Assessment of the trueness and precision of smartphone photogrammetry for rock joint roughness measurement

Measurement ◽  
2021 ◽  
pp. 110598
Author(s):  
Pengju An ◽  
Kun Fang ◽  
Yi Zhang ◽  
Yaofei Jiang ◽  
Yuzhe Yang
Author(s):  
Pinnaduwa H. S. W. Kulatilake ◽  
Shi-Gui Du ◽  
Mawuko Luke Yaw Ankah ◽  
Rui Yong ◽  
Desmond Talamwin Sunkpal ◽  
...  

2019 ◽  
Vol 11 (4) ◽  
pp. 1014
Author(s):  
Seungbeom Choi ◽  
Byungkyu Jeon ◽  
Sudeuk Lee ◽  
Seokwon Jeon

Rock mass contains various discontinuities, such as faults, joints, and bedding planes. Among them, a joint is one of the most frequently encountered discontinuities in rock engineering applications. Generally, a joint exerts great influence on the mechanical and hydraulic behavior of rock mass, since it acts as a weak plane and as a fluid path in the rock mass. Therefore, an accurate understanding on joint characteristics is important in many projects. In-situ tests on joints are sometimes consumptive in terms of time and expenses so that the features are investigated by laboratory tests, providing fundamental properties for rock mass analyses. Although the behavior of a joint is affected by both mechanical and geometric conditions, the latter are often limited, since quantitative control on the conditions is quite complicated. In this study, artificial rock joints with various geometric conditions, i.e., joint roughness, were prepared in a quantitative manner and the hydromechanical characteristics were investigated by several laboratory experiments. Based on the results, a prediction model for hydraulic aperture was proposed in the form of ( e h / e m ) 3 = exp ( − 0.0462 c ) × ( 0.8864 ) J R C , which was a function of the mechanical aperture, joint roughness, and contact area. Relatively good agreement between the experimental results and predicted value indicated that the model is capable of estimating the hydraulic aperture properly.


2017 ◽  
Vol 9 (6) ◽  
pp. 1071-1084 ◽  
Author(s):  
S.M. Mahdi Niktabar ◽  
K. Seshagiri Rao ◽  
Amit Kumar Shrivastava

Author(s):  
Shi-Gui Du ◽  
Kai-Qian Du ◽  
Rui Yong ◽  
Jun Ye ◽  
Zhan-You Luo

Accurate assessment of anisotropy and scale effect of rock joint roughness is essential for evaluating the mechanical behaviour of rock joints. However, in previous studies, how to quantify roughness anisotropy of rock joints remains largely unsolved, and the research about scale effect on roughness anisotropy is not conclusive. A statistical analysis on joint roughness coefficient of different sized profiles was implemented to investigate the scale-dependency of joint roughness. The scale effect on the roughness anisotropy were investigated based on class ratio transform approach. The roughness anisotropy was characterized by local anisotropy and global anisotropy. The global anisotropy tends to be almost constant when the sample size exceeds the stationarity threshold length of 70 cm. The result shows that the global anisotropy is scale-dependent. However, the scale effect on local anisotropy is less apparent. The case study indicates that the class ratio transform approach implies its superiority in roughness anisotropy investigation.


2021 ◽  
Vol 21 (5) ◽  
pp. 04021052
Author(s):  
Xige Liu ◽  
Wancheng Zhu ◽  
Yangxiao Liu ◽  
Qinglei Yu ◽  
Kai Guan
Keyword(s):  

2006 ◽  
Vol 29 (6) ◽  
pp. 100169
Author(s):  
L David Suits ◽  
TC Sheahan ◽  
E-S Hong ◽  
I-M Lee ◽  
J-S Lee

2014 ◽  
Vol 55 ◽  
pp. 290-305 ◽  
Author(s):  
Yunfeng Ge ◽  
Pinnaduwa H.S.W. Kulatilake ◽  
Huiming Tang ◽  
Chengren Xiong

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