Comparison Failure and Successful Methodologies for Diffusion Measurements Undertaken inside Two Different Testing Rooms
Abstract
:1. Introduction
Literature Review
2. Technical Description of the Two Types of Diffusers
- Two Quadratic Residue Diffusers (QRD), varying in material component (i.e., MDF, plywood) and used in the horizontal and vertical configuration of the grooves;
- A smooth painted reflecting panel was used as the backing of the QRDs.
2.1. The Quadratic Residue Diffusers (QRD)
- p = 17 for the horizontal sequences;
- p = 13 for the vertical sequences.
2.2. Reflecting Panel
3. Measurements and Methodology
3.1. Standards and Regulations
3.1.1. Methodology in Line with ISO 17497: 2004+A1:2014, Part 1—Measurement of Random-Incidence Scattering Coefficient in a Reverberant Room
3.1.2. Methodology in Line with ISO 17497:2012, Part 2—Measurement of the Directional Diffusion Coefficient in a Free Field
3.2. Real-Scale Room Models and Instrumentation
- A semi-anechoic room having dimensions 9 × 10 × 4.5 m [L × W × H] (Room A), one of the facilities of the SCM Group located in Rimini. This room has a hard finish floor and absorbing panels applied on walls and ceiling.
- An equalized loudspeaker (Genelec 8351 SAM), Finland;
- 25 microphones pre-polarized for free field conditions (B&K 4188), Denmark;
- 8 converters for data acquisition (Behringer ADA-8000), Germany;
- Firewire interface M-Audio (Profire Lightbridge), USA.
3.3. Tests Performance
4. Data Analysis and Post-Processing
- The direct sound was calculated by following the theory of sound propagation in free field conditions, as indicated in Equation (5);
- The reflected soundwave in the specular zone is obtained by the contribution of the specular reflected wave and the diffused reflected wave, as indicated in Equation (6);
- The reflected soundwave out of the specular zone is given by the contribution of the diffuse energy only, as indicated in Equation (7).
- is the distance between the sample and the central microphone;
- is the distance between the sample and the sound source.
5. Results and Discussion
5.1. Measurement Results Undertaken inside Room A—Semi-Anechoic Room Facility at the SCM Group of Rimini
5.2. Measurement Results Undertaken inside Room B—Reverberant Room Facility at the University of Parma
5.3. Considerations upon Measurements’ Results Undertaken inside Room A and B
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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Configuration | Room A | Room B |
---|---|---|
Empty Room | Tested | Tested |
Only reflecting panel | - | Tested |
Only MDF QRD—Vertical | - | - |
Only MDF QRD—Horizontal | - | - |
MDF QRD with backing refl. Panel—Vertical | Tested | - |
MDF QRD with backing refl. Panel—Horizontal | Tested | - |
Only Plywood QRD—Vertical | - | Tested |
Only Plywood QRD—Horizontal | - | Tested |
Plywood QRD with backing refl. Panel—Vertical | Tested | Tested |
Plywood QRD with backing refl. Panel—Horizontal | Tested | Tested |
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Tronchin, L.; Farina, A.; Bevilacqua, A.; Merli, F.; Fiumana, P. Comparison Failure and Successful Methodologies for Diffusion Measurements Undertaken inside Two Different Testing Rooms. Appl. Sci. 2021, 11, 10523. https://doi.org/10.3390/app112210523
Tronchin L, Farina A, Bevilacqua A, Merli F, Fiumana P. Comparison Failure and Successful Methodologies for Diffusion Measurements Undertaken inside Two Different Testing Rooms. Applied Sciences. 2021; 11(22):10523. https://doi.org/10.3390/app112210523
Chicago/Turabian StyleTronchin, Lamberto, Angelo Farina, Antonella Bevilacqua, Francesca Merli, and Pietro Fiumana. 2021. "Comparison Failure and Successful Methodologies for Diffusion Measurements Undertaken inside Two Different Testing Rooms" Applied Sciences 11, no. 22: 10523. https://doi.org/10.3390/app112210523
APA StyleTronchin, L., Farina, A., Bevilacqua, A., Merli, F., & Fiumana, P. (2021). Comparison Failure and Successful Methodologies for Diffusion Measurements Undertaken inside Two Different Testing Rooms. Applied Sciences, 11(22), 10523. https://doi.org/10.3390/app112210523