Tunnel Boring Machine Equipment

On the Loads for Strength Design of Cutterhead of Full Face Rock Tunnel Boring Machine

  • Meidong Han ,
  • Zongxi Cai ,
  • Chuanyong Qu
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  • 1. School of Aircraft Engineering, Nanchang Hangkong University, Nanchang 330063, China;
    2. School of Mechanical Engineering, Tianjin University, Tianjin 300350, China

Received date: 2019-01-20

  Online published: 2020-05-18

Supported by

Supported by National Basic Research Program of China (973 Program, Grant No. 2013CB035042) and the National Natural Science Foundation of China (Grant No. 11672202)

Abstract

Cutterhead loads are the key mechanical parameters for the strength design of the full face hard rock tunnel boring machine (TBM). Due to the brittle rock-breaking mechanism, the excavation loads acting on cutters fluctuate strongly and show some randomness. The conventional method that using combinations of some special static loads to perform the strength design of TBM cutterhead may lead to strength failure during working practice. In this paper, a three-dimensional finite element model for coupled Cutterhead?Rock is developed to determine the cutterhead loads. Then the distribution characteristics and the influence factors of cutterhead loads are analyzed based on the numerical results. It is found that, as time changes, the normal and tangential forces acting on cutters and the total torque acting on the cutterhead approximately distribute log normally, while the total thrusts acting on the cutterhead approximately show a normal distribution. Furthermore, the statistical average values of cutterhead loads are proportional to the uniaxial compressive strength (UCS) of cutting rocks. The values also change with the penetration and the diameter of cutterhead following a power function. Based on these findings, we propose a three-parameter model for the mean of cutterhead loads and a method of generating the random cutter forces. Then the strength properties of a typical cutterhead are analyzed in detail using loads generated by the new method. The optimized cutterhead has been successfully applied in engineering. The method in this paper may provide a useful reference for the strength design of TBM cutterhead.

Cite this article

Meidong Han , Zongxi Cai , Chuanyong Qu . On the Loads for Strength Design of Cutterhead of Full Face Rock Tunnel Boring Machine[J]. Chinese Journal of Mechanical Engineering, 2019 , 32(6) : 99 -99 . DOI: 10.1186/s10033-019-0411-1

References

[1] J Wei, Q Sun, W Sun, et al. Load-sharing characteristic of multiple pinions driving in tunneling boring machine. Chinese Journal of Mechanical Engineering, 2015, 28(4): 801-809.
[2] J Z Huo, D Zhu, G Q Li, et al. Application of a small-timescale fatigue, crack-growth model to the plane stress/strain transition in predicting the lifetime of a tunnel-boring-machine cutter head. Engineering Failure Analysis, 2017, 71: 11-30.
[3] F F Roxborough, H R Phillips. Rock excavation by disc cutter. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts, 1975, 12(12): 361-366.
[4] J Rostami, L Ozdemir. A new model for performance prediction of hard rock TBMs. Proceedings of the Rapid Excavation and Tunneling Conference, Boston, America, June 13-17, 1993: 793-793.
[5] G Li, L D Zhu, J Y Yang, et al. A method to predict disc cutter wear extent for hard rock TBMs based on CSM model. China Mechanical Engineering, 2014, 25(1): 32-35. (in Chinese)
[6] J Q Liu, J B Ren, W Guo. Thrust and torque characteristics based on a new cutter-head load model. Chinese Journal of Mechanical Engineering, 2015, 28(4): 801-809.
[7] J Z Huo, N Hou, W Sun, et al. Analyses of dynamic characteristics and structure optimization of tunnel boring machine cutter system with multi-joint surface. Nonlinear Dynamics, 2017, 87(1): 237-254.
[8] Y M Xia, T Ouyang, X M Zhang, et al. Mechanical model of breaking rock and force characteristic of disc cutter. Journal of Central South University, 2012, 19(7): 1849-1852.
[9] J Z Huo, W Z Wang, W Sun, et al. The multi-stage rock fragmentation load prediction model of tunnel boring machine cutter group based on dense core theory. The International Journal of Advanced Manufacturing Technology, 2017, 90(1-4): 277-289.
[10] Q Geng, Z Y Wei, H Meng. An experimental research on the rock cutting process of the gage cutters for rock tunnel boring machine (TBM). Tunnelling and Underground Space Technology, 2016, 52: 182-191.
[11] Q Geng, Z Y Wei, H Meng, et al. Free-face-assisted rock breaking method based on the multi-stage tunnel boring machine (TBM) cutterhead. Rock Mechanics and Rock Engineering, 2016, 49(11): 4459-4472.
[12] Y M Xia, Y C Tian, Q Tian, et al. Side force formation mechanism and change law of TBM center cutter. Journal of Central South University, 2016, 23: 1115-1122.
[13] Q Tan, K Zhang, Y M Xia, et al. Three-dimensional simulation of rock breaking by TBM cutter. Journal of Shandong University (Engineering Science), 2009, 39(06): 72-77. (in Chinese)
[14] Q M Gong, Y Y Jiao, J Zhao. Numerical modeling of the effects of joint spacing on rock fragmentation by TBM cutters. Tunneling and Underground Space Technology, 2006, 21(1): 46-55.
[15] Q M Gong, J Zhao, A M Hefny. Numerical simulation of rock fragmentation process induced by two TBM cutters and cutter spacing optimization. Tunnelling and Underground Spacing Technology, 2006, 21(3/4): 263-270.
[16] S Y Zhou, Y L Kang, C X Su, et al. Mechanical analysis and prediction for the total thrust on TBMs. International Conference on Intelligent Robotics and Applications, Portsmouth, UK, August 24-27, 2015: 436-444.
[17] I Farmer, P Garrity, N H Glossop. Operational characteristics of full face tunnel boring machines. Proceedings of the Rapid Excavation and Tunneling Conference, New Orleans, America, June 14-17, 1987: 188-201.
[18] P P Nelson, Y A Jalil, C Laughton. Analysis of performance measures of tunnel boring machines. Proceedings of the ISRM Symposium, Chester, UK, September 14-17, 1992: 408-413.
[19] U Ates, N Bilgin, H Copur. Estimating torque, thrust and other design parameters of different type TBMs with some criticism to TBMs used in Turkish tunnelling projects. Tunnelling and Underground Space Technology, 2015, 40: 46-63.
[20] S P Jia, W Z Chen, J P Yang. An elastoplastic constitutive model based on modified Mohr-Coulomb criterion and its numerical implementation. Rock and Soil Mechanics, 2010, 31(7): 2051-2058. (in Chinese)
[21] J Lemaitre. How to use damage mechanics. Nuclear Engineering and Design, 1984, 80(2): 233-245.
[22] J Lubliner, J Oliver, S Oiler, et al. A plastic-damage model for concrete. International Journal of Solids and Structures, 1989, 25(3): 299-326.
[23] J Lee, G L Fenves. A plastic-damage concrete model for earthquake analysis of dams. Earthquake Engineering & Structural Dynamics, 1998, 27(9): 937-956.
[24] M D Han, Z X Cai, C Y Qu, et al. Dynamic numerical simulation of cutterhead loads in TBM tunnelling. Tunnelling and Underground Space Technology, 2017, 70: 286-298.
[25] M Abo-Elnor, R Hamilton, J T Boyle. 3D dynamic analysis of soil-tool interaction using the finite element method. Journal of Terramechanics, 2003, 40(1): 51-62.
[26] Q M Gong, J Zhao. Development of a rock mass characteristics model for TBM penetration rate prediction. International Journal of Rock Mechanics and Mining Sciences, 2009, 46(1): 8-18.
[27] M D Han, Z X Cai, C Y Qu. Study on the critical driving speed of the tunnel boring machine cutterhead based on the dynamic stability. Journal of Mechanical Engineering, 2014, 50(21): 10-16. (in Chinese) Download references
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