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Applications of bio-cementation and bio-polymerization for aeolian erosion control

机译:生物粘合和生物聚合对天空侵蚀控制的应用

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This study investigates soil stabilization through two soil strengthening techniques, specifically; Bio-cementation through Microbial induced calcite precipitation (MICP) and Bio-polymerization using Xanthan gum for aeolian erosion control applications. The performances of these techniques were evaluated in terms of improvement in Threshold friction velocity (TFV), soil mass loss (%), and soil crust thickness formed with different levels of the treatment by conducting a series of experiments in the laboratory-scale wind tunnel and the microstructural observations with the help of FESEM and X-ray diffraction techniques. The results from wind erosion studies exhibited an improvement in TFV from 20 km/h for untreated to 45 km/h for MICP and biopolymer treated sand. A reduction in the soil mass loss from 75.23% for untreated to as least as 0% with both MICP and biopolymer treatment was observed. The results also indicated that the concentration of urea-cacl2 and biopolymer both played a critical role in soil improvement in both treatment methods. In MICP treated soil, the maximum wind speed of 45 km/h was encountered as TFV with 0.5M urea-cacl(2). Whereas the TFV of biopolymer treated soil encountered the maximum wind speed of 45 km/h with a minimum of 0.25% of Xanthan Gum biopolymer solution.
机译:本研究通过两种土壤强化技术研究了土壤稳定化;通过微生物诱导的方解石沉淀(MICP)和生物聚合使用黄原胶对天黑侵蚀控制应用的生物聚合。通过在实验室级风洞中进行一系列实验,在改善阈值摩擦速度(TFV),土壤质量损失(%)和土壤地壳厚度方面进行了这些技术的性能。通过在实验室规模的风洞中进行一系列实验借助FeSEM和X射线衍射技术的微观结构观察。风蚀研究的结果表现出从20 km / h的TFV改善,对于MICP和生物聚合物处理的砂,从20 km / h到45 km / h。观察到麦克风和生物聚合物处理的未处理到至少为0%的土壤质量损失的降低。结果还表明,尿素-CaCl2和生物聚合物的浓度在两种治疗方法中都在土壤改善中发挥着关键作用。在MICP处理的土壤中,遇到了45 km / h的最大风速作为TFV,0.5M尿素-CACL(2)。虽然生物聚合物处理的土壤的TFV遇到了45 km / h的最大风速,最小值为0.25%的黄原胶生物聚合物溶液。

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