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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Resistance Spot Welded AZ31 Magnesium Alloys, Part II: Effects of Welding Current on Microstructure and Mechanical Properties
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Resistance Spot Welded AZ31 Magnesium Alloys, Part II: Effects of Welding Current on Microstructure and Mechanical Properties

机译:电阻点焊AZ31镁合金,第二部分:焊接电流对组织和力学性能的影响

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Resistance spot welding of AZ31 magnesium alloys from different suppliers, AZ31-SA (from supplier A) and AZ31-SB (from supplier B), was studied and compared in this article. The mechanical properties and microstructures have been studied of welds made with a range of welding currents. For both groups of welds, the tension-shear fracture load (FC) and fracture toughness (K_C) increased with the increase in welding current. The FC and K_C of AZ31-SA welds were larger than those of AZ31-SB welds. The fracture surfaces of AZ31-SB welds were relatively flatter than those of AZ31-SA. Microstructural examination via optical microscope demonstrated that almost all weld nuggets comprised two different zones, the columnar dendritic zone (CDZ), which grew epitaxially from the fusion boundary, and the equiaxed dendritic zone (EDZ), which formed in the center of the nugget. The nature and extent of the CDZ seemed to be critical to the strength and toughness of spot welds because of its position adjacent to the inherent external circular crack-like notch of spot welds and the stress concentration in this region. The width and microstructure of the CDZ were different between AZ31-SA and AZ31-SB. The AZ31-SA alloy produced finer and shorter columnar dendrites, whereas the AZ31-SB alloy produced coarser and wider columnar dendrites. The width of the CDZ close to the notch decreased with the increase of current. The CDZ disappeared when the current was higher than a critical value, which was about 24 kA for AZ31-SA and 28 kA for AZ31-SB. The microhardness of the two base materials was the same, but within the CDZ and EDZ, the hardness was greater in AZ31-SA than AZ31-SB welds. It is believed that the different microstructures of spot welds between AZ31-SA and AZ31-SB resulted in different mechanical properties; in particular, K_C increased with the welding current because of the improved columnar-to-equiaxed transition.
机译:本文研究并比较了来自不同供应商AZ31-SA(来自供应商A)和AZ31-SB(来自供应商B)的AZ31镁合金的电阻焊。已经研究了在一定焊接电流范围内进行的焊接的机械性能和微观结构。两组焊缝的拉伸剪切断裂载荷(FC)和断裂韧性(K_C)随着焊接电流的增加而增加。 AZ31-SA焊缝的FC和K_C大于AZ31-SB焊缝的FC和K_C。 AZ31-SB焊缝的断裂表面比AZ31-SA的断裂表面相对平坦。通过光学显微镜进行的显微组织检查表明,几乎所有的焊接熔核都包含两个不同的区域:从熔合边界外延生长的柱状树枝状区域(CDZ)和在熔核中心形成的等轴树枝状区域(EDZ)。 CDZ的性质和程度似乎对点焊的强度和韧性至关重要,因为CDZ的位置与点焊的固有外部圆形裂纹状缺口相邻,并且应力集中在该区域。 AZ31-SA和AZ31-SB之间CDZ的宽度和微观结构不同。 AZ31-SA合金产生更细,更短的柱状枝晶,而AZ31-SB合金产生更粗,更宽的柱状枝晶。随着电流的增加,靠近缺口的CDZ的宽度减小。当电流高于临界值时,CDZ消失,对于AZ31-SA约为24 kA,对于AZ31-SB约为28 kA。两种基材的显微硬度相同,但在CDZ和EDZ中,AZ31-SA的硬度高于AZ31-SB焊缝。可以认为,AZ31-SA和AZ31-SB之间点焊的不同显微组织导致不同的机械性能。特别地,由于改善了从柱状到相等的过渡,K_C随着焊接电流的增加而增加。

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