DocumentCode :
1595352
Title :
Towards Interactive Steering of a Very Large Floating Structure Code by Using HPC Parallelisation Strategies
Author :
Frisch, Jerome ; Ruiping Gao ; Mundani, R. ; Chien Ming Wang ; Rank, Ernst
Author_Institution :
Dept. of Comput. in Eng., Tech. Univ. Munchen, Munich, Germany
fYear :
2012
Firstpage :
473
Lastpage :
480
Abstract :
Very large floating structures (VLFSs) have been used for broad applications such as floating storage facilities, floating piers, floating bridges, floating airports, entertainment facilities, even habitation, and other purposes. Owing to its small bending rigidity, VLFS deforms elastically when subjected to wave action. This elastic deformation due to wave is called hydro elastic response and it can be obtained by solving the interaction between the surface wave and the floating structure in the frequency domain. In solving the fluid-structure interaction, the floating structure can be modelled by applying the finite element method, whereas the fluid part may be analyzed by using the Green´s function method. When using the Green´s function which satisfies the boundary condition on the free-surface, the sea bottom and that at infinite distance from the floating structure, the unknown parameters to be determined for the fluid part can be minimized to be only those associated with the wetted surface of the floating structure. However, in the evaluation of the Green´s function, extensive computation time O(N^2) is needed (N is the number of unknowns). Therefore, acceleration techniques are necessary to tackle the computational complexity. Nowadays, standard multi-core office PCs are already quite powerful if all the cores can be used efficiently. This paper will show different parallelisation strategies for speeding up the Green´s function computation. A shared memory based implementation as well as a distributed memory concept will be analysed regarding speed-up and efficiency. For large computations, batch jobs can be used to compute detailed results in high resolution on a large computational cluster or supercomputer. Different speed-up computations on clusters will be included for showing strong speed-up results.
Keywords :
Green´s function methods; bending; computational complexity; distributed shared memory systems; elastic deformation; frequency-domain analysis; mainframes; parallel processing; shear modulus; structural engineering computing; surface waves (fluid); Green function method; HPC parallelisation strategies; VLFS; bending rigidity; boundary condition; computation time; computational cluster; computational complexity; distributed memory concept; elastic deformation; entertainment facilities; finite element method; floating airports; floating bridges; floating piers; floating storage facilities; fluid-structure interaction; frequency domain; hydroelastic response; interactive steering; shared memory based implementation; speed-up computations; standard multicore office PCs; supercomputer; surface wave action; very large floating structure code; wetted surface; Equations; Frequency-domain analysis; Instruction sets; Mathematical model; Sea surface; Surface waves; Vectors; engineering application; hybrid parallelisation; message passing paradigm; parallel computation; shared memory concept; very large floating structure;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Symbolic and Numeric Algorithms for Scientific Computing (SYNASC), 2012 14th International Symposium on
Conference_Location :
Timisoara
Print_ISBN :
978-1-4673-5026-6
Type :
conf
DOI :
10.1109/SYNASC.2012.15
Filename :
6481068
Link To Document :
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