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Effect of manufacturing process on microstructures and mechanical properties, and design of cold-formed G450 steel channels

机译:制造过程对微结构和机械性能的影响,以及冷形成G450钢通道的设计

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摘要

Cold-formed steel members are manufactured from cold-reduced steel coils by either press-braking or cold forming. During manufacturing processes at ambient temperature, two stages, namely cold-reducing and cold-forming, create significantly large deformation on the cross-sections. While the first stage involves cold reducing hot-rolled steel coils to thinner desired thicknesses resulting in higher yield strength and less ductility, the second stage including rolling and bending processes causes strain hardening of the material, which affects the local mechanical properties especially at the bending corners of the cross-sections. This paper presents an experimental study on the effect of the latter manufacturing process on the microstructure of flat and corner regions of C-shaped cold-formed high strength G450 steel channel sections with different sizes and thicknesses. Optical microscopy, scanning electron microscopy (SEM) and electron backscatter diffraction (EBSD) were used for microstructure analyses. Tensile coupon and Vikers hardness tests were performed for mechanical properties of cold-formed steel material including yield strength, ultimate strength and Vickers hardness at both flat and corner regions. Understanding the relationship between the changes in the microstructure of the high strength G450 steel material provides insights into the mechanical and structural behaviour of cold-formed channel members. In addition, the experimental yield strengths at corner regions are compared with those from the AISI S100-16 and AS/NZS 4600:2018 design specification/standard, showing conservative predictions of the design codes over the measured corner yield strengths, and especially providing inconsistent predictions in thin sections. Hence, a new suggested modification of design equations in the current specification/standard is proposed in this paper to better predict the yield strengths at corner regions of high strength G450 steel cold-formed channels.
机译:冷成形钢构件通过压制制动或冷成型制成冷钢卷材。在环境温度下的制造过程中,两个阶段,即冷还原和冷成型,在横截面上产生显着大的变形。虽然第一阶段涉及冷还原热轧钢圈,以薄的所需厚度导致较高的屈服强度和延展性较低,包括轧制和弯曲过程的第二阶段导致材料的应变硬化,这会影响局部机械性能,特别是在弯曲处影响局部机械性能横截面的角落。本文介绍了后一种制造工艺对具有不同尺寸和厚度的C形冷成型高强度G450钢通道部分的平板和角区域微观结构的实验研究。光学显微镜,扫描电子显微镜(SEM)和电子反向散射衍射(EBSD)用于微观结构分析。对冷成型钢材的机械性能进行了拉伸优惠券和Vikers硬度测试,包括平板和角区域的屈服强度,极限强度和维氏硬度。了解高强度G450钢材的微观结构之间的关系之间的关系,提供了冷形成通道构件的机械和结构行为的见解。此外,与AISI S100-16和AS / NZS 4600:2018设计规范/标准的实验屈服强度与AISI S100-16和AS / NZS的实验强度进行了比较,显示了在测量的角屈服度优势上的设计代码的保守预测,特别是提供不一致薄剖面上的预测。因此,在本文中提出了新的规范/标准中的设计方程的新建议修改,以更好地预测高强度G450钢冷形成通道的角部的屈服强度。

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