DocumentCode :
164702
Title :
Bi-dimensional radially-salphasic (standing wave) clock distribution
Author :
Pasca, Andrei
Author_Institution :
Interior Instrum. Driver-Machine Interface, Continental Automotive Romania, Timisoara, Romania
fYear :
2014
fDate :
23-26 Oct. 2014
Firstpage :
157
Lastpage :
162
Abstract :
Salphasic (literally phase saltation) distribution assumes the creation of a standing wave pattern in the clock distribution network in such a way as to present an amplitude anti-node to the driving circuit. A characteristic of standing wave patterns is the existence of extended constant-phase regions (of a length of half-wavelength), with abrupt changes of 180 degrees at the amplitude nodes. These same-phase regions allow for simple implementations of (very) large synchronous systems. For proper distribution on large (two-dimensional) integrated circuits, it is desirable to use generalized multi-dimensional salphasic geometries. This article presents a model based on process specific parameters for such a configuration used in a two-dimensional case. Furthermore, based on the theoretical formulation, novel structures are readily derived - the present article details a radial bi-dimensional waveguide in which, instead of the normally cylindrical waves, the propagation assumes a pseudo-uni-dimensional behavior - i.e. a plane wave. The net benefit is that the bi-dimensional structure reduces to the common transmission line model, even for arbitrary signals in non-standing wave use cases.
Keywords :
CMOS integrated circuits; clock distribution networks; clocks; 2D integrated circuits; bidimensional clock distribution; bidimensional structure; clock distribution network; cylindrical waves; multidimensional salphasic geometries; phase saltation distribution; plane wave; pseudo-unidimensional behavior; radial bidimensional waveguide; radially-salphasic clock distribution; standing wave clock distribution; standing wave pattern; transmission line model; Clocks; Generators; Inductance; Load modeling; Mathematical model; Power transmission lines; Surface waves; Salphasic disc; bi-dimensional clock distribution; standing wave;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Design and Technology in Electronic Packaging (SIITME), 2014 IEEE 20th International Symposium for
Conference_Location :
Bucharest
Type :
conf
DOI :
10.1109/SIITME.2014.6967017
Filename :
6967017
Link To Document :
بازگشت