Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method

Because of the continuous exploitation of metal minerals and the limited availability of land resources, many tailings ponds have been expanded. It is of great importance to dynamically calculate the critical parameters of flooding and sand velocity after a collapse, and quickly determine the danger...

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Main Authors: Li Q. Ming, Zhang Hong, Wei Jie, Zhao Z. Yun
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-06-01
Series:Frontiers in Earth Science
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/feart.2022.901904/full
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author Li Q. Ming
Zhang Hong
Wei Jie
Zhao Z. Yun
author_facet Li Q. Ming
Zhang Hong
Wei Jie
Zhao Z. Yun
author_sort Li Q. Ming
collection DOAJ
description Because of the continuous exploitation of metal minerals and the limited availability of land resources, many tailings ponds have been expanded. It is of great importance to dynamically calculate the critical parameters of flooding and sand velocity after a collapse, and quickly determine the dangerous area downstream on reducing the hidden dangers for an accident. In view of the limitations of the single finite element and discrete element methods for the simulation of tailings pond instability, the authors use the finite element and discrete element coupling method (GDEM) for the first time to carry out a dynamical process for numerical simulation of the evolution of a tailings pond collapse. The sediment movement and submerged range were compared with the results of the Volume of Fluid (VOF) method. The comparison shows that the change in drainage flow at the dam foundation position and the depth change in the downstream sensitive point after the dam break are consistent with the VOF calculation results, which indicates that the GDEM can be used as an effective means for the analysis of tailings dam failure. The calculation results of this method can provide technical support for the determination of dangerous areas downstream of tailings ponds and the safety management of key areas.
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spelling doaj.art-081543f9fe534218b04257543743b1542022-12-22T00:19:06ZengFrontiers Media S.A.Frontiers in Earth Science2296-64632022-06-011010.3389/feart.2022.901904901904Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM MethodLi Q. Ming0Zhang Hong1Wei Jie2Zhao Z. Yun3Institute of Science and Technology, NCUT, Beijing, ChinaSchool of Energy and Mining, CUMTB, Beijing, ChinaChina Academy of Safety Science and Technology, Beijing, ChinaSchool of Safety Engineering, CUMTB, Beijing, ChinaBecause of the continuous exploitation of metal minerals and the limited availability of land resources, many tailings ponds have been expanded. It is of great importance to dynamically calculate the critical parameters of flooding and sand velocity after a collapse, and quickly determine the dangerous area downstream on reducing the hidden dangers for an accident. In view of the limitations of the single finite element and discrete element methods for the simulation of tailings pond instability, the authors use the finite element and discrete element coupling method (GDEM) for the first time to carry out a dynamical process for numerical simulation of the evolution of a tailings pond collapse. The sediment movement and submerged range were compared with the results of the Volume of Fluid (VOF) method. The comparison shows that the change in drainage flow at the dam foundation position and the depth change in the downstream sensitive point after the dam break are consistent with the VOF calculation results, which indicates that the GDEM can be used as an effective means for the analysis of tailings dam failure. The calculation results of this method can provide technical support for the determination of dangerous areas downstream of tailings ponds and the safety management of key areas.https://www.frontiersin.org/articles/10.3389/feart.2022.901904/fulldam failuretailings pondssediment evolutiondynamically simulateGDEM
spellingShingle Li Q. Ming
Zhang Hong
Wei Jie
Zhao Z. Yun
Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method
Frontiers in Earth Science
dam failure
tailings ponds
sediment evolution
dynamically simulate
GDEM
title Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method
title_full Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method
title_fullStr Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method
title_full_unstemmed Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method
title_short Numerical Simulation on the Evolution of Tailings Pond Dam Failure Based on GDEM Method
title_sort numerical simulation on the evolution of tailings pond dam failure based on gdem method
topic dam failure
tailings ponds
sediment evolution
dynamically simulate
GDEM
url https://www.frontiersin.org/articles/10.3389/feart.2022.901904/full
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AT zhaozyun numericalsimulationontheevolutionoftailingsponddamfailurebasedongdemmethod