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型煤与原煤全应力–应变过程渗流特性对比研究 被引量:72
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作者 曹树刚 李勇 +2 位作者 郭平 白燕杰 刘延保 《岩石力学与工程学报》 EI CAS CSCD 北大核心 2010年第5期899-906,共8页
利用自主研制的自压式三轴渗流装置对型煤和原煤试样进行三轴压缩渗流试验,得到不同围压下2种煤样的全应力–应变曲线,并利用流量计和环向引伸计自动采集整个试验过程中煤样的渗流速度和横向变形。从细观损伤力学的观点分析2种煤样不同... 利用自主研制的自压式三轴渗流装置对型煤和原煤试样进行三轴压缩渗流试验,得到不同围压下2种煤样的全应力–应变曲线,并利用流量计和环向引伸计自动采集整个试验过程中煤样的渗流速度和横向变形。从细观损伤力学的观点分析2种煤样不同的破坏形式以及煤样的变形破坏对渗流速度的影响;讨论渗流速度对外部变量的敏感性和煤与瓦斯突出的突发性。研究结果表明,2种煤样的全应力–应变曲线都可以分为5个阶段,并与渗流速度–轴向应变曲线具有良好的对应关系。由于型煤与原煤的结构特性不同,致使2种煤样受力以后具有不同的损伤机制,渗流速度–轴向应变曲线差异较大,尤其在破坏阶段。型煤变形主要在前2个阶段影响煤的渗流特性,而原煤在整个试验过程中都受影响;型煤的渗流速度对轴向压力和轴向变形最敏感,而原煤的渗流速度对体积变形和横向变形比较敏感。原煤全应力–应变–渗流试验的5个阶段可以较好地解释煤与瓦斯突出过程的准备、发动、发展和终止4个阶段,可以间接地利用煤体瓦斯渗流速度变化进行煤与瓦斯突出预测预报。研究结果对探索煤层真实的瓦斯运移规律具有一定的参考价值。 展开更多
关键词 采矿工程 含瓦斯煤 三轴试验 全应力–应变过程 渗透性 对比分析 煤与瓦斯突出
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全应力–应变过程中裂隙灰岩的水–力耦合特性试验研究 被引量:10
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作者 赵延林 付成成 +3 位作者 汪亦显 唐劲舟 周志华 万文 《岩石力学与工程学报》 EI CAS CSCD 北大核心 2016年第A02期3763-3773,共11页
为研究裂隙灰岩在全应力–应变过程中的力学特性和渗透性特点,对裂隙灰岩进行不同渗透压和围压组合下的水–力耦合试验,研究水–力耦合作用下裂隙灰岩的强度和变形特性,并定义全应力–应变过程中6个关键的渗透率值。试验结果表明:渗透... 为研究裂隙灰岩在全应力–应变过程中的力学特性和渗透性特点,对裂隙灰岩进行不同渗透压和围压组合下的水–力耦合试验,研究水–力耦合作用下裂隙灰岩的强度和变形特性,并定义全应力–应变过程中6个关键的渗透率值。试验结果表明:渗透压对裂隙灰岩的力学特性有较大影响,渗透压的存在降低了裂隙灰岩的强度和变形模量,加剧其侧向变形,水–力耦合作用下裂隙灰岩的强度特性可用莫尔–库仑屈服准则来表征;全应力–应变过程中,裂隙灰岩渗透率经历缓慢下降–缓慢增加–快速增长–小幅度下降4个阶段,这大致对应于全应力–应变过程中体积压缩阶段,近线性变形阶段,峰值点附近的破裂阶段和峰后残余强度阶段。在较低渗透压(2 MPa左右)下,上述相应关系吻合情况良好,而在较高渗透压(8 MPa以上)下,上述相应吻合关系存在偏差,渗透率下降阶段要短于体积压缩阶段;在较低渗透压(2 MPa左右)下体积压缩阶段的渗透率与体积应变之间的关系可用负指数函数来描述,而在较高渗透压(8 MPa以上)作用下,在体积压缩阶段的渗透率和体积应变之间的关系可用三次多项式来描述。 展开更多
关键词 岩石力学 水–力耦合 渗透率 强度 全应力–应变过程
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渗透压–应力耦合作用下砂岩渗透率与变形关联性三轴试验研究 被引量:58
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作者 俞缙 李宏 +3 位作者 陈旭 蔡燕燕 武娜 穆康 《岩石力学与工程学报》 EI CAS CSCD 北大核心 2013年第6期1203-1213,共11页
为了探讨渗透压–应力耦合作用下岩石渗透率与变形的关联性,采用岩石伺服三轴试验系统,在不同围压和渗透压条件下,利用稳态法对砂岩全应力–应变过程进行渗透率试验研究。根据试样渗透率变化与其破坏过程的对应关系,分析全应力–应变过... 为了探讨渗透压–应力耦合作用下岩石渗透率与变形的关联性,采用岩石伺服三轴试验系统,在不同围压和渗透压条件下,利用稳态法对砂岩全应力–应变过程进行渗透率试验研究。根据试样渗透率变化与其破坏过程的对应关系,分析全应力–应变过程中试样渗透率随其脆性、延性变化的特点及渗透率–轴向应变和渗透率–体积应变之间的关联性。试验结果表明:(1)在渗透压–应力耦合作用下,试样初始渗透率、峰值强度随着围压与渗透压的改变而改变。(2)在渗流场–应力场耦合作用下连续加载的全应力–应变过程中,渗透率先随着轴向应变的增大而逐渐减小,进入弹塑性阶段后,渗透率变化曲线随围压变化呈现增大、持平及减小3个不同趋势。其中,渗透率曲线持平的现象为三轴渗透试验研究中的新现象。(3)围压较高时,若形成局部压缩带,则试样进入弹塑性阶段后,渗透率的变化趋势是由岩石微裂隙的萌生、扩展与岩石骨架颗粒压碎这2个主要因素共同决定的。(4)岩石微裂隙的萌生、扩展对渗透率增大起积极作用,岩石骨架颗粒压碎形成的压缩带对渗透率增大起抑制作用。(5)岩石进入塑性阶段后,随围压增大,渗透率由上升趋势转变为下降趋势的现象先于脆–延转换的临界状态发生。(6)岩石的体积应变对渗透率有一定影响,在脆–延转换阶段存在体积应变增大而渗透率减小的现象,这需要其他能够更精确地测量体积应变变化的试验进一步验证。 展开更多
关键词 岩石力学 渗透压–应力耦合 渗透率 三轴压缩 压缩带 全应力–应变过程 脆–延转换
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Regularity and mechanism of coal resistivity response with different conductive characteristics in complete stress-strain process 被引量:4
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作者 Chen Peng Wang Enyuan +3 位作者 Chen Xuexi Liu Zhentang Li Zhonghui Shen Rongxi 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2015年第5期779-786,共8页
The stress,strain as well as resistivity of coal during uniaxial compression process were tested based on self-built real-time testing system of loaded coal resistivity.Furthermore,the coal resistivity regularity and ... The stress,strain as well as resistivity of coal during uniaxial compression process were tested based on self-built real-time testing system of loaded coal resistivity.Furthermore,the coal resistivity regularity and mechanism were analyzed at different stages of complete stress-strain process,which includes the two kinds of coal body with typical conductive characteristics.The results indicate that coal resistivity with different conductive characteristics has different change rules in complete stress-strain process.It is mainly represented at the densification and flexibility phases before dilatation occurs.The variation of resistivity can be divided into two kinds,named down and up.Dilatation of coal samples occurred between 66%σ_(max) and 87%σ_(max).Because of dilatation,coal resistivity involves sudden change.The overall representation is shifting from reducing into improving or from slow improving into accelerated improving.Thus,coal resistivity always shows an increasing tendency at the plastic stage.After peak stress,coal body enters into failure stage.The expanding and communicating of macro fracture causes further improvement of coal resistivity.The maximum value of resistivity rangeability named λ reached 3.49.Through making real-time monitoring on coal resistivity,variation rules of resistivity can be deemed as precursory information so as to reflect the dilatation and sudden change before coal body reaches buckling failure,which can provide a new technological means for forecasting the dynamic disaster of coal petrography. 展开更多
关键词 RESISTIVITY STRESS-STRAIN DILATATION Conductive characteristics Coal structure
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Permeability and pressure distribution characteristics of the roadway surrounding rock in the damaged zone of an excavation 被引量:7
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作者 Xue Yi Gao Feng +1 位作者 Liu Xingguang Liang Xin 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2017年第2期211-219,共9页
Research on the permeability and pressure distribution characteristics of the roadway surrounding rock in the excavation damaged zone(EDZ) is beneficial for the development of gas control technology. In this study, an... Research on the permeability and pressure distribution characteristics of the roadway surrounding rock in the excavation damaged zone(EDZ) is beneficial for the development of gas control technology. In this study, analytical solutions of stress and strain of the roadway surrounding rock were obtained, in which the creep deformation and strain softening were considered. Using the MTS815 rock mechanics testing system and a gas permeability testing system, permeability tests were conducted in the complete stress-strain process, and the evolution characteristics of permeability and strain were studied over the whole loading process. Based on the analytical solutions of stress and strain and the governing equation of gas seepage flow, this paper proposes a hydro-mechanical(HM) model, which considers three different zones around the roadway. Then the gas flow process in the roadway surrounding rock in three different zones was simulated according to the engineering geological conditions, thus obtaining the permeability and pressure distribution characteristics of the roadway surrounding rock in three different zones. These results show that the surrounding rock around the roadway can be divided into four regions-the full flow zone(FFZ), flow-shielding zone(FSZ), transitive flow zone(TFZ), and in-situ rock flow zone(IRFZ). These results could provide theoretical guidance for the improvement of gas extraction and gas control technology. 展开更多
关键词 Roadway Excavation damaged zone Viscoelastic-plastic analysis Gas flow model Permeability
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Seepage laws of two kinds of disastrous gas in complete stress-strain process of coal 被引量:2
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作者 Cao Shugang Guo Ping Zhang Zunguo Li Yi Wang Yong 《Mining Science and Technology》 EI CAS 2011年第6期851-856,共6页
The similarities and differences in seepage flow evolution laws of CH4 and CO2 during complete stress- strain process of samples were comparatively analyzed. The results show that the seepage flow evolution laws of CH... The similarities and differences in seepage flow evolution laws of CH4 and CO2 during complete stress- strain process of samples were comparatively analyzed. The results show that the seepage flow evolution laws of CH4 and CO2 are extremely similar during the stress-strain process, showing that the character- istic first decreased and then increased. A mathematical model was also established according to the rela- tionship of seepage velocity and axial strain. However, due to the strong adsorption ability of CO2, the coal samples generated a more serious ''Klinkenberg effect'' under the condition of CO2. Owing to this, the CO2 seepage flow resulted into occurrence of ''stagnation'' phenomenon during the late linear elastic stage II. In the strain consolidation stage III, the increment rate of CH4 seepage velocity was significantly greater than that of CO2. In the stress descent stage IV, when the axial load reached the peak pressure of coal, the increment rates of CH4 seepage velocity presented a turning point. But the changing rate of CO2 seepage velocity still remained slow and a turning point was presented at one time after the peak of thestrain pressure, which showed an obvious feature of hysteresis. 展开更多
关键词 Outburst coal CH4 CO2 Klinkenberg effect Complete stress–strain
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