Mechanical performance of additively manufactured meta-biomaterials

被引:282
|
作者
Zadpoor, Amir A. [1 ]
机构
[1] Delft Univ Technol TU Delft, Addit Mfg Lab, Dept Biomech Engn, Mekelweg 2, NL-2628 CD Delft, Netherlands
关键词
Mechanical properties; Fatigue resistance; Lattice and cellular structures; Additively manufactured; COMPRESSION FATIGUE BEHAVIOR; LASER-MELTED TI-6AL-4V; POROUS SCAFFOLD DESIGN; HEAT-TREATMENT; CRACK-PROPAGATION; CELLULAR STRUCTURES; BONE REGENERATION; DEFORMATION-BEHAVIOR; BIOLOGICAL BEHAVIOR; TISSUE REGENERATION;
D O I
10.1016/j.actbio.2018.12.038
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Additive manufacturing (AM) (=3D printing) and rational design techniques have enabled development of meta-biomaterials with unprecedented combinations of mechanical, mass transport, and biological properties. Such meta-biomaterials are usually topologically ordered and are designed by repeating a number of regular unit cells in different directions to create a lattice structure. Establishing accurate topology-property relationships is of critical importance for these materials. In this paper, we specifically focus on AM metallic meta-biomaterials aimed for application as bone substitutes and orthopaedic implants and review the currently available evidence regarding their mechanical performance under quasi-static and cyclic loading conditions. The topology-property relationships are reviewed for regular beam-based lattice structures, sheet-based lattice structures including those based on triply periodic minimal surface, and graded designs. The predictive models used for establishing the topology property relationships including analytical and computational models are covered as well. Moreover, we present an overview of the effects of the AM processes, material type, tissue regeneration, biodegradation, surface bio-functionalization, post-manufacturing (heat) treatments, and loading profiles on the quasi-static mechanical properties and fatigue behavior of AM meta-biomaterials. AM meta-biomaterials exhibiting unusual mechanical properties such as negative Poisson's ratios (auxetic meta-biomaterials), shape memory behavior, and superelasitcity as well as the potential applications of such unusual behaviors (e.g. deployable implants) are presented too. The paper concludes with some suggestions for future research. Statement of Significance Additive manufacturing enables fabrication of meta-biomaterials with rare combinations of topological, mechanical, and mass transport properties. Given that the micro-scale topological design determines the macro-scale properties of meta-biomaterials, establishing topology-property relationships is the central research question when rationally designing meta-biomaterials. The interest in understanding the relationship between the topological design and material type on the one hand and the mechanical properties and fatigue behavior of meta-biomaterials on the other hand is currently booming. This paper presents and critically evaluates the most important trends and findings in this area with a special focus on the metallic biomaterials used for skeletal applications to enable researchers better understand the current state-of-the-art and to guide the design of future research projects. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:41 / 59
页数:19
相关论文
共 50 条
  • [41] The effect of lattice topology on the thermal and mechanical performance of additively manufactured polymer lattices
    Alqahtani, Saad
    Alqahtani, Turki
    Ali, Hafiz Muhammad
    Farukh, Farukh
    Kandan, Karthikeyan
    RESULTS IN ENGINEERING, 2024, 21
  • [42] Automated Folding of Origami Lattices: From Nanopatterned Sheets to Stiff Meta-Biomaterials
    van Manen, Teunis
    Ganjian, Mahya
    Modaresifar, Khashayar
    Fratila-Apachitei, Lidy E. E.
    Zadpoor, Amir A. A.
    SMALL, 2023, 19 (03)
  • [43] Mechanical Performance of Additively Manufactured Fiber-Reinforced Functionally Graded Lattices
    Plocher, Janos
    Panesar, Ajit
    JOM, 2020, 72 (03) : 1292 - 1298
  • [44] Modelling and characterization of a porosity graded lattice structure for additively manufactured biomaterials
    Dumas, Mathieu
    Terriault, Patrick
    Brailovski, Vladimir
    MATERIALS & DESIGN, 2017, 121 : 383 - 392
  • [45] Computational prediction of the fatigue behavior of additively manufactured porous metallic biomaterials
    Hedayati, R.
    Hosseini-Toudeshky, H.
    Sadighi, M.
    Mohammadi-Aghdam, M.
    Zadpoor, A. A.
    INTERNATIONAL JOURNAL OF FATIGUE, 2016, 84 : 67 - 79
  • [46] Multiscale modeling of fatigue crack propagation in additively manufactured porous biomaterials
    Hedayati, R.
    Hosseini-Toudeshky, H.
    Sadighi, M.
    Mohammadi-Aghdam, M.
    Zadpoor, A. A.
    INTERNATIONAL JOURNAL OF FATIGUE, 2018, 113 : 416 - 427
  • [47] Influence of toolpath strategies during laser polishing on additively manufactured biomaterials
    Rajput, Atul Singh
    Babu, Phul
    Das, Manas
    Kapil, Sajan
    SURFACE ENGINEERING, 2024, 40 (9-10) : 967 - 982
  • [48] Structural and Biomedical Properties of Common Additively Manufactured Biomaterials: A Concise Review
    Odegaard, Kristin S.
    Torgersen, Jan
    Elverum, Christer W.
    METALS, 2020, 10 (12) : 1 - 23
  • [49] Additively Manufactured Hierarchical Auxetic Mechanical Metamaterials
    Mazur, Ekaterina
    Shishkovsky, Igor
    MATERIALS, 2022, 15 (16)
  • [50] Mechanical characterization of additively manufactured photopolymerized polymers
    Brighenti, Roberto
    Marsavina, Liviu
    Marghitas, Mihai P.
    Cosma, Mattia P.
    Montanari, Matteo
    MECHANICS OF ADVANCED MATERIALS AND STRUCTURES, 2023, 30 (09) : 1853 - 1864