| 1 | Identify the pumped fluid | Determine chemical composition, concentration, pH, solids content, and whether the fluid is corrosive or abrasive. | Use corrosion-resistant wetted parts such as silicon carbide, ceramic, corrosion-resistant metal alloys, or chemically compatible elastomers. | Water, oils, solvents, acids, alkalis, slurries, and process chemicals require different material combinations. | Chemical attack, swelling, cracking, leakage, and shortened seal life. |
| 2 | Match the elastomer to the fluid | Check temperature, chemical exposure, pressure, and whether the elastomer contacts mineral oil, water, steam, or aggressive chemicals. | EPDM is commonly suited to hot water and steam; FKM is often used with oils and many hydrocarbons; PTFE offers broad chemical resistance but has limited elasticity. | Confirm the exact compound and service limits because compatibility varies with concentration, temperature, and pressure. | Elastomer hardening, softening, swelling, extrusion, or loss of sealing force. |
| 3 | Evaluate temperature limits | Record normal, minimum, maximum, startup, shutdown, and transient temperatures. | Select face materials and elastomers with suitable continuous and peak temperature ratings. Consider cooled, heated, or dual-seal arrangements when necessary. | High-temperature oils, hot water, thermal fluids, and cryogenic services may require specialized material and support systems. | Thermal distortion, carbonization, elastomer degradation, face separation, or premature failure. |
| 4 | Check pressure and pressure changes | Assess operating pressure, pressure spikes, pressure direction, and the pressure difference across the seal faces. | Use a pressure-rated seal design with suitable face loading, balanced geometry, and anti-extrusion support where required. | High-pressure pumps and systems with rapid pressure cycling need verification beyond the nominal operating pressure. | Face opening, leakage, extrusion, deformation, or mechanical instability. |
| 5 | Consider shaft speed | Measure rotational speed, shaft diameter, and surface speed at the seal faces. | Use balanced faces, low-friction materials, suitable spring architecture, and adequate heat removal for high-speed service. | High-speed rotating equipment may require careful control of face loading, alignment, lubrication, and dynamic balance. | Excessive heat, face wear, vibration, leakage, and unstable operation. |
| 6 | Account for abrasives and suspended solids | Identify particle size, hardness, concentration, and the tendency of solids to settle or crystallize. | Silicon carbide faces are commonly selected for abrasive or dirty services because of their high hardness. Use robust faces and protective circulation where appropriate. | Slurry pumps, wastewater, mineral processing, and crystallizing fluids require contamination control and suitable face materials. | Abrasive wear, grooving, face damage, clogging, and rapid leakage. |
| 7 | Choose compatible seal faces | Review lubrication quality, fluid cleanliness, temperature, speed, and chemical exposure. | Carbon-graphite is often used for good tribological performance; silicon carbide and tungsten carbide provide high hardness and wear resistance. Pairings must be selected for the actual service. | A hard-versus-carbon pairing may suit many clean fluids, while hard-versus-hard pairings can be useful in abrasive or poorly lubricated conditions. | Scoring, blistering, excessive friction, heat generation, or face fracture. |
| 8 | Review lubrication and dry-running risk | Determine whether the seal faces remain wetted during startup, shutdown, priming loss, or intermittent operation. | Select materials and a design capable of tolerating brief loss of lubrication, but do not treat dry-running capability as unlimited. | Installers should prevent pump operation without fluid and provide a flush, quench, or monitoring system when required. | Rapid face overheating, thermal cracking, transfer-film loss, and immediate leakage. |
| 9 | Assess installation and equipment movement | Check shaft runout, misalignment, vibration, bearing condition, thermal growth, and available installation space. | Use a seal design that accommodates the measured movement, while correcting excessive runout, misalignment, and vibration at the equipment level. | A well-selected seal cannot compensate for damaged bearings, bent shafts, poor fits, or incorrect installation. | Uneven face loading, fretting, spring fatigue, vibration-related leakage, and premature wear. |
| 10 | Plan for safety, maintenance, and verification | Consider hazardous fluids, emissions limits, inspection intervals, spare availability, and applicable safety requirements. | Use single or dual seals, containment systems, monitoring, and documented material specifications according to the risk level. | Critical, toxic, flammable, or environmentally sensitive services may require secondary containment and a defined maintenance procedure. | Personnel exposure, environmental release, unplanned downtime, and non-compliance with site requirements. |