Polymers for 3D Printing and Customized Additive Manufacturing
Полимеры для 3D-печати и адаптированного аддитивного производства
2017-07-30
SCID: 54.1/87ybr55m
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3D bioprintingextrusion-based printing (FDM, 3D plotting)polymer additive manufacturingpowder bed fusion (SLS)vat photopolymerization (stereolithography)
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Abstract (AI)
Additive manufacturing (AM) alias 3D printing translates computer-aided design (CAD) virtual 3D models into physical objects. By digital slicing of CAD, 3D scan, or tomography data, AM builds objects layer by layer without the need for molds or machining. AM enables decentralized fabrication of customized objects on demand by exploiting digital information storage and retrieval via the Internet. The ongoing transition from rapid prototyping to rapid manufacturing prompts new challenges for mechanical engineers and materials scientists alike. Because polymers are by far the most utilized class of materials for AM, this Review focuses on polymer processing and the development of polymers and advanced polymer systems specifically for AM. AM techniques covered include vat photopolymerization (stereolithography), powder bed fusion (SLS), material and binder jetting (inkjet and aerosol 3D printing), sheet lamination (LOM), extrusion (FDM, 3D dispensing, 3D fiber deposition, and 3D plotting), and 3D bioprinting. The range of polymers used in AM encompasses thermoplastics, thermosets, elastomers, hydrogels, functional polymers, polymer blends, composites, and biological systems. Aspects of polymer design, additives, and processing parameters as they relate to enhancing build speed and improving accuracy, functionality, surface finish, stability, mechanical properties, and porosity are addressed. Selected applications demonstrate how polymer-based AM is being exploited in lightweight engineering, architecture, food processing, optics, energy technology, dentistry, drug delivery, and personalized medicine. Unparalleled by metals and ceramics, polymer-based AM plays a key role in the emerging AM of advanced multifunctional and multimaterial systems including living biological systems as well as life-like synthetic systems.
Key Findings
1
A wide range of polymer types are used in AM, including thermoplastics, thermosets, elastomers, hydrogels, functional polymers, blends, composites, and biological systems.
2
Polymer design, additives, and processing parameters critically influence build speed, accuracy, functionality, surface finish, stability, mechanical properties, and porosity in AM parts.
3
Polymer-based AM enables applications across lightweight engineering, architecture, food processing, optics, energy technology, dentistry, drug delivery, and personalized medicine, and uniquely supports multifunctional, multimaterial, and living-system fabrication.
4
Polymers are the most utilized class of materials for additive manufacturing, motivating focused review on polymer processing and development for AM.
5
The review covers major AM techniques for polymers: vat photopolymerization, powder bed fusion, material and binder jetting, sheet lamination, extrusion-based methods, and 3D bioprinting.
Research Object
Polymers and polymer-based materials used in additive manufacturing (3D printing)
Research Subject
Design, processing, and performance aspects of these polymers for AM—including material development, additives, processing parameters, and resulting build speed, accuracy, functionality, surface finish, stability, mechanical properties, and porosity across various AM techniques and applications
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2017-07-30
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