DocumentCode
1382188
Title
Computer Backplane With Free Space Optical Links: Air Turbulence Effects
Author
Rachmani, Ronen ; Zilberman, Arkadi ; Arnon, Shlomi
Author_Institution
Ben-Gurion Univ. of the Negev, Beer-Sheva, Israel
Volume
30
Issue
1
fYear
2012
Firstpage
156
Lastpage
162
Abstract
Over recent decades, there have been increasing demands for high data-rate backplanes for enhanced performance in computers. The present technology of electronic backplanes cannot meet the required data-rate demands for next-generation computers, indicating a need for a technology shift from the electronic to the optic domain. In this paper, we develop a mathematical model to describe the effect of air turbulence on a short range free space optical communication link, such as would be found in computer backplane communication, and conduct experiments to validate the model. The air turbulence under discussion resembles that which would result from the high temperature of chips on the board together with the ventilation of the air by the chip fan. In our experiment, the communication performance, expressed as bit error rate (BER), is presented as a function of the location of the turbulence source and the log amplitude variance. The log amplitude variance was evaluated by two independent methods. One of the main results of this study is the indication that the performance of the backplane deteriorates even for very small values of air turbulence strength. This is exacerbated by the fact that extremely low BER performance is required at the backplane (e.g., from 10-14 to 10- 18 ). We also demonstrate that increasing the distance between the turbulence source and the optical link reduces the influence of the air turbulence in an exponential manner. This fact is important for the design of future-generation optical backplanes. It is noted that operation at wavelengths around 1550 nm yields communication performance that is less severely degraded by air turbulence effects than at 670 nm.
Keywords
error statistics; optical links; turbulence; BER; air turbulence effects; air turbulence strength; bit error rate; computer backplane communication; electronic backplanes; free space optical communication link; future-generation optical backplanes; high data-rate backplanes; log amplitude variance; mathematical model; next-generation computers; turbulence source; Backplanes; Fluctuations; Heating; Laser beams; Optical refraction; Optical transmitters; Temperature measurement; Free space optical communication; log amplitude variance; refractive index structure parameter; turbulence;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2011.2177442
Filename
6086696
Link To Document