电流强度对钢-铝电辅助压力焊接头微观结构及力学性能的影响
Effects of Electric Current Intensity on Microstructure and Mechanical Properties of Steel-Aluminum Electric Assisted Pressure Welding Joints
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摘要: 采用电辅助压力焊接技术,对45钢与6061-T6铝合金之间同步施加轴向压力与脉冲电流,对待焊接接头局部区域提供机械塑性变形和快速焦耳加热,实现了焊接接头的高效、可控焊接。探究了焊接电流强度对焊接接头微观组织演变及力学性能的影响,通过微观分析、力学测试并结合ABAQUS热-电-力多场耦合仿真,分析了焊接工艺-微观组织-力学性能之间的关系。结果表明,焊接电流强度的增加显著加速了钢/铝界面元素的扩散速率,促进了界面金属化合物层的形成与演化。当电流为1.85 kA时,焊接接头界面主要由Fe3Al、FeAl和Fe2Al5等金属间化合物组成;而当电流提升至1.95 kA时,界面金属间化合物类型转变为Fe3Al、FeAl2和FeAl3。焊接接头的断裂载荷随焊接电流强度的增加而先增后减。当电流为1.90 kA时,焊接接头获得峰值断裂载荷2.7 kN。然而,过高的电流会导致6061-T6铝合金强化相的溶解,降低母材强度,最终在拉伸过程中从铝合金母材处断裂,断裂抗拉强度约为289 MPa。Abstract: Using electric assisted pressure welding technology, axial pressure and pulse current are simultaneously applied between 45 steel and 6061-T6 aluminum alloy, providing mechanical plastic deformation and rapid Joule heating to the local area of the welding joint, achieving efficient and controllable welding of the welded joint. The effect of welding current intensity on the microstructural transformation and mechanical properties of the welded joints was studied. The relationship between welding process, microstructure, and mechanical properties was analyzed through microscopic analysis, mechanical testing, and combined with ABAQUS thermal-electric-mechanical multi-field coupling simulation. The findings reveal that increasing welding current intensity markedly accelerates interdiffusion rates at the steel-aluminum interface, fostering the formation and evolution of interfacial metallic compound layers. At a current level of 1.85 kA, the welded interface primarily comprises Fe3Al, FeAl, and Fe2Al5 intermetallics. However, when elevating the current to 1.95 kA, the type of interfacial compounds has transformed into Fe3Al, FeAl2 and FeAl3. The fracture load of the welded joint first increases and then decreases with the increase of welding current intensity. Under the current of 1.90 kA, the welded joint exhibits a maximum peak fracture load of 2.7 kN. However, excessive high current intensity promotes the dissolution of strengthening phases in the 6061-T6 aluminum alloy, diminishing the base metal's strength and ultimately resulting in ductile fracture of the Al alloy base metal during tensile test, with a fracture tensile strength of roughly 289 MPa.
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