Formation of twin-density gradient induced by 9R structure transformation and boundary migration to improve performance in GH4586 superalloy

IF 5.5 2区 材料科学 Q1 MATERIALS SCIENCE, CHARACTERIZATION & TESTING Materials Characterization Pub Date : 2025-03-01 Epub Date: 2025-01-30 DOI:10.1016/j.matchar.2025.114796
Ke Chen, Jiao Luo
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Abstract

In this work, the evolution mechanisms of microstructure subjected to deformation and heat treatment were thoroughly investigated using scanning electron microscope (SEM), electron backscatter diffraction (EBSD) and transmission electron microscope (TEM) observations. During deformation, γ matrix transformed into 9R structure via gliding of a/6[112¯] partial and then transformed into twin structure via gliding of a/6[112¯] and a/6[12¯1] partials. Besides, fast grain boundary migration rate was beneficial for the development of twin boundaries (TBs). However, severe interaction between pre-existed TBs and dislocations dominated by activation of (12¯1)[011] slip system would cause deviation of rotation angle and shift of rotation axis, leading to decreasing TBs density. During heat treatment, stored-energy-driven boundary migration was weakened due to consumption of stored energy, and curvature-driven boundary migration became dominated at different regions, reducing the positive effects of boundary migration on TBs development. Based on the above analysis, a novel design of microstructure with gradient TBs density by controlling-strain deformation and gradient-temperature heat treatment was proposed. Due to gradient strain, TBs density increased from the low-strain (LS) region to the high-strain (HS) region induced by 9R structure transformation and boundary migration. Due to gradient temperature, TBs density decreased obviously in the low-strain and high-temperature (LS-HT) region under the effect of grains annexation, while it only decreased slightly in the high-strain and low-temperature (HS-LT) region due to the poorer grain boundary mobility. Then, tensile strength and fracture toughness tests were carried out to evaluate the performance of gradient microstructure. The results showed that the as-prepared microstructure improved tensile strength by 13.6% from the intermediate transition (IT) region to the HS-LT region and fracture toughness by 11.7% from the IT region to the LS-HT region. Finally, the influence of as-prepared gradient microstructure on mechanical properties was thoroughly discussed.
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在GH4586高温合金中,9R组织转变和边界迁移导致双密度梯度的形成,提高了合金的性能
利用扫描电子显微镜(SEM)、电子背散射衍射(EBSD)和透射电子显微镜(TEM)观察了变形和热处理后微观组织的演变机制。在变形过程中,γ矩阵通过a/6[112¯]的偏滑转变为9R结构,再通过a/6[112¯]和a/6[12¯1]的偏滑转变为孪晶结构。此外,快速的晶界迁移速率有利于孪晶界的形成。然而,以(12¯1)[011]滑移系统激活为主的先前存在的TBs与位错之间的严重相互作用会引起旋转角度的偏差和旋转轴的移位,导致TBs密度降低。在热处理过程中,由于存储能量的消耗,存储能量驱动的边界迁移减弱,曲率驱动的边界迁移在不同区域成为主导,降低了边界迁移对结核发展的积极作用。在此基础上,提出了一种采用控制应变变形和梯度温度热处理的梯度TBs密度组织设计方法。由于梯度应变的作用,TBs密度由低应变区(LS)向9R结构转变和边界迁移引起的高应变区(HS)增加。由于温度梯度的影响,在低应变高温区(LS-HT)由于晶粒的吞并作用,TBs密度明显下降,而在高应变低温区(HS-LT)由于晶界迁移率较差,TBs密度略有下降。然后,通过拉伸强度和断裂韧性测试来评价梯度组织的性能。结果表明,制备的微观组织从中间过渡区(IT)到HS-LT区的拉伸强度提高了13.6%,从IT区到LS-HT区的断裂韧性提高了11.7%。最后,深入讨论了制备的梯度组织对力学性能的影响。
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来源期刊
Materials Characterization
Materials Characterization 工程技术-材料科学:表征与测试
CiteScore
7.60
自引率
8.50%
发文量
746
审稿时长
36 days
期刊介绍: Materials Characterization features original articles and state-of-the-art reviews on theoretical and practical aspects of the structure and behaviour of materials. The Journal focuses on all characterization techniques, including all forms of microscopy (light, electron, acoustic, etc.,) and analysis (especially microanalysis and surface analytical techniques). Developments in both this wide range of techniques and their application to the quantification of the microstructure of materials are essential facets of the Journal. The Journal provides the Materials Scientist/Engineer with up-to-date information on many types of materials with an underlying theme of explaining the behavior of materials using novel approaches. Materials covered by the journal include: Metals & Alloys Ceramics Nanomaterials Biomedical materials Optical materials Composites Natural Materials.
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