Matteo Pedrotti, Alessandro Tarantino, Antonio Annese, Federica Cotecchia, Claudia Vitone
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引用次数: 0
摘要
鳞片状粘土是具有毫米级透镜状元素的强烈裂隙粘土,具有复杂的压缩行为,给土工结构(挖掘、挡土墙和隧道)的设计和施工带来了挑战。鳞片状粘土显示出正常压缩线 (NCL),塑性变形在此累积,这是在非鳞片状粘土中观察到的典型现象。然而,在卸载和后续重新加载时观察到的反应却非常奇特:i)卸载-重新加载循环通常是一个具有相对较大滞后的闭环;ii)在卸载或重新加载分支的高 OCR 比下记录到的压缩性接近 NCL 压缩性。本文对意大利的一种鳞片状粘土进行了微观结构研究,将扫描电镜观察结果与水银渗入孔隙度(MIP)分析和 X 射线计算机断层扫描(XCT)图像相结合。与尺度间孔隙度闭合和尺度内新孔隙度生成相关的机制被确定为塑性变形的过程。对重组粘土的实验观察表明,在加载和卸载时,粘土具有 "准可逆 "行为,孔径分布仅以颗粒间孔隙率为特征。由于观察到天然粘土和重组粘土的卸载和重载曲线是平行的,因此推测颗粒间孔隙率控制着弹性响应。
A microstructural insight into the compression behaviour of scaly clays
Scaly clays are intensely fissured clays with lens shaped elements of millimetre size and show a complex compression behaviour that poses challenges to the design and construction of geostructures (excavations, retaining diaphragms, and tunnels). Scaly clays show a Normal Compression Line (NCL) where plastic deformation accumulates as typically observed in non-scaly clays. Yet the response observed upon unloading and subsequent reloading is very peculiar, i) the unloading-reloading cycle is typically a close-loop with relatively large hysteresis; ii) the compressibility recorded at high OCR ratio of the unloading or reloading branches is close to the NCL compressibility. This paper presents a microstructural study on an Italian scaly clay where SEM observations are integrated with Mercury Intrusion Porosimetry (MIP) analyses and X-ray Computed Tomography (XCT) images. The mechanism associated with the closing of inter-scale porosity and the generation of new intra-scale porosity was identified as the process responsible for the plastic deformation. Experimental observation of reconstituted clay showed a “quasi-reversible” behaviour upon loading and unloading and a pore size distribution characterized only by interparticle porosity. The observation that unloading and reloading curves are parallel in natural and reconstituted clays, led to postulate that the interparticle porosity is controlling the elastic response.