融化冻土的热-水力学:一个具有丰富改性Cam-Clay塑性的相场框架

IF 5.7 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Mahyar Malekzade Kebria, SeonHong Na, Susan Tighe
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引用次数: 0

摘要

本文介绍了一个热-水-力学(THM)框架来模拟多年冻土区的融化固结。该模型通过在相场损伤框架内整合内能退化函数和改进的Cam-Clay模型,重点模拟相变和粒子重排的同时效应。该模型将两个不同的相场变量与修正的Cam-Clay塑性框架相结合。一个相场变量监测孔隙相组成,而另一个捕获颗粒重排。这些变量直接耦合到本构模型中,通过考虑颗粒重排引起的体积变形引起的软化和硬化效应,为更新应力-应变关系提供了关键数据。当不存在相变时,模型收敛于修正的Cam-Clay模型。这种方法通过捕捉相关的微观结构演变和融化敏感土壤的塑性软化,解决了现有模型中的一个重大差距。验证工作集中在评估解冻固结的力学影响和相变动力学的实验情景上,特别强调了潜热效应。结果表明,所提出的模型能够处理解冻条件下冻土的复杂行为,证实了其在增强寒冷地区基础设施恢复能力方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermo-hydro-mechanics of thawing permafrost: a phase-field framework with enriched modified Cam-Clay plasticity

Thermo-hydro-mechanics of thawing permafrost: a phase-field framework with enriched modified Cam-Clay plasticity

This paper introduces a thermo-hydro-mechanical (THM) framework to model thaw consolidation in permafrost regions. By integrating internal energy degradation functions and a modified Cam-Clay model within a phase-field damage framework, the model focuses on simulating the simultaneous effects of phase change and particle rearrangement. The model integrates two distinct phase-field variables with the modified Cam-Clay plasticity framework. One phase-field variable monitors pore phase composition, while the other captures particle rearrangement. These variables are directly coupled to the constitutive model, providing critical data for updating the stress–strain relationship by accounting for particle rearrangement-induced softening and hardening effects due to volumetric deformation. The model converges to the modified Cam-Clay model when there is no phase change. This approach addresses a significant gap in existing models by capturing the associated microstructural evolution and plastic softening in thaw-sensitive soils. Validation efforts focus on experimental scenarios assessing both the mechanical impacts of thaw consolidation and the dynamics of phase transitions, particularly emphasizing latent heat effects. The results demonstrate the proposing model’s capability of handling complex behaviors of permafrost under thaw conditions, confirming its potential for enhancing infrastructure resilience in cold regions.

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来源期刊
Acta Geotechnica
Acta Geotechnica ENGINEERING, GEOLOGICAL-
CiteScore
9.90
自引率
17.50%
发文量
297
审稿时长
4 months
期刊介绍: Acta Geotechnica is an international journal devoted to the publication and dissemination of basic and applied research in geoengineering – an interdisciplinary field dealing with geomaterials such as soils and rocks. Coverage emphasizes the interplay between geomechanical models and their engineering applications. The journal presents original research papers on fundamental concepts in geomechanics and their novel applications in geoengineering based on experimental, analytical and/or numerical approaches. The main purpose of the journal is to foster understanding of the fundamental mechanisms behind the phenomena and processes in geomaterials, from kilometer-scale problems as they occur in geoscience, and down to the nano-scale, with their potential impact on geoengineering. The journal strives to report and archive progress in the field in a timely manner, presenting research papers, review articles, short notes and letters to the editors.
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