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首页> 外文期刊>Rock Mechanics and Rock Engineering >Creep and Long-Term Permeability of a Red Sandstone Subjected to Cyclic Loading After Thermal Treatments
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Creep and Long-Term Permeability of a Red Sandstone Subjected to Cyclic Loading After Thermal Treatments

机译:在热处理后,红砂砂岩的蠕变和长期渗透性受到循环加载的

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Long-term experiments were performed on red sandstones after different thermal treatments (25, 300, 700 and 1000?°C) under multi-step loading and unloading cycles and a confining pressure of 25?MPa. Furthermore, to quantitatively analyse the temperature influence on the deformation behaviours of the specimens, the concept of the temperature–strain rate was proposed to describe the relationship between strain and temperature, and the experimental results were corrected to identical temperatures (i.e., 20?°C), to overcome the influence of periodic fluctuations in ambient temperature. The results show that the axial mean temperature–strain rate first increased as temperature increased from 25 to 300?°C and then decreased with increasing temperature, whereas the lateral mean temperature–strain rate decreased with increasing temperature. The total strain was divided into the instantaneous elastic strain, the instantaneous plastic strain, the visco-elastic strain and the visco-plastic strain. The total axial strain increased with increasing deviatoric stress, and the irrecoverable strain increased with increasing loading and unloading history. Furthermore, the total axial strain increased with increasing temperature; specifically, at 1000?°C, it was approximately two times that at 700?°C and three times those at 25 and 300?°C. The instantaneous elastic strain and the instantaneous plastic strain increased approximately linearly with increasing deviatoric stress, whereas the creep strain varied with deviatoric stress in complicated ways at different temperatures. However, under identical deviatoric stress, the instantaneous elastic strain and the instantaneous plastic strain increased slightly as temperature increased from 25 to 700?°C and then increased substantially as temperature reached 1000?°C, whereas the variations in the creep strain, the visco-elastic strain and the visco-plastic strain were dependent on temperature and stress level. Finally, the permeability first decreased slightly as temperature increased from 25 to 300?°C and then increased with increasing temperature.
机译:在不同热处理(25,300,700和1000℃)的多步装载和卸载循环之后,在红色砂岩上进行长期实验,并限制25Ωmpa。此外,为了定量分析对样本的变形行为的温度影响,提出了温度 - 应变速率的概念来描述应变和温度之间的关系,并且将实验结果校正到相同的温度(即20?° c),克服周期性波动在环境温度下的影响。结果表明,随着温度从25至300℃的温度增加,轴向平均温度 - 应变速率从25℃增加,然后随着温度的增加而降低,而横向平均温度 - 应变速率随温度的增加而降低。将总菌株分成瞬时弹性应变,瞬时塑性应变,粘弹性应变和粘塑菌株。随着偏差应力的增加而增加,总轴向应变增加,随着负载和卸载历史的增加,无法恢复的应变增加。此外,总轴向应变随温度的增加而增加;具体地,在1000?℃下,大约是700°C的两倍,在25和300℃下的三倍。瞬时弹性应变和瞬时塑性应变随着偏差应力而大致线性增加,而蠕变菌株在不同温度下的复杂方式变化。然而,在相同的脱抗应力下,瞬时弹性应变和瞬时塑性应变随温度从25至700℃的温度升高而增加,然后随温度达到1000Ω·℃,而蠕变菌株的变化,粘度 - 弹性应变和粘塑菌株依赖于温度和胁迫水平。最后,渗透率首先略微降低,随着温度从25至300Ω·℃增加,然后随温度的增加而增加。

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