DocumentCode :
1984892
Title :
A Parallel High-Order Fictitious Domain Approach for Biomechanical Applications
Author :
Ruess, Martin ; Varduhn, Vasco ; Rank, Ernst ; Yosibash, Zohar
Author_Institution :
Dept. of Comput. in Eng., Tech. Univ. Munchen, Munich, Germany
fYear :
2012
fDate :
25-29 June 2012
Firstpage :
279
Lastpage :
285
Abstract :
The focus of this contribution is on the parallelization of the Finite Cell Method (FCM) applied for biomechanical simulations of human femur bones. The FCM is a high-order fictitious domain method that combines the simplicity of Cartesian grids with the beneficial properties of hierarchical approximation bases of higher order for an increased accuracy and reliablility of the simulation model. A pre-computation scheme for the numerically expensive parts of the finite cell model is presented that shifts a significant part of the analysis update to a setup phase of the simulation, thus increasing the update rate of linear analyses with time-varying geometry properties to a range that even allows user interactive simulations of high quality. Paralellization of both parts, the pre-computation of the model stiffness and the update phase of the simulation is simplified due to a simple and undeformed cell structure of the computation domain. A shared memory parallelized implementation of the method is presented and its performance is tested for a biomedical application of clinical relevance to demonstrate the applicability of the presented method.
Keywords :
biomechanics; bone; medical computing; parallel processing; reliability; shared memory systems; Cartesian grids; FCM; biomechanical applications; biomechanical simulations; biomedical application; clinical relevance; finite cell method; finite cell model; hierarchical approximation bases; high-order fictitious domain method; human femur bones; linear analysis; numerically expensive parts; parallel high-order fictitious domain approach; parallelization; precomputation scheme; reliablility; shared memory parallelized implementation; simulation model; time-varying geometry properties; undeformed cell structure; user interactive simulations; Biological system modeling; Computational modeling; Finite element methods; Mathematical model; Numerical models; Polynomials; Strain; Finite Cell Method; biomechanics; fictitious domain; high-order approximation; pre-integration scheme; shared memory parallelization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel and Distributed Computing (ISPDC), 2012 11th International Symposium on
Conference_Location :
Munich/Garching, Bavaria
Print_ISBN :
978-1-4673-2599-8
Type :
conf
DOI :
10.1109/ISPDC.2012.45
Filename :
6341523
Link To Document :
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