DocumentCode :
109684
Title :
Wireless Channel Modeling of Multiply Connected Reverberant Spaces: Application to Electromagnetic Compatibility Assessment
Author :
Tait, Gregory B. ; Richardson, Robert E.
Author_Institution :
Dahlgren Div., Dept. of Electromagn. & Sensor Syst., Naval Surface Warfare Center, Dahlgren, VA, USA
Volume :
55
Issue :
6
fYear :
2013
fDate :
Dec. 2013
Firstpage :
1320
Lastpage :
1327
Abstract :
Radio-frequency wireless communications and sensor networks are currently being deployed in structures that comprise confined, reflective spaces that are electromagnetically coupled. Such structures are commonly found in aviation, shipping, automotive, and warehousing industries. In this paper, a general time-dependent model is presented whose solutions directly provide key properties of the wireless communications channel in multiply connected reverberant spaces. The model equations can be solved numerically for any number of cavities and for any level (weak or strong) of coupling between the cavities. The wireless channel properties investigated in this paper include power delay profile, rms time delay spread, coherence bandwidth, average received channel power, signal-strength fading statistics, and maximum field environment. Measured and modeled channel properties are presented for two and three coupled, highly multipath spaces. These channel model parameters aid in making electromagnetic compatibility assessments of wireless network emissions in these environments.
Keywords :
electromagnetic compatibility; reverberation; statistical analysis; wireless channels; RMS time delay spread; automotive; average received channel power; aviation; coherence bandwidth; electromagnetic compatibility assessment; maximum field environment; multipath spaces; multiply connected reverberant spaces; power delay profile; radio-frequency wireless communications; shipping; signal-strength fading statistics; time-dependent model; warehousing industries; wireless communication channel modeling; wireless network emissions; wireless sensor networks; Cavity resonators; Couplings; Delay effects; Delays; Mathematical model; Numerical models; Wireless communication; Coupled reverberant spaces; multipath propagation; wireless channel modeling;
fLanguage :
English
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9375
Type :
jour
DOI :
10.1109/TEMC.2013.2252905
Filename :
6488808
Link To Document :
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