2026· E3S Web of Conferences· 0 citations· 9 references
Abstract
To overcome the limitations associated with conventional cement-based soil stabilization methods, Microbially Induced Calcite Precipitation (MICP) has emerged as a sustainable alternative for improving soil strength through bio-cementation. Although substantial research has been devoted to understanding, controlling, optimizing, and designing the MICP process, there is still a need for mechanistic yet practical tools that can support the accurate design of treatment strategies and reliably predict treatment performance. This study presents a novel theoretical framework based on a finite element code that couples biological, chemical, hydraulic, and mechanical processes to predict calcium carbonate precipitation and the corresponding improvements observed in both laboratory- and field-scale applications. This study presents a detailed parametric investigation using a fully coupled BCHM finite element model to assess the influence of cyclic treatment on the overall precipitation of calcium carbonate, which is one of the main objectives in sand stabilization. Different cementation solution injection cycles were examined to evaluate how increasing treatment intensity affects calcium carbonate precipitation and its spatial distribution within the column. The results provide valuable information for optimum design of MICP injection strategies.
Microbial-induced calcium carbonate precipitation (MICP) represents an innovative approach for the remediation of cement-based material cracks, addressing the limitations of conventional repair methods, such as high cost, low efficiency, and challenges in repairing fine cracks. In this study, we observed the growth o...
Yuanzhe Tu, Zihan Sungu, Jinman Han et al.· Journal of materials in civi...· 0 citations
Over the last twenty years, there has been a great amount of multidisciplinary interest in Microbially Induced Calcite Precipitation (MICP) as a truly sustainable solution to ground treatment using Portland cement. The process utilizes the urease activity of ureolytic bacteria, most commonly Sporosarcina pasteurii to c...
The construction sector requires environmentally sustainable materials that reduce embodied carbon while maintaining adequate mechanical performance for practical applications. This study aimed to investigate the influence of crushed Moroccan hemp shives on the physicochemical and mechanical behavior of a locally sourc...
Abdelhamid Elmountassir, K. Elkhalidi, Hanane Ait Hmeid et al.· Ecological Engineering &...· 0 citations
: Microbially Induced Carbonate Precipitation (MICP) is an environmentally friendly technique for sandy soil stabilization. However, the cementation performance is governed by multiple coupled factors and complex experimental procedures, making accurate prediction challenging. In this study, a dual-objective XGBoost pr...
In response to the decreasing availability of high-grade kaolinitic clays, there is a growing shift toward using natural waste clays as supplementary cementitious materials. The performance of these waste clays is generally evaluated based on either strength or environmental impact, but the combination of both is rarel...
Ishan Basnayaka, C. Gunasekara, David W. Law et al.· Environmental science and po...· 0 citations
Sand production induced by hydrate dissociation severely threatens the safe and sustainable exploitation of weakly cemented marine hydrate reservoirs. Microbially induced carbonate precipitation (MICP) has emerged as a promising in situ sand-control technique; however, its reinforcement effectiveness is governed not...
Benteng Dai, Jia-Xin Sun, Shunbo Qin et al.· Energy & Fuels· 0 citations
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