| Literature DB >> 26692655 |
Yaghoob Farnam1, Sarah Dick2, Andrew Wiese1, Jeffrey Davis3, Dale Bentz4, Jason Weiss5.
Abstract
The conventional CaCl2-H2O phase diagram is often used to describe how calcium chloride behaves when it is used on a concrete pavement undergoing freeze-thaw damage. However, the chemistry of the concrete can alter the appropriateness of using the CaCl2-H2O phase diagram. This study shows that the Ca(OH)2 present in a hydrated portland cement can interact with CaCl2 solution creating a behavior that is similar to that observed in isoplethal sections of a ternary phase diagram for a Ca(OH)2-CaCl2-H2O system. As such, it is suggested that such isoplethal sections provide a reasonable model that can be used to describe the behavior of concrete exposed to CaCl2 solution as the temperature changes. Specifically, the Ca(OH)2 can react with CaCl2 and H2O resulting in the formation of calcium oxychloride. The formation of the calcium oxychloride is expansive and can produce damage in concrete at temperatures above freezing. Its formation can also cause a significant decrease in fluid ingress into concrete. For solutions with CaCl2 concentrations greater than about 11.3 % (by mass), it is found that calcium oxychloride forms rapidly and is stable at room temperature (23 °C).Entities:
Keywords: Calcium Oxychloride; Concrete; Damage; Deicing Salt; Freeze-Thaw; Phase Change
Year: 2015 PMID: 26692655 PMCID: PMC4672374 DOI: 10.1016/j.cemconcomp.2015.09.006
Source DB: PubMed Journal: Cem Concr Compos ISSN: 0958-9465 Impact factor: 7.586