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A Micro-and Macro-scale Simulation of Microbially Induced Sedimentary Structures under the Urea Hydrolysis Reaction

机译:尿素水解反应下微生物诱导沉积结构的微观和宏观尺度模拟

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Bio-mediated soil improvements phenomena have been observed though various experimental tests and investigations that the shear strength of microbial-mediated soils can be improved using the process of bio-chemical cementation.In the modern geotechnical community,this phenomenon is expected to become the focus of innovative technologies for use in next-generation soil improvement technologies.Also,the bio-chemical cementation is also observed in a natural environment.Thus,the microbially induced cementation in geo-materials is of interest from an engineering viewpoint because there is a possibility that this is applied artificially to natural environments.In contrast,predicting technique for microbially induced structural evolution of inner soil is still to be investigated in practice because we may not be able to change certain parameters easily with respect to the microbial activity.In this work,the authors attempt to bring a new perspective to the field of bio-mediated soil improvement technology,drawing on mathematical modelling and simulation techniques in order to understand the mechanism of microstructural formation and predict the future state of the soil.The mathematical model in microscale space is formulated by reaction-diffusion system where the metabolic reactions of microorganism are considered.Whereas,the mechanical behavior in macroscale space is calculated by a homogenization technique.
机译:已经观察到生物介导的土壤改善现象虽然各种实验试验和调查,使用生物化学胶泥的过程可以改善微生物介导的土壤的剪切强度。在现代岩土公路社区,这一现象预计将成为重点在下一代土壤改进技术中使用的创新技术。在自然环境中也观察到生物化学胶结。本,从工程观点来看,地质材料中的微生物诱导的微量诱导的胶合因有可能性这是以自然环境为人工应用的。对比,在实践中仍然研究了微生物诱导的内部土壤结构演化的预测技术,因为我们可能无法容易地改变微生物活动的某些参数。这项工作,作者试图为生物介导的土壤改造领域带来一个新的视角熵技术,绘制数学建模和仿真技术,以了解微观结构形成的机制并预测土壤的未来状态。通过反应扩散系统制定了微观空间的数学模型,其中考虑了微生物的代谢反应。鉴于宏观空间中的机械行为是通过均质化技术计算的。

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