Modeling and Mapping of Combined Noise Annoyance for Aircraft and Road Traffic Based on a Partial Loudness Model
Abstract
:1. Introduction
2. Materials and Methods
2.1. Partial Loudness Calculation
2.2. Research Field
- Residents in the research area should be simultaneously exposed to aircraft and road noises.
- No other noise sources (industrial or railway) should exist in the field for evaluating aircraft and road traffic noise sources.
2.3. Stimuli
2.4. Validation Test of a Partial Loudness Model with Binaural Inhibition
2.4.1. Stimuli
2.4.2. Experimental Equipment
2.4.3. Participants
2.4.4. Procedure
- The subjects first heard aircraft noise without background noise. Next, the subjects listened to aircraft noise with road traffic noise in the background.
- The pre-programmed computer then asked a comparison of whether the aircraft noise with the background noise was quieter, louder, or equal to the aircraft noise in the quiet environment.
- The program was adjusted the level of the stimuli according to the responses of the subjects. For example, if the subject answered that the aircraft noise was louder with background noise than in quiet conditions, the aircraft noise level with background noise was reduced in the next session.
- The level change steps decreased from 5 dB to 1 dB.
- The experiment proceeded until the subjects select “same”.
- Nine scenarios (three aircraft noises × three road traffic noises) were conducted in combination with each dB of aircraft noise and road noise.
2.5. Jury Test for Modeling of Short-Term Annoyance
2.5.1. Stimuli
2.5.2. Experimental Equipment
2.5.3. Participants
2.5.4. Procedure
- The subjects heard the aircraft noise in quiet conditions and scored the annoyance from the aircraft noise on the 11-length scale.
- Next, they heard the road traffic noise in quiet conditions and scored the annoyance from the road traffic noise on the 11-length scale.
- The aircraft noise was played with the road traffic noise; the subjects were asked to score the level of annoyance of the aircraft noises in the presence of road traffic noise.
- The road traffic noise was played with the aircraft noise, and the experimenter asked the subjects to rate the level of annoyance of the road traffic noise in the presence of aircraft noise on an 11-point numeric scale.
- The combined aircraft and road traffic noises were played, and the subjects were asked to rate the level of annoyance of the total combined noises on the 11-point numeric scale.
2.6. Long-Term Annoyance Model
2.6.1. Noise Mapping
- : Sound emission level at 25m distance from the source under idealized condition (speed 100 (80) km/h for a light (heavy) vehicle, road gradient < 5%, smooth asphalt)
- : Mean emission level for each lane at a receiver position
- : Sound level at a receiver position
- Q: Traffic volume per hour
- P: Percentage of heavy trucks P (Weight > 2.8 tons)
- : Correction for the speed limit
- (a)
- (b)
- (c)
- (d)
- (e)
- : the speed limit ranged from 30 to 130 km/h for light vehicles
- (f)
- : the speed limit ranged from 30 to 130 km/h for light vehicles
- : Correction for road surface
- : Correction for road gradient
- (a)
- for
- (b)
- for
- (c)
- g: Road gradient
- : Correction for the absorption characteristics of building surfaces
- : Attenuation coefficient for the distance and air absorption
- : Attenuation coefficient due to ground and atmospheric conditions
- : Attenuation coefficient due to topography and buildings dimensions
- K: Increased effect of light controlled intersections
2.6.2. Field Survey
2.6.3. Calculation of Partial Loudness Regarding Points of the Survey Area
2.7. The Statistical Analysis
2.8. Annoyance Map
3. Results
3.1. Validation of the Partial Loudness Model with Binaural Inhibition
3.2. Perceived Annoyance in Laboratory Tests
3.3. Perceived Annoyance in Field Survey
3.4. Annoyance Map
4. Discussion
4.1. Perceived Annoyance in Laboratory Tests
4.2. Perceived Annoyance in Field Survey
4.3. Relationship between Laboratory and Field Studies
4.4. Annoyance Map
4.5. Limitations
4.6. Future Work
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Group | Noise Range | Subjects |
---|---|---|
Group 1 | less than 50 dBA | 454 |
Group 2 | 50–60 dBA | 274 |
Group 3 | 60–70 dBA | 210 |
Group 4 | Over 70 dBA | 62 |
Total | 1000 |
Contents | <55 dB (n = 580) | 55–65 dB (n = 275) | 65 dB < (n = 145) | p-Value | |
---|---|---|---|---|---|
Age (years) | 45.4 ± 16.8 | 44.6 ± 16.1 | 46.9 ± 15.6 | 0.398 | |
Residential period (years) | 8.5 ± 8.4 | 7.9 ± 7.3 | 7.0 ± 5.9 | 0.112 | |
BMI (kg/m2) | 23.8 ± 3.7 | 23.9 ± 3.7 | 22.7 ± 3.2 | 0.405 | |
Sex | Male | 266 | 123 | 59 | 0.534 |
Female | 314 | 152 | 86 | ||
Educational level | Secondary Level | 239 | 94 | 52 | 0.092 |
University Level | 331 | 181 | 91 | ||
Marriage | No | 205 | 100 | 44 | 0.462 |
Yes | 372 | 175 | 100 | ||
Monthly income (1000 KRW) | <3000 | 309 | 126 | 53 | <0.001 |
≥3000 | 211 | 133 | 81 | ||
Smoking | No | 469 | 250 | 126 | 0.001 |
Yes | 111 | 25 | 19 | ||
Drinking | No | 314 | 173 | 90 | 0.027 |
Yes | 266 | 102 | 55 | ||
Exercise | No | 417 | 183 | 101 | 0.277 |
Yes | 163 | 92 | 44 |
Aircraft Noise (dB) | Road Traffic Noise (dB) | Experimental Results (dB) | Predicted Results (dB) | Gap (dB) |
---|---|---|---|---|
68 | 55 | 68.8 | 69.1 | 0.5 |
73 | 73.1 | 73.6 | 0.5 | |
78 | 78.3 | 78.3 | 0 | |
68 | 65 | 70.2 | 70.9 | 0.7 |
73 | 74.1 | 74.9 | 0.8 | |
78 | 78.7 | 79.1 | 0.4 | |
68 | 75 | 73.4 | 74.3 | 0.9 |
73 | 77.4 | 77.4 | 0.0 | |
78 | 80.1 | 80.9 | 0.8 |
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Lee, W.; Chun, C.; Kim, D.; Lee, S. Modeling and Mapping of Combined Noise Annoyance for Aircraft and Road Traffic Based on a Partial Loudness Model. Int. J. Environ. Res. Public Health 2021, 18, 8724. https://doi.org/10.3390/ijerph18168724
Lee W, Chun C, Kim D, Lee S. Modeling and Mapping of Combined Noise Annoyance for Aircraft and Road Traffic Based on a Partial Loudness Model. International Journal of Environmental Research and Public Health. 2021; 18(16):8724. https://doi.org/10.3390/ijerph18168724
Chicago/Turabian StyleLee, Wonhee, Chanil Chun, Dongwook Kim, and Soogab Lee. 2021. "Modeling and Mapping of Combined Noise Annoyance for Aircraft and Road Traffic Based on a Partial Loudness Model" International Journal of Environmental Research and Public Health 18, no. 16: 8724. https://doi.org/10.3390/ijerph18168724
APA StyleLee, W., Chun, C., Kim, D., & Lee, S. (2021). Modeling and Mapping of Combined Noise Annoyance for Aircraft and Road Traffic Based on a Partial Loudness Model. International Journal of Environmental Research and Public Health, 18(16), 8724. https://doi.org/10.3390/ijerph18168724