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A hybrid steel–shape memory alloy prestressed concrete beam for improved fire resistance

机译:一种混合钢形记忆合金预应力混凝土梁,可提高耐火性

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Prestressed concrete beams are widely used in structures and infrastructures for their superior control effects on cross-sectional area, cracking, and deformation. However, the fire resistance of ordinary prestressed beams is unsatisfactory due to the serious material degradation of concrete and steel, as well as the prestress loss at elevated temperatures. To achieve an acceptable fire resistance for prestressed concrete beams, the introduction of shape memory alloy (SMA) is proposed via the hybrid usage of prestressed steel and SMA bars. When the hybrid steel-SMA prestressed beam is exposed to fire, both the strength and modulus of elasticity of prestressed SMA bars will increase, which can compensate for the material degradation of prestressed steel bars. In addition, a desirable recovery stress can be generated in SMA bars at elevated temperatures and further compensate for the prestress loss of prestressed steel bars. To study the fire resistance of the proposed beam, the fitting formulae of material properties of concrete, steel, and SMA at elevated temperatures are given firstly. Then, the analytical model and working mechanism of the hybrid beam are also presented. Further, the methodology for the prediction of fire resistance, and the formulae for the calculation of beam's flexural bearing capacity and deflection, are also presented. A parametric study is further conducted to investigate the relationships between fire resistance and the area and location of prestressed SMA bars. Moreover, an optimal analysis is also established to obtain the most economical material cost of SMA bars. As a result, the proposed prestressed beam can achieve a better fire resistance in terms of both flexural bearing capacity and deflection control.
机译:预应力的混凝土梁广泛用于结构和基础设施,用于对横截面积,开裂和变形的卓越控制效果。然而,由于混凝土和钢的严重物质降解,普通预应力梁的耐火性是不令人满意的,以及高温下的预应力损失。为了实现预应力混凝土梁的可接受的耐火性,通过预应力钢和SMA条的混合使用提出了形状记忆合金(SMA)的引入。当混合钢SMA预应力梁暴露于火灾时,预应力SMA条的强度和弹性模量都会增加,这可以增加预应力钢筋的材料劣化。另外,可以在升高的温度下的SMA条中产生所需的恢复应力,并进一步补偿预应力钢筋的预应力损失。为研究所提出的梁的耐火性,首先给出了升高的温度下混凝土,钢和SMA的材料特性的配合公式。然后,还提出了混合梁的分析模型和工作机制。此外,还提出了预测耐火性的方法,以及用于计算梁弯曲承载力和偏转的公式。进一步进行参数研究以研究耐火性与预应力SMA条的面积与地点之间的关系。此外,还建立了最佳分析以获得SMA棒的最经济的材料成本。结果,所提出的预应力光束可以在弯曲承载力和偏转控制方面实现更好的耐火性。

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