Investigation of the grain deformation to orthogonal cutting process of the textured Alloy 718 fabricated by laser powder bed fusion

IF 14 1区 工程技术 Q1 ENGINEERING, MANUFACTURING
Lingshan Li , Hao Chen , Zhirong Liao , Yue Yang , Dragos Axinte
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引用次数: 1

Abstract

In the laser powder bed fusion (LPBF), the grains grow in preferential directions depending on the scanning strategies, which results in layer-by-layer builds of particular crystallographic textures. The unique microstructure formed by LPBF results in anisotropic properties of the built structure at both macro and micro levels. To understand the grain deformation of the textured alloy fabricated by LPBF in the high-strain-rate shear process, Alloy 718 was used as an example in this work. Bulk samples with different metallurgical textures were deliberately fabricated by LPBF via three laser rotation angles, namely 0°, 67° and 90°, and then four thin slices obtained from bulks were subjected to “quasi-in-situ” grain deformation investigation through orthogonal cutting (a simple shear loading condition). The evolution of crystal orientations and morphologies, including size and shape, were traced before and after shear deformation. A full-field crystal plasticity simulation was used to quantify the stress status for grains obtained from EBSD data. This for the first time reveals the crystallographic level deformation history for hundreds of microns during a high strain rate shear removal deformation. Due to the carefully retained deformation history (i.e., typical bulges and slip bands) on the surface, a repeated deformation pattern was observed, attributing to the non-homogeneous deformation of typical build-directional blocks. The most active slip trace of deformed grain was calculated and verified based on the dominated slip bands within individual grains. The slip trace direction and intensity were quantified for different textured Alloy 718. Since the slipping-based deformation for an orientated grain is represented by its most active slip trace, a deformation tendency map is obtained by combining the shear direction, slip system and grain morphology. It reveals that grains in high texture intensity workpieces generally follow the macro shear-based deformation, while with the decrease in texture intensity, the plastic anisotropy is significant at the grain scale. Grains with similar orientations may also result in localised deformation anisotropy due to the different morphologies.

Abstract Image

激光粉末床熔接织构718合金正交切削过程中晶粒变形的研究
在激光粉末床聚变(LPBF)中,晶粒根据扫描策略沿优先方向生长,这导致特定晶体纹理的逐层构建。LPBF形成的独特微观结构导致所构建的结构在宏观和微观层面上具有各向异性特性。为了了解LPBF制备的织构化合金在高应变速率剪切过程中的晶粒变形,本文以718合金为例。LPBF通过0°、67°和90°三个激光旋转角度有意制备了不同冶金织构的大块样品,然后通过正交切削(简单的剪切载荷条件)对从大块中获得的四个薄片进行了“准原位”晶粒变形研究。跟踪了剪切变形前后晶体取向和形貌的演变,包括尺寸和形状。使用全场晶体塑性模拟来量化从EBSD数据中获得的晶粒的应力状态。这首次揭示了在高应变速率剪切去除变形过程中数百微米的结晶级变形历史。由于表面仔细保留了变形历史(即典型的凸起和滑移带),观察到了重复的变形模式,这归因于典型构造定向块体的不均匀变形。基于单个晶粒内的主导滑移带,计算并验证了变形晶粒最活跃的滑移轨迹。对不同织构的718合金的滑移轨迹方向和强度进行了量化。由于定向晶粒的滑移变形以其最活跃的滑移轨迹来表示,因此通过结合剪切方向、滑移系统和晶粒形态来获得变形趋势图。结果表明,高织构强度工件中的晶粒通常遵循基于宏观剪切的变形,而随着织构强度的降低,晶粒尺度上的塑性各向异性显著。由于不同的形态,具有相似取向的晶粒也可能导致局部变形各向异性。
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来源期刊
CiteScore
25.70
自引率
10.00%
发文量
66
审稿时长
18 days
期刊介绍: The International Journal of Machine Tools and Manufacture is dedicated to advancing scientific comprehension of the fundamental mechanics involved in processes and machines utilized in the manufacturing of engineering components. While the primary focus is on metals, the journal also explores applications in composites, ceramics, and other structural or functional materials. The coverage includes a diverse range of topics: - Essential mechanics of processes involving material removal, accretion, and deformation, encompassing solid, semi-solid, or particulate forms. - Significant scientific advancements in existing or new processes and machines. - In-depth characterization of workpiece materials (structure/surfaces) through advanced techniques (e.g., SEM, EDS, TEM, EBSD, AES, Raman spectroscopy) to unveil new phenomenological aspects governing manufacturing processes. - Tool design, utilization, and comprehensive studies of failure mechanisms. - Innovative concepts of machine tools, fixtures, and tool holders supported by modeling and demonstrations relevant to manufacturing processes within the journal's scope. - Novel scientific contributions exploring interactions between the machine tool, control system, software design, and processes. - Studies elucidating specific mechanisms governing niche processes (e.g., ultra-high precision, nano/atomic level manufacturing with either mechanical or non-mechanical "tools"). - Innovative approaches, underpinned by thorough scientific analysis, addressing emerging or breakthrough processes (e.g., bio-inspired manufacturing) and/or applications (e.g., ultra-high precision optics).
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