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      Fracture Characteristics and Fatigue Damage of Noncoplanar Fractured Rocklike Specimens under Uniaxial Graded Cyclic Loading and Unloading

      1 , 2 , 1 , 2 , 1 , 2 , 1 , 2 , 1 , 2 , 1 , 2
      Geofluids
      Hindawi Limited

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          Abstract

          To study the fracture characteristics and fatigue damage of fractured rock masses, noncoplanar fractured rocklike specimens prepared using cement mortar were used for a graded cyclic loading–unloading test. The results showed that the two ends of the horizontal crack were the main stress concentration areas, and they inhibited crack initiation of the inclined fracture. With increasing crack inclination, the inhibitory effect became more obvious. Under the condition that the lower limit stress is constant, as the upper limit stress increases, energy dissipation of the specimen increases, becoming relatively stable in each stage of the cycle. With increasing crack inclination, the increase in the energy dissipation value decreases. Specimens with large changes in the shape of their hysteresis loop tend to exhibit large fluctuations in the elastic modulus. As the loading progressed, the elastic modulus exhibited a downward trend, and the damping ratio tended to be stable. The change in the damping ratio is affected by the dynamic elastic modulus and area of the hysteresis loop. Based on the Weibull probability distribution function, the evolution curve of the damage variable of the specimen can be obtained. This curve reflects the trend of the damage change of the rocklike specimens under various levels of cyclic loading and unloading.

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          Most cited references8

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          Fatigue properties of intact sandstone samples subjected to dynamic uniaxial cyclical loading

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            Mechanical behaviors and failure processes of precracked specimens under uniaxial compression: A perspective from microscopic displacement patterns

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              Fatigue deformation characteristics and damage model of sandstone subjected to uniaxial step cyclic loading

              X. Li, Li, X. M. Li (2017)
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                Author and article information

                Contributors
                Journal
                Geofluids
                Geofluids
                Hindawi Limited
                1468-8123
                1468-8115
                May 10 2021
                May 10 2021
                : 2021
                : 1-13
                Affiliations
                [1 ]School of Resources Environment and Safety Engineering, University of South China, Hengyang, China
                [2 ]Hunan Province Engineering Technology, Research Center for Disaster Prediction and Control on Mining Geotechnical Engineering, 421001 Hengyang, China
                Article
                10.1155/2021/9993195
                4bbff88b-3577-4374-8de4-cb3d7aa79ab2
                © 2021

                https://creativecommons.org/licenses/by/4.0/

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