添加枯草芽孢杆菌对水泥砂浆力学和化学性能的影响

IF 2.5 Q2 MULTIDISCIPLINARY SCIENCES Beni-Suef University Journal of Basic and Applied Sciences Pub Date : 2025-01-13 DOI:10.1186/s43088-024-00591-w
Osama Ahmed Ibrahim, Ahmed Ibrahim Hassanin Mohamed, Wael Ibrahim, Raghda Osama Abd-Al Ftah, Shimaa R. Hamed, Sherif Fakhry M. Abd-Elnaby
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引用次数: 0

摘要

研究枯草芽孢杆菌对水泥砂浆性能的影响。这是通过使用埃及Sharkia的土壤样本来分离48种细菌菌株,然后使用约翰逊方法和各种培养基进行培养。然后在水泥砂浆中添加5%和10%重量的细菌,以评估它们对改性砂浆力学和化学性能的影响。结果研究检测了改性砂浆随时间的抗压和抗折强度,以及28天后的微观性能和化学成分。结果表明,与对照组相比,细菌添加量分别为5%和10%的砂浆在28天和56天后的抗压强度均有所提高。5%的细菌浓度对砂浆强度有显著的改善,显示出提高砂浆强度的最佳浓度。添加5%的细菌显著提高了早期抗弯强度,添加10%的细菌在56天后表现出较好的长期抗弯强度。扫描电子显微镜(SEM)显示,细菌样品中CaCO3含量较高,表明微生物诱导的方解石沉淀填充了小裂缝并增加了强度。傅里叶变换红外光谱(FTIR)证实了羟基、碳酸盐和硅酸盐基团的存在,细菌样品中碳酸盐含量较高,表明碳酸钙的形成和微观结构增加。结论理想的细菌浓度为5%,可以提高材料的抗压和抗弯强度,同时也能使材料的微观结构更灵活。这项研究支持在生产更耐用和环保的建筑材料中使用微生物,提高建筑实践的可持续性。
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The influence of adding B. subtilis bacteria on the mechanical and chemical properties of cement mortar

Background

This study investigated the effect of B. Subtilis bacteria on the properties of cement mortar. This was done by using soil samples from Sharkia, Egypt, to isolate 48 bacterial strains, after which they were cultured using the Johnson method and various media. Bacteria were then added to the cement mortar in amounts of 5% and 10% by weight to evaluate their effect on the mechanical and chemical properties of the modified mortar.

Results

The study examined the compressive and flexural strength of the modified mortar over time, as well as its microscopic properties and chemical composition after 28 days. The results indicated that bacterial additions of 5% and 10% increased the compressive strength of the mortar after 28 and 56 days compared to the control. A 5% bacteria concentration resulted in significant improvements in strength, showing the best concentration for increasing mortar strength. The addition of 5% bacteria significantly enhanced the early flexure strength, while the 10% showed superior long-term strength after 56 days. Scanning electron microscopy (SEM) revealed high CaCO3 deposits in the bacterial samples, indicating microbial-induced calcite precipitation that filled the small cracks and increased strength. Fourier-transform infrared spectroscopy (FTIR) confirmed the presence of hydroxyl, carbonate, and silicate groups, with bacterial samples having a higher carbonate content, indicating an increase in calcium carbonate formation and microstructure.

Conclusions

The ideal bacterial concentration was 5% as it improved the compressive and flexural strength while also promoting a more flexible microstructure. This study supports the employment of microorganisms in the production of more durable and environmentally friendly building materials, enhancing the sustainability of building practices.

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来源期刊
CiteScore
2.60
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0.00%
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期刊介绍: Beni-Suef University Journal of Basic and Applied Sciences (BJBAS) is a peer-reviewed, open-access journal. This journal welcomes submissions of original research, literature reviews, and editorials in its respected fields of fundamental science, applied science (with a particular focus on the fields of applied nanotechnology and biotechnology), medical sciences, pharmaceutical sciences, and engineering. The multidisciplinary aspects of the journal encourage global collaboration between researchers in multiple fields and provide cross-disciplinary dissemination of findings.
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