raybet体育在线 院报 ›› 2024, Vol. 41 ›› Issue (12): 117-125.DOI: 10.11988/ckyyb.20230818

• 岩土工程 • 上一篇    下一篇

纳米SiO2-MICP协同固化淤泥效能评价与驱动机制

陈浩()   

  1. 中国铁建港航局集团有限公司 总承包分公司,广东 珠海 519000
  • 收稿日期:2023-07-27 修回日期:2024-01-24 出版日期:2024-12-01 发布日期:2024-12-01
  • 作者简介:

    陈 浩(1979-),男,安徽泗县人,高级工程师,主要从事软土地基处理等岩土工程方面的施工与管理工作。E-mail:

Performance Evaluation and Driving Mechanisms of Synergistic Solidification with Nano-Sio2and-MICP for Sludge

CHEN Hao()   

  1. General Contracting Company,CRCC Harbour & Channel Engineering Bureau Group,Zhuhai 519000,China
  • Received:2023-07-27 Revised:2024-01-24 Published:2024-12-01 Online:2024-12-01

摘要:

绿色低碳化学固化技术研发是“双碳”背景之下实现淤泥质地基快速加固的有效保障。为此,创新性提出活性纳米SiO2联合微生物诱导碳酸盐沉淀(MICP)协同技术对淤泥进行固化改性,通过试样无侧限抗压强度、pH变化、Ca2+利用率和扫描电镜等手段分析其加固效能与作用机理。 结果表明: ①当纳米SiO2掺量不高于0.1%时,SiO2-MICP固化淤泥试样抗压强度随纳米SiO2掺量增加而增大;②相比未添加纳米SiO2的MICP固化试样,0.5、1和2 mol/L Ca2+浓度下0.1%纳米SiO2联合MICP固化试样抗压强度对应提升64.21%、10.28%和75.98%;③纳米SiO2可为MICP提供新成核位点且填充孔隙,诱导淤泥试样中生物矿物由文石向方解石转化,且凝胶产物生成促进试样强度进一步升高;④纳米SiO2提高胶结液中Ca2+利用量和利用率,并调节液相环境中pH值水平。微生物诱导产生生物CaCO3(发挥胶结、填充、架桥等作用)和纳米SiO2物化效应(即矿物生长新成核位点、微集料填充、胶凝产物),二者联合作用促使淤泥固化体力学特性的提升和微观骨架的构建。

关键词: 纳米SiO2, 微生物诱导碳酸盐沉淀, 无侧限抗压强度, Ca2+利用, 扫描电镜, 固化淤泥

Abstract:

The development of green and low-carbon chemical solidification technology is crucial for rapid solidification of soft ground under the “Dual Carbon” context. This study introduces an innovative synergistic technology that combines active nano-SiO2with microbial induced carbonate precipitation (MICP) for sludge solidification. Through unconfined compressive strength tests, pH monitoring, Ca2+ utilization rate analysis, and scanning electron microscopy, the reinforcement efficiency and micromechanisms of this technology are examined. Key findings include: 1) An increase in compressive strength of nano-SiO2-MICP solidified sludge is observed with increasing nano-SiO2 content up to 0.1%. 2) Samples treated with 0.1% nano-SiO2at Ca2+ concentrations of 0.5, 1, and 2 mol/L exhibit compressive strength enhancements of 64.21%, 10.28%, and 75.98%, respectively, compared to those without nano-SiO2. 3) Nano-SiO2 provides new nucleation sites for MICP, fills pores, induces aragonite-to-calcite transformation, and forms cementitious gels, thereby boosting sample strength. 4) The presence of nano-SiO2enhances Ca2+ utilization and pH regulation within the pore solution. Together, microbial-induced bio-CaCO3 processes (cementation, filling, bridging) and nano-SiO2-induced physicochemical effects (new nucleation sites, micro aggregate filling, and gelling products) synergistically improve the mechanical properties of solidified sludge and optimize the microscopic structural construction.

Key words: Nano-SiO2, microbial induced carbonate precipitation, unconfined compressive strength, Ca2+ utilization, scanning electron microscopy, solidified sludge

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