Assessment of blast energy usage and induced rock damage in hard rock surface mines

被引:3
作者
Dotto, Magreth S. [1 ]
Pourrahimian, Yashar [2 ]
Joseph, Tim [1 ]
Apel, Derek [1 ]
机构
[1] Univ Alberta, Edmonton, AB, Canada
[2] Univ Alberta, Sch Min & Petr Engn, Edmonton, AB, Canada
来源
CIM JOURNAL | 2022年 / 13卷 / 04期
关键词
Blast damage; Explosive energy; Fragmentation; Rock blasting; Rock mass properties; Vibration monitoring; contr & ocirc; le des vibrations; d & eacute; g & acirc; ts de souffle; dynamitage; & eacute; nergie explosive; fragmentation; propri & eacute; t & eacute; s de masse rocheuse; STRENGTH; PROPAGATION; PREDICTION; MODULI; SIZE;
D O I
10.1080/19236026.2022.2126924
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Explosive energy usage when fragmenting a rock mass is a complicated phenomenon. It is highly influenced by the rock mass response to higher stresses, higher loading rates, and the presence of discontinuities. An approach is presented to analyze the effects of rock mass properties on explosive energy. It is divided into steps to estimate blast energy, characterize the rock mass, assess failure mechanisms, and estimate damage zones using a combination of previously established methodologies. Through a case study in an open pit gold mine, five production shots are investigated of variable sizes with over 1,300 charged holes to analyze explosive energy-rock mass interactions. The ratio of in situ block size to the average fragmentation at variable distances from the charge is calculated to evaluate the effect of rock mass on energy distribution and fragmentation. La consommation d'& eacute;nergie explosive pour fragmenter une masse rocheuse est un ph & eacute;nom & egrave;ne complexe. Elle est fortement influenc & eacute;e par la r & eacute;ponse de la masse rocheuse aux contraintes plus & eacute;lev & eacute;es, aux taux de charge plus & eacute;lev & eacute;s et & agrave; la pr & eacute;sence de discontinuit & eacute;s. Une approche est pr & eacute;sent & eacute;e pour analyser les effets des propri & eacute;t & eacute;s de masse rocheuse sur l'& eacute;nergie explosive. Il est divis & eacute; en & eacute;tapes pour estimer l'& eacute;nergie de souffle, caract & eacute;riser la masse rocheuse, & eacute;valuer les m & eacute;canismes de d & eacute;faillance et estimer les zones de dommage en utilisant une combinaison de m & eacute;thodologies & eacute;tablies pr & eacute;c & eacute;demment. Gr & acirc;ce & agrave; une & eacute;tude de cas dans une mine d'or & agrave; ciel ouvert, cinq plans de dynamitage sont & eacute;tudi & eacute;s de tailles variables avec plus de 1 300 trous charg & eacute;s pour analyser l'interaction & eacute;nergie-masse rocheuse explosive. Le rapport entre la taille du bloc in situ et la fragmentation moyenne & agrave; des distances variables de la charge est calcul & eacute; pour & eacute;valuer l'effet de la masse rocheuse sur la distribution et la fragmentation de l'& eacute;nergie.
引用
收藏
页码:166 / 180
页数:15
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