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Frontiers of Structural and Civil Engineering

ISSN 2095-2430

ISSN 2095-2449(Online)

CN 10-1023/X

邮发代号 80-968

2019 Impact Factor: 1.68

Frontiers of Structural and Civil Engineering  2023, Vol. 17 Issue (6): 964-979   https://doi.org/10.1007/s11709-023-0978-6
  本期目录
Numerically investigating the crushing of sandstone by a tooth hob
Dongning SUN1,2(), Baoning HONG1,2, Xin LIU1,3, Ke SHENG1,2, Guisen WANG1,2, Zhiwei SHAO1,2, Yunlong YAO1,2
1. Key Laboratory of Ministry of Education for Geomechanics and Embankment Engineering, Hohai University, Nanjing 210098, China
2. Geotechnical Research Institute, Hohai University, Nanjing 210098, China
3. Institute of Tunnel and Underground Engineering, Hohai University, Nanjing 210098, China
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Abstract

To investigate the mechanical process that occurs between rocks and tooth hobs, the crushing of sandstone with a tooth hob was simulated using reconstructed multi-mineral mesoscopic numerical models of various grain-sized sandstone samples. When a piece of sandstone is crushed by the tooth of a hob rolling at a constant speed, the resultant reaction forces of the sandstone on the tooth first hinder and then contribute to the rolling of the hob. The absolute value of the longitudinal reaction force is significantly higher than that of the lateral reaction force. Because the tooth was subjected to reaction forces from the sandstone, forces and moments were applied to the hob in order to keep the hob rolling. The applied forces were equal in value and opposite in direction to the reaction forces of the sandstone on the tooth. Three typical curves of the work done by the applied forces and moment were obtained, and the contribution of the applied lateral force and moment to the total work done for crushing sandstones was variable; however, no work was done by the applied longitudinal force. Moreover, the applied longitudinal force and total work were positively correlated with the strength of sandstone samples. The total work, applied forces, and moment increased with the maximum penetration depth of the tooth in the sandstone.

Key wordssandstone    tooth hob    crushing process    reaction force    numerical simulation
收稿日期: 2022-11-07      出版日期: 2023-08-30
Corresponding Author(s): Dongning SUN   
 引用本文:   
. [J]. Frontiers of Structural and Civil Engineering, 2023, 17(6): 964-979.
Dongning SUN, Baoning HONG, Xin LIU, Ke SHENG, Guisen WANG, Zhiwei SHAO, Yunlong YAO. Numerically investigating the crushing of sandstone by a tooth hob. Front. Struct. Civ. Eng., 2023, 17(6): 964-979.
 链接本文:  
https://academic.hep.com.cn/fsce/CN/10.1007/s11709-023-0978-6
https://academic.hep.com.cn/fsce/CN/Y2023/V17/I6/964
classification of sandstonesampling depth (m)coloruniaxial compressive strength (MPa)
very coarse-grained40grayish-white100–120
coarse-grained65grayish-white110–140
medium-grained50grayish-white160–200
fine-grained45reddish-brown70–100
Tab.1  
Fig.1  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
Fig.6  
Fig.7  
Fig.8  
modelmineral typemeso parameter
emodkratiofricPb_emodPb_kratioPb_tenPb_cohPb_fa
VCquartz1.05E+101.002.02.25E+101.009.00E+071.76E+0810
feldspar8.40E+091.002.01.80E+101.007.20E+071.40E+0810
debris6.30E+091.002.01.35E+101.001.80E+073.51E+0710
Cquartz1.50E+102.101.52.80E+102.101.15E+082.24E+0815
feldspar1.20E+102.101.52.24E+102.109.20E+071.79E+0815
debris9.00E+092.101.51.68E+102.102.30E+074.49E+0715
Mquartz1.15E+102.401.53.80E+102.401.65E+083.22E+0878
feldspar9.20E+092.401.53.04E+102.401.32E+082.57E+0878
debris6.90E+092.401.52.28E+102.403.30E+076.44E+0778
Fquartz8.00E+091.452.02.05E+101.451.50E+082.93E+0879
feldspar6.40E+091.452.01.64E+101.451.20E+082.34E+0879
debris4.80E+091.452.01.23E+101.453.00E+075.85E+0779
Tab.2  
meso parametersvalue
emod0.4 × (x1 + x2)
kratio, fric, Pb_kratio, Pb_fa0.5 × (x1 + x2)
Pb_emod, Pb_ten, Pb_coh0.8 × min (x1, x2)
Tab.3  
Fig.9  
Fig.10  
Fig.11  
Fig.12  
Fig.13  
Fig.14  
Fig.15  
Fig.16  
Fig.17  
Fig.18  
Fig.19  
Fig.20  
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