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Pumps and Pumping Systems

Pumps and pumping systems move liquids through every stage of the process. This zone covers centrifugal, positive displacement, diaphragm, peristaltic and dosing pumps and the drives, seals and controls around them.

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Pumps and Pumping Systems: how it works, key numbers and troubleshooting

Fundamentals

Centrifugal pumps

An impeller adds velocity to the liquid and the volute turns that velocity into pressure. Flow and head are linked by the pump curve, so the duty point is wherever that curve crosses the resistance of the system. The affinity laws then say what happens at another speed: flow moves with speed, head with the square, absorbed power with the cube. That last one is why slowing a pump down saves far more energy than throttling it.

Positive displacement pumps

A gear, lobe, screw, piston, diaphragm or hose pump traps a fixed volume and pushes it along, so flow stays roughly constant whatever the pressure. That makes them the answer for viscous liquids, for dosing, and for anything that must keep moving against a rising back pressure. The trade is that they will happily build pressure until something bursts, so a relief valve is not optional.

NPSH and cavitation

A pump can only pull liquid in if the pressure at the suction eye stays above the vapour pressure. Available NPSH comes from the tank level, the atmospheric or blanket pressure and the friction in the suction line; required NPSH comes from the pump. When available drops below required, vapour bubbles form and collapse on the impeller, and the noise, the vibration and the pitting follow within weeks.

Sealing the shaft

Where the shaft leaves the casing you either seal it or avoid the problem. Gland packing is cheap and tolerant but drips by design; a mechanical seal runs two lapped faces against each other and needs a clean, cool film between them, flushed or quenched if the product is dirty or hot. Magnetic drive and canned motor pumps have no shaft seal at all, which is why they are standard for solvents, acids and anything that must not escape.

Driving and controlling the pump

The motor, the drive and the control strategy decide most of the running cost. A control valve wastes the head it destroys; a variable speed drive moves the pump curve instead and cuts absorbed power by the cube of the speed change. Below roughly half speed a centrifugal pump loses head faster than it loses friction, so a minimum speed and a minimum flow bypass belong in the design.

Key parameters

ParameterTypical rangeRule of thumb
Duty point against BEP70 to 120 % of best efficiency flowOutside that window radial loads rise and bearings and seals pay for it
NPSH marginNPSH available 0.5 to 1 m above NPSH required, more for hot or light liquidsTake the margin at the highest flow, not at the duty point on paper
Suction line velocity0.6 to 1.5 m/sOne size larger on the suction than on the discharge is normal, not a mistake
Discharge line velocity1.5 to 3 m/sAbove 3 m/s friction and erosion climb faster than the pipe saving
Viscosity, centrifugalPractical up to 200 to 300 cPBeyond that head and efficiency fall away and a positive displacement pump wins
Minimum continuous flow10 to 30 % of BEPFit a bypass or a minimum flow valve; a pump at shut-off boils itself dry
EfficiencyCentrifugal 60 to 85 %, positive displacement 70 to 90 %Efficiency at the duty point matters, not the number on the datasheet
Speed turndown on a driveDown to 50 to 60 % of rated speedCheck the head curve still clears the static head at the lowest speed

Troubleshooting

SymptomLikely causesWhat to do
Pump runs but delivers nothingLost prime, air pocket in the suction line, closed valve, or wrong rotation after a motor rewireVent the casing, check the rotation arrow, walk the suction line for high points and confirm the tank valve is open
Noise like gravel in the casingCavitation: suction lift too high, strainer blocked, liquid too hot, or flow far above the design pointRaise the level or the suction pressure, clean the strainer, shorten and widen the suction line, and trim the flow back towards BEP
Mechanical seal fails within weeksDry running, no flush on a dirty product, misalignment, or a duty point far off BEPCheck the seal support plan, restore the flush, laser align the coupling and move the duty point back into the window
Vibration rises over a few monthsImpeller wear or fouling, worn wear rings, bearing damage, or a pipe strain that grew after a modificationTrend the vibration, open and inspect the impeller and wear rings, and release the pipe flanges to check for strain
Bearings keep failing on the same pumpOver-greasing, water in the oil, shaft misalignment, or running off BEPSet a lubrication schedule, fit a proper breather, re-align cold and hot, and correct the duty point
Motor trips on overloadLiquid denser or more viscous than designed, speed too high, or a blocked discharge that moved the pump along its curveCheck the actual density and viscosity, measure the current against the curve, and confirm the discharge is genuinely open
Flow slowly drops over a yearWear ring clearance opening up, impeller erosion, or scaling in the pipeworkMeasure the head against the original curve, renew the wear rings, and clean or replace the line before blaming the pump

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Emile Egger & Cie SA Emile Egger & Cie SA is a medium-sized, independent and owner-operated Swiss industrial enterprise with a concentration on the development and manufacture of pumps and Iris® diaphragm control valves. Cole-Parmer Cole-Parmer, an Antylia Scientific company is a global manufacturer of lab equipment and supplies for research and process. HERMETIC-Pumpen GmbH HERMETIC-Pumpen GmbH is a leading developer and manufacturer of hermetically sealed pumps and pumping technologies. The specialist for canned motor pumps has earned a worldwide reputation for its safe and long-lasting pumps, which can be used for the most extreme applications and conveying hazardous media. Industrial Flow Solutions Industrial Flow Solutions™ specializes in the design, manufacturing, sales, & service of wastewater pumps & controls for municipal, industrial, commercial, and residential applications. Fluid Metering, Inc. From Nanoliters to Liters, Fluid Metering offers custom fluid control solutions designed to meet customer requirements and exceed expectations. NETZSCH Pumpen & Systeme GmbH For more than 60 years, NETZSCH Pumps & Systems has served markets worldwide with Pumps & Pumping systems and accessories, providing customized, sophisticated solutions for applications in every type of industry. DESMI A/S Keeping Production Flowing Efficiently - From a solid foundation in pumps, we have evolved to offer a wider range of flow technology solutions that help our customers move, monitor, treat, and manage liquids – and protect water resources from pollution. CP Pumpen AG CP Pumps are leading manufacturer of premium quality centrifugal chemical process pumps and provider of services dedicated to helping our customers increase energy efficiency and achieve sustainable environmental improvements in their fluid handling systems.

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Frequently asked about pumps and pumping systems

Centrifugal or positive displacement?

Centrifugal pumps suit thin liquids, high flows and systems where the flow may vary with pressure; they are cheaper, simpler and easier to control. Positive displacement pumps suit viscous liquids, low flows, dosing and any duty where the flow must stay constant while the back pressure rises. A rough dividing line is 200 to 300 cP viscosity, or the moment the required accuracy becomes a percentage rather than an order of magnitude.

Why does my pump cavitate?

Because the pressure at the suction eye has fallen below the vapour pressure of the liquid. The usual culprits are a blocked strainer, a suction line that is too long or too narrow, a level that has dropped, or a liquid running hotter than the design. Cavitation is a system problem far more often than a pump problem, so measure the available NPSH before changing the pump.

Should I throttle a valve or slow the pump down?

Slow it down whenever the duty allows. Throttling moves the pump up its curve and destroys the head across the valve, so you still pay for it. A variable speed drive moves the whole curve and absorbed power falls with the cube of the speed, which typically pays back within a year or two on a pump that runs continuously at part load. Keep a minimum speed so the pump still clears the static head.

Mechanical seal or seal-less?

A mechanical seal is cheaper and serviceable, but it needs a clean film between the faces and it will always leak a little. Magnetic drive and canned motor pumps remove the leak path altogether, which is why they are standard for solvents, acids and hazardous duties. The price is a lower tolerance for dry running and for ferrous particles, and a higher purchase cost.

How do I pump a shear-sensitive product?

Keep the speed and the shear rate down and avoid tight clearances. Lobe, circumferential piston, progressive cavity and hose pumps handle emulsions, crystals, fruit pieces and live cultures far better than a high speed centrifugal. If a centrifugal is unavoidable, oversize the impeller and run it slowly rather than trimming a small one and running it fast.

What does running off the best efficiency point actually cost?

More than the efficiency figure suggests. Away from BEP the flow around the impeller becomes uneven, the radial load on the shaft rises, and that load lands on the bearings and the seal. Pumps run hard to the left of BEP typically show seal and bearing failures within months, long before anyone notices the extra kilowatts.

How long can a pump run dry?

A centrifugal with a mechanical seal often has seconds rather than minutes, because the seal faces rely on the liquid for cooling. Gland packing and hose pumps tolerate more; magnetic drive pumps can lose the bearing bushes almost at once. If dry running is a real risk, fit level or power monitoring that stops the pump, rather than relying on the operator.

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