DocumentCode :
787479
Title :
A New Direction in Computational Electromagnetics: Solving Large Problems Using the Parallel FDTD on the BlueGene/L Supercomputer Providing Teraflop-Level Performance
Author :
Yu, Wenhua ; Yang, Xaoling ; Liu, Yongjun ; Ma, Lai-Ching ; Tao Sul ; Huang, Neng-Tien ; Mittra, Raj ; Maaskant, R. ; Lu, Yongquan ; Che, J. Qing ; Lu, Rul ; Su, Zhiwu
Author_Institution :
Pennsylvania State Univ., La fayette, PA, USA
Volume :
50
Issue :
2
fYear :
2008
fDate :
4/1/2008 12:00:00 AM
Firstpage :
26
Lastpage :
44
Abstract :
Rapid developments in high-performance supercomputers, with upward of 65,536 processors and 32 terabytes of memory, have dramatically changed the landscape in computational electromagnetics. The IBM BlueGene/L supercomputer are examples. They have recently made it possible to solve extremely large problems efficiently. For instance, they have reduced 52 days of simulation on a single Pentium 4 processor to only about 10 minutes on 4000 processors in a BlueGene/L supercomputer. In this article, we investigate the performance of a parallel Finite-Difference Time-Domain (FDTD) code on a large BlueGene/L system. We show that the efficiency of the code is excellent, and can reach up to 90%. The code has been used to simulate a number of electrically large problems, including a 100 * 100 patch antenna array, a 144-element dual- polarized Vivaldi array, a 40-element helical antenna array, and an electronic packaging problem. The results presented serve to demonstrate the efficiency of the parallelization of the code on the BlueGene/L system. In addition, we also introduce the development of the high-performance Beowulf clusters for simulation of electrically large problems.
Keywords :
IBM computers; computational electromagnetics; finite difference time-domain analysis; helical antennas; mainframes; microstrip antenna arrays; parallel machines; Beowulf clusters; IBM BlueGene/L supercomputer; Teraflop-level performance; computational electromagnetics; dual-polarized Vivaldi array; electronic packaging; finite-difference time-domain code; helical antenna array; parallel FDTD; patch antenna array; Antenna arrays; Computational electromagnetics; Computational modeling; Electronics packaging; Finite difference methods; Helical antennas; Patch antennas; Polarization; Supercomputers; Time domain analysis;
fLanguage :
English
Journal_Title :
Antennas and Propagation Magazine, IEEE
Publisher :
ieee
ISSN :
1045-9243
Type :
jour
DOI :
10.1109/MAP.2008.4562255
Filename :
4562255
Link To Document :
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