摘要(英) |
Ferrocement has often been used to retrofit conventional reinforced concrete members to enhance their seismic performance. This paper develops a new type of steel mesh reinforced cementitious composites. The Engineered Cementitious Composites (ECC) is employed to replace traditional mortar in conventional ferrocement to strengthen the composite’s performance on tension, compression, shear, and flexure. A series of experimental investigations, including the direct tensile test, four point bending test, shear test, and compression test, are conducted to explore the behavior of the newly developed composite. In particular, the impact of the steel mesh size on the new ferrocement’s behavior is assessed. The results show that the steel mesh reinforced ECC possessing an appealing crack control ability, exhibiting multiple tiny cracks on the specimen surface. It is also found that the steel mesh reinforced ECC is able to effectively improve the mechanical properties of the conventional ferrocement. Furthermore, RCPT is carried out to evaluate ECC’s durability. It is found that this new cement-based composite material has a moderate degree of resistance to chloride ion penetration. |
參考文獻 |
1. Rokugo, K., Kanda, T. and Yokota, H., Recommendations for Design and Construction of High Performance Fiber Reinforced Cement Composites with Multiple Fine Cracks(HPFRCC). Materiasl and Structures, 2008. 82(9): p. 1197-1208.
2. Sakthivel, P. and Jagannathan, A. Ferrocement Construction Technology and its Applications – A Review. in Proceedings of the international conference on structural Engineering, Construction and Management,Srilanka. 2011.
3. Naaman, A.E., Ferrocement and Laminated Cementitious Composites. 2000, Techno Press.
4. Paramasivam, P. and Sri Ravindrarajah, R., Effect of Arrangements of Reinforcements on Mechanical Properties of Ferrocement. ACI Structral Journal, 1998. 85(1): p. 3-11.
5. Kumar, M., Bansal, P.P. and S.K.Kaushik, Effect Of Wire Mesh Orientation On Strength Of Beams Retrofitted Using Ferrocement Jackets. International Journal of Engineering, 2008. (2)((1)): p. 8-19.
6. Hossain, M.Z., Pullout Response of Ferrocement Members Embedded in Soil. ACI Materials Journal, 2008. 105(2): p. 115-124.
7. Shannag, M.J. and Mourad, S.M., Flowable High Strength Cementitious Matrices for Ferrocement Applications. Construction and Building Materials, 2012. 36: p. 933-939.
8. Kaish, A.B.M.A., Alam, M.R. and Jamil, M., Improved Ferrocement Jacketing For Restrengthening of Square RC Short Column. Construction and Building Materials, 2012. 36: p. 228-237.
9. Bennett, E.W., Fakhri, N.A. and Singh, G., Fatigue Characteristics of Ferrocement in Flexure. ACI Journal, 1985. 82(2): p. 129-135.
10. Basunbul, I.A., Gubati, A.A. and Al-Sulaimani, G.J., Repaired Reinforced Concrete Beams. ACI Materials Journal, 1990. 87(4): p. 348-354.
11. Li, Z. and Leung, C., Structural Renovation in Concrete. 2009: Taylor & Francis.
12. 王子豹, 不同電壓之加速氯離子傳輸試驗中比色法之影響. 2005, 國立臺灣海洋大學.
13. Kuo, W.Y., Huang, J.S. and Tan, T.E., Organo-Modified Reservoir Sludge as Fine Aggregates in Cement Mortars. Construction and Building Materials, 2005. 21(3): p. 09-615.
14. Kim, D., Strain Rate Effect on High Performance Fiber Reinforced Cementitious Composites Using Strain Hardening High Strength Deformed Steel Fibers. 2009: University of Michigan.
15. 劉彥志, 飛灰混凝土傳輸行為之研究. 2011, 國立臺灣海洋大學.
16. Magalhães, M.D.S., Toledo Filho, R.D. and Rego Fairbairn, E.D.M., Influence of local raw materials on the mechanical behaviour and fracture process of PVA-SHCC. Materials Research, 2014. 17: p. 146-156.
17. Paulay, T. and Priestley, J.N., Seismic Design oF Reinforced Concrete and Masonry Building. 1992: Wiley. |