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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Effect of cold metal transfer process parameters on microstructural evolution and mechanical properties of AISI 316L tailor welded blanks
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Effect of cold metal transfer process parameters on microstructural evolution and mechanical properties of AISI 316L tailor welded blanks

机译:冷金属转移过程参数对AISI 316L裁缝焊接坯料微结构演化和力学性能的影响

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摘要

Annealed austenitic stainless steel AISI 316L sheets of 1.6-mm and 2-mm thickness respectively was successfully joined by cold metal transfer (CMT) process at two different heat inputs of 0.125 to 0.236kJ/mm. The process parameters such as welding current and welding speed were optimized to get defect free joints with full penetration depth. The geometry of the weld bead and microstructure of AISI 316L tailor welded blanks using ER308L filler wire are evaluated. Weld metal microstructure inspection by optical microscopy (OM) revealed that higher heat input used to melt the material led to equiaxed grains in the center of weld metal (WM). Due to the lower heat input, the microstructure at the heat-affected zone (HAZ) was similar to base metal (BM). Tailor welded blank's (TWBs) were formed by designing L9 orthogonal array for 1.6mm, 2mm, and dissimilar thickness joint (1.6mm and 2mm) wherein the joints exhibited higher tensile strength and hardness as compared to base metal. The increase in tensile strength is corroborated to the increase in delta-ferrite and content of the alloying elements and the grain size in the WM. The microstructure refinement and the delta-ferrite presence contributed to the increase in hardness at the WM compared to HAZ and BM. Bend test revealed quality and soundness of the TWBs with no cracks or openings. The X-ray diffraction plots exhibited an increase in ferrite in WM and the ferrite number has been quantified at an average of 6.36 FN for TWBs and less than 0.5 FN for BM using Fischer Feritscope, which results in better mechanical properties. Fractography examinations indicated that samples failed as a result of the presence of dimples and microvoids resulting in ductile mode fracture at the welded joints.
机译:退火的奥氏体不锈钢AISI 316L片材分别通过冷金属转移(CMT)工艺成功地连接在0.125至0.236KJ / mm的两种不同的热输入。优化诸如焊接电流和焊接速度的过程参数,以获得具有完全穿透深度的缺陷接头。评价使用ER308L填充丝的AISI 316L裁缝焊接坯料的焊接珠和微观结构的几何形状。光学显微镜(OM)焊接金属微观结构检测显示,用于熔化材料的较高的热输入导致焊接金属中心(WM)中的等轴晶粒。由于较低的热输入,热影响区(HAZ)的微观结构类似于基础金属(BM)。拼焊板的(拼焊板)通过设计为1.6mm时,2毫米和不相似厚度接头(1.6毫米和2毫米)L9正交阵列,其中所述接头显示出相比于基础金属更高的抗拉强度和硬度形成。拉伸强度的增加被证实为δ-铁氧体的增加和合金元素的含量和Wm中的晶粒尺寸。与HAZ和BM相比,微观结构细化和δ-铁素体存在有助于WM的硬度增加。弯曲测试显示了TWB的质量和声音,没有裂缝或开口。 X射线衍射图表现出WM中的铁氧体的增加,并且使用费氏Feritscope平均为TWB的平均值为6.36 Fn,少于0.5 Fn,这导致更好的机械性能。 Fractography考试表明样品由于存在凹坑和微脂糖而导致焊接接头处的延性模式断裂的结果失效。

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