = 40 mSelect a pump that can deliver the required flow at about 40 m head, using its performance curve.
Result40 m TDH at the stated design flow

If the flow changes, friction loss changes and the operating point must be recalculated.

What controls or changes this quantity?

Flow rate

Friction loss generally increases rapidly as flow rises.

Hose diameter

Larger internal diameter can sharply reduce friction loss for the same flow.

Hose length

Longer runs increase distributed friction loss.

Elevation and outlet pressure

Static lift and required sprinkler/nozzle pressure add directly to system head.

Engineering context

Static head

Elevation component independent of friction.

Dynamic losses

Flow-dependent friction and fitting losses.

Residual pressure

Useful pressure that must remain at the discharge device.

Pump curve

Manufacturer relationship between delivered flow and head.

How to interpret it correctly

  1. Calculate TDH at the intended operating flow, not just at zero flow.
  2. Use internal hose diameter and realistic length/fitting assumptions.
  3. Match the resulting duty point to a pump curve.
  4. Keep a safety margin for real installation losses without substituting arbitrary oversizing for calculation.
Interactive engineering tool
Use the calculator as a transparent technical aid and keep its assumptions explicit.
Open Wildfire Water Pump Sizing Calculator →

Why it matters in wildfire analysis

A pump advertised at a high maximum flow can deliver far less when lifting water uphill through long small-diameter hose. TDH makes that difference visible.

Tecnobosque links TDH to hose friction and sprinkler runtime so storage, pump and distribution are sized as one system.

Limitations and boundaries

  • Simple calculators may not reproduce transient pressure, pump priming, cavitation or complex branched networks.
  • Manufacturer pump curves and actual hose characteristics should govern final equipment selection.
  • A wildfire-preparation water system must not be assumed to provide firefighter protection or safe manual operation during evacuation conditions.

Total Dynamic Head (TDH) FAQ

What is Total Dynamic Head?

It is the total head a pump must overcome at a specified flow, including elevation, friction, fittings and required discharge pressure.

Is TDH the same as elevation lift?

No. Elevation is only the static component; real systems also have dynamic losses and outlet-pressure requirements.

Why does TDH change with flow?

Because hose and fitting friction losses depend on flow rate.

How do I select a pump from TDH?

Find a pump whose performance curve delivers the required flow at the calculated TDH.