Titanium Lattice Structures Produced via Additive Manufacturing for a Bone Scaffold: A Review

被引:48
作者
Distefano, Fabio [1 ]
Pasta, Salvatore [2 ,3 ]
Epasto, Gabriella [1 ]
机构
[1] Univ Messina, Dept Engn, I-98166 Messina, Italy
[2] Univ Palermo, Dept Engn, Viale Sci, I-90128 Palermo, Italy
[3] Dept Res, IRCCS ISMETT, Via Tricomi 5, I-90127 Palermo, Italy
关键词
lattice structures; titanium alloy; bone tissue engineering; scaffolds; additive manufacturing; mechanical properties; MECHANICAL-PROPERTIES; POROUS TITANIUM; PORE-SIZE; IN-VIVO; LASER PARAMETERS; UNIT CELLS; TI-6AL-4V; IMPLANTS; BEHAVIOR; DESIGN;
D O I
10.3390/jfb14030125
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The progress in additive manufacturing has remarkably increased the application of lattice materials in the biomedical field for the fabrication of scaffolds used as bone substitutes. Ti6Al4V alloy is widely adopted for bone implant application as it combines both biological and mechanical properties. Recent breakthroughs in biomaterials and tissue engineering have allowed the regeneration of massive bone defects, which require external intervention to be bridged. However, the repair of such critical bone defects remains a challenge. The present review collected the most significant findings in the literature of the last ten years on Ti6Al4V porous scaffolds to provide a comprehensive summary of the mechanical and morphological requirements for the osteointegration process. Particular attention was given on the effects of pore size, surface roughness and the elastic modulus on bone scaffold performances. The application of the Gibson-Ashby model allowed for a comparison of the mechanical performance of the lattice materials with that of human bone. This allows for an evaluation of the suitability of different lattice materials for biomedical applications.
引用
收藏
页数:26
相关论文
共 136 条
[1]   Design, Optimization, and Evaluation of Additively Manufactured Vintiles Cellular Structure for Acetabular Cup Implant [J].
Abate, Kalayu Mekonen ;
Nazir, Aamer ;
Chen, Jia-En ;
Jeng, Jeng-Ywan .
PROCESSES, 2020, 8 (01)
[2]   Design, optimization, and validation of mechanical properties of different cellular structures for biomedical application [J].
Abate, Kalayu Mekonen ;
Nazir, Aamer ;
Yeh, Yun-Peng ;
Chen, Jia-En ;
Jeng, Jeng-Ywan .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2020, 106 (3-4) :1253-1265
[3]   Porous scaffolds for bone regeneration [J].
Abbasi, Naghmeh ;
Hamlet, Stephen ;
Love, Robert M. ;
Nguyen, Nam-Trung .
JOURNAL OF SCIENCE-ADVANCED MATERIALS AND DEVICES, 2020, 5 (01) :1-9
[4]   Additive manufacturing: Challenges, trends, and applications [J].
Abdulhameed, Osama ;
Al-Ahmari, Abdulrahman ;
Ameen, Wadea ;
Mian, Syed Hammad .
ADVANCES IN MECHANICAL ENGINEERING, 2019, 11 (02)
[5]   Characterization of Alginate-Gelatin-Cholesteryl Ester Liquid Crystals Bioinks for Extrusion Bioprinting of Tissue Engineering Scaffolds [J].
Abdulmaged, Alyaa Idrees ;
Soon, Chin Fhong ;
Talip, Balkis A. ;
Zamhuri, Siti Adibah Ahmad ;
Mostafa, Salama A. ;
Zhou, Wenbin .
POLYMERS, 2022, 14 (05)
[6]   Additively Manufactured Open-Cell Porous Biomaterials Made from Six Different Space-Filling Unit Cells: The Mechanical and Morphological Properties [J].
Ahmadi, Seyed Mohammad ;
Yavari, Saber Amin ;
Wauthle, Ruebn ;
Pouran, Behdad ;
Schrooten, Jan ;
Weinans, Harrie ;
Zadpoor, Amir A. .
MATERIALS, 2015, 8 (04) :1871-1896
[7]   Topology-mechanical property relationship of 3D printed strut, skeletal, and sheet based periodic metallic cellular materials [J].
Al-Ketan, Oraib ;
Rowshan, Reza ;
Abu Al-Rub, Rashid K. .
ADDITIVE MANUFACTURING, 2018, 19 :167-183
[8]   Design of metallic bone by additive manufacturing [J].
Alabort, Enrique ;
Barba, Daniel ;
Reed, Roger C. .
SCRIPTA MATERIALIA, 2019, 164 :110-114
[9]  
Alla RamaKrishna., 2011, Trends in Biomaterials Artificial Organs, V25, P112
[10]   Compressive behavior assessment of a newly developed circular cell-based lattice structure [J].
Alomar, Zaki ;
Concli, Franco .
MATERIALS & DESIGN, 2021, 205