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Multiscale Homogenization Analysis of Alkali–Silica Reaction (ASR) Effect in Concrete 被引量:1
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作者 Roozbeh Rezakhani Mohammed Alnaggar gianluca cusatis 《Engineering》 SCIE EI 2019年第6期1139-1154,共16页
The alkali silica reaction (ASR) is one of the major long-term deterioration mechanisms occurring in con- crete structures subjected to high humidity levels, such as bridges and dams. ASR is a chemical reaction betwee... The alkali silica reaction (ASR) is one of the major long-term deterioration mechanisms occurring in con- crete structures subjected to high humidity levels, such as bridges and dams. ASR is a chemical reaction between the silica existing inside the aggregate pieces and the alkali ions from the cement paste. This chemical reaction produces ASR gel, which imbibes additional water, leading to gel swelling. Damage and cracking are subsequently generated in concrete, resulting in degradation of its mechanical proper- ties. In this study, ASR damage in concrete is considered within the lattice discrete particle model (LDPM), a mesoscale mechanical model that simulates concrete at the scale of the coarse aggregate pieces. The authors have already modeled successfully ASR within the LDPM framework and they have calibrated and validated the resulting model, entitled ASR-LDPM, against several experimental data sets. In the pre- sent work, a recently developed multiscale homogenization framework is employed to simulate the macroscale effects of ASR, while ASR-LDPM is utilized as the mesoscale model. First, the homogenized behavior of the representative volume element (RVE) of concrete simulated by ASR-LDPM is studied under both tension and compression, and the degradation of effective mechanical properties due to ASR over time is investigated. Next, the developed homogenization framework is utilized to reproduce experimental data reported on the free volumetric expansion of concrete prisms. Finally, the strength degradation of prisms in compression and four-point bending beams is evaluated by both the mesoscale model and the proposed multiscale approach in order to analyze the accuracy and computational ef - ciency of the latter. In all the numerical analyses, different RVE sizes with different inner particle realiza- tions are considered in order to explore their effects on the homogenized response. 展开更多
关键词 Multiscale homogenization Representative volume element Alkali–silica reaction Lattice discrete particle model
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基于三维晶格离散颗粒模型的混凝土反复拉压本构关系模型
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作者 朱忠锋 王文炜 gianluca cusatis 《应用基础与工程科学学报》 EI CSCD 北大核心 2021年第6期1512-1524,共13页
为了将三维晶格离散颗粒模型用于模拟混凝土构件在反复荷载下的受力性能,本文建立了混凝土的加卸载应力-应变关系模型.受拉模型中单调加载作用下的本构关系根据有效应力和有效应变确定,反复荷载作用下的加卸载准则依据正应力-应变及剪应... 为了将三维晶格离散颗粒模型用于模拟混凝土构件在反复荷载下的受力性能,本文建立了混凝土的加卸载应力-应变关系模型.受拉模型中单调加载作用下的本构关系根据有效应力和有效应变确定,反复荷载作用下的加卸载准则依据正应力-应变及剪应力-应变的关系分别建立,保证混凝土的应力-应变关系曲线从受拉状态转变到受压状态时的平滑过渡.在受拉加卸载准则中分别采用材料参数k_(t)控制混凝土的刚度衰减及残余塑性应变;在受压加卸载准则中通过卸载刚度E_(d)和材料参数k_(c)分别控制加卸载刚度和能量耗散.将本构关系模型嵌入到有限元分析软件中对混凝土构件在反复拉压、静水压力以及反复受压条件下的力学性能进行了数值模拟分析.分析结果表明,本文建立的本构关系模型能有效地模拟混凝土在不同受力条件下的应力-应变关系,预测残余应变,获得加卸载过程中的能量耗散. 展开更多
关键词 晶格离散颗粒模型 加卸载准则 拉压本构关系模型 数值模拟 应力-应变关系 反复力学性能
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