Thermodynamic Study of Cement Paste under Sulfate Attack: A Review

Sama Karkhaneh, A. Tarighat, S. Jahromi
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Abstract

Sulfate attack reduces the service life of concrete structures, which isn't possible to repair simply. Implementation of many factors influencing the sulfate resistance, sample scaling, and results in the least possible time is some problems of experimental studies. Therefore, numerical simulations, as well as the new methods along with experimental studies, have been led to better evaluation of sulfate attack within a shorter time and at a lower cost. In the present study, the effective factors, causes, and mechanisms of sulfate attack, examples of this phenomenon in real projects, and the previous studies in this regard, in particular, the development of the thermodynamic study of cement under sulfate attack as a fast and inexpensive solution have been reviewed. The present investigation is divided into three parts, first the sulfate attack mechanism, second the factors influencing phases containing sulfate formation, and third a review of the methods and results of the studies, focusing on the development of thermodynamic models in cement sulfate attack especially. Finally, the results of the studies show that common experimental methods related to concrete sulfate resistance evaluation can't always simulate what is actually happening; subsequently, the results of experimental studies and real cases are sometimes different. So, numerical models, in particular, thermodynamic simulation, either alone or in combination with experimental studies, can be a desirable solution for enhancing the ability to predict engineering behavior of concrete structures in the sulfate environment. Subsequently, it results in making better decisions to tackle and prevent deterioration caused by sulfate attack.
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硫酸盐侵蚀下水泥浆体热力学研究进展
硫酸盐侵蚀降低了混凝土结构的使用寿命,无法简单修复。影响硫酸盐耐受性的诸多因素的实现、样品的结垢,以及在尽可能短的时间内得到的结果是实验研究的一些问题。因此,数值模拟以及新方法和实验研究已经在更短的时间内以更低的成本更好地评估硫酸盐侵蚀。本文综述了硫酸盐侵蚀的影响因素、原因和机理,实际工程中的实例,以及这方面的研究进展,特别是硫酸盐侵蚀下水泥作为一种快速廉价的解决方案的热力学研究进展。本研究分为三个部分,第一部分是硫酸盐侵蚀机理,第二部分是含硫酸盐形成相的影响因素,第三部分是研究方法和结果的综述,重点是水泥硫酸盐侵蚀热力学模型的发展。最后,研究结果表明,与混凝土抗硫酸盐性评价相关的常用实验方法并不总是能模拟实际发生的情况;因此,实验研究的结果与实际案例有时会有所不同。因此,数值模型,特别是热力学模拟,无论是单独还是与实验研究相结合,都可以成为提高硫酸盐环境中混凝土结构工程行为预测能力的理想解决方案。随后,它的结果是做出更好的决定,以解决和防止硫酸盐侵蚀造成的恶化。
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来源期刊
Journal of Rehabilitation in Civil Engineering
Journal of Rehabilitation in Civil Engineering Engineering-Building and Construction
CiteScore
1.60
自引率
0.00%
发文量
0
审稿时长
12 weeks
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