R. Hersberger, G. Hauser, D. Noy, and J. Storyk, “Audio Control Room Optimization Employing BEM (Boundary Element Method),” in Proc. AES Convention 144, May 2018, Paper 9967. [Online]. Available: https://aes.org/publications/elibrary-page/?id=19484
Hersberger R, Hauser G, Noy D, Storyk J. Audio Control Room Optimization Employing BEM (Boundary Element Method). In: AES Convention 144. Audio Engineering Society; 2018. Paper 9967. Available from: https://aes.org/publications/elibrary-page/?id=19484
@inproceedings{Hersberger2018_19484,
author = {Hersberger, Robert and Hauser, Gabriel and Noy, Dirk and Storyk, John},
title = {{Audio Control Room Optimization Employing BEM (Boundary Element Method)}},
booktitle = {AES Convention 144},
note = {Paper 9967},
year = {2018},
month = may,
publisher = {Audio Engineering Society},
url = {https://aes.org/publications/elibrary-page/?id=19484}
}
TY - CPAPER
TI - Audio Control Room Optimization Employing BEM (Boundary Element Method)
AU - Hersberger, Robert
AU - Hauser, Gabriel
AU - Noy, Dirk
AU - Storyk, John
T2 - AES Convention 144
M1 - Paper 9967
PY - 2018
DA - 2018/05/06
UR - https://aes.org/publications/elibrary-page/?id=19484
PB - Audio Engineering Society
LA - en
AB - The Boundary Element Method (BEM) is a state-of-the art tool in many engineering and science disciplines. In acoustics, the usage of BEM is increasing, especially for low frequency analysis, since the computational effort for small to medium geometries and long wavelengths is comparatively small. While BEM is well known to give reliable results for correctly programmed room shapes, the paper at hand demonstrates that the BEM model can also respond accurately to inserted absorptive materials, and hence the method is useful for virtually prototyping the efficiency of proposed acoustical modifications ahead of actual construction.
ER -