Architected cellular materials: A review on their mechanical properties towards fatigue-tolerant design and fabrication

IF 31.6 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Science and Engineering: R: Reports Pub Date : 2021-04-01 DOI:10.1016/j.mser.2021.100606
M. Benedetti , A. du Plessis , R.O. Ritchie , M. Dallago , N. Razavi , F. Berto
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引用次数: 254

Abstract

Additive manufacturing of industrially-relevant high-performance parts and products is today a reality, especially for metal additive manufacturing technologies. The design complexity that is now possible makes it particularly useful to improve product performance in a variety of applications. Metal additive manufacturing is especially well matured and is being used for production of end-use mission-critical parts. The next level of this development includes the use of intentionally designed porous metals - architected cellular or lattice structures. Cellular structures can be designed or tailored for specific mechanical or other performance characteristics and have numerous advantages due to their large surface area, low mass, regular repeated structure and open interconnected pore spaces. This is considered particularly useful for medical implants and for lightweight automotive and aerospace components, which are the main industry drivers at present. Architected cellular structures behave similar to open cell foams, which have found many other industrial applications to date, such as sandwich panels for impact absorption, radiators for thermal management, filters or catalyst materials, sound insulation, amongst others. The advantage of additively manufactured cellular structures is the precise control of the micro-architecture which becomes possible. The huge potential of these porous architected cellular materials manufactured by additive manufacturing is currently limited by concerns over their structural integrity. This is a valid concern, when considering the complexity of the manufacturing process, and the only recent maturation of metal additive manufacturing technologies. Many potential manufacturing errors can occur, which have so far resulted in a widely disparate set of results in the literature for these types of structures, with especially poor fatigue properties often found. These have improved over the years, matching the maturation and improvement of the metal additive manufacturing processes. As the causes of errors and effects of these on mechanical properties are now better understood, many of the underlying issues can be removed or mitigated. This makes additively manufactured cellular structures a highly valid option for disruptive new and improved industrial products. This review paper discusses the progress to date in the improvement of the fatigue performance of cellular structures manufactured by additive manufacturing, especially metal-based, providing insights and a glimpse to the future for fatigue-tolerant additively manufactured architected cellular materials.

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结构蜂窝材料:面向耐疲劳设计与制造的力学性能综述
如今,与工业相关的高性能零件和产品的增材制造已经成为现实,尤其是金属增材制造技术。现在可能的设计复杂性使其在各种应用中提高产品性能特别有用。金属增材制造尤其成熟,正被用于生产最终用途的关键部件。这一发展的下一个阶段包括有意设计多孔金属结构的蜂窝或晶格结构的使用。细胞结构可以根据特定的机械或其他性能特征进行设计或定制,并且由于其大表面积,低质量,规则重复结构和开放互连的孔隙空间而具有许多优点。这被认为对医疗植入物和轻型汽车和航空航天部件特别有用,这是目前主要的行业驱动力。多孔结构的性能类似于开孔泡沫,迄今为止,开孔泡沫已经在许多其他工业应用中得到了应用,例如用于吸收冲击的夹层板、用于热管理的散热器、过滤器或催化剂材料、隔音材料等。增材制造细胞结构的优点是可以精确控制微结构。这些由增材制造制造的多孔结构蜂窝材料的巨大潜力目前受到其结构完整性的限制。考虑到制造过程的复杂性,以及最近金属增材制造技术的成熟,这是一个合理的担忧。许多潜在的制造错误可能会发生,到目前为止,这些类型的结构在文献中导致了广泛不同的结果集,特别是经常发现的疲劳性能差。随着金属增材制造工艺的成熟和改进,这些技术已经得到了改进。由于错误的原因及其对机械性能的影响现在得到了更好的理解,许多潜在的问题可以被消除或减轻。这使得增材制造的细胞结构成为颠覆性的新型和改进的工业产品的一个非常有效的选择。本文讨论了迄今为止通过增材制造(特别是金属基)制造的蜂窝结构的疲劳性能的改进进展,为耐疲劳增材制造的蜂窝结构材料的未来提供了见解和一瞥。
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来源期刊
Materials Science and Engineering: R: Reports
Materials Science and Engineering: R: Reports 工程技术-材料科学:综合
CiteScore
60.50
自引率
0.30%
发文量
19
审稿时长
34 days
期刊介绍: Materials Science & Engineering R: Reports is a journal that covers a wide range of topics in the field of materials science and engineering. It publishes both experimental and theoretical research papers, providing background information and critical assessments on various topics. The journal aims to publish high-quality and novel research papers and reviews. The subject areas covered by the journal include Materials Science (General), Electronic Materials, Optical Materials, and Magnetic Materials. In addition to regular issues, the journal also publishes special issues on key themes in the field of materials science, including Energy Materials, Materials for Health, Materials Discovery, Innovation for High Value Manufacturing, and Sustainable Materials development.
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