通过热处理和随后的热塑性变形来定制激光金属沉积哈氏合金的显微组织和力学性能

IF 6.7 2区 材料科学 Q1 ENGINEERING, INDUSTRIAL
Zhubin He , Jiangkai Liang , Xianggang Ruan , Xuezhi Wang , Jian Ning , Quan Gao , Enyu Guo , Wei Du
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引用次数: 0

摘要

激光金属沉积技术以其固有的快速冷却速度和高热梯度为特点,对制造大规模、复杂的薄壁哈氏合金X部件提出了重大挑战,这些部件需要精确的尺寸精度和结构完整性。为了解决这一问题,提出了一种新的复合成形工艺,其中采用激光金属沉积技术生产近网状预制体,然后通过热金属气体成形工艺调节形状和性能。本研究系统地研究了激光金属沉积制备哈氏合金X高温合金板材的热成形性能、预变形组织和性能,旨在确定优化的工艺参数,并验证该先进成形工艺的可行性。结果表明:(1)经过固溶热处理和时效热处理,激光金属沉积的哈氏合金具有明显的整体结晶组织和极小的位错密度,具有良好的显微组织完整性和热成形性。(2)根据基于动态材料模型的热加工图,在900°C ~ 1000°C、应变速率0.001 s−1范围内建立了最佳加工区域。(3) 950℃预变形有利于纳米级M23C6碳化物的均匀稳定析出和高密度位错网络的形成,强度显著提高。总的来说,通过适当的热处理和随后的热塑性变形,哈氏X高温合金的显微组织得到了优化,在室温和高温下都具有优异的机械性能。验证了采用热金属气体成形工艺成形激光金属沉积预制件的可行性,为该工艺的进一步应用奠定了基础。从这项研究中得出的方法和见解与大尺寸、复杂薄壁部件的制造特别相关,特别是在要求苛刻的航空航天应用和下一代运输系统中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tailoring the microstructure and mechanical properties of laser metal deposited Hastelloy X superalloy via heat treatment and subsequent hot plastic deformation
The laser metal deposition technology, characterized by its inherent rapid cooling rate and high thermal gradient, poses significant challenges in fabricating large-scale, complex thin-walled Hastelloy X components that necessitate precise dimensional accuracy and structural integrity. To tackle this issue, a novel compound forming process is proposed, wherein a near-net-shaped preform is produced using laser metal deposition technology, followed by shape and properties regulation through the hot metal gas forming process. This investigation systematically explores the hot formability, pre-deformed microstructure and properties of Hastelloy X superalloy sheets fabricated through laser metal deposition, aiming to identify optimized process parameters and to validate the feasibility of this advanced forming process. Results indicate that: (1) The laser metal deposited Hastelloy X superalloy, subjected to solution and aging heat treatments, demonstrates remarkable microstructural integrity and exceptional hot formability, attributed to its pronounced overall crystalline texture and minimal dislocation density. (2) The optimal processing domain was established within a temperature range of 900 °C to 1000 °C and a strain rate of 0.001 s−1, as derived from hot processing maps based on dynamic material model. (3) Pre-deformation at 950 °C facilitates uniform and stable precipitation of nanoscale M23C6 carbides and the formation of a high-density dislocation network, significantly enhancing strength. Overall, through appropriate heat treatment and subsequent hot plastic deformation, the microstructure of Hastelloy X superalloy was optimized, yielding exceptional mechanical properties at both room and elevated temperatures. The feasibility of forming laser metal deposited preforms using the hot metal gas forming process was confirmed, laying a foundation for the future application of this innovative process. The methodologies and insights derived from this research are particularly relevant to the fabrication of large-sized, complex thin-walled components, especially within demanding aerospace applications and next-generation transportation systems.
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来源期刊
Journal of Materials Processing Technology
Journal of Materials Processing Technology 工程技术-材料科学:综合
CiteScore
12.60
自引率
4.80%
发文量
403
审稿时长
29 days
期刊介绍: The Journal of Materials Processing Technology covers the processing techniques used in manufacturing components from metals and other materials. The journal aims to publish full research papers of original, significant and rigorous work and so to contribute to increased production efficiency and improved component performance. Areas of interest to the journal include: • Casting, forming and machining • Additive processing and joining technologies • The evolution of material properties under the specific conditions met in manufacturing processes • Surface engineering when it relates specifically to a manufacturing process • Design and behavior of equipment and tools.
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