Solidification of high-water content marine deposits by in-situ treatment of magnesia-based bio-cement: Clay content effect
ID:107 View Protection:ATTENDEE Updated Time:2026-08-05 09:05:55 Hits:30 Invited speech

Start Time:2026-08-11 10:45(Asia/Hong_Kong)

Duration:15min

Session:S4 Session 4 Marine Geo-disaster and Geo-environment » S4.5Session 4 Day 3

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Abstract
Sustainable solidification of high water content marine deposits (MD) is crucial for coastal infrastructure, where clay content (CC) of MD critically affects its performance. This study proposed an in-situ treatment of magnesia-based bio-cement (MBC) for MD solidification. This novel approach utilizes concentrated bacteria solution to hydrolyze urea directly within high water content MD and then engage the bio-carbonation of reactive MgO. The in-situ MBC-solidified MD (MBC-samples) with 10-70% CC were prepared to validate the feasibility and reveal CC effects by investigating their mechanical properties, chemical characteristics, and microstructures. The results indicate that in-situ MBC can effectively solidify high water content MD by utilizing its inherent water for urea hydrolysis, circumventing further water content increment by bacteria solution addition. The increase in CC significantly improved unconfined compressive strength (UCS) by 370.0% to 0.94 MPa, but decreased the degree of carbonation (DC, evaluating hydrated magnesia carbonates (HMCs) yield) by 30.3% to 0.31. Pre-hydrolysis treatment increased the DC and UCS of MBC-samples by 24.4% and 177.0%, respectively. Although higher CC inhibits urea hydrolysis within MD and reduces HMCs production, it decreases pore volume and dominant pore size, changing HMCs development and distribution, which compensates for the lower DC and ultimately improves the UCS of MBC-samples. The relationship between CC and UCS was quantitatively analyzed by considering the decreased DC effects via inhibiting reactions and microstructural refinement through reduced dominant pore diameters with higher CC. These findings provide theoretical and practical insights for sustainable marine deposit solidification.
Keywords
High water content marine deposits,Clay content effects,Soil solidification,Magnesia-based bio-cement,In-situ treatment
Speaker
Dianlong WANG
The Hong Kong Polytechnic University

Submission Author
Dianlong WANG the Hong Kong Ploytechnic University
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Important Date
  • Conference Date

    Aug 09

    2026

    to

    Aug 13

    2026

  • Aug 06 2026

    Draft paper submission deadline

  • Aug 12 2026

    Registration deadline

Sponsored By
The Hong Kong Polytechnic University
Organized By
International Consortium on Geo-disaster Reduction (ICGdR)
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