Development of a blasting simulator considering gas-rock interaction

dc.contributor.authorWataru, I
dc.contributor.authorDaisuke, F
dc.contributor.authorYoshiaki, T
dc.contributor.authorTei, S
dc.contributor.authorShiro, K
dc.contributor.authorJun-ichi, K
dc.contributor.authorYoshiaki, F
dc.contributor.editorJayawardena, CL
dc.date.accessioned2022-12-28T07:15:20Z
dc.date.available2022-12-28T07:15:20Z
dc.date.issued2022-12-23
dc.description.abstractOptimization of rock blasting in mining engineering is essential for energy efficiency, cost reduction, and safety. In contrast, the dynamic rock fracture process due to blasting involves highly complex and rapid processes. Thus, it is crucial to develop a reasonable numerical simulator for blasting which can model the following processes: (i)detonation-induced shock wave and gas expansion, (ii)complex dynamic fracture process of rocks, (iii)gas-rock interaction including the impact of shock waves on the blasthole surface and the inflow of blast-induced gas into a dynamically evolving fracture network. Besides, massively parallel computation is indispensable to dealing with the computationally expensive coupling processes (i)~(iii). To this end, this study couples the cubic-interpolated pseudo particle (CIP) method, the combined finite-discrete element method (FDEM) and the immersed boundary method to model the processes (i)~(iii), respectively. A massively parallel computing scheme with general-purpose graphics-processing units (GPGPU) is incorporated for the parallel computation. The applicability of the developed simulator is investigated using a single hole blasting problem. Although further improvements must be achieved, the proposed blasting simulation results indicate that all the processes (i)~(iii) can be reasonably traced. In conclusion, the developed simulator is expected to help investigate the optimization of rock blasting.en_US
dc.identifier.citationWataru, I., Daisuke, F., Yoshiaki, T., Tei, S., Shiro, K., Jun-ichi, K., & Yoshiaki, F. (2022). Development of a blasting simulator considering gas-rock interaction. In C. L. Jayawardena (Ed.), Proceedings of International Symposium on Earth Resources Management & Environment 2022 (pp. 1-6). Department of Earth Resources Engineering, University of Moratuwa. http://dl.lib.uom.lk/handle/123/19696
dc.identifier.conferenceInternational Symposium on Earth Resources Management & Environment 2022en_US
dc.identifier.departmentDepartment of Earth Resources Engineeringen_US
dc.identifier.doihttps://doi.org/10.31705/ISERME.2022.1en_US
dc.identifier.emailwataru-ikw@eis.hokudai.ac.jpen_US
dc.identifier.facultyEngineeringen_US
dc.identifier.pgnospp. 1-6en_US
dc.identifier.placeColomboen_US
dc.identifier.proceedingProceedings of International Symposium on Earth Resources Management & Environment 2022en_US
dc.identifier.urihttp://dl.lib.uom.lk/handle/123/19919
dc.identifier.year2022en_US
dc.language.isoenen_US
dc.publisherDepartment of Earth Resources Engineering, University of Moratuwa, Sri Lankaen_US
dc.subjectFDEMen_US
dc.subjectFluid-structure-interactionen_US
dc.subjectGPGPU parallel computationen_US
dc.subjectNumerical simulationen_US
dc.subjectRock blastingen_US
dc.titleDevelopment of a blasting simulator considering gas-rock interactionen_US
dc.typeConference-Full-texten_US

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