Wang Jianyun, Ersan Yusuf Cagatay, Boon Nico, De Belie Nele
Magnel Laboratory for Concrete Research, Faculty of Engineering and Architecture, Ghent University, Technologiepark Zwijnaarde 904, 9052, Ghent, Belgium.
Laboratory of Microbial Ecology and Technology (LabMET), Ghent University, Coupure Links 653, 9000, Ghent, Belgium.
Appl Microbiol Biotechnol. 2016 Apr;100(7):2993-3007. doi: 10.1007/s00253-016-7370-6. Epub 2016 Feb 20.
The beneficial effect of microbially induced carbonate precipitation on building materials has been gradually disclosed in the last decade. After the first applications of on historical stones, promising results were obtained with the respect of improved durability. An extensive study then followed on the application of this environmentally friendly and compatible material on a currently widely used construction material, concrete. This review is focused on the discussion of the impact of the two main applications, bacterial surface treatment and bacteria based crack repair, on concrete durability. Special attention was paid to the choice of suitable bacteria and the metabolic pathway aiming at their functionality in concrete environment. Interactions between bacterial cells and cementitious matrix were also elaborated. Furthermore, recommendations to improve the effectiveness of bacterial treatment are provided. Limitations of current studies, updated applications and future application perspectives are shortly outlined.
在过去十年中,微生物诱导碳酸盐沉淀对建筑材料的有益影响已逐渐被揭示。在首次应用于历史石材之后,在提高耐久性方面取得了令人鼓舞的成果。随后进行了一项广泛的研究,将这种环保且兼容性良好的材料应用于目前广泛使用的建筑材料——混凝土。本综述聚焦于讨论细菌表面处理和基于细菌的裂缝修复这两种主要应用对混凝土耐久性的影响。特别关注了合适细菌的选择以及旨在使其在混凝土环境中发挥功能的代谢途径。还阐述了细菌细胞与水泥基基质之间的相互作用。此外,还提供了提高细菌处理效果的建议。简要概述了当前研究的局限性、最新应用以及未来的应用前景。