夹层结构元稳定β钛-35铌合金变形行为的原位显微 CT 分析

IF 4.7 1区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING
Yu-jing LIU , Zi-lin ZHANG , Jin-cheng WANG , Xiang WU , Xiao-chun LIU , Wei-ying HUANG , Lai-chang ZHANG
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引用次数: 0

摘要

为了在轻质和高强度之间取得平衡,我们使用增材制造(AM)技术设计并生产了具有各种增强层的 Beta Ti-35Nb 夹层结构复合材料。通过微型计算机断层扫描(Micro-CT)和有限元法(FEM)分析,研究了增强层对多孔复合材料压缩变形行为的影响。结果表明,在夹层结构中添加增强层可显著提高多孔金属结构的抗压屈服强度和能量吸收能力;Micro-CT 原位观测表明,未添加增强层的多孔结构应变集中在中间区域,而添加增强层的多孔结构应变分布均匀;有限元分析表明,增强层可改变应力分布,减少应力集中,从而促进多孔结构均匀变形。在有限降低孔隙率的条件下,添加增强层可使夹层结构复合材料的抗压屈服强度提高 124%,屈服强度从 4.6 兆帕提高到 10.3 兆帕。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In-situ Micro-CT analysis of deformation behavior in sandwich-structured meta-stable beta Ti−35Nb alloy

Beta Ti−35Nb sandwich-structured composites with various reinforcing layers were designed and produced using additive manufacturing (AM) to achieve a balance between light weight and high strength. The impact of reinforcing layers on the compressive deformation behavior of porous composites was investigated through micro- computed tomography (Micro-CT) and finite element method (FEM) analyses. The results indicate that the addition of reinforcement layers to sandwich structures can significantly enhance the compressive yield strength and energy absorption capacity of porous metal structures; Micro-CT in-situ observation shows that the strain of the porous structure without the reinforcing layer is concentrated in the middle region, while the strain of the porous structure with the reinforcing layer is uniformly distributed; FEM analysis reveals that the reinforcing layers can alter stress distribution and reduce stress concentration, thereby promoting uniform deformation of the porous structure. The addition of reinforcing layer increases the compressive yield strength of sandwich-structured composite materials by 124% under the condition of limited reduction of porosity, and the yield strength increases from 4.6 to 10.3 MPa.

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来源期刊
CiteScore
7.40
自引率
17.80%
发文量
8456
审稿时长
3.6 months
期刊介绍: The Transactions of Nonferrous Metals Society of China (Trans. Nonferrous Met. Soc. China), founded in 1991 and sponsored by The Nonferrous Metals Society of China, is published monthly now and mainly contains reports of original research which reflect the new progresses in the field of nonferrous metals science and technology, including mineral processing, extraction metallurgy, metallic materials and heat treatments, metal working, physical metallurgy, powder metallurgy, with the emphasis on fundamental science. It is the unique preeminent publication in English for scientists, engineers, under/post-graduates on the field of nonferrous metals industry. This journal is covered by many famous abstract/index systems and databases such as SCI Expanded, Ei Compendex Plus, INSPEC, CA, METADEX, AJ and JICST.
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