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Research progress and application of deep in-situ condition preserved coring and testing
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作者 Heping Xie Yunqi Hu +14 位作者 Mingzhong Gao Ling Chen Ru Zhang Tao Liu Feng Gao Hongwei Zhou Xiaobo peng Xiongjun Li Jianbo Zhu Cunbao Li ruidong peng Yanan Gao Cong Li Jianan Li Zhiqiang He 《International Journal of Mining Science and Technology》 SCIE EI CAS CSCD 2023年第11期1319-1337,共19页
With the depletion of shallow resources,the exploration of deep earth resources has become a global strategy.The study of the different patterns in the physical mechanical properties of rocks at different occurrence d... With the depletion of shallow resources,the exploration of deep earth resources has become a global strategy.The study of the different patterns in the physical mechanical properties of rocks at different occurrence depths is the basis for exploring deep into the earth,with the core and premise being the acquisition and testing of deep in-situ core specimens.Based on the original idea of deep in-situ condition preserved coring(ICP-Coring)and testing,combined with theoretical modeling,numerical analysis,test platform development,indoor testing and engineering application,the principles and technologies of deep ICP-Coring are developed.This principle and technology consists of five parts:in-situ pressurepreserved coring(IPP-Coring),in-situ substance-preserved coring(ISP-Coring),in-situ temperaturepreserved coring(ITP-Coring),in-situ light-preserved coring(ILP-Coring),and in-situ moisturepreserved coring(IMP-Coring).The theory and technology of temperature and pressure reconstruction at different occurrence depths and in different environments are proposed,and prototype trial production was completed by following the principle of displacement and tests based on the in-situ reconstructed environment.The notable advances are as follows:(1)Deep in-situ coring system:A pressure-preserved controller with an ultimate bearing capacity greater than 140 MPa,highperformance(temperature-resistant,pressure-resistant,and low thermally conductive)temperaturepreserved materials,an active temperature control system,and high-barrier quality-preserved membrane materials were developed;a deep ICP-Coring capacity calibration platform was independently developed,a deep in-situ coring technology system was developed,and the acquisition of deep in-situ cores was realized.(2)In-situ storage displacement system:Following the dual-circuit hydraulic design idea,a single-drive source push-pull composite grabbing mechanism was designed;the design of the overall structure for the deep in-situ displacement storage system and ultrahigh pressure cabin structure was completed,which could realize docking the coring device and core displacement in the in-situ reconstructed environment.(3)Test analysis system:A noncontact acoustic-electric-magnetic test system was developed under the in-situ reconstructed environment,and the errors between the test results and traditional contact test results were mostly less than 10%;a detachable deep in-situ core true triaxial test system was developed,which could perform loading tests for deep in-situ cores.The relevant technological achievements were successfully applied to the exploration and development of deep resources,such as deep mines,deep-sea natural gas hydrates,and deep oil and gas.The research results provide technical and equipment support for the construction of a theoretical system for deep in-situ rock mechanics,the development of deep earth resources and energy,and the scientific exploration of different layers and occurrence depths(deep and ultradeep)of the Earth. 展开更多
关键词 Deep mining Deep in-situ CORING DISPLACEMENT Test
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Numerical analysis on mechanical difference of sandstone under in-situ stress,pore pressure preserved environment at depth
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作者 Hongwei Zhou Mingyuan Lu +5 位作者 Heping Xie Wenhao Jia ruidong peng Yimeng Wang Bocen Chen pengfei Jing 《International Journal of Mining Science and Technology》 SCIE EI CAS CSCD 2023年第11期1339-1350,共12页
Deep in-situ rock mechanics considers the influence of the in-situ environment on mechanical properties,differentiating it from traditional rock mechanics.To investigate the effect of in-situ stress,pore pressure pres... Deep in-situ rock mechanics considers the influence of the in-situ environment on mechanical properties,differentiating it from traditional rock mechanics.To investigate the effect of in-situ stress,pore pressure preserved environment on the mechanical difference of sandstone,four tests are numerically modeled by COMSOL:conventional triaxial test,conventional pore pressure test,in-situ stress restoration and reconstruction test,and in-situ pore pressure-preserved test(not yet realized in the laboratory).The in-situ stress restoration parameter is introduced to characterize the recovery effect of in-situ stress on elastic modulus and heterogeneous distribution of sandstone at different depths.A random function and nonuniform pore pressure coefficient are employed to describe the non-uniform distribution of pore pressure in the in-situ environment.Numerical results are compared with existing experimental data to validate the models and calibrate the numerical parameters.By extracting mechanical parameters from numerical cores,the stress-strain curves of the four tests under different depths,in-situ stress and pore pressure are compared.The influence of non-uniform pore pressure coefficient and depth on the peak strength of sandstone is analyzed.The results show a strong linear relationship between the in-situ stress restoration parameter and depth,effectively characterizing the enhanced effect of stress restoration and reconstruction methods on the elastic modulus of conventional cores at different depths.The in-situ pore pressurepreserved test exhibits lower peak stress and peak strain compared to the other three tests,and sandstone subjected to non-uniform pore pressure is more prone to plastic damage and failure.Moreover,the influence of non-uniform pore pressure on peak strength gradually diminished with increasing depth. 展开更多
关键词 In-situ pore pressure-preserved ENVIRONMENT Numerical simulation approach Deep in-situ rock mechanics In-situ stress restoration and reconstruction
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Energy analysis and criteria for structural failure of rocks 被引量:41
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作者 Heping Xie Liyun Li +1 位作者 ruidong peng Yang Ju 《Journal of Rock Mechanics and Geotechnical Engineering》 SCIE 2009年第1期11-20,共10页
The intrinsic relationships between energy dissipation,energy release,strength and abrupt structural failure are key to understanding the evolution of deformational processes in rocks.Theoretical and experimental stud... The intrinsic relationships between energy dissipation,energy release,strength and abrupt structural failure are key to understanding the evolution of deformational processes in rocks.Theoretical and experimental studies confirm that energy plays an important role in rock deformation and failure.Dissipated energy from external forces produces damage and irreversible deformation within rock and decreases rock strength over time.Structural failure of rocks is caused by an abrupt release of strain energy that manifests as a catastrophic breakdown of the rock under certain conditions.The strain energy released in the rock volume plays a pivotal role in generating this abrupt structural failure in the rocks.In this paper,we propose criteria governing(1) the deterioration of rock strength based on energy dissipation and(2) the abrupt structural failure of rocks based on energy release.The critical stresses at the time of abrupt structural failure under various stress states can be determined by these criteria.As an example,the criteria have been used to analyze the failure conditions of surrounding rock of a circular tunnel. 展开更多
关键词 岩石变形 结构破坏 能源分析 标准管 能量耗散 结构失效 岩石强度 应变释放
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基于CT成像和数字体图像相关法的岩石内部变形场量测方法的研究进展 被引量:2
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作者 毛灵涛 毕玉洁 +7 位作者 刘海洲 陈俊 王建强 彭瑞东 刘红彬 吴昊 孙跃 鞠杨 《科学通报》 EI CAS CSCD 北大核心 2023年第4期380-398,共19页
在采矿工程、边坡工程、隧道工程、水利水电工程及新兴的岩体工程如深埋油气储库、地下核废料处置库、地热开发等生产开发过程中,岩石是主要工程对象.直观观测与定量表征应力场、渗流场和温度场等多物理场耦合作用下岩石内部非连续结构... 在采矿工程、边坡工程、隧道工程、水利水电工程及新兴的岩体工程如深埋油气储库、地下核废料处置库、地热开发等生产开发过程中,岩石是主要工程对象.直观观测与定量表征应力场、渗流场和温度场等多物理场耦合作用下岩石内部非连续结构演化始终是岩石力学重要和具有挑战性的研究内容.高精度微CT能够在微细观甚至纳米尺度上观测岩石内部结构,通过与数字体图像相关法结合,可实现岩石内部变形场的透明可视化与定量解析,为岩石的非连续结构与多物理场效应的透明解析和推演提供了新的有效途径.本文回顾了近年来微焦点CT在岩石内部结构检测、数字岩心和内部变形场量测方面的应用,详细阐述了CT原位扫描实验与数字体图像相关法的原理及主要进展,分析了岩石微细观结构对应变场测量精度的影响及数字体图像相关法在岩石内部变形测量中的典型应用,探讨了数字体图像相关法测量岩石内部变形场面临的挑战. 展开更多
关键词 岩石力学 三维变形场测量 X射线CT 数字体图像相关法
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Visualization of the complex structure and stress field inside rock by means of 3D printing technology 被引量:41
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作者 Yang Ju Heping Xie +4 位作者 Zemin Zheng Jinbo Lu Lingtao Mao Feng Gao ruidong peng 《Chinese Science Bulletin》 SCIE EI CAS 2014年第36期5354-5365,共12页
Accurate characterization and visualization of the complex inner structure and stress distribution of rocks are of vital significance to solve a variety of underground engineering problems. In this paper, we incorpora... Accurate characterization and visualization of the complex inner structure and stress distribution of rocks are of vital significance to solve a variety of underground engineering problems. In this paper, we incorporate several advanced technologies, such as CT scan, three-dimensional(3D) reconstruction, and 3D printing, to produce a physical model representing the natural coal rock that inherently contains complex fractures or joints. We employ 3D frozen stress and photoelastic technologies to characterize and visualize the stress distribution within the fractured rock under uniaxial compression. The 3D printed model presents the fracture structures identical to those of the natural prototype. The mechanical properties of the printed model,including uniaxial compression strength, elastic modulus,and Poisson's ratio, are testified to be similar to those of the prototype coal rock. The frozen stress and photoelastic tests show that the location of stress concentration and the stress gradient around the discontinuous fractures are in good agreement with the numerical predictions of the real coalsample. The proposed method appears to be capable of visually quantifying the influences of discontinuous,irregular fractures on the strength, deformation, and stress concentration of coal rock. The method of incorporating3 D printing and frozen stress technologies shows a promising way to quantify and visualize the complex fracture structures and their influences on 3D stress distribution of underground rocks, which can also be used to verify numerical simulations. 展开更多
关键词 打印技术 地下岩石 内部结构 应力场 可视化 3D 三维应力分布 单轴压缩强度
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