State of art on evaluation of three- to six-dimensional novel additive manufacturing technology for biomedical applications

被引:1
|
作者
Girija, M. [1 ]
Kumar, T. Sampath [1 ]
机构
[1] Vellore Inst Technol, Sch Mech Engn, Vellore 632014, Tamil Nadu, India
关键词
Additive manufacturing; 5D printing; 6D printing; biomedical; customized device; smart material; tissue engineering; SHAPE-MEMORY POLYMERS; DRUG-DELIVERY; POWDER BED; 4D; TISSUE; FABRICATION; STRENGTH; COMPOSITES; SIMULATION; RESECTION;
D O I
10.1177/09544089241281985
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Additive manufacturing has evolved over the last few decades. Three-dimensional printing is a digital manufacturing technology that provides nearly endless options for the creation of an accessible instrument for all parts of various medical practices, including tissue engineering, through meticulous optimization of material, processing, and geometry for every point in an object. Three-dimensional printing has opened up a new, faster, and safer manufacturing process, despite its incapability to fabricate complex structures and objects. Recently, novel four-dimensional printing techniques have been developed for the transformation of typical stable three-dimensional printed parts into smart objects. The limitations of three-dimensional printing could be remedied with four-dimensional printing, by applying time as the fourth dimension. Self-repairing and speedy printing are two additional benefits of this technology's by using smart materials. By adapting this technology, numerous medical domains could be profited. Four-dimensional printing does not have the ability to produce curved complicated forms. However, five-dimensional printing overcomes the flaws seems in four-dimensional printing. Five-dimensional additive manufacturing relies on the rotation of both the print bed and the extruder head. Five-dimensional printing outlasts in terms of durability than three- and four-dimensional printing. Currently, a combination of the principles of four- and five-dimensional printing into a single process is called six-dimensional printing. In six-dimensional printing, the form changes over time due to the reaction of environmental factors, which is primarily used in biomedical applications. This paper summarizes extensive research on biomaterials in the field of biomedical science and discusses the present implications of three-, four-, five-, and six-dimensional printing techniques.
引用
收藏
页数:22
相关论文
共 50 条
  • [21] State-of-the-Art Review of Machine Learning Applications in Additive Manufacturing; from Design to Manufacturing and Property Control
    Garshasp Keyvan Sarkon
    Babak Safaei
    Mohammad Saleh Kenevisi
    Samaneh Arman
    Qasim Zeeshan
    Archives of Computational Methods in Engineering, 2022, 29 : 5663 - 5721
  • [22] State-of-the-Art Review of Machine Learning Applications in Additive Manufacturing; from Design to Manufacturing and Property Control
    Sarkon, Garshasp Keyvan
    Safaei, Babak
    Kenevisi, Mohammad Saleh
    Arman, Samaneh
    Zeeshan, Qasim
    ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 2022, 29 (07) : 5663 - 5721
  • [23] Applications of evolutionary technology to manufacturing and logistics systems : State-of-the art survey
    Gen, Mitsuo
    Lin, Lin
    IEEJ Transactions on Electronics, Information and Systems, 2008, 128 (03) : 346 - 351
  • [24] Application of Three-Dimensional Digital Technology in Orthodontics: The State of the Art
    Francisco, Ines
    Ribeiro, Madalena Prata
    Marques, Filipa
    Travassos, Raquel
    Nunes, Catarina
    Pereira, Flavia
    Caramelo, Francisco
    Paula, Anabela Baptista
    Vale, Francisco
    BIOMIMETICS, 2022, 7 (01)
  • [25] Evaluation of the mechanical and wear properties of titanium produced by three different additive manufacturing methods for biomedical application
    Attar, H.
    Bermingham, M. J.
    Ehtemam-Haghighi, S.
    Dehghan-Manshadi, A.
    Kent, D.
    Dargusch, M. S.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2019, 760 : 339 - 345
  • [26] Electrospray printing: Unravelling the history of a support free three-dimensional additive manufacturing technology
    Jayasinghe, Suwan N.
    MATERIALS TODAY, 2023, 62 : 14 - 20
  • [27] Three-dimensional photopolymerization additive manufacturing technology based on two-photon polymerization
    Hyunmin Cho
    Won-Sup Lee
    Won Seok Chang
    JMST Advances, 2024, 6 (4) : 371 - 377
  • [28] Current trends, applications, and challenges of coatings on additive manufacturing based biopolymers: A state of art review
    Sharma, Shrutika
    Gupta, Vishal
    Mudgal, Deepa
    POLYMER COMPOSITES, 2022, 43 (10) : 6749 - 6781
  • [29] Dual pore network polymer foams for biomedical applications via combined solid state foaming and additive manufacturing
    Kakumanu, Venkateshwarlu
    Sundarram, Sriharsha Srinivas
    MATERIALS LETTERS, 2018, 213 : 366 - 369
  • [30] Novel three-dimensional printing of poly(ester urethane) scaffolds for biomedical applications
    Lores, Nayla J.
    Hung, Xavier
    Talou, Mariano H.
    Abraham, Gustavo A.
    Caracciolo, Pablo C.
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2021, 32 (08) : 3309 - 3321