Open Access
Issue
MATEC Web Conf.
Volume 409, 2025
Concrete Solutions 2025 – 9th International Conference on Concrete Repair, Durability & Technology
Article Number 01001
Number of page(s) 10
Section Service Life Assessment/Structural Assessment
DOI https://doi.org/10.1051/matecconf/202540901001
Published online 13 June 2025
  1. S.K.T. Grattan, S.E. Taylor, P.M.A. Basheer, T. Sun, K.T.V. Grattan, Sensors Systems, Especially Fibre Optic Sensors in Structural Monitoring Applications in Concrete: An Overview, New Developments in Sensing Technology for SHM, LNEE 96, 359–425 (2011) [Google Scholar]
  2. A. Poonguzhali, H. Shaikh, R.K. Dayal, H.S. Khatak, A Review on Degradation Mechanism and Life Estimation of Civil Structures Corrosion Rev. 26, 4 (2008) [Google Scholar]
  3. C. Cao, M.M.S. Cheung, B.Y.B. Chan, Modelling of interaction between corrosion-induced concrete cover crack and steel corrosion rate, Corros. Sci. 69, 97–109 (2013) [Google Scholar]
  4. Y. Fujino, D. Siringoringo, Recent Research and Development Programs for Infrastructures Maintenance, Renovation and Management in Japan, Struct. Infrastruct. Eng. 16, 2 (2019) [Google Scholar]
  5. K. Kaur, S. Goyal, B. Bhattacharjee, and M. Kumar, “Electrochemical impedance spectroscopy to study the carbonation behavior of concrete treated with corrosion inhibitors, J. Adv. Concr. Technol. 15, 738 (2017). [CrossRef] [Google Scholar]
  6. H. Yokota, K. Hashimoto, Life-cycle management of concrete structures, Int. J. Struct. Eng. 4, 138–145 (2013) [Google Scholar]
  7. S.T. Vegas, K. Lafdi, A Literature Review of Non-Contact Tools and Methods in Structural Health Monitoring, Eng. Technol. Open Acc. 4, 1 (2021) [Google Scholar]
  8. P. Bagora, S. Sharma, Exploring IoT Integration for Innovative Advancements in Civil Engineering, Build. Mater. Eng. Struct. 2, 1-4 (2024). [Google Scholar]
  9. H. Toshiyoshi, MEMS Vibrational Energy Harvester for IoT Wireless Sensors, IEEE Int. Electron Devices Meeting, IEDM, 37.3.1-37.3.4 (2020) [Google Scholar]
  10. M. I. Hossain, M.S. Zahid, M.A. Chowdhury, M.M. Maruf Hossain, and N. Hossain, MEMS-based energy harvesting devices for low-power applications – a review, Results Eng. 19, 101264 (2023) [CrossRef] [Google Scholar]
  11. K. Hashimoto, T. Shiotani, H. Mitsuya, K.C. Chang, Mems vibrational power generator for bridge slab and pier health monitoring, Appl. Sci. 10, 1-13 (2020) [Google Scholar]
  12. K.C. Chang, K. Hashimoto, H. Mitsuya, T. Shiotani, Electrostatic micro-electro-mechanical system vibrational energy harvesters for bridge damage detection, The Rise of Smart Cities: Advanced Structural Sensing and Monitoring Systems, 319–342 (2022) [Google Scholar]
  13. H. Koga, H. Mitsuya, H. Honma, H. Fujita, H. Toshiyoshi, G. Hashiguchi, Development of a cantilever-type electrostatic energy harvester and its charging characteristics on a highway viaduct, Micromachines (Basel) 8, (2017) [Google Scholar]
  14. B. Han, S. Vassilaras, C. P. Papadias, R. Soman, M. A. Kyriakides, T. Onoufriou, R.H. Nielsen, R. Prasad, Harvesting energy from vibrations of the underlying structure,” JVC/J. Vib. Control 19, 2255-2269 (2013) [CrossRef] [Google Scholar]
  15. H. Honma, H. Mitsuya, G. Hashiguchi, H. Fujita, H. Toshiyoshi, Improvement of Energy Conversion Effectiveness and Maximum Output Power of Electrostatic Induction-Type MEMS Energy Harvesters by Using Symmetric Comb-Electrode Structures, J. Micromech. Microeng. 28, 6 (2018) [Google Scholar]
  16. H. Honma, Y. Tohyama, H. Mitsuya, G. Hashiguchi, H. Fujita, H. Toshiyoshi, A Power-Density-Enhanced MEMS Electrostatic Energy Harvester with Symmetrized High-Aspect Ratio Comb Electrodes, J. Micromech. Microeng. 29, 084002 (2019) [CrossRef] [Google Scholar]
  17. N. Nithimethaporn, K. Hashimoto, H. Mitsuya, H. Ashizawa, T. Ishiguro, W. Yodsudjai, Development of Environmental Monitoring Sensor for Steel Corrosion in Concrete based on Micro-Electro-Mechanical Systems (MEMS), e-J. Nondestruct. Test. 29, 6 (2024) [Google Scholar]
  18. Y. Tian, G. Zhong, H. Ye, Q. Zeng, Z. Zhang, Z. Tian, X. Jin, Z. Chen, J. Wang, Corrosion of steel rebar in concrete induced by chloride ions under natural environments,” Constr. Build. Mater. 369, 130504 (2023) [CrossRef] [Google Scholar]
  19. P. Astuti, L.A.Z. Radio, F. Salsabila, A.K. Aulia, R.S. Rafdinal, A.Y. Purnama, Corrosion Potential of Coated Steel Bar Embedded in Sea-Water Mixed Mortar, E3S Web Conf. 429, 05028 (2023) [CrossRef] [EDP Sciences] [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.