// Noise

Noise - Control Measures

How is noise made? Sound can be produced by vibration or as a result of aerodynamic systems.

How is noise made?

Sound can be produced by vibration or as a result of aerodynamic systems. Vibration-induced noises are produced by: The sound may be amplified by reflective surfaces that are around the devices. Aerodynamic sources of noise are air or fluid flows through pipes and fans or as the pressure drops in the air distribution system. Examples include: For basic information on sound generation, please see the OSH Answers fact sheet: Noise – Basic Information.

What are the steps to take to control the noise in the workplace?

The steps that must be taken in order to effectively and efficiently control the noise in the workplace are:

How can we reduce the noise exposure?

The exposure to noise can be reduced by eliminating the source of noise (if possible), substituting the source with a quieter one, applying engineering modifications, using administrative controls, and by using protective equipment. The best way to reduce exposure to noise is to eliminate it at the design stage. In terms of equipment, always try to choose features that will reduce the noise level to a minimum acceptable level. In terms of new installations, select quiet equipment, have a procurement policy that opts for acquiring quiet equipment, and eliminate design flaws which would amplify the noise. Engineering modifications include changes that affect the source or the path of the sound. Engineering controls are the preferred method of noise control in already established workplaces where noise protection was not factored in at the design stage. It is generally agreed that controlling the source is more cost-effective than those controlling noise along the path. See the engineering controls section below for examples. Administrative controls are measures that control the noise at the worker. These controls should be used in addition to engineering controls, and they may include: Depending on the type and level of noise, the number of workers exposed, and the type of work, engineering controls might not always be possible. A combination of administrative control (e.g., limiting exposure length) and personal protection equipment such as ear muffs or ear plugs may be considered. However, we must keep in mind that the administrative measures and the use of PPE may not be effective in protecting the workers (e.g., PPE may be used incorrectly or may not be used at all; administrative controls may not be followed, etc.). The use of PPE should be the last resort for controlling the exposure to noise. For information about hearing protectors, please refer to our Hearing Protectors OSH Answers fact sheet.

What engineering controls can be used to reduce vibration-induced noise?

Some of the engineering controls recommended for reducing vibration at the source are: To prevent damage due to friction and impact with other materials, the damping material may be sandwiched between the wall of the equipment and a steel sheet or another material resistant to abrasion. This treatment is known as constraint layer treatment, and is adequate for chutes, hoppers, machine guards, conveyors, etc. Certain rules regarding the thickness of the damping material in relation to the thickness of the structure to be coated must be observed in order to obtain adequate noise reduction.

What engineering controls can be used to reduce aerodynamic-induced noise?

Noise control specialists recommend the implementation of the following engineering controls to reduce the noise associated with unstable air or water flow. (From: WorkSafe Victoria (2023) - Controlling fan and ventilation noise)

What are other engineering controls?

What other general measures can I take to control the noise?

Perform regular maintenance. Focus on identifying and replacing worn or loose parts, lubricating moving parts, and ensuring that rotating equipment does not go off balance. Substitute noisy processes with quieter ones. For example, replace: Reduce sound reverberation in the room. Reverberation happens when the sound produced in an enclosure hits a hard reflective surface. The sound reflects back in the room and adds to the original source. The strength of the reverberation decreases with the distance from the source to the reverberating surface. In some cases, the reverberated sound may dominate the original sound. In such cases, padding the reflective surfaces with sound-absorbing materials will reduce the sound level. Reverberation can be reduced by arranging the equipment in the room in such a way that the equipment is not too close to too many reflective structures. The sound level of a noise source placed near hard reflective surfaces increases by 3 dB for each surface. For example, if a motor is placed directly on the floor, close to one of the walls of the room (the motor is close to two surfaces) (Figure 3, Position 2), the sound level will increase by 6 dB; if the same motor is placed in the corner of the room (close to three surfaces: two walls and the floor) (Figure 6, Position 3), the sound level will increase by 9 dB. Another way to reduce the sound radiation is to reduce the radiating surface (e.g. covering a transmission gear with a mesh enclosure instead of a solid box).