首页> 外文期刊>ACS applied materials & interfaces >Influence of Compositionally Graded Interface on Microstructure and Compressive Deformation of 316L Stainless Steel to Al12Si Aluminum Alloy Bimetallic Structures
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Influence of Compositionally Graded Interface on Microstructure and Compressive Deformation of 316L Stainless Steel to Al12Si Aluminum Alloy Bimetallic Structures

机译:合成梯度界面对316L不锈钢组成微观结构和压缩变形的影响 - AL12SI铝合金双金属结构

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Bimetallic structures offer properties that can be customized based on applications, manufactured in one operation. Such manufacturing options are fascinating, as joining two metallic materials, especially for two dissimilar metals without significant defects, is challenging. In this study, 316L stainless steel (SS) to Al12Si aluminum alloy structures were processed, tailoring the compositionally graded interface on a SS 316 substrate using a directed energy deposition (DED)-based additive manufacturing (AM) process. Applying such a compositionally graded transition for joining two dissimilar metals could mitigate the mismatch of mechanical and thermal properties. This study’s objective was to understand the processing parameters that influence the properties of AM processed SS 316L to Al12Si bimetallic structures. Two different approaches were used to fabricate these bimetallic structures. The results showed no visible defects on the as-fabricated samples using four layers of Al-rich mixed composition as the transition section. The microstructural characterization showed a unique morphology in each section. The microstructural variation was caused due to various processing parameters such as laser power, powder feed rate, and laser scan speed. FeAl, Fe_(2)Al_(5), and FeAl_(3) intermetallic phases were formed at the compositionally graded transition section. After stress relief heat treatment of the bimetallic samples, diffused intermetallic phases were seen at the compositionally graded transition. At the interface, as processed bimetallic structures had a microhardness value of 834.2 ± 107.1 HV_(0.1), which was a result of the FeAl_(3) phase at the compositionally graded transition area. After heat treatment, the microhardness value reduced to 578.7 ± 154.1 HV_(0.1) because of a more Fe-dominated Fe_(x )Al_(y ) phase formation. Compression test results showed that the non-HT and HT SS 316L/Al12Si bimetallic structures had a similar maximum compressive strength of 299.4 ± 22.1 MPa and 270.1 ± 27.1 MPa, respectively. These results demonstrated that the applied heat treatment conditions only had a minor impact on samples’ compression strength.
机译:双金属结构提供的性能可根据应用定制,一次制造。这样的制造选择很吸引人,因为连接两种金属材料,尤其是两种没有明显缺陷的异种金属,是一项挑战。在本研究中,对316L不锈钢(SS)到Al12Si铝合金结构进行了加工,使用基于定向能量沉积(DED)的添加剂制造(AM)工艺在316不锈钢基板上裁剪成分梯度界面。将这种成分梯度转变用于连接两种不同的金属可以缓解机械和热性能的失配。本研究的目的是了解影响AM处理SS316L至Al12Si双金属结构性能的工艺参数。两种不同的方法被用来制造这些双金属结构。结果表明,使用四层富铝混合成分作为过渡段,制备的样品上没有可见缺陷。微观结构表征表明,每个截面都有独特的形态。显微结构的变化是由激光功率、送粉速度和激光扫描速度等工艺参数引起的。FeAl、Fe_2)Al_5和FeAl_3金属间化合物相形成于成分梯度过渡段。对双金属样品进行应力消除热处理后,在成分梯度转变处可以看到扩散的金属间相。在界面处,加工态双金属结构的显微硬度值为834.2±107.1 HV_3(0.1),这是成分梯度过渡区FeAl_3相的结果。热处理后,显微硬度值降低至578.7±154.1 HV_u0.1,因为形成了更多以Fe为主的Fe(x)Al_0(y)相。压缩试验结果表明,非HT和HT SS 316L/Al12Si双金属结构的最大压缩强度分别为299.4±22.1MPa和270.1±27.1MPa。这些结果表明,应用的热处理条件对样品的抗压强度影响较小。

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