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比利时高放废物处置库设计及与基岩和工程屏障体系的热–水–力性状的相关研究(英文) 被引量:21
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作者 李香绫 Bernier Frédéric Bel Johan 《岩石力学与工程学报》 EI CAS CSCD 北大核心 2006年第4期681-692,共12页
在比利时,泥岩中地质处置是高放废物最终处置的首选。处置库在高放废物与生物圈之间的多重屏障基础上设计的,而 Boom 泥岩作为基岩的研究已有 20 多年历史。1980 年比利时做出重大决定,建立名为 HADES 的地下研究机构,以研究 Boom 泥岩... 在比利时,泥岩中地质处置是高放废物最终处置的首选。处置库在高放废物与生物圈之间的多重屏障基础上设计的,而 Boom 泥岩作为基岩的研究已有 20 多年历史。1980 年比利时做出重大决定,建立名为 HADES 的地下研究机构,以研究 Boom 泥岩在地下 223 m 处的力学性质,并调查和论证处置的可行性,为处置库屏障(天然和人工)提供可靠数据。在 HADES 的众多现场试验中,很多试验用来对基岩和工程屏障体系(包括封口和回填的可行性)的热–水–力性状进行研究,包括 CACTUS,ATLAS,BACCHUS 和 RESEAL 等项目。自 1995 年以来,研究开发计划向大型和示范性试验方向发展。最主要成果是运用工业技术建立地下研究设施(竖井和井巷)可行性得到了验证,且这种工业技术给研究提供一个较好机会,便于进一步认识基岩泥岩(CLIPEX 方案)的水–力性状及了解隧道开挖工程(SELFRAC 课题)对挖掘破坏区的影响。另一个重大成果是成功地实现对一种称为“OPHELE”的预制膨润土(人工屏障材料)加热和水化地面大型试验。下一步工作内容包括实现大尺寸现场加热器试验(PRACLAY 试验),此试验预计于 2006 年开始,并可持续 10 a 之久。据此,首先简要描述比利时高放废物处置库设计,然后回顾 Boom 泥岩和工程屏障体系的热–水–力性状相关试验,最后介绍下一步大规模 PRACLAY 试验。 展开更多
关键词 高放废弃物贮存设计 地下研究设施 工程屏障体系 热-水-力耦合性态 开挖破坏区 模型试验 大尺寸现场试验
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Effects of temperature and thermally-induced microstructure change on hydraulic conductivity of Boom Clay 被引量:11
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作者 W.Z. Chen Y.S. Ma +3 位作者 H.D. Yu F.F. Li X.L. Li X. Sillen 《Journal of Rock Mechanics and Geotechnical Engineering》 SCIE CSCD 2017年第3期1-13,共13页
Boom Clay is one of the potential host rocks for deep geological disposal of high-level radioactive nuclear waste in Belgium. In order to investigate the mechanism of hydraulic conductivity variation under complex the... Boom Clay is one of the potential host rocks for deep geological disposal of high-level radioactive nuclear waste in Belgium. In order to investigate the mechanism of hydraulic conductivity variation under complex thermo-mechanical coupling conditions and to better understand the thermo-hydromechanical(THM) coupling behaviour of Boom Clay, a series of permeability tests using temperaturecontrolled triaxial cell has been carried out on the Boom Clay samples taken from Belgian underground research laboratory(URL) HADES. Due to its sedimentary nature, Boom Clay presents acrossanisotropy with respect to its sub-horizontal bedding plane. Direct measurements of the vertical(Kv)and horizontal(Kh)hydraulic conductivities show that the hydraulic conductivity at 80℃ is about 2.4 times larger than that at room temperature(23℃), and the hydraulic conductivity variation with temperature is basically reversible during heatingecooling cycle. The anisotropic property of Boom Clay is studied by scanning electron microscope(SEM) tests, which highlight the transversely isotropic characteristics of intact Boom Clay. It is shown that the sub-horizontal bedding feature accounts for the horizontal permeability higher than the vertical one. The measured increment in hydraulic conductivity with temperature is lower than the calculated one when merely considering the changes in water kinematic viscosity and density with temperature. The nuclear magnetic resonance(NMR) tests have also been carried out to investigate the impact of microstructure variation on the THM properties of clay. The results show that heating under unconstrained boundary condition will produce larger size of pores and weaken the microstructure. The discrepancy between the hydraulic conductivity experimentally measured and predicted(considering water viscosity and density changes with temperature) can be attributed to the microstructural weakening effect on the thermal volume change behaviour of Boom Clay. Based on the experimental results, a hydraulic conductivity evolution model is proposed and then implemented in ABAQUS. Three-dimensional(3D) numerical simulation of the admissible thermal loading for argillaceous storage(ATLAS) Ⅲ in situ heating test has been conducted subsequently, and the numerical results are in good agreement with field measurements. 展开更多
关键词 Boom Clay PERMEABILITY Thermal effect ANISOTROPY MICROSTRUCTURE
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