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Anchoring mechanism and application of hydraulic expansion bolts used in soft rock roadway floor heave control 被引量:20
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作者 Chang Qingliang Zhou Huaqiang +1 位作者 Xie Zhihong Shen Shiping 《International Journal of Mining Science and Technology》 SCIE EI 2013年第3期323-328,共6页
Comparing with the resin bolt, the hydraulic expansion bolt has different anchoring mechanism and application advantage. According to the working mechanism of the hydraulic expansion bolt, its anchoring force is expre... Comparing with the resin bolt, the hydraulic expansion bolt has different anchoring mechanism and application advantage. According to the working mechanism of the hydraulic expansion bolt, its anchoring force is expressed in four forms including support anchoring force, tension anchoring force, expansion anchoring force and tangent anchoring force, and their values can be obtained on the basis of each calculation formula. Among them, the expansion anchoring force, which is the unique anchoring force of the hydraulic expansion bolt, can provide confining pressure to increase the strength of rock. Aiming at solving the problem of stability control in the soft rock roadway in Jinbaotun Coal Mine which has a double layer of 40 U-type sheds and cannot provide enough resistance support to control floor heave, the study reveals the mechanism of floor heave in the soft rock roadway, and designs the reasonable support parameters of the hydraulic expansion bolts. The observed results of floor convergence indicate that the hydraulic expansion bolts can prevent the development and flow of the plastic zone in the floor rock to control floor heave. Research results enrich the control technology in the soft rock roadway. 展开更多
关键词 Hydraulic expansion bolt anchoring force Soft rock roadway Floor heave Shed support
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Effect of a preload force on anchor system frequency 被引量:2
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作者 Lu Aihong Xu Jinhai Liu Haishun 《International Journal of Mining Science and Technology》 SCIE EI 2013年第1期135-138,共4页
The interrelationship between preload forces and natural frequencies of anchors was obtained from the structure of an anchor and its mechanical characteristics. We established a numerical model for the dynamic analysi... The interrelationship between preload forces and natural frequencies of anchors was obtained from the structure of an anchor and its mechanical characteristics. We established a numerical model for the dynamic analysis of a bolt support system taking into consideration the working surroundings of the anchor. The natural frequency distribution of the system under various preload forces of the anchor was analyzed with ANSYS. Our results show that each order of the system frequency varied with an increase in preload forces. A single order frequency decreased with an increase in the preload force. A preload force affected low-order frequencies more than high-order frequencies. We obtained a functional relationship by fitting preload forces and fundamental frequencies, which was in agreement with our theretical considerations. This study provides theoretical support for the detection of preload forces. 展开更多
关键词 Frequency Preload force Anchor detection Numerical simulation
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Study on damage-stress loss coupling model of rock and prestressed anchor cable in dry-wet environment
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作者 Yu Zhao Huasu Wang +3 位作者 Jing Bi Zhijun Wu Chaolin Wang Jiabao Ma 《International Journal of Mining Science and Technology》 SCIE EI CAS CSCD 2023年第12期1451-1467,共17页
The loss of anchoring force is one of the problems to be solved urgently.The anchorage loss is a key factor causing the failure of anchoring engineering,so it is crucial to study the time-dependent variation of anchor... The loss of anchoring force is one of the problems to be solved urgently.The anchorage loss is a key factor causing the failure of anchoring engineering,so it is crucial to study the time-dependent variation of anchoring force.Alternating dry and wet(D-W)conditions have a significant effect on deformation of rock.The anchoring system is composed of anchoring components and rock mass,and thus rock deformation has a significant impact on the loss of anchoring force.Quantifying rock deformation under the effects of D-W cycles is a prerequisite to understanding the factors that influence loss of anchoring force in anchor bolts.In this study,we designed an anchoring device that enabled real-time monitoring of the variation in strain during D-W periods and rock testing.Nuclear magnetic resonance(NMR)measurements showed that under D-W conditions,the increment in porosity was smaller for prestressed rock than unstressed rock.The trends of prestress loss and strain variation are consistent,which can be divided into three characteristic intervals:rapid attenuation stage,slow attenuation stage and relatively stable stage.At the same stress level,the rate of stress loss and strain for the soaking specimen was the highest,while that of the dried specimen was the lowest.In the same D-W cycling conditions,the greater the prestress,the smaller the strain loss rate of the rock,especially under soaking conditions.The characteristics of pore structure and physical mechanical parameters indicated that prestress could effectively suppress damage caused by erosion related to D-W cycles.The study reveals the fluctuation behavior of rock strain and prestress loss under D-W conditions,providing a reference for effectively controlling anchoring loss and ideas for inventing new anchoring components. 展开更多
关键词 D-W cycles anchoring force loss Coupled model Pore structure Prestressed device
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Experimental and theoretical study of mechanical properties of root-soil interface for slope protection 被引量:13
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作者 SU Li-jun HU Bing-li +2 位作者 XIE Qi-jun YU Fang-wei ZHANG Chong-lei 《Journal of Mountain Science》 SCIE CSCD 2020年第11期2784-2795,共12页
Plant roots mechanically enhance the strength of soil and improve slope stability through anchoring.Given the popularization of ecological slope-protection technology,a quantitative study of how roots help to anchor s... Plant roots mechanically enhance the strength of soil and improve slope stability through anchoring.Given the popularization of ecological slope-protection technology,a quantitative study of how roots help to anchor soil is highly pertinent.The object of the present study is thus to investigate how roots and soil combine to affect the mechanical properties of the root-soil interface.Toward this end,pullout experiments of cedar roots of different diameters in soils of different density were conducted.The experimental results show that the maximum pullout force increases significantly with increasing root diameter,but only slightly increases with increasing soil density,which indicates that the root diameter has a greater impact on the maximum pullout force than soil density.Next,based on studies of fiber-reinforced composites,a root-soil pull-out model was proposed to study the evolution of shear stress on root-soil interface.This approach ensures that the model accurately reflects the dynamic stress distribution evolution at the root-soil interface and can calculate the pullout process of embedded root from soil.The accuracy of the model is verified by comparing the calculated results with experimental results.Finally,how soil density and root diameter affect the anchoring force was analyzed.The results indicate that the maximum anchoring force increases linearly with increasing root diameter,but nonlinearly with increasing soil density until reaching a fixed value.These results show that the root soil pull-out model has significant practical value in slope protection. 展开更多
关键词 Ecological slope-protection anchoring force Pullout experiment Pullout model Model prediction
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