镍钛结构超材料的快速成型制造

IF 4.2 Q2 ENGINEERING, MANUFACTURING
C.A. Biffi , C. Soyarslan , J. Fiocchi , C. Bregoli , A. du Plessis , A. Tuissi , M. Mehrpouya
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引用次数: 0

摘要

快速成型制造技术彻底改变了复杂和固有结构的制造,为各种应用提供了量身定制的设计,从而提高了产品性能。建筑蜂窝或晶格结构就是这种创新的典型代表,可根据特定的机械或功能要求进行定制,具有质量小、承重能力强和能量吸收能力强等优点。然而,由于局部屈服损伤或塑性屈曲导致的塑性变形,它们的一次性使用受到了限制。掺入镍钛形状记忆合金(SMA)是一种解决方案,可使结构在卸载后恢复原有形状。本研究通过激光粉末床熔融(LPBF)技术,设计并制造了一种镍钛拱形结构,该结构具有辅助行为和负泊松比。样品在室温下具有可恢复的变形应变,表现出良好的超弹性性能。综合表征过程评估了所制造的转移结构的功能性能。新结构的几何形状主要沿着壁厚促进了微结构的形成。在三个施加力水平下进行的循环压缩测试表明,循环行为稳定,可逆变形应变高达 3.8%,没有塑性屈曲或屈服损伤。此外,镍钛偏析结构还显示出强大的能量吸收能力和阻尼特性,突出了其在航空航天、汽车、建筑等各行业中作为可重复使用的能量耗散器的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Additive manufacturing of NiTi architected metamaterials

Additive manufacturing of NiTi architected metamaterials

Additive manufacturing has revolutionized the creation of complex and intrinsic structures, offering tailored designs for enhanced product performance across various applications. Architected cellular or lattice structures exemplify this innovation, customizable for specific mechanical or functional requirements, boasting advantages such as reduced mass, heightened load-bearing capabilities, and superior energy absorption. Nonetheless, their single-use limitation arises from plastic deformation resulting from localized yield damage or plastic buckling. Incorporating NiTi shape memory alloys (SMAs) presents a solution, enabling structures to recover their original shape post-unloading. In this study, an NiTi architected metastructure, featuring auxetic behavior and a negative Poisson's ratio, was designed and fabricated via laser powder bed fusion (LPBF). The samples exhibit promising superelastic performance with recoverable deformation strains at room temperature. Comprehensive characterization processes evaluated the functional performance of the fabricated metastructures. The metastructure geometry promoted microstructure formation primarily along the wall thickness. Cycling compression tests, conducted at three applied force levels, demonstrated stable cyclic behavior with up to 3.8 % reversible deformation strain, devoid of plastic buckling or yielding damage. Furthermore, the NiTi metastructures displayed robust energy absorption capacity and damping behavior, underscoring their potential for reusable energy dissipators in various industries including aerospace, automotive, construction, and etc.

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来源期刊
Additive manufacturing letters
Additive manufacturing letters Materials Science (General), Industrial and Manufacturing Engineering, Mechanics of Materials
CiteScore
3.70
自引率
0.00%
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审稿时长
37 days
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