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Strong Coupling of Freeze-Thaw Cycles and Alkali Silica Reaction - Multi-scale Poro-mechanical Approach to Concrete Damages -

机译:冻融循环和碱性二氧化硅反应的强耦合 - 混凝土损伤的多尺度多级孔机械方法 -

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This paper aims to upgrade the poro-mechanical scheme to simulate concrete volume change and damages which are strongly coupled with both alkali silica reaction (ASR) and freeze-thaw cycles (FTC). The interaction of two impacts are modeled by considering ASR gel intrusion and ice formation in micro pores and crack gaps, gel movement and unfrozen water suction into entrained air, gel and water migration through cracks as well as equilibrium and mass conservation of both concrete skeleton and mixed pore substances. For the assessment how the proposed numerical scheme works, sequence of events on ASR and FTC is focused on. It shows that ASR can reduce the FTC expansion for nonair- entrained (non-AE) case, but increase the frost damage for air-entrained (AE) concrete. Similarly, the FTC damaged concrete will have a smaller ASR expansion for non-AE case, but a greater expansion when AE admixture agent is dosed. The simulated behaviors also agree well with past experiments of combined ASR and FTC. Finally, the analysis on short-term strength shows that the ASR damaged concrete has a higher residual compressive strength and ductility rather than FTC damaged one due to viscous ASR gel which stand for broken symmetry of damage fields.
机译:本文旨在升级多孔机械方案来模拟混凝土体积变化和损伤,耐碱性二氧化硅反应(ASR)和冻融循环(FTC)。通过考虑微孔的ASR凝胶侵入和冰形成,通过裂缝,凝胶运动和凝胶和水迁移到夹带的空气,凝胶和水迁移,以及通过裂缝以及混凝土骨架的平衡和质量保护,通过考虑ASR凝胶侵入和冰形成,通过裂缝,凝胶运动和水迁移的冰形成建模。混合毛孔物质。为评估如何拟议的数值方案工作,ASR和FTC上的事件序列都集中在上面。它表明ASR可以减少非公式夹带(非AE)案例的FTC扩展,但增加了空气夹带(AE)混凝土的霜冻损伤。类似地,FTC受损的混凝土将具有较小的非AE壳体的ASR膨胀,但当给予AE混合物剂时较大的膨胀。模拟行为对组合ASR和FTC的过去的实验吻合良好。最后,对短期强度的分析表明,由于粘稠的ASR凝胶,ASR受损混凝土具有更高的残余压缩强度和延展性而不是FTC损坏,而不是粘稠的损坏损坏的对称性。

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