4.5 Article

Tensile strength of sands treated with microbially induced carbonate precipitation

期刊

CANADIAN GEOTECHNICAL JOURNAL
卷 57, 期 10, 页码 1611-1616

出版社

CANADIAN SCIENCE PUBLISHING
DOI: 10.1139/cgj-2019-0230

关键词

bio-cementation; MICP; tensile strength; unconfined compressive strength (UCS)

资金

  1. National Science Foundation (CMMI) [1537007, 1554056]
  2. State of North Carolina
  3. National Science Foundation (ECCS) [1542015]
  4. Directorate For Engineering
  5. Div Of Civil, Mechanical, & Manufact Inn [1554056] Funding Source: National Science Foundation
  6. Div Of Civil, Mechanical, & Manufact Inn
  7. Directorate For Engineering [1537007] Funding Source: National Science Foundation
  8. Div Of Electrical, Commun & Cyber Sys
  9. Directorate For Engineering [1542015] Funding Source: National Science Foundation

向作者/读者索取更多资源

During large earthquake events where bending moments within soil cements are induced, the tensile strength of cemented soil may govern the deformational behavior of improved ground. Several studies have been conducted to assess the tensile strength of artificially cemented sands that use Portland cement or gypsum; however, the tensile strength of microbially induced carbonate precipitation (MICP)-treated sands with various particle sizes measured through direct tension tests has not been evaluated. MICP is a biomediated improvement technique that binds soil particles through carbonate precipitation. In this study, the tensile strength of nine specimens were measured by conducting direct tension tests. Three types of sand (coarse, medium, and fine) were cemented to reach a heavy level of cementation (e.g., shear wave velocity of similar to 900 m/s or higher). The results show that the tensile strength varies between 210 and 710 kPa depending on sand type and mass of carbonate. Unconfined compressive strength (UCS) tests were performed for each sand type to assess the ratio between tensile strength and UCS in MICP-treated sands. Scanning electron microscopy (SEM) images and surface energy measurements were used to determine the predominant failure mode at particle contacts under tensile loading condition.

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