Bond performance of NSM FRP bars in concrete with an innovative additional ribs anchorage system: An experimental study

2019 ◽  
Vol 207 ◽  
pp. 572-584 ◽  
Author(s):  
Qiang Wang ◽  
Hong Zhu ◽  
Ting Li ◽  
Gang Wu ◽  
Xiuxiu Hu
2018 ◽  
Vol 185 ◽  
pp. 545-554 ◽  
Author(s):  
Ting Li ◽  
Hong Zhu ◽  
Qiang Wang ◽  
Jian Li ◽  
Tiange Wu

2022 ◽  
pp. 136943322110651
Author(s):  
Ruiming Cao ◽  
Bai Zhang ◽  
Luming Wang ◽  
Jianming Ding ◽  
Xianhua Chen

Alkali-activated materials (AAMs) are considered an eco-friendly alternative to ordinary Portland cement (OPC) for mitigating greenhouse-gas emissions and enabling efficient waste recycling. In this paper, an innovative seawater sea-sand concrete (SWSSC), that is, seawater sea-sand alkali-activated concrete (SWSSAAC), was developed using AAMs instead of OPC to explore the application of marine resources and to improve the durability of conventional SWSSC structures. Then, three types of fiber-reinforced polymer (FRP) bars, that is, basalt-FRP, glass-FRP, and carbon-FRP bars, were selected to investigate their bond behavior with SWSSAAC at different alkaline dosages (3%, 4%, and 6% Na2O contents). The experimental results manifested that the utilization of the alkali-activated binders can increase the splitting tensile strength ( ft) of the concrete due to the denser microstructures of AAMs than OPC pastes. This improved characteristic was helpful in enhancing the bond performance of FRP bars, especially the slope of bond-slip curves in the ascending section (i.e., bond stiffness). Approximately three times enhancement in terms of the initial bond rigidity was achieved with SWSSAAC compared to SWSSC at the same concrete strength. Furthermore, compared with the BFRP and GFRP bars, the specimens reinforced with the CFRP bars experienced higher bond strength and bond rigidity due to their relatively high tensile strength and elastic modulus. Additionally, significant improvements in initial bond stiffness and bond strength were also observed as the alkaline contents (i.e., concrete strength) of the SWSSAAC were aggrandized, demonstrating the integration of the FRP bars and SWSSAAC is achievable, which contributes to an innovative channel for the development of SWSSC pavements or structures.


2019 ◽  
Vol 208 ◽  
pp. 454-465 ◽  
Author(s):  
Wenjie Ge ◽  
Ashraf F. Ashour ◽  
Dafu Cao ◽  
Weigang Lu ◽  
Peiqi Gao ◽  
...  

2019 ◽  
Vol 197 ◽  
pp. 109443 ◽  
Author(s):  
Zeyang Sun ◽  
Linchen Fu ◽  
De-Cheng Feng ◽  
Apete R. Vatuloka ◽  
Yang Wei ◽  
...  

2010 ◽  
Vol 22 (4) ◽  
pp. 527-534 ◽  
Author(s):  
Sang-Woo Kim ◽  
Do-Jin Kim ◽  
Hye-Sun Yoon ◽  
Sung-Cheol Baek ◽  
Kil-Hee Kim

2021 ◽  
Vol 2021 ◽  
pp. 1-19
Author(s):  
Junchao Shen

With the advantages of large anchoring force and fast anchoring speed, resin cartridge has become the main anchoring means of geotechnical engineering and underground space engineering support. Based on the theoretical analysis, it is clear that adding aggregate can improve the mechanical properties of grout and the bolt-grout interface stress state; the mechanical properties of aggregate are positively correlated with its improvement effect on anchorage performance. By using the numerical simulation method, it is concluded that the addition of steel segments into the resin grout can improve the stiffness of the anchorage system and enhance the energy absorption and antifailure ability of the anchorage system. Relying on the self-developed anchorage mixing device, the effects of steel segment diameter and addition amount on the anchoring force were studied experimentally, and the optimal addition amount of different types of steel segment to improve the maximum anchoring force was determined.


2021 ◽  
Vol 28 (9) ◽  
pp. 2843-2856
Author(s):  
Wu-chao Wang ◽  
Shao-rui Sun ◽  
Ji-hong Wei ◽  
Yong-xiang Yu ◽  
Wei He ◽  
...  

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