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Airflow noise in telephone handsets and methods for its reduction
Michael R Stinson1, Gilles A Daigle, John F Quaroni
1Institute for Microstructural Sciences, National Research Council, Ottawa, Ontario K1A OR6, Canada. mike.stinson@nrc-cnrc.gc.ca
The Journal of the Acoustical Society of America
|August 27, 2005
Summary
Researchers investigated airflow noise in telephone handsets caused by plosive sounds. Using multiple small holes in the mouthpiece significantly reduced noise by over 30 dB for all airflow directions.
Area of Science:
- Acoustics
- Telecommunications Engineering
- Fluid Dynamics
Background:
- Plosive sounds in speech can generate disruptive airflow noise in telephone handsets.
- This noise originates from air bursts interacting with the microphone and mouthpiece design.
- Existing handset designs may not adequately mitigate this specific type of acoustic interference.
Purpose of the Study:
- To investigate the sources and characteristics of airflow noise in telephone handsets.
- To evaluate the effectiveness of different mouthpiece port and tube configurations in reducing this noise.
- To identify optimal design parameters for minimizing airflow-induced noise in telephone microphones.
Main Methods:
- Experimental investigation of modified telephone handsets with varied port and tube arrangements.
- Utilized a narrow air stream to probe the mouthpiece and recorded microphone signals.
- Systematically analyzed the impact of single, dual, and multiple exterior hole configurations.
Main Results:
- Single microphone holes can lead to static pressure buildup and noise generation.
- Dual-hole configurations can reduce noise but may increase it for specific airflow directions due to stream interaction.
- A large number of small exterior holes (under 0.5 mm) reduced airflow noise by over 30 dB across all incident directions.
- Positioning exterior holes away from the direct line of the sound tube to the microphone is beneficial.
Conclusions:
- Telephone handset mouthpiece design significantly impacts airflow noise levels.
- Optimizing the number, size, and placement of exterior holes is crucial for noise reduction.
- A multi-hole design with numerous small apertures offers substantial broadband noise attenuation, enhancing call clarity.