Current status and future directions of fused filament fabrication

Journal of Manufacturing Processes - Tập 55 - Trang 288-306 - 2020
Sunpreet Singh1, Gurminder Singh2, Chander Prakash3, Seeram Ramakrishna1
1Mechanical Engineering, National University of Singapore, 117583, Singapore
2SIMAP, Université Grenoble Alpes, Grenoble, 38400, France
3Mechanical Engineering Department, Lovely Professional University, Phagwara, Punjab, 144411, India

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Conner, 2014, Making sense of 3-D printing: creating a map of additive manufacturing products and services, Addit Manuf, 1, 64

Bak, 2003, Rapid prototyping or rapid production? 3D printing processes move industry towards the latter, Assem Autom, 23, 340, 10.1108/01445150310501190

Ngo, 2018, Additive manufacturing (3D printing): a review of materials, methods, applications and challenges, Compos Part B, 143, 172, 10.1016/j.compositesb.2018.02.012

Zhai, 2014, Additive manufacturing: making imagination the major limitation, JOM, 66, 808, 10.1007/s11837-014-0886-2

Berman, 2012, 3-D printing: the new industrial revolution, Bus Horiz, 55, 155, 10.1016/j.bushor.2011.11.003

Smith, 2013

Economist, 2013

Jackson, 2013

Smith, 2018

Metal, 2013

Electric, 2013

Vrancken, 2012, Heat treatment of Ti6Al4V produced by Selective Laser Melting: microstructure and mechanical properties, J Alloys Compd, 541, 177, 10.1016/j.jallcom.2012.07.022

Blackwell, 2005, Laser-aided manufacturing technologies; their application to the near-net shape forming of a high-strength titanium alloy, J Mater Process Technol, 170, 268, 10.1016/j.jmatprotec.2005.05.014

Mognol, 2014, Rapid prototyping: energy and environment in the spotlight spotlight, Rapid Prototyp J, 12, 26, 10.1108/13552540610637246

Hager, 2016, 3D printing of buildings and building components as the future of sustainable construction?, Procedia Eng, 151, 292, 10.1016/j.proeng.2016.07.357

Quan, 2015, Additive manufacturing of multi-directional preforms for composites: opportunities and challenges, Mater Today, 18, 503, 10.1016/j.mattod.2015.05.001

Amanda, 2014

Chohan, 2016, Enhancing dimensional accuracy of FDM based biomedical implant replicas by statistically controlled vapor smoothing process, Prog Addit Manuf, 1, 105, 10.1007/s40964-016-0009-4

Afrose, 2016, Effects of part build orientations on fatigue behaviour of FDM-processed PLA material, Prog Addit Manuf, 1, 21, 10.1007/s40964-015-0002-3

Bustillo, 2019

Kumar, 2017, Current trends of additive manufacturing in the aerospace industry, Adv 3D Print Addit Manuf Technol, 39, 10.1007/978-981-10-0812-2_4

Matlack, 2016, Investigation of ultem 1010 FDM sparse-build parts using design of experiments and numerical simulation, Compos Adv Mater, 1

Tambrallimath, 2019, Synthesis and characterization of graphene filled PC-ABS filament for FDM applications, AIP Conf Proc, 2057

Arun, 2018, Metallization of PLA plastics prepared by FDM-RP process and evaluation of corrosion and hardness characteristics, Mater Today Proc, 5, 13107, 10.1016/j.matpr.2018.02.299

Sadia, 2016, Adaptation of pharmaceutical excipients to FDM 3D printing for the fabrication of patient-tailored immediate release tablets, Int J Pharm, 513, 659, 10.1016/j.ijpharm.2016.09.050

Alhijjaj, 2016, An investigation into the use of polymer blends to improve the printability of and regulate drug release from pharmaceutical solid dispersions prepared via fused deposition modeling (FDM) 3D printing, Eur J Pharm Biopharm, 108, 111, 10.1016/j.ejpb.2016.08.016

Nasereddin, 2018, Investigation of the mechanical properties of hot-melt extruded filaments for pharmaceutical applications of FDM, 2nd Int Conf 3D Print Technol Innov

Lim, 2009, Fabricating construction components using layered manufacturing technology, Glob Innov Constr Conf, 2018, 512

Wu, 2016, A critical review of the use of 3-D printing in the construction industry, Autom Constr, 68, 21, 10.1016/j.autcon.2016.04.005

Yan, 2016, Additive manufacturing of magnetic components for power electronics integration, 1, 368

Espalin, 2014, 3D Printing multifunctionality: structures with electronics, Int J Adv Manuf Technol, 72, 963, 10.1007/s00170-014-5717-7

Aslanzadeh, 2018, Investigation on electrical and mechanical properties of 3D printed nylon 6 for RF/microwave electronics applications, Addit Manuf, 21, 69

Lipton, 2015, Additive manufacturing for the food industry, Trends Food Sci Technol, 43, 114, 10.1016/j.tifs.2015.02.004

Godoi, 2016, 3D printing technologies applied for food design: status and prospects, J Food Eng, 179, 44, 10.1016/j.jfoodeng.2016.01.025

Melnikova, 2014, 3D printing of textile-based structures by fused Deposition Modelling (FDM) with different polymer materials, IOP Conf Ser Mater Sci Eng, 62, 0, 10.1088/1757-899X/62/1/012018

Korger, 2016, Possible applications of 3D printing technology on textile substrates, IOP Conf Ser Mater Sci Eng, 141, 0, 10.1088/1757-899X/141/1/012011

Sabantina, 2015, Combining 3D printed forms with textile structures - mechanical and geometrical properties of multi-material systems, IOP Conf Ser Mater Sci Eng, 87

Grimmelsmann, 2018, Adhesion of 3D printed material on textile substrates, Rapid Prototyp J, 24, 166, 10.1108/RPJ-05-2016-0086

Mamedova, 2017, Perspectives of 3D printing in jewelry production and particularly in metal printing, Fifth Forum Young Res, 128

Law, 2003, Panorama of toys design and development in Hong Kong, J Mater Process Technol, 138, 270, 10.1016/S0924-0136(03)00084-0

Sculpteo, 2018

Foster, 2017, 3D printed graphene based energy storage devices, Sci Rep, 7, 1, 10.1038/srep42233

Tian, 2017, Emerging 3D-printed electrochemical energy storage devices: a critical review, Adv Energy Mater, 7, 10.1002/aenm.201700127

Stamper, 2002, Utilizing rapid prototyping to enhance undergraduate engineering education, 30th ASEE/IEEE Front Educ Conf

Si, 2003, A hybrid method for casting process siH.M.ulation by combining FDM and FEM with an efficient data conversion algorithm, J Mater Process Technol, 133, 311, 10.1016/S0924-0136(02)01008-7

Bakar, 2010, Analysis on fused deposition modelling performance, J Zhejiang Univ A, 11, 972, 10.1631/jzus.A1001365

Singh, 2014, Development of nylon based FDM filament for rapid tooling application, J Inst Eng Ser C, 95, 103, 10.1007/s40032-014-0108-2

Singh, 2020, On the mechanical characteristics of friction stir welded dissimilar polymers: statistical analysis of the processing parameters and morphological investigations of the weld joint, J Braz Soc Mech Sci Eng, 154, 42

Wohlers, 2011

Yan, 1996, A review of rapid prototyping technologies and systems, Comput Aided Des, 26, 307, 10.1016/0010-4485(95)00035-6

Singh, 2016, Fused deposition modelling based rapid patterns for investment casting applications: a review, Rapid Prototyp J, 22, 123, 10.1108/RPJ-02-2014-0017

Mangat, 2018, Characterization of natural fibre-embedded biodegradable porous structures prepared with fused deposition process, J Thermoplast Compos Mater, 32, 761, 10.1177/0892705718780185

Bikas, 2016, Additive manufacturing methods and modeling approaches: a critical review, Int J Adv Manuf Technol, 83, 389, 10.1007/s00170-015-7576-2

Mohamed, 2015, Optimization of fused deposition modeling process parameters: a review of current research and future prospects, Adv Manuf, 3, 42, 10.1007/s40436-014-0097-7

Ning, 2015, Additive manufacturing of carbon fiber reinforced thermoplastic composites using fused deposition modeling, Compos Part B Eng, 80, 369, 10.1016/j.compositesb.2015.06.013

Sood, 2012, Experimental investigation and empirical modelling of FDM process for compressive strength improvement, J Adv Res, 3, 81, 10.1016/j.jare.2011.05.001

Panda, 2009, Optimization of fused deposition modelling (FDM) process parameters using bacterial foraging technique, Intell Inf Manag, 01, 89

Chacón, 2017, Additive manufacturing of PLA structures using fused deposition modelling: effect of process parameters on mechanical properties and their optimal selection, Mater Des, 124, 143, 10.1016/j.matdes.2017.03.065

Lee, 2005, Optimization of rapid prototyping parameters for production of flexible ABS object, J Mater Process Technol, 169, 54, 10.1016/j.jmatprotec.2005.02.259

Rayegani, 2014, Fused deposition modelling (fdm) process parameter prediction and optimization using group method for data handling (gmdh) and differential evolution (de), Int J Adv Manuf Technol, 73, 509, 10.1007/s00170-014-5835-2

Lužanin, 2014, Effect of layer thickness, deposition angle, and infill on maximum flexural force in fdm-built specimens, J Technol Plast, 39, 49

Mohan, 2017, A review on composite materials and process parameters optimisation for the fused deposition modelling process, Virtual Phys Prototyp, 12, 47, 10.1080/17452759.2016.1274490

Singh, 2015, Wear modelling of Al-Al2O3 functionally graded material prepared by FDM assisted investment castings using dimensionless analysis, J Manuf Process, 20, 507, 10.1016/j.jmapro.2015.01.007

Masood, 2005, Thermal characteristics of a new metal/polymer material for FDM rapid prototyping process, Assem Autom, 25, 309, 10.1108/01445150510626451

Kumar, 2010, Composites by rapid prototyping technology, Mater Des, 31, 850, 10.1016/j.matdes.2009.07.045

Singh, 2017, Material issues in additive manufacturing: a review, J Manuf Process, 25, 185, 10.1016/j.jmapro.2016.11.006

Chim, 2006, A comparative analysis of scaffold material modifications for load-bearing applications in bone tissue engineering, Int J Oral Maxillofac Surg, 35, 928, 10.1016/j.ijom.2006.03.024

Thavornyutikarn, 2014, vol. 3

Tian, 2016, Interface and performance of 3D printed continuous carbon fiber reinforced PLA composites, Compos Part A Appl Sci Manuf, 88, 198, 10.1016/j.compositesa.2016.05.032

Tekinalp, 2014, Highly oriented carbon fiber-polymer composites via additive manufacturing, Compos Sci Technol, 105, 144, 10.1016/j.compscitech.2014.10.009

Gardner, 2016, 3-D printing of multifunctional carbon nanotube yarn reinforced components, Addit Manuf, 12, 38

Singh, 2019, Sustainability of recycled ABS and PA6 by banana fiber reinforcement: thermal, mechanical and morphological properties, J Inst Eng Ser C, 100, 351, 10.1007/s40032-017-0435-1

Zhang, 2017, Effect of MAH-g-PLA on the properties of wood fiber/polylactic acid composites, Polymers (Basel), 9, 5

Mangat, 2018, Experimental investigations on natural fiber embedded additive manufacturing-based biodegradable structures for biomedical applications, Rapid Prototyp J, 24, 1221, 10.1108/RPJ-08-2017-0162

Kollamaram, 2018, Low temperature fused deposition modeling (FDM) 3D printing of thermolabile drugs, Int J Pharm, 545, 144, 10.1016/j.ijpharm.2018.04.055

Nidagundi, 2015, Studies on parametric optimization for fused deposition modelling process, Mater Today Proc, 2, 1691, 10.1016/j.matpr.2015.07.097

Noriega, 2013, Dimensional accuracy improvement of FDM square cross-section parts using artificial neural networks and an optimization algorithm, Int J Adv Manuf Technol, 69, 2301, 10.1007/s00170-013-5196-2

Gurrala, 2014, Multi-objective optimisation of strength and volumetric shrinkage of FDM parts: a multi-objective optimization scheme is used to optimize the strength and volumetric shrinkage of FDM parts considering different process parameters, Virtual Phys Prototyp, 9, 127, 10.1080/17452759.2014.898851

Boschetto, 2016, Finishing of fused deposition modeling parts by CNC machining, Robot Comput Integr Manuf, 41, 92, 10.1016/j.rcim.2016.03.004

Casavola, 2017, Preliminary study on residual stress in FDM parts. Residual Stress Thermomechanics Infrared Imaging, Hybrid Tech Inverse Probl, 9

Chockalingam, 2016, Enhancement of anisotropic strength of fused deposited ABS parts by genetic algorithm, Mater Manuf Process, 31, 2001, 10.1080/10426914.2015.1127949

Ivanova, 2013, Additive manufacturing (AM) and nanotechnology: promises and challenges, Rapid Prototyp J, 19, 353, 10.1108/RPJ-12-2011-0127

Vaezi, 2013, A review on 3D micro-additive manufacturing technologies, Int J Adv Manuf Technol, 67, 1721, 10.1007/s00170-012-4605-2

Ly, 2017, 4D printing – fused deposition modeling printing with thermal-responsive shape memory polymers, Int J Precis Eng Manuf - Green Technol, 4, 267, 10.1007/s40684-017-0032-z

Raviv, 2014, Active printed materials for complex self-evolving deformations, Sci Rep, 4, 1, 10.1038/srep07422

Cai, 2016

Yu, 2015, Controlled sequential shape changing components by 3D printing of shape memory polymer multimaterials, Procedia IUTAM, 12, 193, 10.1016/j.piutam.2014.12.021

Chae, 2015, Four-dimensional (4D) printing: a new evolution in computed tomography-guided stereolithographic modeling principles and application, J Reconstr Microsurg, 31, 458, 10.1055/s-0035-1549006

Tibbits, 2014, 4D printing, Archit Des, 84, 116

Yang, 2017, 3D printed photoresponsive devices based on shape memory composites, Adv Mater, 29, 1, 10.1002/adma.201701627

Mao, 2015, Sequential self-folding structures by 3D printed digital shape memory polymers, Sci Rep, 5, 1, 10.1038/srep13616

Zhang, 2018, Shape memory behavior and recovery force of 4D printed textile functional composites, Compos Sci Technol, 160, 224, 10.1016/j.compscitech.2018.03.037

Hu, 2017, Increasing dimension of structures by 4D printing shape memory polymers via fused deposition modeling, Smart Mater Struct, 26

Teoh, 2017, Multi-stage responsive 4D printed smart structure through varying geometric thickness of shape memory polymer, Smart Mater Struct, 26

Momeni, 2018, Nature-inspired smart solar concentrators by 4D printing, Renew Energy, 122, 35, 10.1016/j.renene.2018.01.062

Gao, 2016, 4D bioprinting for biomedical applications, Trends Biotechnol, 34, 746, 10.1016/j.tibtech.2016.03.004

Bahr, 2016, Additive manufacturing techniques for origami inspired 4D printed RF components and modules, 2016 IEEE MTT-S Int Microw Work Ser Adv Mater Process RF THz Appl, 1

Zhao, 2017, Three-dimensional printed shape memory objects based on an olefin ionomer of zinc-neutralized poly(ethylene-co-methacrylic acid), ACS Appl Mater Interfaces, 9, 27239, 10.1021/acsami.7b07816

Yang, 2017, Modelling and characterisation for the responsive performance of CF/PLA and CF/PEEK smart materials fabricated by 4D printing, Virtual Phys Prototyp, 12, 69, 10.1080/17452759.2016.1265992

Miao, 2016, Four-dimensional printing hierarchy scaffolds with highly biocompatible smart polymers for tissue engineering applications, Tissue Eng Part C Methods, 22, 952, 10.1089/ten.tec.2015.0542

Bodaghi, 2017, Adaptive metamaterials by functionally graded 4D printing, Mater Des, 135, 26, 10.1016/j.matdes.2017.08.069

Zhao, 2018, Printing ferromagnetic domains for untethered fast-transforming soft materials, Nature, 558, 274, 10.1038/s41586-018-0185-0

Kokkinis, 2015, Multimaterial magnetically assisted 3D printing of composite materials, Nat Commun, 6, 1, 10.1038/ncomms9643

Martin, 2017, Direct-write 3D printing of composite materials with magnetically aligned discontinuous reinforcement, Micro- Nanotechnol Sens Syst Appl, IX, 10194

Yang, 2019, Electrically assisted 3D printing of nacre-inspired structures with self-sensing capability, Sci Adv, 5

Lu, 2017, Magnetic-field-assisted projection stereolithography for three-dimensional printing of smart structures, J Manuf Sci Eng, 139, 10.1115/1.4035964

Momeni, 2017, A review of 4D printing, Mater Des, 122, 42, 10.1016/j.matdes.2017.02.068

Leist, 2016, Current status of 4D printing technology and the potential of light-reactive smart materials as 4D printable materials, Virtual Phys Prototyp, 11, 249, 10.1080/17452759.2016.1198630

Zolfagharian, 2018, Pattern-driven 4D printing, Sens Actuators A Phys, 274, 231, 10.1016/j.sna.2018.03.034

Singh, 2020, Neck growth kinetics during ultrasonic-assisted sintering of copper powder, Proc Inst Mech Eng Part C J Mech Eng Sci, 0, 1

Bhushan, 2017, An overview of additive manufacturing (3D printing) for microfabrication, Microsyst Technol, 23, 1117, 10.1007/s00542-017-3342-8

Schweiger, 2016, Histo-anatomic 3D printing of dental structures, Br Dent J, 221, 555, 10.1038/sj.bdj.2016.815

Lu, 2008, 3DP process for fine mesh structure printing, Powder Technol, 187, 11, 10.1016/j.powtec.2007.12.017

Gibson, 2014

Sitthi-Amorn, 2015, MultiFab: a machine vision assisted platform for multi-material 3D printing, ACM Trans Graph, 34, 129, 10.1145/2766962

Mirotznik, 2016, Multi-material additive manufacturing of antennas, 2016 Int Work Antenna Technol IWAT 2016, 123

Parsons, 2015, Multi-material additive manufacturing of embedded low-profile antennas, Electron Lett, 51, 1561, 10.1049/el.2015.2186

Choi, 2011, Multi-material stereolithography, J Mater Process Technol, 211, 318, 10.1016/j.jmatprotec.2010.10.003

Sugavaneswaran, 2014, Modelling for randomly oriented multi material additive manufacturing component and its fabrication, Mater Des, 54, 779, 10.1016/j.matdes.2013.08.102

Lee, 2017, A desktop multi-material 3D bio-printing system with open-source hardware and software, Int J Precis Eng Manuf, 18, 605, 10.1007/s12541-017-0072-x

Sears, 2016, A review of three-dimensional printing in tissue engineering, Tissue Eng Part B Rev, 22, 298, 10.1089/ten.teb.2015.0464

Fitzpatrick, 2017, Design optimisation of a thermoplastic splint, Solid Free Fabr Symp, 2409

Oropallo, 2016, Ten challenges in 3D printing, Eng Comput, 32, 135, 10.1007/s00366-015-0407-0

Mansouri, 2018, 3D-printed multimaterial composites tailored for compliancy and strain recovery, Compos Struct, 184, 11, 10.1016/j.compstruct.2017.09.049

Truby, 2016, Printing soft matter in three dimensions, Nature, 540, 371, 10.1038/nature21003

Hiller, 2009, Fully recyclable multi-material printing, Solid Free Fabr Symp, 98

Qiu, 2002, Void eliminating toolpath for extrusion-based multi-material layered manufacturing, Rapid Prototyp J, 8, 38, 10.1108/13552540210413293

Beaman, 2007, 1

Hsieh, 2001, A system approach in extrusion-based multi-material CAD, Proc Solid Free Fabr Symp, 313

Allahverdi, 2001, Processing of advanced electroceramic components by fused deposition technique, J Eur Ceram Soc, 263, 45

Pilleux, 2002, 3-D photonic bandgap structures in the microwave regime by fused deposition of multimaterials, Rapid Prototyp J, 8, 46, 10.1108/13552540210413301

Malone, 2009, Multi-material freeform fabrication of active systems, Proc 9th Bienn ASME Conf Eng Syst Des Anal, 345

Malone, 2004, Freeform fabrication of zinc-air batteries and electromechanical assemblies, Rapid Prototyp J, 10, 58, 10.1108/13552540410512543

Periard, 2007, Printing embedded circuits, Proc 18th Solid Free Fabr Symp, 502

Barna, 2012, Basic and advanced materials for fused deposition modeling rapid prototyping technology, Manuf Ind Eng, 11, 1338

Venkataraman, 2000, Feedstock material property – process relationships in fused deposition of ceramics (FDC), Rapid Prototyp J, 6, 244, 10.1108/13552540010373344

Bellini, 2005, New developments in fused deposition modeling of ceramics, Rapid Prototyp J, 11, 214, 10.1108/13552540510612901

Agarwala, 1996, Fused deposition of ceramics and metals: an overview, Proc Solid Free Fabr Symp, 385

Singh, 2018, Design and analysis of long-stepped horn for ultrasonic assisted sintering

Wang, 2017, 3D printing of polymer matrix composites: a review and prospective, Compos Part B Eng, 110, 442, 10.1016/j.compositesb.2016.11.034

Singh, 2017, Material issues in additive manufacturing: a review, J Manuf Process, 25, 185, 10.1016/j.jmapro.2016.11.006

Novakova-Marcincinova, 2012, Testing of materials for rapid prototyping fused deposition modelling technology, Int J Mech Aerospace, Ind Mechatron Manuf Eng, 6, 2081

Masood, 2004, Development of new metal/polymer materials for rapid tooling using fused deposition modelling, Mater Des, 25, 587, 10.1016/j.matdes.2004.02.009

Ryder, 2018, Fabrication and properties of novel polymer-metal composites using fused deposition modeling, Compos Sci Technol, 158, 43, 10.1016/j.compscitech.2018.01.049

Garg, 2017, Tribological properties of Fe–Nylon6 composite parts prepared using fused deposition modelling, Trans Indian Inst Met, 70, 1241, 10.1007/s12666-016-0914-8

Çantı, 2018, Effects of micro particle reinforcement on mechanical properties of 3D printed parts, Rapid Prototyp J, 24, 171, 10.1108/RPJ-06-2016-0095

Singh, 2016, Waste management by recycling of polymers with reinforcement of metal powder, Compos Part B Eng, 105, 23, 10.1016/j.compositesb.2016.08.029

Kalita, 2002, Development of porous polymer-ceramic composites as bone grafts, MRS Online Proc Libr Arch, 726

Bin Md Ansari, 2017, Thermal characteristic of waste-derived hydroxyapatite (HA) reinforced ultra high molecular weight polyethylene (UHMWPE) composites for fused deposition modeling (FDM) process, IOP Conf Ser Mater Sci Eng, 166

Nasution, 2015

Drummer, 2012, Suitability of PLA/TCP for fused deposition modeling, Rapid Prototyp J, 18, 500, 10.1108/13552541211272045

Rahim, 2017, The improvement of mechanical and thermal properties of polyamide 12 3D printed parts by fused deposition modelling, Express Polym Lett, 11, 963, 10.3144/expresspolymlett.2017.92

Singh, 2018, On the applicability of composite PA6-TiO 2 filaments for the rapid prototyping of innovative materials and structures, Compos Part B Eng, 143, 132, 10.1016/j.compositesb.2018.01.032

Le Duigou, 2016, 3D printing of wood fibre biocomposites: from mechanical to actuation functionality, Mater Des, 96, 106, 10.1016/j.matdes.2016.02.018

Stoof, 2017, 3D printing of natural fibre reinforced recycled polypropylene, Process Fabr Adv Mater, 668

Matsuzaki, 2016, Three-dimensional printing of continuous-fiber composites by in-nozzle impregnation, Sci Rep, 6, 1, 10.1038/srep23058

Caminero, 2019, Additive manufacturing of PLA-based composites using fused filament fabrication: effect of graphene nanoplatelet reinforcement on mechanical properties, dimensional accuracy and texture, Polymers (Basel), 11, 799, 10.3390/polym11050799

Shofner, 2003, Nanofiber-reinforced polymers prepared by fused deposition modeling, J Appl Polym Sci, 89, 3081, 10.1002/app.12496

Yang, 2019, Effects of carbon nanotube on the thermal, mechanical, and electrical properties of PLA/CNT printed parts in the FDM process, Synth Met, 253, 122, 10.1016/j.synthmet.2019.05.008

Yao, 2017, Evaluation of carbon fiber-embedded 3D printed structures for strengthening and structural-health monitoring, Mater Des, 114, 424, 10.1016/j.matdes.2016.10.078

Osman, 2018, Investigation of ABS-rice straw composite feedstock filament for FDM, Rapid Prototyp J, 24, 1067, 10.1108/RPJ-11-2017-0242

Singh, 2016, Investigation for dimensional accuracy of AMC prepared by FDM assisted investment casting using nylon-6 waste based reinforced filament, Meas J Int Meas Confed, 78, 253, 10.1016/j.measurement.2015.10.016

Stoof, 2018, Sustainable composite fused deposition modelling filament using recycled pre-consumer polypropylene, Compos Part B Eng, 135, 110, 10.1016/j.compositesb.2017.10.005

Choi, 2011, Development of a mobile fused deposition modeling system with enhanced manufacturing flexibility, J Mater Process Technol, 211, 424, 10.1016/j.jmatprotec.2010.10.019

Bandera, 2005, Customising a knowledge-based system for design optimisation in fused deposition modelling RP-technique, AMST’05 Adv Manuf Syst Technol, 607, 10.1007/3-211-38053-1_59

Hague, 2003, Implications on design of rapid manufacturing, J Mech Eng Sci, 217, 25, 10.1243/095440603762554587

Iliescu, 2011

Levy, 2017, Rapid manufacturing and rapid tooling with layer manufacturing (LM) technologies, state of the art and future perspectives, CIRP Ann, 52, 589, 10.1016/S0007-8506(07)60206-6

Severini, 2016, Could the 3D printing technology be a useful strategy to obtain customized nutrition?, J Clin Gastroenterol, 50, 175, 10.1097/MCG.0000000000000705

Williams, 2006, Empowering students to learn how to learn: mass customization of a graduate engineering design course, Int J Eng Educ, 22, 1269

Shrouf, 2014, Smart factories in industry 4.0: a review of the concept and of energy management approached in production based on the internet of things paradigm, IEEE Int Conf Ind Eng Eng Manag, 697

Beck, 2017, 3D printed tablets loaded with polymeric nanocapsules: an innovative approach to produce customized drug delivery systems, Int J Pharm, 528, 268, 10.1016/j.ijpharm.2017.05.074

Nasr, 2017, A digital design methodology for surgical planning and fabrication of customized mandible implants, Rapid Prototyp J, 23, 101, 10.1108/RPJ-11-2014-0157

Popescu, 2018, Design and 3D printing customized guides for orthopaedic surgery – lessons learned, Rapid Prototyp J, 24, 901, 10.1108/RPJ-05-2017-0099

Chen, 2017, 3D printing and modelling of customized implants and surgical guides for non-human primates, J Neurosci Methods, 286, 38, 10.1016/j.jneumeth.2017.05.013

Dalgarno, 2006, Mass customization of medical devices and implants: state of the art and future directions, Virtual Phys Prototyp, 1, 137, 10.1080/17452750601092031

Alafaghani, 2017, Experimental optimization of fused deposition modelling processing parameters: a design-for-manufacturing approach, Procedia Manuf, 10, 791, 10.1016/j.promfg.2017.07.079

Griffiths, 2016, Effect of build parameters on processing efficiency and material performance in fused deposition modelling, Procedia CIRP, 49, 28, 10.1016/j.procir.2015.07.024

Torres, 2015, Mechanical property optimization of FDM PLA in shear with multiple objectives, JOM, 67, 1183, 10.1007/s11837-015-1367-y

Fernandez-Vicente, 2016, Effect of infill parameters on tensile mechanical behavior in desktop 3D printing, 3D Print Addit Manuf, 3, 183, 10.1089/3dp.2015.0036

Tsouknidas, 2016, Impact absorption capacity of 3D-printed components fabricated by fused deposition modelling, Mater Des, 102, 41, 10.1016/j.matdes.2016.03.154

Aw, 2018, Effect of printing parameters on tensile, dynamic mechanical, and thermoelectric properties of FDM 3D printed CABS/ZnO composites, Materials (Basel), 11

Baich, 2016, Study of infill print design on production cost-time of 3D printed ABS parts, Int J Rapid Manuf, 5, 308, 10.1504/IJRAPIDM.2015.074809

Abbas, 2017, Effect of infill Parameter on compression property in FDM process, Int J Eng Res Appl, 7, 16

Dudescu, 2018, Effects of raster orientation, infill rate and infill pattern on the mechanical properties of 3D printed materials, ACTA Univ Cibiniensis, 69, 23, 10.1515/aucts-2017-0004

Raut, 2014, Investigation of the effect of built orientation on mechanical properties and total cost of FDM parts, Procedia Mater Sci, 6, 1625, 10.1016/j.mspro.2014.07.146

Hambali, 2010, Effect of build orientation on FDM parts:a case study for validation of deformation behaviour by FEA, Int Conf Des Concurr Eng, 20

Zaldivar, 2017, Influence of processing and orientation print effects on the mechanical and thermal behavior of 3D-Printed ULTEM ® 9085 Material, Addit Manuf, 13, 71

Masood, 2000, Part build orientations based on volumetric error in fused deposition modelling, Int J Adv Manuf Technol, 16, 162, 10.1007/s001700050022

Afrose, 2014, Effects of build orientations on tensile properties of PLA material processed by FDM, Adv Mater Res, 1044, 31, 10.4028/www.scientific.net/AMR.1044-1045.31

Nancharaiah, 2010, An experimental investigation on surface quality and dimensional accuracy of FDM components, Int J Emerg Technol Learn, 1, 106

Wu, 2015, Influence of layer thickness and raster angle on the mechanical properties of 3D-printed PEEK and a comparative mechanical study between PEEK and ABS, Materials (Basel), 8, 5834, 10.3390/ma8095271

Durgun, 2014, Experimental investigation of FDM process for improvement of mechanical properties and production cost, Rapid Prototyp J, 20, 228, 10.1108/RPJ-10-2012-0091

Garg, 2016, On surface finish and dimensional accuracy of FDM parts after cold vapor treatment, Mater Manuf Process, 31, 522, 10.1080/10426914.2015.1070425

Fatimatuzahraa, 2011, The effect of employing different raster orientations on the mechanical properties and microstructure of Fused Deposition Modeling parts, ISBEIA 2011 - 2011 IEEE Symp Business, Eng Ind Appl, 22

Ahn, 2003, Anisotropic tensile failure model of rapid prototyping parts - fused deposition modeling (FDM), Int J Mod Phys B, 17, 1510, 10.1142/S0217979203019241

Mohamed, 2016, Effect of process parameters on dynamic mechanical performance of FDM PC/ABS printed parts through design of experiment, J Mater Eng Perform, 25, 2922, 10.1007/s11665-016-2157-6

Ziemian, 2012, Anisotropic mechanical properties of ABS parts fabricated by fused deposition modelling, Mech Eng, 23

Kumar, 2014, Parameter optimization of ABS-M30i parts produced by fused deposition modeling for minimum surface roughness, Int J Curr Eng Technol, 93

Sood, 2012, An investigation on sliding wear of FDM built parts, CIRP J Manuf Sci Technol, 5, 48, 10.1016/j.cirpj.2011.08.003

Lanzotti, 2015, The impact of process parameters on mechanical properties of parts fabricated in PLA with an open-source 3-D printer, Rapid Prototyp J, 21, 604, 10.1108/RPJ-09-2014-0135

Onwubolu, 2014, Characterization and optimization of mechanical properties of ABS parts manufactured by the fused deposition modelling process, Int J Manuf Eng, 2014, 1

Moradi, 2019, 3D printed parts with honeycomb internal pattern by fused deposition modelling; experimental characterization and production optimization, Met Mater Int, 10.1007/s12540-019-00272-9

Martínez, 2012, Modelization of surface roughness in FDM parts, AIP Conf Proc, 1431, 849, 10.1063/1.4707643

Boschetto, 2016, Integration of FDM surface quality modeling with process design, Addit Manuf, 12, 334

Taufik, 2016, A study of build edge profile for prediction of surface roughness in fused deposition modeling, J Manuf Sci Eng, 138, 10.1115/1.4032193

Singh, 2019, Uniform and graded copper open cell ordered foams fabricated by rapid manufacturing: surface morphology, mechanical properties and energy absorption capacity, Mater Sci Eng A, 761, 10.1016/j.msea.2019.138035

Singh, 2019, Rapid manufacturing of copper components using 3D printing and ultrasonic assisted pressureless sintering: experimental investigations and process optimization, J Manuf Process, 43, 253, 10.1016/j.jmapro.2019.05.010

Singh, 2019, Ultrasonic Assisted Pressureless Sintering for rapid manufacturing of complex copper components, Mater Lett, 236, 276, 10.1016/j.matlet.2018.10.123

Singh, 2019, Experimental investigations into mechanical and thermal properties of rapid manufactured copper parts, Proc Inst Mech Eng Part C J Mech Eng Sci, 0, 1

Pandey, 2019, Effect of unit cell shape and strut size on flexural properties of ordered Copper foam, Int J Eng Sci, 12, 73

Singh, 2016, Development of in-house composite wire based feed stock filaments of fused deposition modelling for wear-resistant materials and structures, Compos Part B Eng, 98, 244, 10.1016/j.compositesb.2016.05.038

Singh, 2020, Electric discharge machining using rapid manufactured complex shape copper electrode: parametric analysis and process optimization for MRR, EWR and cavity dimensions, Proc Inst Mech Eng Part C J Mech Eng Sci, 10.1177/0954406220906445

Singh, 2019, Topological ordered copper graphene composite foam: fabrication and compression properties study, Mater Lett, 257, 10.1016/j.matlet.2019.126712

Singh, 2017, Investigations for thermal and electrical conductivity of ABS-graphene blended prototypes, Materials (Basel), 10

Singh, 2020, Rapid manufacturing of copper-graphene composites using a novel rapid tooling technique, Rapid Prototyp J, 2

Wohlers, 1995, Future potential of rapid prototyping and manufacturing around the world, Rapid Prototyp J, 1, 4, 10.1108/13552549510146630

Kruth, 1998, Progress in additive manufacturing and rapid prototyping, CIRP Ann Manuf Technol, 47, 525, 10.1016/S0007-8506(07)63240-5

Ahn, 2008, Expression for surface roughness distribution of FDM processed parts dae-keon, 2008 Int Conf Smart Manuf Appl, 490, 10.1109/ICSMA.2008.4505572

Boschetto, 2013, Surface roughness prediction in fused deposition modelling by neural networks, Int J Adv Manuf Technol, 67, 2727, 10.1007/s00170-012-4687-x

Vahabli, 2016, Application of an RBF neural network for FDM parts’ surface roughness prediction for enhancing surface quality, Int J Precis Eng Manuf, 17, 1589, 10.1007/s12541-016-0185-7

Boschetto, 2013, 3D roughness profile model in fused deposition modelling, Rapid Prototyp J, 19, 240, 10.1108/13552541311323254

Campbell, 2002, Surface roughness visualisation for rapid prototyping models, CAD Comput Aided Des, 34, 717, 10.1016/S0010-4485(01)00201-9

Byun, 2006, Determination of optimal build direction in rapid prototyping with variable slicing, Int J Adv Manuf Technol, 28, 307, 10.1007/s00170-004-2355-5

Ahn, 2009, Representation of surface roughness in fused deposition modeling, J Mater Process Technol, 209, 5593, 10.1016/j.jmatprotec.2009.05.016

Boschetto, 2015, Surface improvement of fused deposition modeling parts by barrel finishing, Rapid Prototyp J, 21, 686, 10.1108/RPJ-10-2013-0105

Galantucci, 2009, Experimental study aiming to enhance the surface finish of fused deposition modeled parts, CIRP Ann Manuf Technol, 58, 189, 10.1016/j.cirp.2009.03.071

Kuo, 2016, Development of a precision surface polishing system for parts fabricated by fused deposition modeling, Mater Manuf Process, 31, 1113, 10.1080/10426914.2015.1090594

Wang, 2007, A model research for prototype warp deformation in the FDM process, Int J Adv Manuf Technol, 33, 1087, 10.1007/s00170-006-0556-9

Sahu, 2014, A study on dimensional accuracy of fused deposition modeling (FDM) processed parts using fuzzy logic, J Manuf Sci Prod, 13, 183

Kaveh, 2015, Optimization of the printing parameters affecting dimensional accuracy and internal cavity for HIPS material used in fused deposition modeling processes, J Mater Process Technol, 226, 280, 10.1016/j.jmatprotec.2015.07.012

Beniak, 2014, Accuracy of Rapid Prototyped models with using of FDM technology, Appl Mech Mater, 613, 390, 10.4028/www.scientific.net/AMM.613.390

Percoco, 2011, Validation study of an analytical model of FDM accuracy, DAAAM Int Sci B, 2011, 585

Polak, 2017, Determination of FDM printer settings with regard to geometrical accuracy, 28th Daaam Int Symp Intell Manuf Autom, 0561

Alsoufi, 2018, Surface roughness quality and dimensional accuracy—a comprehensive analysis of 100% infill printed parts fabricated by a personal/desktop cost-effective FDM 3D printer, Mater Sci Appl, 09, 11

Luis Pérez, 2002, Analysis of the surface roughness and dimensional accuracy capability of fused deposition modelling processes, Int J Prod Res, 40, 2865, 10.1080/00207540210146099

Guo, 2014, Research on the impacting factors of dimensional accuracy with silicone mold casting products based on FDM, Adv Mater Res, 912–914, 309, 10.4028/www.scientific.net/AMR.912-914.309

Boschetto, 2014, Accuracy prediction in fused deposition modeling, Int J Adv Manuf Technol, 73, 913, 10.1007/s00170-014-5886-4

Novakova-Marcincinova, 2013, Precision manufacturing process of parts realized by FDM rapid prototyping, Key Eng Mater, 581, 292, 10.4028/www.scientific.net/KEM.581.292

Minetola, 2018, A challenge for enhancing the dimensional accuracy of a low-cost 3D printer by means of self-replicated parts, Addit Manuf, 22, 256

Bansal, 2011

Sood, 2009, Improving dimensional accuracy of Fused Deposition Modelling processed part using grey Taguchi method, Mater Des, 30, 4243, 10.1016/j.matdes.2009.04.030

Ippolito, 1995, Benchmarking of rapid prototyping techniques in terms of dimensional accuracy and surface finish, CIRP Ann, 44, 157, 10.1016/S0007-8506(07)62296-3

Pennington, 2005, Significant factors in the dimensional accuracy of fused deposition modelling, Proc Inst Mech Eng Part E J Process Mech Eng, 219, 89, 10.1243/095440805X6964

Aliheidari, 2017, Fracture resistance measurement of fused deposition modeling 3D printed polymers, Polym Test, 60, 94, 10.1016/j.polymertesting.2017.03.016

Costa, 2017, Estimation of filament temperature and adhesion development in fused deposition techniques, J Mater Process Technol, 245, 167, 10.1016/j.jmatprotec.2017.02.026

Spoerk, 2018, Effect of the printing bed temperature on the adhesion of parts produced by fused filament fabrication, Plast Rubber Compos, 47, 17, 10.1080/14658011.2017.1399531

Chakraborty, 2008, Extruder path generation for curved layer fused deposition modeling, CAD Comput Aided Des, 40, 235, 10.1016/j.cad.2007.10.014

Bellini, 2003, Mechanical characterization of parts fabricated using fused deposition modeling, Rapid Prototyp J, 9, 252, 10.1108/13552540310489631

Li, 2002, Composite modeling and analysis for fabrication of FDM prototypes with locally controlled properties, J Manuf Process, 4, 129, 10.1016/S1526-6125(02)70139-4

Li, 2001, 25. Composite modeling and analysis of FDM prototypes for design and fabrication of functionally graded parts, Solid Free Fabr Proc, 187

Sun, 2008, Effect of processing conditions on the bonding quality of FDM polymer filaments, Rapid Prototyp J, 14, 72, 10.1108/13552540810862028

Bellehumeur, 2004, Modeling of bond formation between polymer filaments in the fused deposition modeling process, J Manuf Process, 6, 170, 10.1016/S1526-6125(04)70071-7

Coogan, 2017, Bond and part strength in fused deposition modeling, Rapid Prototyp J, 23, 10.1108/RPJ-03-2016-0050

Singh, 2019, 3D printing of polyether-ether-ketone for biomedical applications, Eur Polym J, 114, 234, 10.1016/j.eurpolymj.2019.02.035

Singh, 2019, Plasma treatment of polyether-ether-ketone: a means of obtaining desirable biomedical characteristics, Eur Polym J, 118, 561, 10.1016/j.eurpolymj.2019.06.030

Carneiro, 2015, Fused deposition modeling with polypropylene, Mater Des, 83, 768, 10.1016/j.matdes.2015.06.053

Kantaros, 2013, Fiber Bragg grating based investigation of residual strains in ABS parts fabricated by fused deposition modeling process, Mater Des, 50, 44, 10.1016/j.matdes.2013.02.067

Casavola, 2018, Influence of printing constraints on residual stresses of FDM parts. InResidual Stress Thermomechanics Infrared Imaging, Hybrid Tech Inverse Probl, 8, 121

Casavola, 2019, The Effect of Chamber Temperature on Residual Stresses of FDM Parts. Residual Stress Thermomechanics Infrared Imaging, Hybrid Tech Inverse Probl, 7, 87

Kuo, 2019, Minimizing warpage of ABS prototypes built with low-cost fused deposition modeling machine using developed closed-chamber and optimal process parameters, Int J Adv Manuf Technol, 101, 593, 10.1007/s00170-018-2969-7

Webbe Kerekes, 2019, Characterization of process–deformation/damage property relationship of fused deposition modeling (FDM) 3D-printed specimens, Addit Manuf, 25, 532

Zhang, 2008, A parametric study of part distortions in fused deposition modelling using three-dimensional finite element analysis, Proc Inst Mech Eng Part B J Eng Manuf, 222, 959, 10.1243/09544054JEM990

Peng, 2014, Process parameter optimization for fused deposition modeling using response surface methodology combined with fuzzy inference system, Int J Adv Manuf Technol, 73, 87, 10.1007/s00170-014-5796-5

Xia, 2019, A numerical study of the effect of viscoelastic stresses in fused filament fabrication, Comput Methods Appl Mech Eng, 346, 242, 10.1016/j.cma.2018.11.031

Monitoring, 2019, In-situ monitoring and diagnosing for fused, Sensors, 19, 1

Cattenone, 2018, Finite element analysis of additive manufacturing based on fused deposition modeling: distortions prediction and comparison with experimental data, J Manuf Sci Eng, 141

D’Amico, 2019, Micromechanical modeling of irreversible thermal strain, Addit Manuf, 27, 91

Armillotta, 2019, Simulation of edge quality in fused deposition modeling, Rapid Prototyp J, 25, 541, 10.1108/RPJ-06-2018-0151

Li, 2019, In-situ monitoring of the deformation during fused deposition modeling process using CGS method, Polym Test, 76, 166, 10.1016/j.polymertesting.2019.03.030

Li, 2019, Real-time distortion monitoring during fused deposition modeling via acoustic emission, Struct Heal Monit

Miao, 2019, Cyber-physical system for thermal stress prevention in 3D printing process, Int J Adv Manuf Technol, 100, 553, 10.1007/s00170-018-2667-5

Casavola, 2017, Residual stress measurement in fused deposition modelling parts, Polym Test, 58, 249, 10.1016/j.polymertesting.2017.01.003

Grieser, 2016

Flynt, 2019

Whitwam, 2017

Huang, 2014, Adaptive slicing and speed-and time-dependent consolidation mechanisms in fused deposition modeling, Proc Inst Mech Eng Part B J Eng Manuf, 228, 111, 10.1177/0954405413497474

Heij, 2016

Arnitel, 2016

Žarko, 2017, Influence of printing speed on production of embossing tools using FDM 3d printing technology, J Graph Eng Des, 8, 19, 10.24867/JGED-2017-1-019

Geng, 2019, Effects of extrusion speed and printing speed on the 3D printing stability of extruded PEEK filament, J Manuf Process, 37, 266, 10.1016/j.jmapro.2018.11.023

Christiyan, 2016, A study on the influence of process parameters on the mechanical properties of 3D printed ABS composite, IOP Conf Ser Mater Sci Eng, 114

Dimitrov, 2006, Advances in three dimensional printing - state of the art and future perspectives, Rapid Prototyp J, 12, 136, 10.1108/13552540610670717

Maidin, 2015, Feasibility study of ultrasonic frequency application on fdm to improve parts surface finish, J Teknol, 77, 27

Keleş, 2018, Mechanical reliability of short carbon fiber reinforced ABS produced via vibration assisted fused deposition modeling, Rapid Prototyp J, 24, 1572, 10.1108/RPJ-12-2017-0247

Tofangchi, 2019, Effect of ultrasonic vibration on interlayer adhesion in fused filament fabrication 3D printed ABS, Polymers (Basel), 11, 315, 10.3390/polym11020315

Maidin, 2018, Effect of multiple piezoelectric transducer on fused deposition modeling to improve parts surface finish, J Adv Manuf Technol, 12, 101

Du, 2016, An improved fused deposition modeling process for forming large-size thin-walled parts, J Mater Process Technol, 234, 332, 10.1016/j.jmatprotec.2016.04.005

Maidin, 2018, Feasibility study of vacuum technology integrated fused deposition modeling to reduce staircase effect, J Fundam Appl Sci, 13

Lee, 2014, Electric poling-assisted additive manufacturing process for PVDF polymer-based piezoelectric device applications, Smart Mater Struct, 23

Zhang, 2016, 3D printing of high-resolution PLA-based structures by hybrid electrohydrodynamic and fused deposition modeling techniques, J Micromech Microeng, 26

Medellin-Castillo, 2019, Design and manufacturing strategies for fused deposition modelling in additive manufacturing: a review, Chin J Mech Eng, 32, 53, 10.1186/s10033-019-0368-0

Gao, 2015, The status, challenges, and future of additive manufacturing in engineering, CAD Comput Aided Des, 69, 65, 10.1016/j.cad.2015.04.001

Khorram Niaki, 2017, Additive manufacturing management: a review and future research agenda, Int J Prod Res, 55, 1419, 10.1080/00207543.2016.1229064