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dc.contributor.authorKačeniauskas, Arnas
dc.contributor.authorPacevič, Ruslan
dc.date.accessioned2023-09-18T20:05:37Z
dc.date.available2023-09-18T20:05:37Z
dc.date.issued2019
dc.identifier.issn1759-3433
dc.identifier.urihttps://etalpykla.vilniustech.lt/handle/123456789/146716
dc.description.abstractThe discrete element method (DEM) is established as a powerful numerical technique to understand and model phenomena of media consisting particles. DEM employing inter-particle contacts is the dominating technology applied for the simulation of the 3D behaviour of grains, powders and particulate solids. The main disadvantage of the DEMis related to computational capabilities that are limited by a huge number of particles and a short time step required in simulations. Naturally, to solve the industrial-scale problems the massively parallel architecture of GPUs and GPGPU computing are the obvious options for significantly increasing computational capabilities. The paper presents performance evaluation of various models of the discrete element method (DEM) implemented in the GPU code. DEM models including computation of the external forces, the normal contact forces, the tangential contact forces with the time history dependent friction and torques are considered for quantitative comparison of the computational costs as well as the bonded particle model. The performance of the developed OpenCL code is evaluated solving applications of granular flows and damage of reinforced concrete. The performance measured on NVIDIA® Tesla™ P100 GPU is compared with that attained by running the same OpenCL code on Intel®Xeon™ E5-2630 CPU with 20 cores. The speedup values, varying from 3.7 to 5.7, are observed for different numbers of particles in spite of intensive usage of advanced vector extensions by OpenCL on CPU. Performed analysis reveals that computation of tangential components of the contact force with time history dependent friction model is the most expensive and increases computing time up to 38.1% of the time required for DEM model evaluating only the normal contact force. Computation of torques is less expensive and adds up to 3.8% of the execution time of the DEM model evaluating only the normal contact force. In case of the bonded particle model, the computing time increases up to 19.4% of the time required for the DEM model of granular flows, assuming the linear dependency of the computing time on the number of particles and applying linear interpolation.eng
dc.formatPDF
dc.format.extentp. 1-17
dc.format.mediumtekstas / txt
dc.language.isoeng
dc.source.urihttps://www.ctresources.info/ccp/paper.html?id=9291
dc.titlePerformance evaluation of various discrete element models implemented on GPU
dc.typeStraipsnis recenzuotame konferencijos darbų leidinyje / Paper published in peer-reviewed conference publication
dcterms.references36
dc.type.pubtypeP1d - Straipsnis recenzuotame konferencijos darbų leidinyje / Article published in peer-reviewed conference proceedings
dc.contributor.institutionVilniaus Gedimino technikos universitetas
dc.contributor.institutionVilniaus Gedimino technikos universitetas Kauno technologijos universitetas
dc.contributor.facultyFundamentinių mokslų fakultetas / Faculty of Fundamental Sciences
dc.contributor.facultyTeritorijų planavimo mokslo institutas / Research Institute of Territorial Planning
dc.subject.researchfieldT 007 - Informatikos inžinerija / Informatics engineering
dc.subject.researchfieldT 009 - Mechanikos inžinerija / Mechanical enginering
dc.subject.vgtuprioritizedfieldsIK05 - Virtuali ir pridėtinė realybė / Virtual and augmented reality
dc.subject.ltspecializationsL106 - Transportas, logistika ir informacinės ir ryšių technologijos (IRT) / Transport, logistic and information and communication technologies
dc.subject.enGPU
dc.subject.endiscrete element method
dc.subject.engranular flows
dc.subject.enperformance analysis
dc.subject.enOpenCL
dcterms.sourcetitleCivil-Comp proceedings 112. Proceedings of the sixth international conference on Parallel, Distributed, GPU and Cloud Computing for Engineering, University of Pécs, Hungary, 4-5 June 2019 / Edited by: P. Iványi, B.H.V. Topping
dc.publisher.nameCivil-Comp Press
dc.publisher.cityStirlingshire
dc.identifier.doi10.4203/ccp.112.23
dc.identifier.elaba40980825


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