细菌密度对微生物诱导CaCO3沉淀生长速率和特性的影响:颗粒尺度实验研究

Yuze Wang, K. Soga, J. DeJong, A. Kabla
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引用次数: 38

摘要

微生物诱导碳酸盐降水(MICP)作为一种很有前途的土壤改良技术已经被探索了十多年。然而,预测和控制CaCO3沉淀的生长速度和特征仍然是一个挑战,这直接影响了micp处理后土壤的工程性能。在本研究中,我们采用基于微流体的孔隙尺度模型来观察细菌密度对发生在砂粒尺度上的MICP过程中CaCO3沉淀物生长速率和特征的影响。结果表明:CaCO3的沉淀速率随菌密度的增大而增大,在0.68 ~ 5.28个细胞/ml范围内;细菌密度也影响CaCO3晶体的大小和数量。低细菌密度为0.68个细胞/ml产生1.1e6个晶体/ml,平均晶体体积为8,000 um3,而高细菌密度为5.28个细胞/ml产生更多晶体(2.0e7个晶体/ml),但平均晶体体积较小,为450 um3。当细菌密度为0.68个细胞/ml时,CaCO3晶体稳定。当细菌密度增加4-10倍时,晶体首先不稳定,然后转变为更稳定的CaCO3晶体。这表明细菌密度应该是设计MICP协议的重要考虑因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Bacterial Density on Growth Rate and Characteristics of Microbial-Induced CaCO3 Precipitates: Particle-Scale Experimental Study
Microbial-Induced Carbonate Precipitation (MICP) has been explored for more than a decade as a promising soil improvement technique. However, it is still challenging to predict and control the growth rate and characteristics of CaCO3 precipitates, which directly affect the engineering performance of MICP-treated soils. In this study, we employ a microfluidics-based pore scale model to observe the effect of bacterial density on the growth rate and characteristics of CaCO3 precipitates during MICP processes occurring at the sand particle scale. Results show that the precipitation rate of CaCO3 increases with bacterial density in the range between 0.6e8 and 5.2e8 cells/ml. Bacterial density also affects both the size and number of CaCO3 crystals. A low bacterial density of 0.6e8 cells/ml produced 1.1e6 crystals/ml with an average crystal volume of 8,000 um3, whereas a high bacterial density of 5.2e8 cells/ml resulted in more crystals (2.0e7 crystals/ml) but with a smaller average crystal volume of 450 um3. The produced CaCO3 crystals were stable when the bacterial density was 0.6e8 cells/ml. When the bacterial density was 4-10 times higher, the crystals were first unstable and then transformed into more stable CaCO3 crystals. This suggests that bacterial density should be an important consideration in the design of MICP protocols.
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