Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Songfeng Guo is active.

Publication


Featured researches published by Songfeng Guo.


Rock Mechanics and Rock Engineering | 2014

Experimental Study of Ultrasonic Waves Propagating Through a Rock Mass with a Single Joint and Multiple Parallel Joints

Xiaolin Huang; Shengwen Qi; Songfeng Guo; Wanli Dong

Experiments were conducted to study the relationship between the transmission ratio (TR) and normal stress, joint roughness, joint number and frequency of incident waves, respectively, when ultrasonic waves pass across a rock mass with one joint and multiple parallel joints oriented normally. The ultrasonic waves were generated and received by pairs of piezoelectric transducers and recorded by an ultrasonic detector. The specimens were subjected to normal stress by a hydraulic jack and loading frame. The jointed rock mass was produced by superposing rock blocks in the study. Rough joints were produced by grooving notches on the planar joints formed by sawing directly. In the case of multiple parallel joints, the overall thickness of specimens was maintained while the joint number changed. Three pairs of P-wave transducers and one pair of S-wave transducers with different frequencies were, respectively, applied and all transducers emitted signals perpendicular to the joints in the experiment. The results indicate that TR increases with increasing normal stress while the increment rate decreases gradually. This is particularly so when the normal stress is high enough that TR will approximate 1 even if the rock mass has many joints. In addition, the experiments indicate that the higher the wave’s frequency, the lower its TR, and this phenomenon is gradually reduced as the normal stress increases. In response to S-waves, TR increases with increase in joint roughness; however, in response to P-waves, TR decreases gradually with increase in joint roughness. For multiple parallel joints in a fixed thickness rock mass with normally incident P-waves, TR does not always decrease with increase in the number of joints, and there is a threshold joint spacing for a certain incident wave: when the joint spacing is smaller than the threshold value, TR will increase with a decrease in joint spacing. The experimental results support similar conclusions based on analytical results drawn by Cai and Zhao (Int J Rock Mech Min Sci 37(4):661–682, 2000), Zhao et al. (Int J Rock Mech Min Sci 43(5):776–788, 2006b) and Zhu et al. (J Appl Geophys 73:283–288, 2011a).


Materials | 2017

Numerical Studies on the Failure Process of Heterogeneous Brittle Rocks or Rock-Like Materials under Uniaxial Compression

Songfeng Guo; Shengwen Qi; Yu Zou; Bowen Zheng

In rocks or rock-like materials, the constituents, e.g. quartz, calcite and biotite, as well as the microdefects have considerably different mechanical properties that make such materials heterogeneous at different degrees. The failure of materials subjected to external loads is a cracking process accompanied with stress redistribution due to material heterogeneity. However, the latter cannot be observed from the experiments in laboratory directly. In this study, the cracking and stress features during uniaxial compression process are numerically studied based on a presented approach. A plastic strain dependent strength model is implemented into the continuous numerical tool—Fast Lagrangian Analysis of Continua in three Dimensions (FLAC3D), and the Gaussian statistical function is adopted to depict the heterogeneity of mechanical parameters including elastic modulus, friction angle, cohesion and tensile strength. The mean parameter μ and the coefficient of variance (hcv, the ratio of mean parameter to standard deviation) in the function are used to define the mean value and heterogeneity degree of the parameters, respectively. The results show that this numerical approach can perfectly capture the general features of brittle materials including fracturing process, AE events as well as stress-strain curves. Furthermore, the local stress disturbance is analyzed and the crack initiation stress threshold is identified based on the AE events process and stress-strain curves. It is shown that the stress concentration always appears in the undamaged elements near the boundary of damaged sites. The peak stress and crack initiation stress are both heterogeneity dependent, i.e., a linear relation exists between the two stress thresholds and hcv. The range of hcv is suggested as 0.12 to 0.21 for most rocks. The stress concentration degree is represented by a stress concentration factor and found also heterogeneity dominant. Finally, it is found that there exists a consistent tendency between the local stress difference and the AE events process.


Bulletin of Engineering Geology and the Environment | 2018

ARMR, a new classification system for the rating of anisotropic rock masses

Charalampos Saroglou; Shengwen Qi; Songfeng Guo; Faquan Wu

The engineering behavior of rock masses is strongly dependent on anisotropy, which is present at different scales, from the microscale in the intact rock due to the alignment of rock crystals (inherent anisotropy) to the macroscale in rock masses with anisotropic rock structure, characterized by distinct bedding or schistosity planes. This paper presents a new rock mass classification system, Anisotropic Rock Mass Rating (ARMR), specifically developed for the classification of anisotropic rock masses. ARMR considers the following rating parameters: (a) anisotropy strength index, RC; (b) uniaxial compressive strength of intact rock; (c) degree of structure anisotropy; (d) corrected rock quality designation (RQD); (e) condition of anisotropy surfaces; and (f) groundwater conditions. Its use is illustrated and explained by application to specific case studies in anisotropic rock masses, and the advantages and limitations of the classification system are outlined. The strength of anisotropic rock masses is determined using the modified Hoek–Brown criterion (Saroglou and Tsiambaos, Int J Rock Mech Mining Sci 45:223–234, 2008), which is extended to rock masses with the use of ARMR.


Engineering Geology | 2015

Numerical study on progressive failure of hard rock samples with an unfilled undulate joint

Songfeng Guo; Shengwen Qi


Archive | 2013

The deformation and strength properties of Jinping marble with different confiningpressures under cyclic loading—unloading tests

Songfeng Guo; Bowen Zheng; Xingxing Li


Bulletin of Engineering Geology and the Environment | 2016

Influence of tunnel wall roughness and localized stress concentrations on the initiation of brittle spalling

Songfeng Guo; Shengwen Qi; Ming Cai


Archive | 2012

Impact shearing device of rock mass structural plane

Shengwen Qi; Xiaolin Huang; Songfeng Guo


Environmental Earth Sciences | 2015

Landslide-risk zonation along mountainous highway considering rock mass classification

Shengwen Qi; Xingxing Li; Songfeng Guo; Zhifa Zhan; Haijun Liao


Engineering Geology | 2017

Plastic-strain-dependent strength model to simulate the cracking process of brittle rocks with an existing non-persistent joint

Songfeng Guo; Shengwen Qi; Zhifa Zhan; Bowen Zheng


13th ISRM International Congress of Rock Mechanics | 2015

The Influence of Shear Deformation Velocity on the Strength Characteristics of Rock Joints

Bowen Zheng; Shengwen Qi; Songfeng Guo; Xiaolin Huang

Collaboration


Dive into the Songfeng Guo's collaboration.

Top Co-Authors

Avatar

Shengwen Qi

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Bowen Zheng

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Xiaolin Huang

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Xingxing Li

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Zhifa Zhan

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Yu Zou

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Charalampos Saroglou

National Technical University of Athens

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Wanli Dong

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Ming Cai

Laurentian University

View shared research outputs
Researchain Logo
Decentralizing Knowledge