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Containment performance evaluation of prestressed concrete containment vessels with fiber reinforcement

机译:纤维增强预应力混凝土安全壳的安全性能评估

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Background Fibers in concrete resist the growth of cracks and enhance the postcracking behavior of structures. The addition of fibers into a conventional reinforced concrete can improve the structural and functional performance of safety-related concrete structures in nuclear power plants. Methods The influence of fibers on the ultimate internal pressure capacity of a prestressed concrete containment vessel (PCCV) was investigated through a comparison of the ultimate pressure capacities between conventional and fiber-reinforced PCCVs. Steel and polyamide fibers were used. The tension behaviors of conventional concrete and fiber-reinforced concrete specimens were investigated through uniaxial tension tests and their tension-stiffening models were obtained. Results For a PCCV reinforced with 1% volume hooked-end steel fiber, the ultimate pressure capacity increased by approximately 12% in comparison with that for a conventional PCCV. For a PCCV reinforced with 1.5% volume polyamide fiber, an increase of approximately 3% was estimated for the ultimate pressure capacity. Conclusion The ultimate pressure capacity can be greatly improved by introducing steel and polyamide fibers in a conventional reinforced concrete. Steel fibers are more effective at enhancing the containment performance of a PCCV than polyamide fibers. The fiber reinforcement was shown to be more effective at a high pressure loading and a low prestress level.
机译:背景技术混凝土中的纤维可抵抗裂纹的增长并增强结构的后开裂性能。在常规的钢筋混凝土中添加纤维可以改善核电厂安全相关混凝土结构的结构和功能性能。方法通过比较常规和纤维增强PCCV的极限压力容量,研究了纤维对预应力混凝土安全壳(PCCV)极限内部压力容量的影响。使用钢和聚酰胺纤维。通过单轴拉伸试验研究了常规混凝土和纤维增强混凝土试样的拉伸性能,并获得了它们的拉伸刚度模型。结果对于用1%体积的钩端钢纤维增强的PCCV,与常规PCCV相比,极限压力能力提高了约12%。对于用1.5%体积的聚酰胺纤维增强的PCCV,估计最终压力容量将增加约3%。结论通过在传统的钢筋混凝土中引入钢纤维和聚酰胺纤维可以极大地提高极限承压能力。与聚酰胺纤维相比,钢纤维在增强PCCV的密封性能方面更为有效。纤维增强材料在高压载荷和低预应力水平下显示出更有效的效果。

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