纳米二氧化硅对微生物诱导碳酸盐沉淀(MICP)固化沉积物的强化作用:宏观和微观分析

IF 3.3 2区 工程技术 Q3 ENERGY & FUELS Geomechanics for Energy and the Environment Pub Date : 2024-03-26 DOI:10.1016/j.gete.2024.100555
Fengli Xu , Dongxing Wang , Xueyong Xu , Zunqun Xiao
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引用次数: 0

摘要

通过微生物诱导碳酸盐沉淀(MICP)固结沉积物符合资源利用的可持续发展原则。本研究采用渗透性、无侧限压缩强度(UCS)、X 射线衍射(XRD)、扫描电子显微镜(SEM)和吸附技术,旨在探索在不同条件下将纳米二氧化硅作为补充材料加入经微生物诱导碳酸盐沉淀(MICP)处理的沉积物中的固结潜力和机理。结果表明,在使用≤0.1% 纳米二氧化硅辅助 MICP 处理的沉积物中,渗透性降低,无侧限压缩强度增加。影响凝固潜能的因素按照特定的顺序排列:Ca2+浓度;OD600;纳米二氧化硅用量;生化反应时间。当与 MICP 结合使用时,浓度低于 0.05% 的纳米二氧化硅可促进文石向方解石的转化。此外,纳米二氧化硅还引发了早期 C-S-H 凝胶、老化粘稠状硅酸盐凝胶和尖晶石[Ca5(SiO4)2CO3]的生成,以固结沉积物。此外,纳米二氧化硅、矿物和凝胶相的微填充也大大增强了沉积物的强度。最后,纳米二氧化硅对 Ca2+ 的强大吸附能力(qm = 0.26 mol/g)减轻了过量 Ca2+ 对脲酶活性的毒性,从而促进了尿素水解和 CaCO3 成核。纳米二氧化硅与 MICP 的协同效应涉及胶结、填充、成核和减轻 Ca2+ 的毒性,为沉积物加固应用提供了宝贵的启示。
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Strengthening effect of nano-SiO2 on microbial induced carbonate precipitation (MICP) solidified sediment: Macro- and micro-analysis

Sediment consolidation via microbial induced carbonate precipitation (MICP) aligns with the principles of sustainable development in resource utilization. This study aimed to explore the solidification potential and mechanisms of integrating nano-SiO2 as a supplementary material in MICP-treated sediment under various conditions, employing permeability, unconfined compression strength (UCS), X-ray diffraction (XRD), scanning electron microscopic (SEM), and adsorption techniques. The results demonstrated a reduction in permeability and an increase in UCS in sediment treated with ≤0.1% nano-SiO2-assisted MICP. The factors contributing to solidification potential followed a specific order: Ca2+ concentration > OD600> nano-SiO2 dosage > biochemical reaction time. When combined with MICP, nano-SiO2 at concentrations below 0.05% promoted the transformation from aragonite to calcite. Furthermore, nano-SiO2 triggered the creation of early-stage C-S-H gels, aged viscous-like silicate gels, and spurrite [Ca5(SiO4)2CO3] to cement the sediment. Additionally, the micro filling of nano-SiO2, minerals, and gel phases significantly bolstered the sediment's strength. Finally, the impressive adsorption capacity of nano-SiO2 for Ca2+ (qm = 0.26 mol/g) alleviated the toxicity of excessive Ca2+ on urease activity, thereby facilitating urea hydrolysis and CaCO3 nucleation. The synergistic effect of nano-SiO2 with MICP, involving cementation, filling, nucleation, and mitigation of Ca2+ toxicity, provides valuable insights for the sediment reinforcement applications.

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来源期刊
Geomechanics for Energy and the Environment
Geomechanics for Energy and the Environment Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
5.90
自引率
11.80%
发文量
87
期刊介绍: The aim of the Journal is to publish research results of the highest quality and of lasting importance on the subject of geomechanics, with the focus on applications to geological energy production and storage, and the interaction of soils and rocks with the natural and engineered environment. Special attention is given to concepts and developments of new energy geotechnologies that comprise intrinsic mechanisms protecting the environment against a potential engineering induced damage, hence warranting sustainable usage of energy resources. The scope of the journal is broad, including fundamental concepts in geomechanics and mechanics of porous media, the experiments and analysis of novel phenomena and applications. Of special interest are issues resulting from coupling of particular physics, chemistry and biology of external forcings, as well as of pore fluid/gas and minerals to the solid mechanics of the medium skeleton and pore fluid mechanics. The multi-scale and inter-scale interactions between the phenomena and the behavior representations are also of particular interest. Contributions to general theoretical approach to these issues, but of potential reference to geomechanics in its context of energy and the environment are also most welcome.
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