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Integrated approach for investigating the durability of self-consolidating concrete to sulfate attack.

机译:研究自固结混凝土对硫酸盐侵蚀的耐久性的综合方法。

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摘要

The growing use of self-consolidating concrete (SCC) in various infrastructure applications exposed to sulfate-rich environments necessitates conducting comprehensive research to evaluate its durability to external sulfate attack. Since the reliability and adequacy of standard sulfate immersion tests have been questioned, the current thesis introduced an integrated testing approach for assessing the durability of a wide scope of SCC mixtures to external sulfate attack. This testing approach involved progressive levels of complexity from single to multiple damage processes. A new series of sulfate attack tests involving multiple field-like parameters and combined damage mechanisms (various cations, controlled pH, wetting-drying, partial immersion, freezing-thawing, and cyclic cold-hot conditions with or without sustained flexural loading) were designed to evaluate the performance (suitability) of the SCC mixtures under various sulfate attack exposure scenarios. The main mixture design variables of SCC included the type of binder (single, binary, ternary and quaternary), air-entrainment, sand-to-aggregate mass ratio and hybrid fibre reinforcement. The comprehensive database and knowledge obtained from this research were used to develop smart models (fuzzy and neuro-fuzzy inference systems) based on artificial-intelligence to evaluate and predict the performance of the SCC mixtures under various sulfate attack exposure regimes implemented in this study.;Fuzzy and adaptive-neuro fuzzy inference systems developed in the current thesis accurately and rationally predicted the serviceability, deterioration in engineering properties and time to failure of the SCC mixtures under the various sulfate attack exposure regimes adopted in the integrated testing approach. A durability evaluation factor from multiple performance criteria was created for the ammonium sulfate exposure. Environmental charts were developed to determine the level of aggression associated with sodium sulfate attack from temperature, RH and degree of wetting-drying expected in service. This novel modeling approach showed promising success in handling complex durability topics such as the sulfate attack of concrete, which involves non-linearity, ambiguity and interface with operator approximation.;The current thesis provides needed fundamental knowledge on the durability of a wide scope of SCC mixtures to various sulfate attack exposure scenarios. It elucidates complex deterioration mechanisms and failure modes of cement-based materials under multi-mechanistic aging processes. It also proposes carefully engineered integrated sulfate attack tests that replicate various sulfate attack exposure regimes, which could be refined and standardized in the future. In addition, the current work introduced original knowledge-based smart models capable of handling uncertainty and providing reliable predictions for the behaviour of concrete under external sulfate attack. The models do not require conducting exhaustive laboratory experiments and/or making assumptions, thus facilitating the selection of optimum concrete mixtures for a specified exposure. Overall, this research should effectively contribute to the development of performance-based standards and specifications for, and improvement of durability-based design and life-cycle analysis of concrete structures subjected to external sulfate attack.;Keywords. Sulfate attack, self-consolidating concrete, integrated testing, composite cements, air-entrainment, hybrid fibres, full immersion, cations, pH, wetting-drying, partial immersion, freezing-thawing, cyclic cold-hot conditions, flexural loading, thaumasite, salt crystallization, fuzzy, neuro-fuzzy, systems.;In full immersion tests involving high concentration sodium and magnesium sulfate solutions with controlled pH, the low penetrability of SCC was responsible for the high durability of specimens. Ternary and quaternary cementitious systems with or without limestone materials provided a passivating layer, with or without acid neutralization capacity, which protected SCC from severe damage in the aggressive sulfuric acid and ammonium sulfate solutions. In contrast to conclusions drawn from the sodium sulfate immersion tests, the combined sulfate attack tests captured performance risks and complex damage mechanisms associated with the SCC pore structure and constituent materials. Sodium sulfate attack with wetting-drying cycles and/or partial immersion under temperate-hot conditions synergistically caused significant damage to specimens, especially to quaternary cementitious systems having very fine pore structure, due to the build-up of salt crystals and sulfate reaction products. The deleterious effects of sulfate reaction products and salt crystallization on all cementitious systems were more severe under the combined sodium sulfate and freezing-thawing exposure, with a potential of sudden brittle failure. Laboratory experiments in the current work documented evidence for the occurrence of thaumasite sulfate attack (TSA) in cementitious systems containing limestone filler, not only under cold but also under temperate-hot conditions, which made specimens more vulnerable to damage in the combined sulfate attack tests. The field-like combined exposure of sodium sulfate, cyclic environments and flexural loading had synergistic effects on SCC specimens and caused the coexistence of multiple-complex degradation mechanisms (sulfate attack, TSA, stress-corrosion, salt crystallization, surface scaling and corrosion of surface steel fibres) depending on the mixture design variables. The current thesis demonstrates that relying only on sulfate immersion tests to evaluate the performance of cement-based materials can be risky. It also shows that linear and deterministic modeling of the performance of concrete structures under external sulfate attack is unrealistic.
机译:自固化混凝土(SCC)在暴露于富硫酸盐环境的各种基础设施应用中的使用日益广泛,因此有必要进行全面研究以评估其对外部硫酸盐侵蚀的耐久性。由于对标准硫酸盐浸泡试验的可靠性和充分性提出了质疑,因此,本论文引入了一种综合测试方法,用于评估各种SCC混合物对外部硫酸盐侵蚀的耐久性。这种测试方法涉及从单个损坏过程到多个损坏过程的逐步复杂性。设计了一系列新的硫酸盐侵蚀试验,涉及多个类似领域的参数和综合的损伤机理(各种阳离子,受控的pH,湿润干燥,部分浸入,冻融和循环冷热条件,带有或不带有持续的弯曲载荷)评估在各种硫酸盐侵蚀暴露情况下SCC混合物的性能(适用性)。 SCC的主要混合料设计变量包括粘结剂的类型(单,二元,三元和四元),引气,砂与骨料的质量比和混合纤维增强。从这项研究中获得的全面数据库和知识被用于开发基于人工智能的智能模型(模糊和神经模糊推理系统),以评估和预测在本研究中实施的各种硫酸盐侵蚀暴露条件下SCC混合物的性能。 ;本文开发的模糊自适应神经模糊推理系统准确,合理地预测了在综合测试方法中采用的各种硫酸盐暴露条件下,SCC混合物的适用性,工程性能恶化和失效时间。根据多种性能标准为硫酸铵暴露创建了耐久性评估因子。制定了环境图,以确定与温度,相对湿度和使用中预期的干湿程度有关的与硫酸钠侵蚀有关的侵略程度。这种新颖的建模方法在处理诸如混凝土的硫酸盐侵蚀等复杂的耐久性问题上显示出了成功的前景,该问题涉及非线性,模糊性以及与算子逼近的接口。;本论文为各种SCC的耐久性提供了必要的基础知识。各种硫酸盐攻击暴露场景的混合物。阐明了在多机械老化过程中水泥基材料的复杂劣化机理和破坏模式。它还提出了精心设计的综合硫酸盐侵蚀试验,该试验可以复制各种硫酸盐侵蚀暴露方案,将来可以对其进行完善和标准化。此外,当前的工作引入了基于知识的原始智能模型,该模型能够处理不确定性并为混凝土在外部硫酸盐侵蚀下的行为提供可靠的预测。该模型不需要进行详尽的实验室实验和/或进行假设,从而有助于为指定的暴露量选择最佳的混凝土混合物。总体而言,这项研究应有效地促进基于性能的标准和规范的开发,并改善遭受外部硫酸盐侵蚀的混凝土结构的基于耐久性的设计和寿命周期分析。硫酸盐侵蚀,自密实混凝土,综合测试,复合水泥,引气,混合纤维,全浸,阳离子,pH,湿干,部分浸,冻融,循环冷热条件,挠曲载荷,硅藻土,盐结晶,模糊,神经模糊,系统。在完全浸没测试中,要控制pH的高浓度硫酸钠和镁溶液中,SCC的低渗透性是造成样品高耐久性的原因。具有或不具有石灰石材料的三元和四元胶结体系提供了具有或不具有酸中和能力的钝化层,该钝化层可保护SCC免受侵蚀性硫酸和硫酸铵溶液的严重破坏。与硫酸钠浸没测试得出的结论相反,硫酸盐侵蚀测试结合了性能风险和与SCC孔结构和组成材料相关的复杂破坏机理。在温热条件下,具有干湿循环和/或部分浸入的硫酸钠侵蚀会协同作用,对试样造成重大破坏,尤其是由于盐晶体和硫酸盐反应产物的堆积,对具有非常细孔结构的四元胶结体系造成严重损害。在硫酸钠和冻融结合的条件下,硫酸盐反应产物和盐结晶对所有胶结体系的有害影响更为严重。,可能会导致突然的脆性故障。当前工作中的实验室实验记录了证据,证明不仅在寒冷条件下,在温热条件下,含有石灰石填料的胶结体系中都会发生硫酸硫陶质硫酸盐侵蚀(TSA),这使标本在组合的硫酸盐侵蚀试验中更容易受到破坏。硫酸钠,循环环境和弯曲载荷等野外联合暴露对SCC样品具有协同作用,并导致多种复合降解机制(硫酸盐侵蚀,TSA,应力腐蚀,盐结晶,表面结垢和表面腐蚀)共存。钢纤维)取决于混合物的设计变量。本论文表明,仅依靠硫酸盐浸泡试验来评估水泥基材料的性能可能存在风险。它还表明,在外部硫酸盐侵蚀下对混凝土结构性能进行线性和确定性建模是不现实的。

著录项

  • 作者

    Bassuoni, Mohamed Tamer F.;

  • 作者单位

    The University of Western Ontario (Canada).;

  • 授予单位 The University of Western Ontario (Canada).;
  • 学科 Engineering Civil.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 402 p.
  • 总页数 402
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:26

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