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The Centrifugal Pump: Speed Squared, and Why It Cannot Lift Air
Emma

Created by

Emma

27. September 2026SE
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The Centrifugal Pump: Speed Squared, and Why It Cannot Lift Air

Every pump in the catalogue so far moves a fluid by trapping a pocket of it and pushing the pocket along — a piston, a gear tooth, a screw flight. The centrifugal pump traps nothing. It spins the liquid and lets the rim throw it outward into a spiral casing that turns speed into pressure. That makes it the pump of choice for water supply, heating circuits, cooling systems and most process plants: no valves, no rubbing seals on a piston, steady flow, and a single moving part. It also gives it two habits a maker has to understand before building one. The head it produces goes with the square of its speed. And it cannot pump air, so it will not pick up its own suction — which is why the foot valve on the suction pipe and the ten-metre ceiling on how high it can sit above the water are part of the machine.
Intermediate
About 5 hours

Instructions

1

Know the three kinds of impeller before you print one

Look at a real impeller in your hand before drawing your own. There are three kinds: - **Closed** — vanes sandwiched between two discs (shrouds). Most efficient, clogs on fibre and grit. - **Semi-open** — one shroud behind the vanes, open at the front. Tolerates some solids; the running clearance to the casing matters. - **Open** — bare vanes on a hub. Least efficient, least prone to clog, easiest to print. Now look at how the vanes curve. On almost every pump they curve **backward** — away from the direction of rotation. A straight radial vane gives more head on paper but the head rises and falls unstably with flow; backward curving trades a little head for a curve that falls steadily as flow rises, which is what lets two pumps share a pipe and one pump settle at one flow. Measure the outer diameter, the vane height at the tip and the eye diameter. Those three numbers are the design.

Materials for this step:

Pump ImpellerPump Impeller1 piece

Tools needed:

Digital Caliper 6-InchDigital Caliper 6-Inch
Steel RulerSteel Ruler
2

Print the impeller and a volute, and seal the shaft

Print a **semi-open** impeller of 60 mm tip diameter with six backward-curved vanes, 10 mm tall at the eye tapering to 6 mm at the tip, on a boss that takes a steel shaft. Print the casing as a **volute**: a spiral whose gap to the impeller grows steadily round the circumference to the outlet, so the flow collected at each point has room to join what is already there without speeding up. The outlet leaves tangentially; the inlet enters on the axis, into the eye. Use PETG — it takes water indefinitely and does not creep like PLA when warm. Print a clear acrylic front cover instead of a printed one if you can: seeing the flow is half of this blueprint. Where the shaft leaves the casing, fit two O-rings in a printed gland and grease them. It will weep a little; a pump shaft seal is its own subject (see the face-seal and packing blueprints). Leave 0.5 mm between the vane tips and the front cover — tighter rubs, looser leaks flow back round the vanes.

Materials for this step:

PETG FilamentPETG Filament150 g
Acrylic SheetAcrylic Sheet1 sheet
Steel Bar StockSteel Bar Stock1 piece
O-Ring Assortment KitO-Ring Assortment Kit1 kit
Machine ScrewsMachine Screws8 pieces
Silicone SealantSilicone Sealant1 piece

Tools needed:

FDM 3D PrinterFDM 3D Printer
Digital Caliper 6-InchDigital Caliper 6-Inch
Cordless DrillCordless Drill
Drill Bit SetDrill Bit Set
Hex Key SetHex Key Set
Sandpaper AssortmentSandpaper Assortment
3

Prime it, then measure the shut-off head against speed

Put the pump below the surface of a bucket of water, or fill the casing and suction hose by hand with a check valve at the bottom of the hose as a foot valve. Try it once dry first: the impeller will spin and nothing will come up. The notebook in step 5 shows why. Run a length of clear vinyl tube from the outlet straight up a wall and tape a tape measure beside it. Chuck the shaft in the cordless drill, hold the drill on its trigger at a steady speed and read the speed with the tachometer off a strip of reflective tape on the shaft. The water climbs the tube and stops: nothing flows, and the height is the **shut-off head**. Record it at four or five speeds. Plot head against speed squared. It should be a straight line, and it should sit at or a little above the solid-body figure of u²/2g — the volute wins back some of the tip's speed — and well below the Euler figure of u²/g. Wear safety glasses — a printed impeller that lets go at 3000 rpm throws its pieces.

Materials for this step:

WaterWater10 liters
Clear Vinyl TubingClear Vinyl Tubing3 meters
Check Valve (Non-Return)Check Valve (Non-Return)1 piece
Hose Clamp AssortmentHose Clamp Assortment1 set

Tools needed:

Cordless DrillCordless Drill
Digital TachometerDigital Tachometer
Tape MeasureTape Measure
BucketBucket
Clear Safety GlassesClear Safety Glasses
4

The foot valve is a check valve — this is how it works

A centrifugal pump cannot hold its own prime: when it stops, the water in the suction pipe runs back down and leaves the casing full of air. The foot valve at the bottom of the suction pipe is a check valve that lets water up and not down. How it seats, and why a speck of grit on the seat empties the pipe overnight, is in the embedded blueprint.
5

Speed squared, the affinity laws, and priming

Loading Jupyter Notebook...
6

Throttle the outlet and draw the pump curve

Fit a ball valve in the outlet and lead the tube to a measuring jug at a fixed height. Hold the drill at one speed throughout. Wide open, time how long the jug takes to fill to a litre: that is the flow. Read the pressure on a gauge teed into the outlet before the valve: that is the head (10 kPa is about a metre of water). Close the valve a little and repeat, five or six times, down to fully closed. Plot head against flow. You will get a curve falling from shut-off head at zero flow towards zero head at maximum flow. That curve belongs to the pump. The pipe has its own curve — head needed rising with flow — and the pump runs where the two cross. Closing the valve steepens the pipe's curve and slides that crossing point up the pump's. Note what happens to the drill as you close the valve: it runs easier. A radial-flow centrifugal pump takes least power at shut-off, which is why they are started against a closed valve.

Materials for this step:

Brass Ball ValveBrass Ball Valve1 piece
PVC Pipe Fittings AssortmentPVC Pipe Fittings Assortment1 set
PTFE Thread Seal TapePTFE Thread Seal Tape1 roll

Tools needed:

Pressure GaugePressure Gauge
Measuring JugMeasuring Jug
StopwatchStopwatch
Cordless DrillCordless Drill
Digital TachometerDigital Tachometer
Adjustable SpannerAdjustable Spanner
7

Suction lift, vapour pressure and cavitation

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8

It runs but delivers nothing: find out why

The five faults behind almost every silent centrifugal pump, in the order to check them. Each one follows from something measured or calculated above.

Flow

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9

History and context

The idea of throwing water outward from a spinning wheel is old; making it efficient took until the middle of the nineteenth century. **John George Appold's pump, shown at the Great Exhibition in London in 1851, used vanes curved backward against the direction of rotation**, and the comparison with straight-vaned pumps at the same exhibition made the case for curved vanes. That is the form that stuck. No patent number is asserted here: the mechanism is what matters, and it is fully documented. The drawing shown with this blueprint is a later, fully developed form: **US 981,199, 'Centrifugal Pump', Richard O. Jones of Dayton, Ohio, assignor to the Computing Scale Company; filed 25 November 1908, granted 10 January 1911.** Water enters the eye from both sides of the impeller, leaves through a vaned *"diffusion ring"*, and is collected by a volute casing that, *"as is usual, increases from a small to a large diameter to the discharge pipe"* — the growing gap step 2 asks you to print. What made the centrifugal pump dominant came later and from outside it: the electric motor and the steam turbine, both of which run fast and smoothly — exactly the drive a machine whose head goes with speed squared wants. A reciprocating pump has to be geared down from those drives; a centrifugal pump bolts straight on. The reverse machine is the turbine. A Francis turbine is, in outline, a centrifugal pump run backward — water in at the rim, energy out at the shaft. **Honest limits.** It cannot prime itself. Its efficiency falls steeply away from the flow it was designed for. It is poor at high heads with small flows, where a piston or gear pump wins. Viscous liquids — oils, syrups — cripple it. And it cavitates if sited too high above its supply or fed hot liquid, which is why the notebook in step 7 matters more than any number on the nameplate.

Materials

14

Tools Required

15

CC0 Public Domain

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