Experimental and Numerical Investigation of Rock Dynamic Fracture
Rapid development of engineering activities expands through a variety of rock engineering processes such as drilling, blasting, mining and mineral processing. These activities require rock dynamic fracture mechanics method to characterize the rock behavior. Dynamic fracture toughness is an important...
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2017-06-01
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doaj-d1b73da9abe14e8d8231276ebb8347232020-11-25T01:02:34ZengUniversity of TehranInternational Journal of Mining and Geo-Engineering2345-69302345-69492017-06-01511374610.22059/ijmge.2017.6215162151Experimental and Numerical Investigation of Rock Dynamic FractureAliasghar Mirmohammadlou0Hossein Memarian1Soheil Mohammadi2Mohammadamin jafari3University of TehranUniversity of TehranUniversity of TehranUniversity of TorentoRapid development of engineering activities expands through a variety of rock engineering processes such as drilling, blasting, mining and mineral processing. These activities require rock dynamic fracture mechanics method to characterize the rock behavior. Dynamic fracture toughness is an important parameter for the analysis of engineering structures under dynamic loading. Several experimental methods are used for determination of dynamic fracture properties of materials. Among them, the Hopkinson pressure bar and the drop weight have been frequently used for rocks. On the other hand, numerical simulations are very useful in dynamic fracture studies. Among vast variety of numerical techniques, the powerful extended finite element method (XFEM) enriches the finite element approximation with appropriate functions extracted from the fracture mechanics solution around a crack-tip. The main advantage of XFEM is its capability in modeling different on a fixed mesh, which can be generated without considering the existence of discontinuities. In this paper, first, the design of a drop weight test setup is presented. Afterwards, the experimental tests on igneous (basalt) and calcareous (limestone) rocks with single-edge-cracked bend specimen are discussed. Then, each experimental test is modeled with the XFEM code. Finally, the obtained experimental and numerical results are compared. The results indicate that the experimentally predicted dynamic fracture toughness has less than 8 percent difference with calculated dynamic fracture toughness from extended finite element methodhttp://ijmge.ut.ac.ir/article_62151_d26a29a2697339c9cdee1d8e790c2210.pdfRock fracture dynamic toughnessextended finite element method (XFEM)three point bending testdrop weight setup |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Aliasghar Mirmohammadlou Hossein Memarian Soheil Mohammadi Mohammadamin jafari |
spellingShingle |
Aliasghar Mirmohammadlou Hossein Memarian Soheil Mohammadi Mohammadamin jafari Experimental and Numerical Investigation of Rock Dynamic Fracture International Journal of Mining and Geo-Engineering Rock fracture dynamic toughness extended finite element method (XFEM) three point bending test drop weight setup |
author_facet |
Aliasghar Mirmohammadlou Hossein Memarian Soheil Mohammadi Mohammadamin jafari |
author_sort |
Aliasghar Mirmohammadlou |
title |
Experimental and Numerical Investigation of Rock Dynamic Fracture |
title_short |
Experimental and Numerical Investigation of Rock Dynamic Fracture |
title_full |
Experimental and Numerical Investigation of Rock Dynamic Fracture |
title_fullStr |
Experimental and Numerical Investigation of Rock Dynamic Fracture |
title_full_unstemmed |
Experimental and Numerical Investigation of Rock Dynamic Fracture |
title_sort |
experimental and numerical investigation of rock dynamic fracture |
publisher |
University of Tehran |
series |
International Journal of Mining and Geo-Engineering |
issn |
2345-6930 2345-6949 |
publishDate |
2017-06-01 |
description |
Rapid development of engineering activities expands through a variety of rock engineering processes such as drilling, blasting, mining and mineral processing. These activities require rock dynamic fracture mechanics method to characterize the rock behavior. Dynamic fracture toughness is an important parameter for the analysis of engineering structures under dynamic loading. Several experimental methods are used for determination of dynamic fracture properties of materials. Among them, the Hopkinson pressure bar and the drop weight have been frequently used for rocks. On the other hand, numerical simulations are very useful in dynamic fracture studies. Among vast variety of numerical techniques, the powerful extended finite element method (XFEM) enriches the finite element approximation with appropriate functions extracted from the fracture mechanics solution around a crack-tip. The main advantage of XFEM is its capability in modeling different on a fixed mesh, which can be generated without considering the existence of discontinuities. In this paper, first, the design of a drop weight test setup is presented. Afterwards, the experimental tests on igneous (basalt) and calcareous (limestone) rocks with single-edge-cracked bend specimen are discussed. Then, each experimental test is modeled with the XFEM code. Finally, the obtained experimental and numerical results are compared. The results indicate that the experimentally predicted dynamic fracture toughness has less than 8 percent difference with calculated dynamic fracture toughness from extended finite element method |
topic |
Rock fracture dynamic toughness extended finite element method (XFEM) three point bending test drop weight setup |
url |
http://ijmge.ut.ac.ir/article_62151_d26a29a2697339c9cdee1d8e790c2210.pdf |
work_keys_str_mv |
AT aliasgharmirmohammadlou experimentalandnumericalinvestigationofrockdynamicfracture AT hosseinmemarian experimentalandnumericalinvestigationofrockdynamicfracture AT soheilmohammadi experimentalandnumericalinvestigationofrockdynamicfracture AT mohammadaminjafari experimentalandnumericalinvestigationofrockdynamicfracture |
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