The collapse column may result in failure of the surrounding rock during roadway excavation. It is of considerable importance to elucidate the failure characteristics and develop the corresponding control technologies for the surrounding rock. A discrete fracture mesh (DFN) and a strain-softening constitutive model are employed to simulate the properties of a collapse column. The stress zoning model was developed to characterize the rock surrounding the collapse column. Additionally, the zoned support technology was proposed to stabilize the roadway surrounding the rock. From the center outward, the results indicate that the collapse column can be individually divided into four zones: an internal impact zone of the collapse column, a stress decreasing zone, a stress increasing zone, and an initial stress zone. Upon the visibility of the collapse column, the tensile failure occurs in the roof, leading to a decrease in stress in front of the roadway and an increase in stress on both sides of the collapse column. The collapse amplifies the range of plastic failure by inducing an overlap between the roof stress and the stress elevation zones. The impact zone of the collapse column was reinforced by means of an integrated support system consisting of "pre-grouting, bolt cable mesh, and steel shed". The "bolt cable mesh" provides integrated support beyond the area affected by the collapse column. Following a 20d excavation period, the roof and the two sides were stabilized, with an effectively controlling for the surrounding rock.
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http://dx.doi.org/10.1038/s41598-024-79311-4 | DOI Listing |
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Service of Clinical Pharmacology, Department of Medicine, Lausanne University Hospital and University of Lausanne, Lausanne, Switzerland.
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Department of Paediatrics and Adolescent Medicine, Hong Kong Children's Hospital, Hong Kong.
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View Article and Find Full Text PDFJ Orthop Case Rep
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Department of Orthopaedics and Traumatology, Chettinad Hospital and Research Institute, Kelambakkam, Tamil Nadu, India.
Introduction: Proximal humerus fractures are prevalent, especially among the elderly, and pose significant challenges in treatment, particularly for displaced fractures. Despite the availability of various surgical techniques, outcomes remain inconsistent, often due to poor anatomical reduction and fixation. This study examines the correlation between specific radiographic parameters and functional outcomes, aiming to identify key predictors of recovery.
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November 2024
Jilin Agricultural University, Changchun, 131118, China.
The bottom frame masonry structure (BFMS) in a semi-ruined state is vulnerable to secondary collapse under strong aftershocks, posing a significant risk to rescuers during post-earthquake operations. Therefore, investigating the mechanisms and characteristics of secondary collapse of BFMS in a semi-ruined state (BFMS-SR) under aftershocks is critical. This paper proposes a numerical modeling framework for BFMS under mainshock-aftershock conditions, utilizing a combination of the finite element method (FEM) and the finite discrete element method (FDEM).
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Division of Foot and Ankle Surgery, Department of Orthopaedic Surgery, Duke University School of Medicine, Durham, NC, USA.
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