Title :
Power Integrity Analysis for High-Speed PCB
Author :
Li-xin, Wang ; Yu-Xia, Zhang ; Gang, Zhang
Author_Institution :
Sch. of Electr. Eng., Harbin Inst. of Technol., Harbin, China
Abstract :
In high-speed digital circuit, supplying a clear power to the integrated circuit and managing the coupling of power noise which can cause fluctuations or disturbances in the power distribution system have become the bottleneck of high-speed digital circuit designs. So it is expected to be a challenging problem for the power integrity (PI) design due to the wider bandwidth of the noise. Keeping the power distribution network (PDN) impedance very low in a wide frequency range and reduce simultaneous switching noise (SSN) are priority ways for the power integrity (PI) design. The decoupling capacitors are conventionally used to minimize the power impedance at a frequency where the impedance of the decoupling capacitor is lower than that of the power/ground planes pair. This paper investigates both in time and frequency domains the power integrity with the help of full-wave finite-element simulations. The solution which is based on the decoupling capacitors is reviewed in this paper. Besides, the placement and value of the decoupling capacitors will be discussed.
Keywords :
capacitors; power integrated circuits; decoupling capacitor; frequency domain; full-wave finite-element simulation; high speed PCB; high speed digital circuit design; integrated circuit; power distribution network impedance; power distribution system; power integrity analysis; power integrity design; power noise; simultaneous switching noise; time domain; Capacitors; Impedance; Inductance; Noise; Power supplies; Resonant frequency; Switches; Power Integrity (PI); Power distribution network (PDN); decoupling capacitors; simultaneous switching noise (SSN);
Conference_Titel :
Pervasive Computing Signal Processing and Applications (PCSPA), 2010 First International Conference on
Conference_Location :
Harbin
Print_ISBN :
978-1-4244-8043-2
Electronic_ISBN :
978-0-7695-4180-8
DOI :
10.1109/PCSPA.2010.106