3D Printing Technology for Biomedical Practice: A Review

被引:38
作者
Kumar, Pankaj [1 ,2 ]
Rajak, Dipen Kumar [3 ]
Abubakar, Muazu [4 ]
Ali, Syed Gazanfar Mustafa [1 ,2 ]
Hussain, Manowar [5 ]
机构
[1] SR Engn Coll, Ctr Mat & Mfg, Warangal, Andhra Pradesh, India
[2] SR Engn Coll, Dept Mech Engn, Warangal, Andhra Pradesh, India
[3] Sandip Inst Technol & Res Ctr, Dept Mech Engn, Nasik, India
[4] Bayero Univ, Dept Mech Engn, Kano, Nigeria
[5] Chaitanya Bharathi Inst Technol, Dept Mech Engn, Gandipet, India
关键词
additive manufacturing; biomedical components; bioprinting; implants; tissue engineering; TISSUE REGENERATION; BONE SCAFFOLDS; FABRICATION; DESIGN; MICROSTRUCTURE; HYDROXYAPATITE; IMPLANTS; PRODUCTS; DEVICES;
D O I
10.1007/s11665-021-05792-3
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
3D printing or additive manufacturing is an emerging technique for the fabrications of biomedical components. Several researchers are working on fabrications of the biomedical components, future prospective of implantation, and transplantation aspects. The current review presents a meticulous summary of research work done so far by the researchers in the view of design and fabrications about biomedical components by using 3D printing technology such as fused deposition modeling (FDM), inkjet printing, stereolithography, and selective laser sintering (SLS). The design and fabrications of biomedical components include 3D printing of bone, low-cost high-quality prosthetics, intervertebral disks, medical equipment, heart valve, building tissues using blood vessels and drugs. The objective of this review article is to explore different additive manufacturing processes, challenges, and future developments for 3D printing for biomedical components.
引用
收藏
页码:5342 / 5355
页数:14
相关论文
共 106 条
[1]   Three-dimensional bio-printing equipment technologies for tissue engineering and regenerative medicine [J].
Ahn, Sang Hyun ;
Lee, Junhee ;
Park, Su A. ;
Kim, Wan Doo .
TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2016, 13 (06) :663-676
[2]   Bionic hand as artificial organ: Current status and future perspectives [J].
Aman, Martin ;
Sporer, Matthias E. ;
Gstoettner, Clemens ;
Prahm, Cosima ;
Hofer, Christian ;
Mayr, Winfried ;
Farina, Dario ;
Aszmann, Oskar C. .
ARTIFICIAL ORGANS, 2019, 43 (02) :109-118
[3]  
[Anonymous], 2017, CONN L REV
[4]  
Araromi OA, 2018, IEEE INT CONF ROBOT, P187
[5]  
Arenas M., 2017, J DRUG DELIV SCI TEC, V9, P1
[6]   Biodegradable and biocompatible polymers for tissue engineering application: a review [J].
Asghari, Fatemeh ;
Samiei, Mohammad ;
Adibkia, Khosro ;
Akbarzadeh, Abolfazl ;
Davaran, Soodabeh .
ARTIFICIAL CELLS NANOMEDICINE AND BIOTECHNOLOGY, 2017, 45 (02) :185-192
[7]   Development of Nylon-Based Artificial Muscles for the Usage in Robotic Prosthetic Limb [J].
Atikah, Nurul Anis ;
Weng, Leong Yeng ;
Anuar, Adzly ;
Fat, Chau Chien ;
Abidin, Izham Zainal ;
Sahari, Khairul Salleh Mohamed .
ADVANCES IN ELECTRICAL AND ELECTRONIC ENGINEERING: FROM THEORY TO APPLICATIONS, 2017, 1883
[8]  
Bhatia SK, 2017, SPRINGERBRIEF MATER, P63, DOI 10.1007/978-3-319-58277-1_4
[9]   3D bio-printing technology for body tissues and organs regeneration [J].
Biazar E. ;
Najafi S M. ;
Heidari K S. ;
Yazdankhah M. ;
Rafiei A. ;
Biazar D. .
Journal of Medical Engineering and Technology, 2018, 42 (03) :187-202
[10]   Fabrication of Patient Specific Knee Implant by Fused Deposition Modeling [J].
Boorla, Rajesh ;
Prabeena, T. .
MATERIALS TODAY-PROCEEDINGS, 2019, 18 :3638-3642