通过激光粉末床熔融技术制造的 Ti6Al4V 蜂窝晶格材料的压缩疲劳行为特征和声发射分析

IF 3.1 2区 材料科学 Q2 ENGINEERING, MECHANICAL
Sunil Raghavendra, Francesca Russo, Raffaele De Biasi, Emiliano Rustighi, Gianluca Zappini, Filippo Berto, Matteo Benedetti
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引用次数: 0

摘要

本研究调查了相对密度为 25% 的 Ti6Al4V 蜂窝晶格材料 (CLM) 的机械性能和疲劳性能,该材料具有五种不同的单元格类型(BCC-Z、BCC、八面体、截顶立方体 [TCO] 和小梁)。压缩试验用于评估静态特性,包括杨氏模量和屈服强度。随后,进行了压缩-压缩疲劳试验(R = 0.1),以评估疲劳行为。在静态和疲劳测试中采用了声发射分析,以探索失效预测的潜力。结果显示,BCC-Z 和 TCO 的杨氏模量略高,超过了 20 GPa,而 BCC、Octet 和 Trabecular 的模量在 6 到 12 GPa 之间。在归一化疲劳行为方面,BCC-Z 表现出更高的抗疲劳性,其次是 TCO。值得注意的是,声发射参数与单胞类型密切相关。最后,我们还观察到了失效开始与声发射参数变化之间的密切关系,从而在静态和疲劳曲线与声发射结果之间建立了有意义的联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of compressive fatigue behavior and acoustic emission analysis of Ti6Al4V cellular lattice materials fabricated by laser powder bed fusion

This study investigates the mechanical properties and fatigue performance of Ti6Al4V cellular lattice materials (CLMs) featuring five distinct unit cell types (BCC-Z, BCC, Octet, Truncated cuboctahedron [TCO], and Trabecular) at a relative density of 25%. Compression tests were conducted to assess static properties, including Young's modulus and yield strength. Subsequently, compression–compression fatigue tests (R = 0.1) were performed to evaluate fatigue behavior. Acoustic emission analysis was employed during static and fatigue tests to explore the potential for failure prediction. Results reveal that BCC-Z and TCO exhibit slightly higher Young's moduli, surpassing 20 GPa, while BCC, Octet, and Trabecular display moduli ranging from 6 to 12 GPa. Regarding normalized fatigue behavior, BCC-Z demonstrates superior fatigue resistance, followed by TCO. Notably, the acoustic emission parameters significantly correlate with the unit cell type. Lastly, a strong relationship between the initiation of failure and changes in acoustic emission parameters is observed, establishing a meaningful link between the static and fatigue curves and acoustic emission results.

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来源期刊
CiteScore
6.30
自引率
18.90%
发文量
256
审稿时长
4 months
期刊介绍: Fatigue & Fracture of Engineering Materials & Structures (FFEMS) encompasses the broad topic of structural integrity which is founded on the mechanics of fatigue and fracture, and is concerned with the reliability and effectiveness of various materials and structural components of any scale or geometry. The editors publish original contributions that will stimulate the intellectual innovation that generates elegant, effective and economic engineering designs. The journal is interdisciplinary and includes papers from scientists and engineers in the fields of materials science, mechanics, physics, chemistry, etc.
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