首页> 外文期刊>Materials Science and Engineering >Microstructure by design: An approach of grain refinement and isotropy improvement in multi-layer wire-based laser metal deposition
【24h】

Microstructure by design: An approach of grain refinement and isotropy improvement in multi-layer wire-based laser metal deposition

机译:通过设计实现微观结构:多层线基激光金属沉积中晶粒细化和各向同性改善的一种方法

获取原文
获取原文并翻译 | 示例
       

摘要

The additive production of metallic components with high-throughput is usually associated with high process temperatures and slow cooling rates. This typically results in strongly oriented columnar grain growth along the building direction of the structure having exceedingly large grain sizes. As a result, such structures show typically low strength and anisotropic mechanical behaviour in as-deposited condition. Consequently, post-processing is commonly performed to homogenize and eventually increase the mechanical properties of the deposited structures. In this regard, precise control of the applied process energy allows a modification of the local temperature distribution and cooling conditions during the additive manufacturing process, which strongly influence the resulting solidification microstructure. The aim of the present study is the development of an approach that allows to influence the solidification conditions in wire-based laser metal deposition of an Al-Mg alloy through specific adjustments of the laser irradiation. It was found that significantly different solidification microstructures in as-deposited condition can be achieved by adjusting the laser beam irradiance within a range resulting in conduction mode welding conditions while keeping the heat input constant. The application of high laser beam irradiances, close to the transition to keyhole mode welding, results in structures with a homogeneous large-grained solidification microstructure exhibiting a degree of anisotropy of around 12% between building direction and the direction of deposition. In contrast, the use of low laser beam irradiance close to the lower limit of stable melting, results in structures with a significantly refined microstructure. Consequently, an increase of yield strength of up to around 20% and microhardness of up to 13%, as compared to structures processed with high laser beam irradiance, could be obtained. Moreover, the anisotropy of the as-deposited structure was reduced to a degree lower than 2%.
机译:具有高通量的金属部件的附加生产通常与较高的过程温度和较慢的冷却速率有关。这通常导致沿着具有极大晶粒尺寸的结构的构建方向的强取向圆柱状晶粒生长。结果,这种结构在沉积状态下通常表现出低强度和各向异性的机械性能。因此,通常进行后处理以均质化并最终提高沉积结构的机械性能。在这方面,对施加的过程能量的精确控制允许在增材制造过程中修改局部温度分布和冷却条件,这会严重影响所得的凝固组织。本研究的目的是开发一种方法,该方法允许通过具体调整激光辐照来影响Al-Mg合金的线基激光金属沉积中的凝固条件。已经发现,通过将激光束辐照度调节在导致传导模式焊接条件的范围内,同时保持热量输入恒定,可以在沉积条件下获得明显不同的凝固组织。高激光束辐照度的应用接近到键孔模式焊接的过渡,导致结构均匀的大晶粒凝固微观结构在构造方向和沉积方向之间表现出约12%的各向异性。相反,使用接近稳定熔化的下限的低激光束辐照度会导致组织具有明显改善的微观结构。因此,与用高激光束辐照处理的结构相比,可获得高达约20%的屈服强度提高和高达13%的显微硬度。此外,沉积态结构的各向异性减小到小于2%的程度。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号