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Experimental investigation of mechanical properties of cold-drawn AISI 1018 steel at high-temperature steady-state conditions

机译:高温稳态条件下冷拉均匀1018钢力学性能实验研究

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Fire is one of the most serious problems that affect the integrity of building structures. It can cause significant degradation of the structural strength of steel over a short period prior to building collapse. This study conducted an extensive experimental program on the mechanical properties of AISI 1018 cold-drawn steel (CDS) at elevated temperatures using the steady-state method. The elastic modulus of CDS AISI 1018 underwent a reasonably rapid reduction at temperatures of 100–200°C. At higher temperatures up to 500°C, the steel exhibited slow reduction in its elastic modulus, whereas sharp reduction was observed at temperatures of 550–750°C. In contrast, slow reduction in mechanical strength was observed at temperatures of 100–200°C. At 300°C, the mechanical strength increased gradually until it achieved a peak at 500°C. This phenomenon was attributed to a dynamic strain ageing (DSA) effect that provided benefits in terms of increased mechanical strength and ductility, which were relatively higher than the mechanical strength at room temperature. Dimple fracture characteristics were observed in all samples tested at elevated temperatures. After raising the test temperature to 750°C, subsequent reduction in the area of the lamellar pearlite phase boundary led to a spheroidization process followed by increased ductility. Prescriptive model predictions based on the experimental data series were proposed and important features regarding the DSA phenomenon were highlighted regarding fire-safety design when using CDS AISI 1018 in building construction.
机译:火是影响建筑结构完整性的最严重问题之一。在建造崩溃之前,它可以在短时间内引起钢结构强度的显着降低。本研究在使用稳态法的升高温度下对AISI 1018冷钢(CDS)的机械性能进行了广泛的实验程序。 CDS AISI 1018的弹性模量在100-200℃的温度下进行合理快速减少。在高达500°C的较高温度下,钢的弹性模量表现出缓慢降低,而在550-750℃的温度下观察到急剧减少。相反,在100-200℃的温度下观察到机械强度的缓慢降低。在300℃下,机械强度逐渐增加,直到它在500℃下达到峰。这种现象归因于动态应变老化(DSA)效应,其在增加的机械强度和延展性方面提供了益处,其相对高于室温下的机械强度。在升高的温度下测试的所有样品中观察到凹陷骨折特性。在将测试温度升高至750℃后,随后在层状珠光体相边界的面积减少导致球化过程,然后增加延展性。基于实验数据系列的规定模型预测是提出的,并且关于DSA现象的重要特征在建筑施工中使用CDS AISI 1018时突出了DSA现象。

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