Journal of the Chinese Ceramic Society, Volume. 52, Issue 2, 592(2024)
Static and Dynamic Flexural Properties of Hybrid Fiber-Toughing Cementitious Composites
[1] [1] WANG Q S, YI Y, MA G W, et al. Hybrid effects of steel fibers, basalt fibers and calcium sulfate on mechanical performance of PVA-ECC containing high-volume fly ash[J]. Cem Concr Compos, 2019, 97: 357-368.
[2] [2] LIU Jiaping, TANG Jinhui, HAN Fangyu. China Civ Eng J, 2021, 54(10): 47-54.
[3] [3] LI Yan, ZHANG Wenbin, LIU Zejun. J Build Mater, 2020, 23(3): 513-520.
[4] [4] LI Y, LIU Z J, LIANG X. Eng Mech, 2013, 30(1): 322-330.
[5] [5] CAO Mingli, LI Li, LI Zhiwen, et al. Acta Mater Compos Sin, 2017, 34(11): 2614-2623.
[6] [6] ZHANG Cong, CAO Mingli. Acta Mater Compos Sin, 2014, 31(3): 661-668.
[7] [7] ZHAO Huanqi, LI Guozhong. Acta Mater Compos Sin, 2014, 31(1): 140-145.
[8] [8] WANG Zhenbo. Study on mechanical properties of cement-based composite reinforced by polyvinyl alcohol and steel fiber hybrid. Beijing: Tsinghua University, 2016.
[9] [9] LI Li, LI Zongli, GAO Danying, et al. Acta Mater Compos Sin, 2021, 38(7): 2326-2335.
[10] [10] KIM M J, YOO D Y, YOON Y S. Effects of geometry and hybrid ratio of steel and polyethylene fibers on the mechanical performance of ultra-high-performance fiber-reinforced cementitious composites[J]. J Mater Res Technol, 2019, 8(2): 1835-1848.
[11] [11] YOO D Y, KIM M J. High energy absorbent ultra-high-performance concrete with hybrid steel and polyethylene fibers[J]. Constr Build Mater, 2019, 209: 354-363.
[12] [12] ZHANG Cong, XIA Chaofan, YUAN Zhen, et al. J Build Mater, 2021, 24(1): 14-21.
[13] [13] ZHANG Cong, XIA Chaofan, YUAN Zhen, et al. Acta Mater Compos Sin, 2020, 37(7): 1754-1762.
[14] [14] ZHANG Cong, YU Zhihui, HAN Shicheng, et al. Acta Mater Compos Sin, 2020, 37(5): 1221-1226.
[15] [15] CUI K, XU L H, LI L J, et al. Mechanical performance of steel-polypropylene hybrid fiber reinforced concrete subject to uniaxial constant-amplitude cyclic compression: Fatigue behavior and unified fatigue equation[J]. Compos Struct, 2023, 311: 116795.
[16] [16] YANG K, LONG G C, TANG Z, et al. Enhancement in strength and toughness of ultra-high performance concrete (UHPC) from micron- and nano-scale[J]. J Build Eng, 2023, 69: 106308.
[17] [17] LIU Y W, ZHANG Z H, SHI C J, et al. Development of ultra-high performance geopolymer concrete (UHPGC): Influence of steel fiber on mechanical properties[J]. Cem Concr Compos, 2020, 112: 103670.
[18] [18] WU Z M, SHI C J, KHAYAT K H. Investigation of mechanical properties and shrinkage of ultra-high performance concrete: Influence of steel fiber content and shape[J]. Compos B Eng, 2019, 174: 107021.
[19] [19] LIU T J, WEI H N, ZHOU A, et al. Multiscale investigation on tensile properties of ultra-high performance concrete with silane coupling agent modified steel fibers[J]. Cem Concr Compos, 2020, 111: 103638.
[20] [20] YANG K, TANG Z, CHENG Z Q, et al. Mechanical properties of ultra-high strength cement-based materials (UHSC) incorporating metal powders and steel fibers[J]. Constr Build Mater, 2022, 318: 125926.
[21] [21] WU Z M, SHI C J, KHAYAT K H, et al. Effect of SCM and nano-particles on static and dynamic mechanical properties of UHPC[J]. Constr Build Mater, 2018, 182: 118-125.
[22] [22] LI L, XIE C P, CAO M L, et al. Synergistic effect between CaCO3 whisker and steel-PVA fiber cocktail in cement-based material at elevated temperature[J]. J Mater Civ Eng, 2022, 34(2): 04021415.
[23] [23] HUO Y L, LIU T A, LU D, et al. Dynamic tensile properties of steel fiber reinforced polyethylene fiber-engineered/strain-hardening cementitious composites (PE-ECC/SHCC) at high strain rate[J]. Cem Concr Compos, 2023, 143: 105234.
[24] [24] XIE Chaopeng, CAO Mingli, SI Wen, et al. J Basic Sci Eng, 2021, 29(4): 1032-1043.
[25] [25] YU Jing, ZHAI Tianwen, LIANG Xingwen, et al. J Build Mater, 2018, 21(3): 402-407.
[26] [26] TRAN N T, KIM D J. Synergistic response of blending fibers in ultra-high-performance concrete under high rate tensile loads[J]. Cem Concr Compos, 2017, 78: 132-145.
[27] [27] ZHONG H, CHEN M, ZHANG M Z. Effect of hybrid industrial and recycled steel fibres on static and dynamic mechanical properties of ultra-high performance concrete[J]. Constr Build Mater, 2023, 370: 130691.
[28] [28] MEHRABI P, SHARIATI M, KABIRIFAR K, et al. Effect of pumice powder and nano-clay on the strength and permeability of fiber-reinforced pervious concrete incorporating recycled concrete aggregate[J]. Constr Build Mater, 2021, 287: 122652.
[29] [29] ?ANAL ?, ?ZYURT N, HOSSEINI A. Characterization of hardened state behavior of self compacting fiber-reinforced cementitious composites (SC-FRCC's) with different beam sizes and fiber types[J]. Compos B Eng, 2016, 105: 30-45.
[30] [30] WANG Zhenbo, LI Pengfei, HAN Yudong, et al. J Chin Ceram Soc, 2022, 50(11): 2897-2908.
[31] [31] WU Z M, SHI C J, HE W, et al. Static and dynamic compressive properties of ultra-high performance concrete (UHPC) with hybrid steel fiber reinforcements[J]. Cem Concr Compos, 2017, 79: 148-157.
[32] [32] PAN Huimin, MA Yunzhao. J Build Mater, 2017, 20(6): 956-961.
[33] [33] CHI Yin, YIN Congru, XU Lihua, et al. J Chin Ceram Soc, 2021, 49(11): 2331-2345.
Get Citation
Copy Citation Text
LONG Guangcheng, LI Chengyang, ZHANG Zhansen, YANG Kai, ZHAO Hong, ZHU Deju, XIE Youjun, ZENG Xiaohui. Static and Dynamic Flexural Properties of Hybrid Fiber-Toughing Cementitious Composites[J]. Journal of the Chinese Ceramic Society, 2024, 52(2): 592
Category:
Received: Jul. 2, 2023
Accepted: --
Published Online: Aug. 5, 2024
The Author Email: Guangcheng LONG (longguangcheng@csu.edu.cn)
CSTR:32186.14.