Chen Wenhua, Huang Zhiyi
College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310000, China.
Materials (Basel). 2019 Nov 25;12(23):3891. doi: 10.3390/ma12233891.
The effects of cenospheres, an industrial waste residue, on the compressive strength, flexural strength, toughness, ductility, chemical component, microstructures, and micromechanics of lightweight toughness cement-based composites (LTCCs) by comprehensive experimental tests are explored in this paper. The results indicate that an increase in the amount of cenospheres leads to a decrease in the compressive and flexural strength of LTCCs. However, the specific strength of LTCCs increases with increasing cenosphere content. LTCCs containing 20% cenospheres and 1% fiber volume have the best toughness and ductility. Significant strain hardening occurs during the four-point bending and uniaxial tensile process. Furthermore, the incorporation of cenospheres promotes the hydration reaction of LTCCs due to its high pozzolanic activity. The LTCC cement paste has a low bonding strength to the fiber, which helps the fiber to be pulled out to produce greater bending deformation and tensile strain. The elastic modulus and hardness of the LTCC cement paste decrease linearly with increasing cenosphere content, which also causes the LTCC microstructure to become loose and more ettringite to generate. The weak interfacial transition zone between the cenospheres and the cement matrix is the important reason for the decreasing compressive strength of the LTCC. In conclusion, LTCC incorporating cenospheres is suitable for long-span steel deck pavements due to its light weight and excellent toughness. The successful application of cenospheres in engineering construction can save natural resources and contribute to sustainable development.
本文通过全面的实验测试,探讨了工业废渣漂珠对轻质韧性水泥基复合材料(LTCC)的抗压强度、抗折强度、韧性、延性、化学成分、微观结构和微观力学性能的影响。结果表明,漂珠用量的增加会导致LTCC的抗压强度和抗折强度降低。然而,LTCC的比强度随漂珠含量的增加而提高。含有20%漂珠和1%纤维体积的LTCC具有最佳的韧性和延性。在四点弯曲和单轴拉伸过程中会发生显著的应变硬化。此外,由于漂珠具有较高的火山灰活性,其掺入促进了LTCC的水化反应。LTCC水泥浆体与纤维的粘结强度较低,这有助于纤维拔出以产生更大的弯曲变形和拉伸应变。LTCC水泥浆体的弹性模量和硬度随漂珠含量的增加呈线性下降,这也导致LTCC微观结构变得疏松,生成更多钙矾石。漂珠与水泥基体之间薄弱的界面过渡区是LTCC抗压强度降低的重要原因。总之,掺入漂珠的LTCC因其重量轻和优异的韧性而适用于大跨度钢桥面铺装。漂珠在工程建设中的成功应用可以节约自然资源,促进可持续发展。