M. Urban, C. Heil, C. Pignon, C. Combet, and P. Bauman, “The Distributed Edge Dipole (DED) Model for Cabinet Diffraction Effects,” J. Audio Eng. Soc., vol. 52, no. 10, pp. 1043–1059, Oct. 2004.
Urban M, Heil C, Pignon C, Combet C, Bauman P. The Distributed Edge Dipole (DED) Model for Cabinet Diffraction Effects. J Audio Eng Soc. 2004;52(10):1043-1059. Available from: https://aes.org/publications/elibrary-page/?id=13024
@article{Urban2004_13024,
author = {Urban, Marcel and Heil, Christian and Pignon, C. and Combet, C. and Bauman, P.},
title = {{The Distributed Edge Dipole (DED) Model for Cabinet Diffraction Effects}},
journal = {Journal of the Audio Engineering Society},
volume = {52},
number = {10},
pages = {1043--1059},
year = {2004},
month = oct,
publisher = {Audio Engineering Society},
url = {https://aes.org/publications/elibrary-page/?id=13024}
}
TY - JOUR
TI - The Distributed Edge Dipole (DED) Model for Cabinet Diffraction Effects
AU - Urban, Marcel
AU - Heil, Christian
AU - Pignon, C.
AU - Combet, C.
AU - Bauman, P.
T2 - Journal of the Audio Engineering Society
J2 - J. Audio Eng. Soc.
VL - 52
IS - 10
SP - 1043
EP - 1059
PY - 2004
DA - 2004/10/06
UR - https://aes.org/publications/elibrary-page/?id=13024
PB - Audio Engineering Society
LA - en
AB - A simple model is proposed to account for the effects of cabinet edge diffraction on the radiated sound field for direct-radiating loudspeaker components when mounted in an enclosure. The proposed approach is termed the distributed edge dipole (DED) model since it is developed based on the Kirchhoff approximation using distributed dipoles with their axes perpendicular to the baffle edge as the elementary diffractive sources. The DED model is first tested against measurements for a thin circular baffle and then applied to a real-world loudspeaker that has a thick, rectangular baffle. The forward sound pressure level and the entire angular domain are investigated, and predictions of the DED model show good agreement with experimental measurements.
ER -