What is covered in this document?
This document is part of a series of documents on industrial ventilation, and provides general information about hoods.
- 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 the common types of hood?
The three common classes of hoods are:
- context Enclosing.
- context Receiving.
- context Capturing.
What is meant by "capture velocity"?
The ventilation system removes contaminants by "pulling" the air (and the contaminant) into the exhaust hood and away from the worker or the source. Airflow toward the hood opening must be fast or high enough to "catch and transport" the contaminant until it reaches the hood and ducts. The required air speed is called the "capture velocity".
Any air motion outside of the hood and surrounding area may affect how the air flows into the hood. The ventilation system will require a higher airflow speed to overcome air disturbances. As much as possible, the other sources of air motion should be minimized or eliminated for the ventilation system to work effectively.
Common sources of external air movement include:
Where the contaminant is released with practically no other air currents in a room, the recommended capture velocity is generally around 0.5 m/s (100 feet per minute (fpm)). How fast is 100 fpm? Blowing lightly on your hand so that you can just barely feel air movement is about 100 fpm. It is easy to see how it will take very little air movement from other sources to affect how well a hood can capture contaminants. (See Figure 6).
In situations, such as grinding for example, where the contaminants are released in the air at high speed and where there is a rapid air circulation in the room, the necessary capture velocity may be 5 to 10 times higher.
In the case of partially enclosed hoods, the capture velocity is measured at the hood opening and it is known as face velocity.
- context Thermal air currents, especially from hot processes or heat-generating operations.
- context Motion of machinery such as grinding wheels, belt conveyor, etc.
- context Material motion such as dumping or filling.
- context Movements of the operator.
- context Room air currents (which are usually considered 50 fpm (feet per minute), but may be much higher).
- context Rapid air movement caused by spot cooling and heating equipment.
What are the general rules for hood design?
The shape of the hood, its size, location, and rate of airflow each play an important role in design considerations. Each type of hood has specific design requirements, but several general principles apply to all hoods:
If a hood is moved from two inches away from a source to four inches away (twice the distance), the airflow required to provide the same degree of capture will be four times greater.
- context The hood should be placed as close as possible to the source of contamination, preferably enclosing it. The more completely enclosed the source is, the less air will be required for control. The required airflow rate varies with the square of the distance from the source as shown in Figure 7.
- context The air should travel from the source of contaminant and into the hood with enough velocity (speed) to adequately capture the contaminant.
- context The hood should be located in a way that the operator is never between the contaminant source and the hood.
- context The natural movement of contaminants should be taken into consideration. For example, a hood should be placed above hot processes to trap rising gases and heat. A grinding wheel or woodworking machine should be equipped with a partial enclosure to trap the flying particles where they spin off.
- context Flanges or baffles should be used around the hood opening to increase the capture effectiveness and reduce ventilation air requirements.
How do I know which type of hood is adequate for the process?
The hood should be selected according to the characteristics of the process to ensure that the worker’s exposure to airborne contaminants is minimal.
The following table contains a comparison of the three types of hoods.
Performance is reduced by:
- context Incorrect positioning of the hood in respect to the source
- context Cross-drafts and air turbulence
- context Reduction of the exhaust airflow
How do I know if a hood is working as designed?
The ASHRAE 110 (test) is the recognized method for evaluating the performance of fume hoods. A qualified person should do the testing.