Gong Guoqiang, Guo Menghuan, Zhou Yingwu, Zheng Shuyue, Hu Biao, Zhu Zhongfeng, Huang Zhenyu
College of Civil and Transportation Engineering, Shenzhen University, Shenzhen 518060, China.
Guangdong Provincial Key Laboratory of Durability for Marine Civil Engineering, Shenzhen University, Shenzhen 518060, China.
Polymers (Basel). 2022 Mar 23;14(7):1291. doi: 10.3390/polym14071291.
Limestone calcined clay cement (LC) is successfully used to fabricate engineered cementitious composites (ECC) exhibiting tensile strength of 9.55 ± 0.59 MPa or tensile strain capacity of 8.53 ± 0.30%. The high tensile strength of the composites is closely related to the improvement of fiber/matrix interfacial bond strength, and the high ductility is attributed to the enhancement of fiber dispersion homogeneity. For the case of ECC incorporating 50% LC, the reduction of initial cracking stress that favors the growth of the crack in a controlled manner also contributes to the improvement of strain hardening behavior. The composition analysis indicates that carboaluminates and additional hydration products including C-(A)-S-H and ettringite are generated, which contributes to the densification of the microstructure of the ECC matrix. The pore structure is thus remarkably refined. Besides, when ordinary Portland cement (OPC) is partly replaced by LC, the consumed energy and equivalent CO emission decrease, especially the equivalent CO emission with the reduction ratio attaining 40.31%. It is found that ECC using 35% LC exhibits the highest mechanical resistance and ECC incorporating 50% LC shows the highest ductility from the environmental point of view.
石灰石煅烧黏土水泥(LC)已成功用于制备工程水泥基复合材料(ECC),其抗拉强度为9.55±0.59MPa,或拉伸应变能力为8.53±0.30%。复合材料的高抗拉强度与纤维/基体界面粘结强度的提高密切相关,而高延展性则归因于纤维分散均匀性的增强。对于掺入50%LC的ECC,初始开裂应力的降低有利于裂纹以可控方式扩展,这也有助于改善应变硬化行为。成分分析表明,生成了碳铝酸盐和包括C-(A)-S-H和钙矾石在内的额外水化产物,这有助于ECC基体微观结构的致密化。孔隙结构因此得到显著细化。此外,当普通硅酸盐水泥(OPC)部分被LC替代时,能耗和等效CO排放量降低,尤其是等效CO排放量的降低率达到40.31%。从环境角度来看,发现使用35%LC的ECC表现出最高的力学性能,而掺入50%LC的ECC表现出最高的延展性。