Design and Instrumentation of a Novel Centrifuge Container for Fly Ash Run-out Experiments

IF 1.2 4区 工程技术 Q4 ENGINEERING, GEOLOGICAL International Journal of Physical Modelling in Geotechnics Pub Date : 2022-06-06 DOI:10.1680/jphmg.21.00044
S. Madabhushi, A. Martínez, D. Wilson, B. Kutter
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引用次数: 1

Abstract

Debris flow, landslides and material run-outs have significant environmental and economic consequences for numerous industries. High quality experimental data with controlled boundary conditions can help validate and calibrate the predictive capabilities of mechanistic and semi-empirical numerical models. A novel centrifuge container to model dewatering and run-outs induced by a rapid loss of confinement is presented. The design features a pair of vertical doors opened in-flight to simulate failure of the containing structure. Illustrative centrifuge results investigating the run-out characteristics of a fully saturated, densely deposited class-F fly ash are presented. Modified soil moisture probes to monitor the distributions and time-varying fly ash water content throughout the testing are explored. Further, successful use of depth sensing cameras to reconstruct progressive deformations of the material front at various time scales is demonstrated. Combined water content, pore pressure and deformation measurements provides insight into the material behaviour during the run-out, revealing two-time scales at which the deformations occur. However, discrepancies between water contents inferred from the dielectric measurements and electrical conductivities highlights the need for independent verification of the bulk material water content when using the modified probes. Overall, the potential of these innovative instrumentation techniques to complement traditional geotechnical instrumentation is shown.
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新型飞灰跳动实验离心容器的设计与仪器
泥石流、山体滑坡和材料流失对许多行业产生了重大的环境和经济后果。具有受控边界条件的高质量实验数据可以帮助验证和校准机械和半经验数值模型的预测能力。提出了一种新的离心机容器,用于模拟由快速失去限制引起的脱水和跳动。该设计的特点是一对在飞行中打开的垂直门,以模拟容纳结构的故障。给出了研究完全饱和、致密沉积的F类飞灰的跳动特性的说明性离心机结果。探索了在整个测试过程中监测分布和随时间变化的粉煤灰含水量的改良土壤湿度探头。此外,还成功地使用了深度传感相机来重建各种时间尺度下材料前沿的渐进变形。结合含水量、孔隙压力和变形测量,可以深入了解耗尽期间的材料行为,揭示变形发生的两个时间尺度。然而,从介电测量推断的含水量与电导率之间的差异突出表明,在使用改良探针时,需要独立验证散装材料的含水量。总的来说,这些创新仪器技术在补充传统岩土工程仪器方面的潜力已经显现出来。
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来源期刊
CiteScore
3.60
自引率
15.80%
发文量
26
期刊介绍: International Journal of Physical Modelling in Geotechnics contains the latest research and analysis in all areas of physical modelling at any scale, including modelling at single gravity and at multiple gravities on a centrifuge, shaking table and pressure chamber testing and geoenvironmental experiments.
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