4.7 Article

Experimental investigation on electrical response and mechanical performance of cementitious materials at low temperatures

期刊

CEMENT & CONCRETE COMPOSITES
卷 143, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.cemconcomp.2023.105264

关键词

Electric resistivity; Cementitious material; Low temperature; Ice strengthening and damaging

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In cold regions, concrete structures are prone to damage due to low temperatures. The expansion of ice formation and water penetration into pores and cracks contribute to the damage. However, the filling of pores with ice can enhance the mechanical properties of cementitious materials. Evaluating the freezing process is crucial as it can have either strengthening or damaging effects on the mechanical properties of concrete, depending on environmental and material factors. The presence of ice inside pores and cracks in frozen concrete is also important. Currently, there is a lack of effective evaluation methods for the mechanical properties of frozen concrete.
In cold regions, concrete structures suffer from low temperatures, where damage will initiate due to the expansion of ice formation and accumulate with water supply to keep penetrating into the pores and cracks. Meanwhile, it is found that the mechanical properties of cementitious materials can be enhanced owing to the pores filled by ice. Therefore, it is important to evaluate the freezing process, in which the freezing action can have both strengthening and damaging effects on the mechanical properties of concrete material, depending on several environmental and material factors. Besides, if temperature remains negative, the capacity of cementitious materials in service with ice presented inside pores and cracks are also important. However, there is still lack of effective evaluation methods for the mechanical properties of frozen concrete. In this study, cementitious materials with/without air entraining agent (AEA) of different water-to-cement ratios (W/C) are prepared and tested at low temperatures (-10,-20,-30 and-40 degrees C). The results show that the mechanical properties of the materials (compressive strength, splitting tensile strength, dynamic elastic modulus) are closely related to electrical resistivity, which is further explained by the impact of air voids and pore structures from a multiscale scheme. It proves that the change of resistivity could be adopted as the index to evaluate the performance of frozen concrete, and an empirical model is derived based on the experiment results.

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