Title :
Simulation of differential skew considering fiber kink effects
Author :
Fukumori, Taiga ; Nagaoka, Hideaki ; Mizutani, Daisuke ; Tani, Motoaki
Author_Institution :
Fujitsu Labs. Ltd., Atsugi, Japan
Abstract :
As a result of increasing signal transmission rates to as high band levels as several tens of Gbps, skew induced by the difference in dielectric constant between the glass-cloth and the resin is posing a huge problem. However, due to the extremely difficult comparison of this skew between actual measurements and simulations, few studies on such comparison have been reported to date. We developed a new analysis technique to clarify the transmission delay time difference (skew) in differential signal transmission lines, depending on the positional relationship between the glass-threads and the conductor lines in a circuit board. This analysis technique has the following four characteristics. The first is that the angle of the lines to the glass-cloth is expressed by cascade connections of multiple analytical models that are different in the positional relationship between the glass-cloth and the lines. The second is that analytical models are combined in cascade connection assuming that the positional relationship between the lines and the glass-cloth appears randomly and is distributed uniformly. The third is that analytical models are prepared assuming that the angle between the lines and the glass-cloth is distributed uniformly within a certain range due to fiber kink effects. The fourth is that the assumption that skew in stripline structure, which has two glass-cloth insulating layers right above and below the lines, can be calculated by the sum of two sets of the skew induced by one glass-cloth-containing insulating layer. As a result of comparison between analysis and actual measurement results, it was confirmed that this analysis technique could reproduce skew distributions observed in real circuit boards with a high degree of accuracy.As a result of comparison between analysis and actual measurement results, it was confirmed that this analysis technique could reproduce skew distributions observed in real circuit boards with a high degree of accuracy.
Keywords :
glass; insulating materials; optical fibres; optical interconnections; permittivity; resins; synchronisation; cascade connections; circuit board; conductor lines; dielectric constant; differential signal transmission lines; differential skew; fiber kink effects; glass-cloth-containing insulating layer; glass-threads; signal transmission rates; skew distributions; transmission delay time difference; Analytical models; Integrated circuit modeling; Printed circuits; Probability distribution; Stripline; Weaving; Yarn; Gbps; glass-cloth; kink; probability distribution function; simulation; skew; weave; yarn;
Conference_Titel :
CPMT Symposium Japan (ICSJ), 2014 IEEE
Conference_Location :
Kyoto
Print_ISBN :
978-1-4799-6194-8
DOI :
10.1109/ICSJ.2014.7009605