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Linear Energy Storage and Dissipation Laws of Rocks Under Preset Angle Shear Conditions

机译:预设角剪切条件下岩石线性储能和耗散定律

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The processes of deformation and failure in rocks are unavoidably accompanied by the absorption, storage, dissipation, and release of energy. To explore energy allocation during rock shear fracturing, two series of single loading and unloading preset angle shear tests at inclined angles of 60 degrees and 50 degrees were performed on red sandstone and granite by varying the experimental unloading level. The area integral approach was employed to interpret the load-displacement responses of the rock specimens via calculation of the energy parameters (referring to the external input energy, internal elastic energy and internal dissipation energy). The interpretations of the results revealed that the increase in the experimental unloading level nonlinearly increases the internal elastic energy, internal dissipation energy and external input energy; these relationships can be described by quadratic functions. It was also realized that under different experimental unloading levels, not only the internal elastic energy but also the internal dissipation energy is closely proportional to the external input energy. The proportional energy relationship can be used to quantify the internal elastic energy and internal dissipation energy at any expected experimental unloading levels, and a real-time calculation model for the internal elastic energy and internal dissipation energy in the pre-peak duration (including the peak point) was introduced. Meanwhile, an invariable feature for the ultimate internal elastic index W-ed (the ratio of ultimate internal elastic energy to peak internal dissipation energy) was captured via quantitative analysis. Additionally, the energy allocation manner and transfer mechanisms of rocks bearing varied loading forms (including uniaxial compression, Brazilian splitting, point load, semicircular bending, and preset angle shear) were also comprehensively compared considering three basic rock fracture modes: the tensile, shear, and hybrid failure (mixed tensile-shear) modes. Thus, the proportional distribution patterns of internal elastic energy and internal dissipation energy or the linear correlations among the three energy parameters can be universally observed during the failure of homogeneous rocks, despite distinct loading forms under one-dimensional stress conditions.
机译:岩石中变形和失效的过程不可避免地伴有能量的吸收,储存,耗散和释放。为了在岩石剪切压裂期间探索能量分配,通过改变实验卸载水平,在红色砂岩和花岗岩上进行两种单一装载和卸载预设角剪切测试,在红色砂岩和花岗岩上进行。采用该区域积分方法来解释通过计算能量参数(参考外部输入能量,内部弹性能量和内部耗散能量)来解释岩石样本的负载 - 位移响应。结果的解释显示,实验卸料水平的增加非线性地增加内部弹性能量,内部耗散能量和外部输入能量;这些关系可以通过二次函数来描述。还意识到,在不同的实验卸载水平下,不仅存在内部弹性能量,而且内部耗散能量与外部输入能量密切成比例。比例能量关系可用于在任何预期的实验卸载水平下量化内部弹性能量和内部耗散能量,以及预峰值持续时间内的内部弹性能量和内部耗散能量的实时计算模型(包括峰值点)被介绍。同时,通过定量分析捕获了最终内部弹性指数W-ED(终极内部弹性能量与峰值内部耗散能量的比率)的不变特征。另外,考虑到三种基本岩石骨折模式,还综合地综合地对轴承变化的岩石(包括单轴压缩,巴西分裂,点负荷,半圆形弯曲和预设角度剪切)的能量分配方式和转移机制进行了综合:拉伸,剪切,和杂交失效(混合拉伸剪切)模式。因此,尽管在一维应力条件下,但在均匀岩石的故障期间,可以普遍观察内部弹性能量和内部耗散能量的比例分布模式或三个能量参数之间的线性相关性。

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