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Numerical Simulation Analysis of Mechanical Properties and Application of Large Deformation Cable with Constant Resistance

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Abstract

Large deformation cable with constant resistance present super-mechanical characteristics of high constant resistance, large deformation, energy absorption and impact resistance compared to traditional anchor cable. These have been successfully applied in geotechnical engineering and tunnel engineering. In order to effectively solve the technical problems of the cable-stay breaking and the anchor head fall off, due to the large deformation of the traditional reinforcement cable of the slope of the Tonglushan ancient copper mine relics in Daye City, Hubei Province. In this paper, the finite element structure nonlinear analysis model of large deformation cable with constant resistance was established through finite element software ANSYS. Following, combined with the indoor test for comparative analysis, proved the reliability of the numerical simulation analysis model. Finally, the depth of the potential weak sliding zone (surface) of the slope was determined by the finite element analysis and strength reduction method. This provided a theoretical basis for the construction of deep mechanics monitoring and early warning system based on NPR anchor cable, and realizes the integrated control objectives of the reinforcement, monitoring and early warning of the site slope.

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References

  • Ansell A (2005) Laboratory testing of a new type of energy absorbing rock bolt. Tunn Under Sp Technol 20(4):291–300

    Article  Google Scholar 

  • Andersen S, Andersen L (2010) Modelling of landslides with the material-point method. Comput Geosci 14(1):137–147

    Article  Google Scholar 

  • Ali MA, Morteza O (2014) Determination and stability analysis of ultimate open-pit slope under geomechanical uncertainty. Int J Min Sci Technol 24(1):105–110

    Article  Google Scholar 

  • Allasia P, Manconi A, Giordan D, Baldo M, Lollino G (2013) ADVICE: a new approach for near-real-time monitoring of surface displacements in landslide hazard scenarios. Sensors 13(7):8285–8302

    Article  Google Scholar 

  • Cheng YM, Lansivaara T, Wei WB (2007) Two-dimensional slope stability analysis by limit equilibrium and strength reduction methods. Comput Geotech 34(3):137–150

    Article  Google Scholar 

  • Feng G, Kang Y, Wang XC, et al. (2020) Investigation on the failure characteristics and fracture classification of shale under brazilian test conditions. Rock Mech Rock Eng

  • He MC, Wang Y, Tao ZG (2010) A new early-warning prediction system for monitoring shear force of fault plane in the active fault. J Rock Mech Geotech Eng 2(3):223–231

    Article  Google Scholar 

  • He MC, Gong WL, Wang J, Qi P, Tao ZG, Du S, Peng YY (2014) Development of a novel energy-absorbing bolt with extraordinarily large elongation and constant resistance. Int J Rock Mech Min 67:29–42

    Article  Google Scholar 

  • He MC, Tao ZG, Gong WL (2017) Geo-disaster prediction with double-block mechanics based on Newton force measurement. Geomech Geophys GeoEnergy GeoResour 3(2):107–119

    Article  Google Scholar 

  • Huang H, Babadagli T, Chen X et al (2020) Performance comparison of novel chemical agents for mitigating water-blocking problem in tight gas sandstones. SPE Reserv Eval Eng 2020:1–9. https://doi.org/10.2118/199282-PA

    Article  Google Scholar 

  • Jager AJ (1992) Two new support units for the control of rockburst damage. In: McCreath DR (ed) Kaiser PK. Proceedings of the international symposium rock support, Balkema, Rotterdam pp, pp 621–631

    Google Scholar 

  • Jiang N, Wang CX, Pan HY et al (2020) Modeling study on the influence of the strip filling mining sequence on mining-induced failure. Energy Sci Eng:1–17

  • Li CC (2010a) A new energy-absorbing bolt for rock support in high stress rock masses. Int J Rock Mech Min 47(3):396–404

    Article  Google Scholar 

  • Li CC (2010b) Field observations of rock bolts in high stress rock masses. Rock Mech Rock Eng 43(3):491–496

    Article  Google Scholar 

  • Li C, He MC, Gong WL (2016) Impact on dynamics analysis of negative Poisson's ratio of anchor bolt with constant resistance and large deformation. J China Coal Soc 42(6):1393–1399

    Google Scholar 

  • Li YY, Zhang SC, Wen ZJ et al (2019) Energy conversion and fragment distribution characteristics of coal sample under uniaxial cyclic loading. J China Coal Soc 44(5):1411–1420

    Google Scholar 

  • Lv Q, Tao ZG, Li ZH, He MC, An WB (2018) Elastic-plastic mechanics analysis of large deformation cable with constant resistance. Chin J Rock Mech Eng 4:1–10

    Google Scholar 

  • Mccreath DR, Kaiser PK (1995) Current support practices in burst-prone ground mining research directorate. Sudbury: Laurentian University, pp 39–65

  • Nie L, Li ZC, Lv Y, Wang HF (2017) A new prediction model for rock slope failure time: a case study in West Open-Pit mine, Fushun. China B Eng Geol Environ 76(3):975–988

    Article  Google Scholar 

  • Ozbay U, Neugebauer E (2009) In-situ pull testing of a yieldable rock bolt, ROOFEX. Controlling Seismic Hazard and Sustainable Development of Deep Mines, 2:1081–1090

  • Puglisi G, Bonaccorso A, Mattia M, Aloisi M, Bonforte A, Campisi O, Cantarero M, Falzone G, Puglisi B, Rossi M (2005) New integrated geodetic monitoring system at Stromboli volcano (Italy). Eng Geol 79:13–31

    Article  Google Scholar 

  • Qin Z, Fu H, Chen X (2019) A study on altered granite meso-damage mechanisms due to water invasion-water loss cycles. Environ Earth Sci 78:428

    Article  Google Scholar 

  • Ren DZ, Zhou DS, Liu DK et al (2019) Formation mechanism of the Upper Triassic Yanchang Formation tight sandstone reservoir in Ordos Basin—take Chang 6 reservoir in Jiyuan oil field as an example. J Petrol Sci Eng 178:497–505

    Article  Google Scholar 

  • Ren FQ, Zhu C, He MC (2020) Moment tensor analysis of acoustic emissions for cracking mechanisms during schist strain burst. Rock Mech Rock Eng 53(1):153–170

    Article  Google Scholar 

  • Singh R, Umrao RK, Singh TN (2014) Stability evaluation of road-cut slopes in the Lesser Himalaya of Uttarakhand, India: conventional and numerical approaches. Bull Eng Geol Environ 73:845–857

    Article  Google Scholar 

  • Tao ZG, Zhang HJ, Chen YF, Jiang CC (2016) Support principles of NPR bolt/cable and control techniques. Int J Rock Mech Min 26(6):967–973

    Google Scholar 

  • Tao ZG, Zhu C, Zheng XH, He MC (2018a) Slope stability evaluation and monitoring of Tonglushan ancient copper mine relics. Adv Mech Eng 8(10):1–16

    Google Scholar 

  • Tao ZG, Zhang HJ, Zhu C, Hao ZL, Zhang XL, Hu X (2019) Design and operation of App-based intelligent landslide monitoring system: the case of Three Gorges Reservoir Region. Geomat Nat Hazards Risk 10(1):1209–1226

    Article  Google Scholar 

  • Tao ZG, Li MN, Zhu C, He MC, Zheng XH, Yu SB (2018b) Analysis of the critical safety thickness for pretreatment of mined-out areas underlying the final slopes of open-pit mines and the effects of treatment. Shock Vib 2018:1–8

    Google Scholar 

  • Wang JP, Gao JX, Liu C, Wang J (2010) High precision slope deformation monitoring model based on the GPS/pseudolites technology in open pit mine. Min Sci Technol China 20(1):126–132

    Article  Google Scholar 

  • Wang X, Yuan W, Yan YT, Zhang X (2020) Scale effect of mechanical properties of jointed rock mass: a numerical study based on particle flow code. Geomech Eng 21(3):259–268

    Google Scholar 

  • Yang J, Tao ZG, Li BL, Gui Y, Li HF (2012) Stability assessment and feature analysis of slope in Nanfen Open Pit Iron Mine. Int J Min Sci Technol 22(3):329–333

    Article  Google Scholar 

  • Zheng H, Sun GH, Liu DF (2009) A practical procedure for searching critical slip surfaces of slopes based on the strength reduction technique. Comput Geotech 36:1–5

    Article  Google Scholar 

  • Zhu C, Pang SH, Zhao JZ, Tao ZG, Han WS, Yin XH (2019) Analysis of slope deformation caused by subsidence of Goaf on Tonglushan ancient mine relics. Geotech Geol Eng 37(4):2861–2871

    Article  Google Scholar 

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Acknowledgements

This work was supported by the Shandong Province Natural Science Foundation of China under Grant Number [ZR2017PD011].

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Correspondence to Zhigang Tao.

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Tao, Z., Wang, Y., Li, M. et al. Numerical Simulation Analysis of Mechanical Properties and Application of Large Deformation Cable with Constant Resistance. Geotech Geol Eng 39, 81–93 (2021). https://doi.org/10.1007/s10706-020-01422-2

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  • DOI: https://doi.org/10.1007/s10706-020-01422-2

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