Title :
Power grid transient simulation in linear time based on transmission-line-modeling alternating-direction-implicit method
Author :
Lee, Yu-Min ; Chen, Charlie Chung-Ping
Author_Institution :
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
fDate :
11/1/2002 12:00:00 AM
Abstract :
The soaring clocking frequency and integration density demand robust and stable power delivery to support tens of millions of transistors switching. To ensure the design quality of power delivery, extensive transient power grid simulations need to be performed during the design process. However, the traditional circuit simulation engines are not scaled well for the complexity of power delivery. As a result, it often takes a long runtime and huge memory requirement to simulate a medium-sized power grid circuit. In this paper, the authors develop and present a new efficient transient simulation algorithm for power distribution. The proposed. algorithm, transmission-line-modeling alternating-direction-implicit (TLM-ADI), first models the power delivery structure as transmission line mesh structure, then solves the transient modified nodal analysis matrices by the alternating-direction-implicit method. The proposed algorithm, with linear runtime and memory requirement, is also unconditionally stable which ensures that the time-step is not limited by any stability requirement. Extensive experimental, results show that the proposed algorithm is not only orders of magnitude faster than SPICE but also extremely memory saving and accurate.
Keywords :
VLSI; circuit simulation; finite difference methods; integrated circuit modelling; numerical stability; power supply circuits; transient analysis; transmission line matrix methods; TLM alternating direction implicit method; VLSI chips; circuit simulation; design process; linear memory requirement; linear runtime; power delivery structure; power distribution; power grid transient simulation; transient modified nodal analysis matrices; transient simulation algorithm; transmission line mesh structure; transmission line modeling; unconditionally stability; Circuit simulation; Clocks; Engines; Frequency; Power grids; Power system transients; Process design; Robustness; Runtime; Transient analysis;
Journal_Title :
Computer-Aided Design of Integrated Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TCAD.2002.804082