Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining

This paper proposes a numerical finite-element-based model aimed at optimizing narrow-vein stope stability. This model combines empirical and numerical methods to develop a sequence, which may determine an acceptable stope safety factor. A stope stability analysis was conducted through the Mathews s...

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Main Authors: Belizario-Calsin, M., Condori-Cardenas, R., Pehovaz-Alvarez, H., Raymundo-Ibanez, C., Perez, Moises
Format: Article
Language:English
Published: Institute of Physics Publishing 2020
Subjects:
Online Access:http://hdl.handle.net/10757/651803
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spelling ndltd-PERUUPC-oai-repositorioacademico.upc.edu.pe-10757-6518032020-04-29T03:20:40Z Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining Belizario-Calsin, M. Belizario-Calsin, M. Condori-Cardenas, R. Pehovaz-Alvarez, H. Raymundo-Ibanez, C. Perez, Moises Numerical Finite-Element-Based Model Narrow Vein Mine Design Peruvian Mining This paper proposes a numerical finite-element-based model aimed at optimizing narrow-vein stope stability. This model combines empirical and numerical methods to develop a sequence, which may determine an acceptable stope safety factor. A stope stability analysis was conducted through the Mathews stability graph method, which requires two factors: the hydraulic radius (HR) and stability number (N'). The Mathews stability graph method is used to assess the stability of an underground design. Variations in stope dimensions are estimated by changing the HR and Factor A within the N', which is determined through numerical methods. The results of the numerical simulation indicate that the HR increases with an increase in stope dimensions, while Factor A maintains an inverse relationship with the maximum stress induced on the excavation walls. This document demonstrates the potential of combining empirical and numerical methods in stope design optimization, especially when developed in small narrow vein mines. 2020-04-27T18:00:01Z 2020-04-27T18:00:01Z 2020-02-28 info:eu-repo/semantics/article 17578981 10.1088/1757-899X/758/1/012014 http://hdl.handle.net/10757/651803 IOP Conference Series: Materials Science and Engineering 2-s2.0-85082108713 SCOPUS_ID:85082108713 0000 0001 2196 144X eng IOP Conference Series: Materials Science and Engineering 1 https://iopscience.iop.org/article/10.1088/1757-899X/758/1/012014/meta 758 info:eu-repo/semantics/openAccess Attribution-NonCommercial-ShareAlike 4.0 International http://creativecommons.org/licenses/by-nc-sa/4.0/ application/pdf Institute of Physics Publishing Universidad Peruana de Ciencias Aplicadas (UPC) Repositorio Académico - UPC
collection NDLTD
language English
format Article
sources NDLTD
topic Numerical Finite-Element-Based Model
Narrow Vein Mine Design
Peruvian Mining
spellingShingle Numerical Finite-Element-Based Model
Narrow Vein Mine Design
Peruvian Mining
Belizario-Calsin, M.
Belizario-Calsin, M.
Condori-Cardenas, R.
Pehovaz-Alvarez, H.
Raymundo-Ibanez, C.
Perez, Moises
Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining
description This paper proposes a numerical finite-element-based model aimed at optimizing narrow-vein stope stability. This model combines empirical and numerical methods to develop a sequence, which may determine an acceptable stope safety factor. A stope stability analysis was conducted through the Mathews stability graph method, which requires two factors: the hydraulic radius (HR) and stability number (N'). The Mathews stability graph method is used to assess the stability of an underground design. Variations in stope dimensions are estimated by changing the HR and Factor A within the N', which is determined through numerical methods. The results of the numerical simulation indicate that the HR increases with an increase in stope dimensions, while Factor A maintains an inverse relationship with the maximum stress induced on the excavation walls. This document demonstrates the potential of combining empirical and numerical methods in stope design optimization, especially when developed in small narrow vein mines.
author Belizario-Calsin, M.
Belizario-Calsin, M.
Condori-Cardenas, R.
Pehovaz-Alvarez, H.
Raymundo-Ibanez, C.
Perez, Moises
author_facet Belizario-Calsin, M.
Belizario-Calsin, M.
Condori-Cardenas, R.
Pehovaz-Alvarez, H.
Raymundo-Ibanez, C.
Perez, Moises
author_sort Belizario-Calsin, M.
title Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining
title_short Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining
title_full Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining
title_fullStr Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining
title_full_unstemmed Empirical and Numerical Finite-Element-Based Model to Improve Narrow Vein Mine Design in Peruvian Mining
title_sort empirical and numerical finite-element-based model to improve narrow vein mine design in peruvian mining
publisher Institute of Physics Publishing
publishDate 2020
url http://hdl.handle.net/10757/651803
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