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Erschienen in: Rock Mechanics and Rock Engineering 9/2017

06.06.2017 | Original Paper

Analytical Study of the Mechanical Behavior of Fully Grouted Bolts in Bedding Rock Slopes

verfasst von: C. H. Liu, Y. Z. Li

Erschienen in: Rock Mechanics and Rock Engineering | Ausgabe 9/2017

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Abstract

Bolting is widely used as a reinforcement means for rock slopes. The support force of a fully grouted bolt is often provided by the combination of the axial and shear forces acting at the cross section of the bolt, especially for bedding rock slopes. In this paper, load distribution and deformation behavior of the deflecting section of a fully grouted bolt were analyzed, and a structural mechanical model was established. Based on force method equations and deformation compatibility relationships, an analytical approach, describing the contribution of the axial and shear forces acting at the intersection between the bolt and the joint plane to the stability of a rock slope, was developed. Influence of the inclination of the bolt to the joint plane was discussed. Laboratory tests were conducted with different inclinations of the bolt to the joint plane. Comparisons between the proposed approach, the experimental data and a code method were made. The calculation results are in good agreement with the test data. It is shown that transverse shear resistance plays a significant role to the bolting contribution and that the bigger the dip of the bolt to the joint plane, the more significant the dowel effect. It is also shown that the design method suggested in the code overestimates the resistance of the bolt. The proposed model considering dowel effect provides a more precise description on bolting properties of bedding rock slopes than the code method and will be helpful to improve bolting design methods.

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Metadaten
Titel
Analytical Study of the Mechanical Behavior of Fully Grouted Bolts in Bedding Rock Slopes
verfasst von
C. H. Liu
Y. Z. Li
Publikationsdatum
06.06.2017
Verlag
Springer Vienna
Erschienen in
Rock Mechanics and Rock Engineering / Ausgabe 9/2017
Print ISSN: 0723-2632
Elektronische ISSN: 1434-453X
DOI
https://doi.org/10.1007/s00603-017-1244-9

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