Air accumulating during normal operation Water or other liquid pipelines with air collecting at high points | Release small pockets of air while the pipeline remains pressurized. | Small-orifice air-release valve; select an orifice and pressure rating suited to the required air-release rate and operating pressure. | Confirm the air-release capacity at the actual differential pressure. Install at identified air-collection points and provide access for inspection. |
Pipeline filling or draining Large air volumes entering or leaving a line | Admit or exhaust large volumes of air to help prevent damaging vacuum or excessive pressure during transient events. | Large-orifice air/vacuum valve, sized using the filling, draining, and transient-flow requirements. | Check allowable air velocity, pressure changes, possible air discharge, and the risk of water-column separation. Do not size solely by pipeline diameter. |
| Both operating air pockets and filling or draining events | Small-volume air release under pressure plus large-volume air admission and exhaust. | Combination valve with separate air-release and air/vacuum functions, or an approved integrated arrangement. | Verify both operating and transient capacities, pressure limits, discharge behavior, and suitability for the installation orientation. |
| Operating pressure and pressure surges | Valve pressure class must accommodate the maximum design pressure, including relevant surge conditions. | Select a pressure class compatible with the system design and the applicable piping and valve standards. | Compare minimum and maximum operating pressures with the valve’s rated limits. Assess surge pressures separately; do not assume the nominal line pressure covers transients. |
| Fluid chemistry and water quality | Wetted parts, seals, and coatings must resist the conveyed liquid and expected contaminants. | Choose body and internal materials compatible with the fluid, temperature, and corrosion environment; specify suitable elastomers. | Review chemical compatibility, solids or sediment, corrosion potential, and any potable-water or process-fluid requirements. |
| Temperature and outdoor exposure | Materials and seals must remain suitable across the system’s temperature range and site conditions. | Select temperature-rated seals and materials; consider weather protection, drainage, and freeze protection where applicable. | Check both fluid and ambient temperature limits. Account for freezing risk, UV exposure, flooding, and access for maintenance. |
| Connection and installation location | Connection type, size, and layout must match the pipeline and allow effective venting. | Match flanged, threaded, or other specified connections to the project standard; provide a suitable branch or riser where required. | Locate valves at surveyed high points and other air-collection locations. Confirm vertical installation requirements, isolation, drainage, and service clearance. |
| Air discharge and surrounding area | Discharged air and any entrained liquid must be managed safely. | Provide a discharge arrangement appropriate to the valve design and site; consider a controlled outlet where unrestricted discharge is unsuitable. | Assess flooding, splash, noise, contamination ingress, and safe access. Avoid arrangements that obstruct the outlet or compromise valve operation. |
| Final sizing and verification | Valve performance must suit actual air-flow demands and system transients. | Use project-specific air-flow calculations and certified performance data for the selected valve configuration. | Provide pipeline profile, flow and filling or draining rates, operating pressure, design pressure, fluid, and transient analysis results for final engineering review. |