| 1. Match the fender to the berth and vessel | Vessel size and displacement, approach speed and angle, tidal range, berth layout, and frequency of berthing. | Use the actual operating conditions to establish the required energy absorption and allowable reaction force. Ask a qualified designer or supplier to verify the selection for the site. | Correct sizing helps prevent excessive compression, overloading, and premature damage. Reassess the selection if vessel traffic or berth conditions change. |
| 2. Compare the main fender constructions | Solid rubber, pneumatic rubber, and foam-filled fenders differ in construction, buoyancy, and inspection needs. | Solid rubber: fixed, robust installations. Pneumatic: floating applications where buoyancy and flexibility are useful. Foam-filled: floating applications that need a resilient core without air-pressure management. | Solid rubber generally needs visual checks for cracking, tearing, and attachment wear. Pneumatic units need pressure and outer-cover checks. Foam-filled units need checks for skin damage, seams, and hardware. |
| 3. Check energy absorption and reaction force | Energy absorption, reaction force, deflection, and the fender's published performance curves. | Choose a fender that can absorb the berthing energy while keeping forces on the vessel hull and berth structure within their design limits. Compare performance at the expected compression, not just nominal size. | Repeated over-compression can damage fenders and supporting structures. Inspect for permanent deformation, cracks, loose fixings, or other signs of overloading. |
| 4. Consider abrasion and contact surfaces | Hull type, surface friction, vessel movement alongside the berth, and whether a low-friction facing is needed. | UHMW-PE panels are commonly used as low-friction facings on suitable fender systems. Check panel thickness, fixing details, and compatibility with the fender and berth design. | Inspect facing panels for wear, gouges, loose or missing fasteners, and damage to the backing fender. Replace worn components before the underlying structure is exposed. |
| 5. Account for the marine environment | Exposure to salt water, sunlight, temperature variation, oils or chemicals, marine growth, and debris. | Confirm that the fender's rubber compound, outer skin, coatings, and metal hardware are suitable for the site's exposure. Environmental suitability depends on the exact product construction and operating conditions. | Salt and moisture can corrode metal components, while sunlight and environmental exposure can age some materials. Rinse when appropriate and inspect coatings, rubber surfaces, and hardware regularly. |
| 6. Include installation and maintenance access | Mounting arrangement, anchor loads, access for inspection, available lifting equipment, and replacement procedures. | Check that the berth structure can support the fender system and its design loads. Plan safe access to chains, anchors, panels, and other parts that may need inspection or replacement. | A durable fender can still fail early if fixings corrode or loosen unnoticed. Schedule checks of anchors, chains, bolts, and connections, and replace damaged hardware with compatible components. |
| 7. Verify performance documents and set an inspection plan | Drawings, performance data, material details, test or inspection records, and applicable project requirements. | Request documentation for the specific fender configuration and confirm that it meets the berth's design requirements. Establish inspection intervals based on use, exposure, and the fender manufacturer's guidance. | Keep records of inspections, pressure readings for pneumatic units, repairs, and replacements. Consistent records help identify changes in condition before they affect performance. |