Ultrasonic and NMR-based estimation of the microstructure at ice-rock interface

IF 7 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Hailiang Jia , Xianhuan Liu , Xianjun Tan , Liu Yang , Jielin Li
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Abstract

The mechanical properties of frozen rock mass are primarily determined by that of ice and ice-rock interface, the latter is further controlled by the microstructure at ice-rock interface. To investigate the temperature-dependent variations in the microstructure at ice-rock interface, the concept of ice-rock interface cohesive zone (ICZ) was firstly defined. Ultrasonic and NMR (nuclear magnetic resonance) tests were conducted on the frozen intact sandstone, pure ice and ice-rock binary samples at varying thawing temperatures. Observations of the microstructure at the ICZ were carried out through 1D-MRI (one-dimensional magnetic resonance imaging) experiments. The results indicate that: (1) by comparing the ultrasonic results of frozen intact sandstone, pure ice and ice-rock binary samples, it is found that the ICZ notably alters the propagation of ultrasonic waves through the samples. (2) During thawing process, the ultrasonic parameters and the total NMR signal amplitude in ice-rock binary samples exhibit a two-stage variation trend, with an inflection point temperature of −2 °C. (3) The NMR-estimated ICZ thickness displays a two-stage variation trend with thawing temperature, with inflection point temperature both at −2 °C as well. (4) The primary factor contributing to the higher attenuation rate of ultrasonic parameters in the ice-rock binary sample is the continuous increase of ICZ thickness at the ice-rock interface with thawing temperature. Through the ICZ thickness estimation model, it reveals that the experimental and estimated values of the ICZ thickness maintain consistency in the overall trend. Both sets of values demonstrate a two-stage variation with different temperatures and the inflection point temperature of −2 °C.
基于超声和核磁共振的冰-岩界面微观结构估计
冻结岩体的力学特性主要由冰和冰岩界面的力学特性决定,后者进一步受冰岩界面微观结构的控制。为了研究冰-岩界面微观结构随温度的变化规律,首先定义了冰-岩界面黏结带的概念。在不同的解冻温度下,对冰冻完好砂岩、纯冰和冰岩二元样品进行了超声和核磁共振(NMR)测试。通过1D-MRI(一维磁共振成像)实验对ICZ处的微观结构进行了观察。结果表明:(1)通过对冷冻完好砂岩、纯冰和冰岩二元样品的超声结果进行比较,发现ICZ显著改变了超声波在样品中的传播。(2)在解冻过程中,冰-岩二元样品的超声参数和核磁共振总信号幅值呈现两阶段变化趋势,拐点温度为−2℃。(3)核磁共振估算的ICZ厚度随融化温度呈两阶段变化趋势,拐点温度均在−2℃。(4)冰-岩二元样品中超声参数衰减率较高的主要因素是冰-岩界面处ICZ厚度随融化温度的不断增加。通过ICZ厚度估计模型,发现ICZ厚度的实验值与估计值在总体趋势上保持一致。两组值都表现出两阶段的变化,不同的温度和拐点温度为- 2°C。
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来源期刊
CiteScore
14.00
自引率
5.60%
发文量
196
审稿时长
18 weeks
期刊介绍: The International Journal of Rock Mechanics and Mining Sciences focuses on original research, new developments, site measurements, and case studies within the fields of rock mechanics and rock engineering. Serving as an international platform, it showcases high-quality papers addressing rock mechanics and the application of its principles and techniques in mining and civil engineering projects situated on or within rock masses. These projects encompass a wide range, including slopes, open-pit mines, quarries, shafts, tunnels, caverns, underground mines, metro systems, dams, hydro-electric stations, geothermal energy, petroleum engineering, and radioactive waste disposal. The journal welcomes submissions on various topics, with particular interest in theoretical advancements, analytical and numerical methods, rock testing, site investigation, and case studies.
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