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High-strength seawater sea-sand Engineered Cementitious Composites (SS-ECC): Mechanical performance and probabilistic modeling

  • Bo-Tao Huang
  • , Jia-Qi Wu
  • , Jing Yu*
  • , Jian-Guo Dai*
  • , Christopher KY Leung
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Engineered Cementitious Composite (ECC) is an advanced fiber-reinforced concrete exhibiting multiple-cracking and strain-hardening under tension. This study aims to explore the feasibility of producing high-strength seawater sea-sand Engineered Cementitious Composites (SS-ECC) for marine and coastal applications facing the shortage of freshwater and river/manufactured sand. The effects of key composition parameters including the sea-sand size (1.18/2.36/4.75 mm), the polyethylene fiber length (6/12/18 mm), and the fiber volume dosage (1.0/1.5/2.0%) on the mechanical performance of SS-ECC were comprehensively investigated. SS-ECC with tensile strength over 8 MPa, ultimate tensile strain about 5%, and compressive strength over 130 MPa were achieved. Using seawater and sea-sand had almost no negative effects on the 28-day mechanical properties of high-strength ECC. For SS-ECC, increasing fiber length and dosage enhanced the tensile strain capacity, and sea-sand size had limited effects on the tensile performance; these phenomena were interpreted by the micromechanical analysis. A probabilistic-based method was proposed to analyze the reliability of the tensile strain capacity of SS-ECC, and it showed good agreement with the experimental results. The findings provide new insights into the design and applications of ECC in marine and coastal infrastructures for improving safety, durability, sustainability, and reliability. © 2020 Elsevier Ltd.
Original languageEnglish
Article number103740
JournalCement and Concrete Composites
Volume114
Online published27 Jul 2020
DOIs
Publication statusPublished - Nov 2020
Externally publishedYes

Funding

This study was financially supported by the National Key Research Program of China (No.: 2017YFC0703403) and the Hong Kong Research Grants Council (No.: T22-502/18-R). Bo-Tao Huang acknowledges the financial support by The Hong Kong Polytechnic University through the Research Institute for Sustainable Urban Development (No.: 1-BBWE) and the Postdoctoral Fellowships Scheme (No.: YW4K). The authors would also express their appreciation to Dr. Motohiro Ohno at the University of Tokyo and Dr. Ravi Ranade at the University at Buffalo for their help on the micromechanical analysis, to Dr. Yu Xiang, Mr. Ji-Xiang Zhu and Mr. Ke-Fan Weng for their assistance in the experiment, to Dr. Dhanada K Mishra for the proofreading, and to the Nano and Advanced Materials Institute in Hong Kong for providing the equipment for single-fiber pull-out tests. This study was financially supported by the National Key Research Program of China (No.: 2017YFC0703403 ) and the Hong Kong Research Grants Council (No.: T22-502/18-R ). Bo-Tao Huang acknowledges the financial support by The Hong Kong Polytechnic University through the Research Institute for Sustainable Urban Development (No.: 1-BBWE) and the Postdoctoral Fellowships Scheme (No.: YW4K). The authors would also express their appreciation to Dr. Motohiro Ohno at the University of Tokyo and Dr. Ravi Ranade at the University at Buffalo for their help on the micromechanical analysis, to Dr. Yu Xiang, Mr. Ji-Xiang Zhu and Mr. Ke-Fan Weng for their assistance in the experiment, to Dr. Dhanada K Mishra for the proofreading, and to the Nano and Advanced Materials Institute in Hong Kong for providing the equipment for single-fiber pull-out tests.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 14 - Life Below Water
    SDG 14 Life Below Water

Research Keywords

  • Engineered cementitious composite (ECC)
  • High strength
  • Mechanical performance
  • Micromechanical analysis
  • Probabilistic modeling
  • Sea-sand
  • Seawater
  • Strain-hardening cementitious composite (SHCC)

RGC Funding Information

  • RGC-funded

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