What is covered in this document?
This document is part of a series of documents on industrial ventilation. This document covers the basic principles of duct design.
- context Introduction
- context Units and Measures
- context Ducts
- context Fans
- context Hoods
- context Air Cleaning Devices
- context Installation and Maintenance (general)
- context Troubleshooting
- context Glossary of Common Terms
What are some basic principles of duct design?
Duct systems should be designed to have airflow through the ducts with as little friction or resistance as possible. The amount of air that flows through a duct depends on the cross-section area (duct opening area) of the duct and the air speed. Air moving too slowly will allow contaminants such as dusts to settle and accumulate. These particles will eventually clog the duct. Air moving too fast wastes power, can create noise problems, and may cause excessive abrasion, especially in branches and elbows, due to increased friction between the air transporting dust particles and the duct. Recommended speed ("duct velocity") for different contaminants can be found in reference books on ventilation.
Duct systems typically require large amounts of air to move relatively small amounts of contaminants. The required volume of airflow depends on the acceptable concentration of air contaminants inside the workspace. A carefully designed system can achieve the required air concentration while using the least amount of power. Other design considerations include initial capital costs, reliability, maintenance, and durability of air handling equipment.
The table below illustrates some basic duct design principles.
- context Principle | Design for less resistancefor airflow | Avoid design that causes more resistance to airflow
- context Streamline the system as much as possible to minimize air turbulence and resistance.
- context Round ducts provide less resistance than square ducts (less surface area).
- context Smooth, rigid ducts provide less resistance than flexible, rough ducts.
- context Short runs of ducts provide less resistance than long runs.
- context Straight runs offer less resistance than runs with elbows and bends.
- context Duct branches should enter at an angle of 30° (or less) to 45° rather than right angles, and at a location where the duct expands gradually.
- context Elbows with gradual bends provide less resistance than sharp bends.
- context Large diameter ducts provide less resistance than small diameter ducts.
How do I know if ducts are functioning as designed?
Most performance problems in a ventilation system are from the improper functioning of the ducts. It is common for a system to be well designed and properly installed, but develop problems as time goes on.
It is necessary to measure airflow and static pressures in the duct network on a regular, scheduled basis to be sure the system is working within its design specifications and to troubleshoot any possible problems. Trained people such as ventilation experts or occupational hygienists using specialized equipment should carry out these measurements.
However, below are some tips for conducting a simple inspection. You will need a drawing of the ventilation system. If you do not have one, make one as you go. While you follow the entire system take note of the following:
Document any of the above problem(s) and possible causes. Bring these problems to the attention of the building maintenance staff, your supervisor, or a ventilation expert if possible.
- context Reduced ability to capture the contaminants ("fugitive" contaminants can be measured or sometimes be seen).
- context Constant plugging of a duct. Tap the duct gently with a stick to see if it has layers of build-up,
- context Damaged ducts (dents, holes).
- context Damaged or missing gaskets.
- context Visible dust on equipment connected to the ventilation system.
- context Obvious add-ons to the system (especially those that were added on after the initial installation of the system).
- context Opened blast gates or other openings.
- context Duct cut-offs (covered with blank flanges).