DocumentCode :
3240663
Title :
Energy recovering ASIC design
Author :
Ziesler, Conrad H. ; Kim, Joohee ; Papaefthymiou, Marios C.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
fYear :
2003
fDate :
20-21 Feb. 2003
Firstpage :
133
Lastpage :
138
Abstract :
Dissipation in the clock tree and state elements of ASIC designs is often a significant fraction of total energy consumption. We propose a methodology for recovering most of this energy by using a novel energy recovering flip-flop and a novel single-phase resonant clock generator. As our state element has near-zero energy consumption when the input data is not switching, it provides the savings of clock gating approaches without the additional complexity of implementing clock gating in the design. To complement this near-zero idle energy property of the flip-flop, our resonant clock generator includes the capability to decide, on a per-cycle basis, whether or not the resonant clock needs to be replenished on the next cycle, thus automatically reducing energy consumption when most of the state elements are idling. ASICs designed with our methodology can achieve sub-C·Vdd2 dissipations on the clock network at frequencies of 200-500MHz and operating voltages of 1.0-1.5V in a 0.25 μm process. To evaluate our methodology, we simulated a dual-mode (conventional and energy recovering) ASIC module to directly compare energy savings between the energy recovering and conventional clocking schemes. Our simulations demonstrate savings of over a factor of 4 for the energy-recovering mode versus the conventional mode for low switching activities.
Keywords :
application specific integrated circuits; clocks; flip-flops; integrated circuit design; logic CAD; timing; 0.25 micron; 1.0 to 1.5 V; 200 to 500 MHz; ASIC design; clock tree; dual-mode module; energy recovering flip-flop; near-zero energy consumption; near-zero idle energy property; per-cycle basis; resonant clock generator; single-phase resonant clock generator; state elements; total energy consumption; Application specific integrated circuits; Clocks; Computer architecture; Design methodology; Energy consumption; Flip-flops; Inductors; Laboratories; Resonance; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
VLSI, 2003. Proceedings. IEEE Computer Society Annual Symposium on
Print_ISBN :
0-7695-1904-0
Type :
conf
DOI :
10.1109/ISVLSI.2003.1183364
Filename :
1183364
Link To Document :
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