Benchmarking advanced multiphase field modeling of Inconel 625 in additive manufacturing: Correlating powder bed fusion with dendrite growth and crack formation

IF 3 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Roya Darabi , João Pedro Oliveira , Narguess Nemati , Ana Reis , Jose Cesar de Sá
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引用次数: 0

Abstract

This study provides a comprehensive thermomechanical simulation framework and mapping for the Powder Bed Fusion (PBF) process, with a primary focus on melt pool characterization. It also correlates the cooling behavior to the dendrite growth and some induced imperfections, such as crack evolution that stem from segregation at the grain boundaries. Utilizing the Allen-Cahn phase field formulation combined with an elastoplastic material model based on J2 plasticity, simulations are conducted within the finite element structure of the Multi-physics Object-Oriented Simulation Environment (MOOSE). An adaptive mesh refinement (AMR) strategy ensures precise modeling of the solidification front and powder melting during the interaction between the laser heat source and the powder. Key insights are gained from simulations of Inconel 625 thin plates and benchmarks, exploring the effects of temperature and phase changes on melt pool dimensions. A multi-application framework is developed to automatically transfer the temperature and cooling rate behavior of a representative part to the solidification application. The research addresses critical challenges in PBF, such as liquation cracking, and introduces a novel approach for information transfer between parent and child models, particularly for dendrite growth in a surrogate Ni–Nb–Al ternary system. This transfer incorporates solidification data, including temperature gradients and cooling velocities, enabling detailed predictions of low melting phase-induced liquation cracks. Experimental validation through single-track laser melting on Inconel 625 demonstrates reasonable alignment between melt pool dimensions obtained from simulations and experiments under various laser power and scan speed conditions. Additional phase-field simulations predict microstructural segregation and cellular features along melt pool boundaries under changing solidification dynamics, further enriched by the first phase-field model at the melt pool scale. By integrating computational modeling, experimental validation, and multiscale analysis, this work advances the understanding of PBF processes and additive manufacturing, offering insights into melt pool behavior, defect mitigation, and microstructure development.

Abstract Image

在增材制造中建立先进的Inconel 625多相场模型:将粉末床熔合与枝晶生长和裂纹形成联系起来
本研究为粉末床熔融(PBF)过程提供了一个全面的热力学模拟框架和映射,主要集中在熔池表征上。它还将冷却行为与枝晶生长和一些诱导缺陷(如晶界偏析引起的裂纹演化)联系起来。利用Allen-Cahn相场公式结合基于J2塑性的弹塑性材料模型,在多物理场面向对象仿真环境(MOOSE)的有限元结构中进行了仿真。自适应网格细化(AMR)策略确保了激光热源与粉末相互作用过程中凝固前沿和粉末熔化过程的精确建模。通过对Inconel 625薄板和基准的模拟,探索温度和相变化对熔池尺寸的影响,获得了关键的见解。开发了一种多应用框架,可将典型零件的温度和冷却速率行为自动传递到凝固应用中。该研究解决了PBF中的关键挑战,例如液化裂解,并引入了一种新的方法来在父模型和子模型之间传递信息,特别是在替代Ni-Nb-Al三元体系中枝晶的生长。这种传递结合了凝固数据,包括温度梯度和冷却速度,可以详细预测低熔化相引起的液化裂纹。在不同的激光功率和扫描速度条件下,通过对Inconel 625进行单轨迹激光熔化实验验证,得到了模拟熔池尺寸与实验熔池尺寸之间的合理匹配。另外的相场模拟预测了凝固动力学变化下熔池边界的显微组织偏析和胞状特征,并在熔池尺度上进一步丰富了第一相场模型。通过集成计算建模、实验验证和多尺度分析,这项工作促进了对PBF工艺和增材制造的理解,为熔池行为、缺陷缓解和微观结构发展提供了见解。
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来源期刊
Materialia
Materialia MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
6.40
自引率
2.90%
发文量
345
审稿时长
36 days
期刊介绍: Materialia is a multidisciplinary journal of materials science and engineering that publishes original peer-reviewed research articles. Articles in Materialia advance the understanding of the relationship between processing, structure, property, and function of materials. Materialia publishes full-length research articles, review articles, and letters (short communications). In addition to receiving direct submissions, Materialia also accepts transfers from Acta Materialia, Inc. partner journals. Materialia offers authors the choice to publish on an open access model (with author fee), or on a subscription model (with no author fee).
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