Authors: Zanmin, X; Yuming, L; Mingchun,L; Wen, L; Xiaolong, L; Pengzhao, R; Changnian, X

Open access courtesy of:

DOI https://doi.org/10.36487/ACG_repo/2645_39

Cite As:
Zanmin, X, Yuming, L, Mingchun,L, Wen, L, Xiaolong, L, Pengzhao, R & Changnian, X 2026, 'Rock mechanics study on block caving design following open pit mining: a case study of Yandong copper mine', in A van As, D Cumming-Potvin & J Wesseloo (eds), Caving 2026: Proceedings of the Sixth International Conference on Block and Sublevel Caving, Australian Centre for Geomechanics, Perth, pp. 1-15, https://doi.org/10.36487/ACG_repo/2645_39

Download citation as:   ris   bibtex   endnote   text   Zotero


Abstract:
The application of open pit and block caving combined (OPBC) mining is an extremely challenging task, particularly under complex orebody occurrence conditions. For thick, low-grade deposits with shallow to medium orebody depths, OPBC represents the most economical mining method. Taking the Yandong copper mine as the engineering background, this study is a rock mechanics study on the applicability of OPBC and demonstrates a stepwise methodology for the assessment and safe recovery of OPBC method at the Yandong copper deposit, including the determination of open pit slope angle and mining depth, investigation of ore-rock mass structure, caveability evaluation and simulation analysis of progressive failure of the open pit slope during underground mining using Flac3D. The study demonstrates that implementing OPBC at the Yandong copper mine is feasible under the evaluated geological conditions, and the results can serve as a reference for the design of similar mines.

Keywords: open pit and block caving combined mining, caveability evaluation, progressive failure, caving-induced subsidence, mine design

References:
Bakhtavar, E, Shahriar, K & Oraee, K 2009, ‘Mining method selection and optimization of transition from open pit to underground in combined mining’, Archives of Mining Sciences, vol. 54, no. 3, pp. 481–493.
Brown, ET 2003, Block Caving Geomechanics, Julius Kruttschnitt Mineral Research Centre, Indooroopilly.
Brown, ET 2004, ‘Geomechanics: the critical engineering discipline for mass mining’, MassMin 2004: Proceedings of the 4th International Conference and Exhibition on Mass Mining, Chilean Engineering Institute, Santiago, pp. 21–36.
Flores, G & Karzulovic, A 2003, Geotechnical Guideline for a Transition from Open Pit to Underground Mining: Geotechnical Characterization, report to International Caving Study II, Julius Kruttschnitt Mineral Research Centre, Indooroopilly.
Fu, B, Chu, Y, Zhang, Z, Wei, J & Fu S 2026, ‘Analysis of influence of sublevel caving method from open-pit to underground without pillar on slope stability’, Journal of Safety Science and Technology, vol. 22, no. 1, pp. 31–38.
Ghazvinian, E, Garza-Cruz, T, Bouzeran, L, Fuenzalida, M, Cheng, Z, Cancino, C & Pierce, M 2020, ‘Theory and implementation of the Itasca constitutive model for advanced strain softening (IMASS)’, Proceedings of the Eighth International Conference and Exhibition on Mass Mining (MassMin 2020), University of Chile, Santiago, pp. 451–461.
Laubscher, DH 1994, ‘Cave mining - the state of the art’, Journal of the South African Institute of Mining and Metallurgy, vol. 94, no. 10, pp. 279–293.
Moss, A, Diachenko, S & Townsend, P 2006, ‘Interaction between the block cave and the pit slopes at Palabora Mine’, International Symposium on Stability of Rock Slopes in Open Pit Mining and Civil Engineering, The South African Institute of Mining and Metallurgy, Johannesburg, pp. 399–410.
Pierce, M 2013, ‘Numerical modeling of rock mass weakening, bulking and softening associated with cave mining’, 47th US Rock Mechanics Geomechanics Symposium, American Rock Mechanics Association, San Francisco.
Sainsbury, BL 2010, ‘Sensitivities in the numerical assessment of cave propagation’, in Y Potvin (ed.), Caving 2010: Proceedings of the Second International Symposium on Block and Sublevel Caving, Australian Centre for Geomechanics, Perth, pp. 523–535,
Tegachouang, NC, Bowa, VM, Li, X, Luo, Y & Gong, W 2021, ‘Study of the influence of block caving underground mining on the stability of the overlying open pit mine’, Geotechnical and Geological Engineering, vol. 40, pp. 165–173.
Wang, ML, Li, XS, Wang, YM 2022, ‘Stope stability under disturbance in transition of open-pit to underground room and pillar mining’, Mining and Metallurgical Engineering, vol. 42, no. 2, pp. 32–37.
Wang, Y & Zhong, F 2013, ‘Study on slope instability in transition from open-pit to underground mining by similar experiment and numerical simulation’, Journal of China Coal Society, vol. 38, no. s1, pp. 64–69.
Woo, K, Eberhardt, E & van As, A 2009, ’Characterization and empirical analysis of block caving induced surface subsidence and macro deformations’, 3rd Canada-US Rock Mechanics Symposium and 20th Canadian Rock Mechanics Symposium.
Yuan, K, Ma, C, Guo, G & Wang, P 2024, ‘Slope failure of Shilu metal mine transition from open-pit to underground mining Under excavation Disturbance’, Applied Science, vol. 14, no. 3, 1055.
Zhang, Q, Luo, Y & Ke, Y 2013. ‘Security for ground settlement of transition from open pit to underground mining’, Journal of Central South University (Science and Technology), vol. 44, no. 8, pp. 3441–3445.




© Copyright 2026, Australian Centre for Geomechanics (ACG), The University of Western Australia. All rights reserved.
View copyright/legal information
Please direct any queries or error reports to repository-acg@uwa.edu.au