Investigation of Bituminized Waste Products Swelling Behavior Due to Water Uptake Under Confined Leaching Conditions: Experiments and Modeling

IF 3.4 2区 工程技术 Q2 ENGINEERING, GEOLOGICAL International Journal for Numerical and Analytical Methods in Geomechanics Pub Date : 2024-11-28 DOI:10.1002/nag.3902
Yujiong Chen, Jean-Baptiste Champenois, Patrick Dangla, Sylvie Granet, Joseph Lautru, Arnaud Leclerc, Geoffroy Melot
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Abstract

Bituminized waste products (BWPs) were produced by conditioning in bitumen the co-precipitation sludge resulting from the industrial reprocessing of nuclear spent fuel. For some intermediate level long-lived (ILW-LL) classified BWPs, a long-term disposal solution in France is underground geological disposal. One of the challenges for BWPs in geological disposal conditions is their swelling behavior due to water uptake. This swelling, if sufficiently important, could lead to mechanical coupling with the host rock, resulting in the application of pressure that could damage it. Consequently, the swelling behavior of BWPs must be considered in safety studies for the underground storage facility after site closure. The present work is a continuation of a previous one and focuses on investigating both experimentally and numerically the BWPs’ swelling behavior due to water uptake under confined leaching conditions. The swelling of simplified BWPs was experimentally monitored for about 2.5 years during leaching tests under constant counterpressure. The numerical model is extended from a previous work that incorporates coupled homogenization of transport terms (diffusion, permeation, osmosis) with mechanics via Maxwell's viscoelastic model. An original nonlinear poro-viscoelastic model taking into account large strains is proposed in this paper to better model the BWPs leaching behavior under confined conditions. The experimental results of leaching tests under constant counterpressure are generally well predicted by the resulting numerical model. The role of the poorly soluble salts BaSO4 within the solid BWP matrix is investigated.

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限制浸出条件下沥青废物吸水膨胀行为的研究:实验与模拟
沥青化废物(BWPs)是由核废料工业后处理产生的共沉淀污泥在沥青中进行处理而产生的。对于一些中等水平的长寿命(ILW‐LL)分类BWPs,法国的长期处置方案是地下地质处置。在地质处理条件下,BWPs面临的挑战之一是它们因吸水而膨胀。这种膨胀,如果足够重要,可能会导致与宿主岩石的机械耦合,从而导致施加压力可能破坏宿主岩石。因此,在地下储水设施关闭后的安全性研究中,必须考虑压水堆的膨胀行为。目前的工作是前一项工作的延续,重点是在实验和数值上研究在受限浸出条件下bwp因吸水而产生的膨胀行为。在恒反压浸出试验中,对简化BWPs的溶胀进行了约2.5年的实验监测。该数值模型是在先前的工作基础上进行扩展的,该工作通过麦克斯韦粘弹性模型将传输项(扩散、渗透、渗透)的耦合均匀化与力学结合起来。为了更好地模拟BWPs在受限条件下的浸出行为,本文提出了一种考虑大应变的非线性孔粘弹性模型。所建立的数值模型一般能较好地预测恒反压浸出试验结果。研究了难溶盐BaSO4在固体BWP基体中的作用。
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来源期刊
CiteScore
6.40
自引率
12.50%
发文量
160
审稿时长
9 months
期刊介绍: The journal welcomes manuscripts that substantially contribute to the understanding of the complex mechanical behaviour of geomaterials (soils, rocks, concrete, ice, snow, and powders), through innovative experimental techniques, and/or through the development of novel numerical or hybrid experimental/numerical modelling concepts in geomechanics. Topics of interest include instabilities and localization, interface and surface phenomena, fracture and failure, multi-physics and other time-dependent phenomena, micromechanics and multi-scale methods, and inverse analysis and stochastic methods. Papers related to energy and environmental issues are particularly welcome. The illustration of the proposed methods and techniques to engineering problems is encouraged. However, manuscripts dealing with applications of existing methods, or proposing incremental improvements to existing methods – in particular marginal extensions of existing analytical solutions or numerical methods – will not be considered for review.
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