Additive manufacturing methods and modelling approaches: a critical review

The International Journal of Advanced Manufacturing Technology - Tập 83 Số 1-4 - Trang 389-405 - 2016
Harry Bikas1, Panagiotis Stavropoulos1, George Chryssolouris1
1Laboratory for Manufacturing Systems and Automation, Department of Mechanical Engineering and Aeronautics, University of Patras, Patras 265 00, Greece

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ASTM Standard. Standard terminology for additive manufacturing technologies, vol. 10.04

Gartner AM report. Information on http://www.gartner.com/document/2598122 Accessed 16 June 2014

AM Platform: Additive Manufacturing Strategic Research Agenda: Release 2014. Available online http://www.rm-platform.com/linkdoc/AM%20SRA%20-%20February%202014.pdf Access 5 Mar 2015

Wohlers TT (2014) Wohlers report 2014: additive manufacturing and 3D printing state of the industry: annual worldwide progress report. Fort Collins, Wohlers Associates

Wohlers TT (2013) Wohlers report 2013: additive manufacturing and 3D printing state of the industry: annual worldwide progress report. Fort Collins, Wohlers Associates

Wohlers TT (2012) Wohlers report 2012: additive manufacturing and 3D printing state of the industry: annual worldwide progress report. Fort Collins, Wohlers Associates

Kruth JP, Levy G, Klocke F, Childs THC (2007) Consolidation phenomena in laser and powder-bed based layered manufacturing. CIRP Ann Manuf Technol 56(2):730–759

Pham DT, Dimov SS (2001) Rapid manufacturing, Springer-Verlag, p 6

Woesz A (2010) Rapid prototyping to produce porous scaffolds with controlled architecture for possible use in bone tissue engineering. Virtual Prototyp Bio Manuf Med Appl 171–206

3DSystems SLA production series brochure, Information on http://www.3dsystems.com/sites/www.3dsystems.com/files/sla-series-0514-usen-web.pdf Accessed 3 May 2015

Salonitis K, Tsoukantas G, Stavropoulos P, Stournaras A (2003) A critical review of stereolithography process modeling, (VRAP 03), 3rd International Conference on Advanced Research in Virtual and Rapid Prototyping, Leiria, pp 377–384

Gebhardt IA (2003) Rapid prototyping: industrial rapid prototyping system: prototyper: solid ground curing, Cubital, pp. 105–109

Dahotre NB, Harimkar S (2008) Laser fabrication and machining of materials, Springer

Kruth JP (1991) Material incress manufacturing by rapid prototyping techniques. Keynote Paper, CIRP Ann - Manuf Technol 40(2):603–614

Castoro M (2013) Impact of laser power and build orientation on the mechanical properties of selectively laser sintered parts. Proceedings of The National Conference on Undergraduate Research (NCUR). University of Wisconsin La Crosse, WI

3DSystems SLS production series brochure, Information on http://www.3dsystems.com/sites/www.3dsystems.com/files/sls-series-0214-usen-web_1.pdf Accessed 23 Apr 2015

Chryssolouris G (2005) Manufacturing systems: theory and practice, 2nd edn. Springer, New York

Khaing MW, Fuh JYH, Lu L (2001) Direct metal laser sintering for rapid tooling: processing and characterization of EOS parts. J Mater Process Technol 113:269–272

Vilar R (2014) Laser powder deposition. comprehensive materials processing 2014. Adv Addit Manuf Tooling 10:163–216

Ready for Printing - 3D Printing at Siemens video. Information on http://youtu.be/VyEgbyNg0Q8?t=3m46s Accessed 16 June 2014

Liu J, Li L (2004) In-time motion adjustment in laser cladding manufacturing process for improving dimensional accuracy and surface finish of the formed part. Optics Laser Technol 36:477–483

Cesarano J, King BH, Denham HB (1998) Recent developments in robocasting of ceramics and multimaterial deposition, Proceedings of the 9th Solid Feeeform Fabricatuion Symposium, pp 697–704

Pandremenos J, Paralikas J, Chryssolouris G, Dybala B, Gunnink JW (2008) RM product development: design principles, simulation and tool. International Conference on Additive Technologies, Ptuj

Wong KV, Hernandez A (2012) A review of additive manufacturing. Int Sch Res Netw Mech Eng 2012:1–10

Chryssolouris G et al Deliverable D.2.2.2—development of an analytical model. Research project “Flexible Assembly and Manufacturing Engineering (FLAME)” funded by Greek Secretariat for Research and Technology (GSRT)

Reeves PE, Cobb RC (1997) Surface roughness investigation of Stereolithography ACES components. Proceedings of the Second National Conference on Rapid Prototyping and Tooling Research, pp 17–26

Flach L, Chartoff RP (1994) A simple polymer shrinkage model applied to stereolithography. Proceedings of the Solid Freeform Fabrication Symposium, pp 225–233

Flach L, Chartoff RP (1992) Stereolithography process modelling – a step towards intelligent process control. Proceedings of the Third International Conference on Rapid Prototyping, pp 141–147

Jelley C, Thompson CP The development and application of a Stereolithography build simulator. Proceedings of the First National Conference on RP & Tooling Research

Jacobs PF (1992) Fundamentals of stereolithography. Proceedings of the Solid Freeform Fabrication Symposium, pp 196–211

Chen C, Sullivan P (1996) Predicting total build-time and the resultant cure depth of the 3D stereolithography process. Rapid Prototyp J 2(4):27–40

Kechagias J, Anagnostopoulos V, Zervos S, Chryssolouris G (1997) Estimation of build times in rapid prototyping processes. 6th European Conference on Rapid Prototyping & Manufacturing, Nottingham, pp 137–148

Chryssolouris G, Kechagias JD, Kotselis JL, Mourtzis DA, Zannis SG Surface roughness modelling of the Helisys laminated object manufacturing (LOM) Process. 8th European Conference on Rapid Prototyping and Manufacturing, Nottingham, pp 141–152

West AP, Sambu SP, Rosen DW (2001) A process planning method for improving build performance in stereolithography. J Comput-Aided Des 33:65–79

Podshivalovab L, Gomesc CM, Zoccac A, Guensterc J, Yosephb PB, Fischerb A (2013) Design, analysis and additive manufacturing of porous structures for biocompatible micro-scale scaffolds. Procedia CIRP 5:247–252

Schaub DA, Chu K, Montgomery DC (1997) Optimizing stereolithography throughput. J Manuf Syst 16(4):290–303

Lan PT, Chou SY, Chen LL, Gemmill D (1997) Determining fabrication orientations for rapid prototyping with stereolithography apparatus. J Comput-Aided Des 29(1):53–62

Pang TH (1995) Accuracy of stereolithography parts: mechanism and models of distortion for a letter-H diagnostic part. Proceedings of the Solid Free Form Fabrication Symposium, pp 170–180

Onuh SO, Hon KKB (1998) Optimizing build parameters for improved surface finish in stereolithography. J Mach Tools Manuf 38(4):329–392

CarosiA, Pocci D, Luluiano L, Settimeri L (1996) Investigation on stereolithography accuracy on both solid and QuickCast parts. Proceedings of the 5th European Conference on Rapid Prototyping and Manufacturing

Lynn CM, West A, Rosen DW (1998) A process planning method and data format for achieving tolerances in stereolithography. Proceedings of Solid Freeform Fabrication Symposium

Lynn CC, Rosen DW (2000) Usage of accuracy models in stereolithography process planning. Rapid Prototyp J 6(2):77–86

Rahmati S, Dickens PM (1995) Stereolithography process improvement. Proceedings of the First National Conference on Rapid Prototyping and Tooling Research, pp 111–126

Wang WL, Cheah CM, Fuh JYH, Lu L (1996) Influence of process parameters on stereolithography part shrinkage. J Mater Des 17:205–213

Karalekas D, Aggelopoulos A (2003) Study of shrinkage strains in a stereolithography cured acrylic photopolymer resin. J Mater Process Technol 6590:1–5

Narahara H, Tamaka F, Kishimani T, Igarashi S, Saito K (1999) Reaction heat effects on initial linear shrinkage and deformation in stereolithography. Rapid Prototyp J 5(3):120–128

Zhou JG, Herscovici D, Chen CC (2000) Parametric process optimization to improve the accuracy of rapid prototyped stereolithography parts. J Mach Tools Manuf 40:363–379

Cho HS, Park WS, Choi BW, Leu MC (2000) Determining optimal parameters for stereolithography process via genetic algorithm. J Manuf Syst 19(1):18–27

Reeves PE, Cobb RC (1997) Reducing the surface deviation of stereolithography using in-process techniques. Rapid Prototyp J 3(1):20–31

Wang XC, Kruth JP (2000) A simulation model for direct selective laser sintering of metal powders. Computational Techniques for Materials, Composites and Composite Structures, Civil-Comp, Edinburgh, pp 57–71

Chen T, Zhang Y (2004) Numerical simulation of two-dimensional melting and resolidification of a two-component metal powder layer in selective laser sintering process. Numer Heat Tran Part A 46:633–649

Hu D, Kovacevic R (2003) Sensing, modeling and control for laser-based additive manufacturing. Int J Mach Tools Manuf 43(1):51–60

Dong L, Makradi A, Ahzi S, Remond Y (2009) Three-dimensional transient finite element analysis of the selective laser sintering process. J Mater Process Technol 209(2):700–706

Chen T, Zhang Y (2006) A partial shrinkage model for selective laser sintering of a two-component metal powder layer. Int J Heat Mass Transf 49:1489–1492

Toyserkani E, Khajepour A, Corbin S (2004) 3-D finite element modeling of laser cladding by powder injection: effects of laser pulse shaping on the process. Opt Lasers Eng 41:849–867

Muller P, Mognol P, Hascoet JY (2013) Modeling and control of a direct laser powder deposition process for functionally graded materials (FGM) parts manufacturing. J Mater Process Technol 213(5):685–692

Crockett RS, Calvert PD (1996) The liquid-to-solid transition in stereodeposition techniques. In: Solid freeform fabrication proceedings. University of Texas at Austin, Austin, pp 257–264

Anitha R, Arunachalam S, Radhakrishan P (2001) Critical parameters influencing the quality if prototypes in fused deposition modeling. J Mater Process Technol 118(1–3):385–388

Raghunath N, Pandey PM (2007) Improving accuracy through shrinkage modelling by using Taguchi method in selective laser sintering. Int J Mach Tools Manuf 47:985–995

Michaleris P (2014) Modeling metal deposition in heat transfer analyses of additive manufacturing processes. Finite Elem Anal Des 86:51–60

Strano G, Hao L, Everson RM, Evans KE (2013) Surface roughness analysis, modelling and prediction in selective laser melting. J Mater Process Technol 213(4):589–597

Fan Z, Liou F (2012) Numerical modeling of the additive manufacturing (AM) processes of titanium alloy, from “Titanium Alloys—Towards Achieving Enhanced Properties for Diversified Applications”. InTech, Missouri University of Science and Technology

Matsumoto M, Shiomi M, Osakada K, Abe F (2002) Finite element analysis of single layer forming on metallic powder bed in rapid prototyping by selective laser processing. Int J Mach Tools Manuf 42(1):61–67

Vasinonta A, Beuth J, Griffith M (2000) Process maps for controlling residual stress and melt pool size in laser-based SFF processes. In Solid Freeform Fabrication Proceedings, University of Texas at Austin, Austin, pp 200–208

Curodeau A (1995) Three dimensional printing of ceramic molds with accurate surface macro-textures for investment casting of orthopaedic implants. Thesis (Ph. D.)-Massachusetts Institute of Technology, Dept. of Mechanical Engineering

Crespo A, Deus AM, Vilar R (2006) Finite element analysis of laser powder deposition of titanium. Proceedings of ICALEO 2006, Scottsdale, Arizona, Laser Institute of America, Orlando, Florida, pp 1016–1021

Costa L, Deus AM, Reti T, Vilar R (2002) Simulation of layer overlap tempering in steel parts produced by laser cladding. Proceedings of the RPD 2002, Marinha Grande

Bellini A, Güçeri S, Bertoldi M (2004) Liquefier dynamics in fused deposition. J Manuf Sci Eng Trans ASME 126:237–246

Venkataraman N, Rangarajan S, Matthewson MJ, Harper B, Safari A, Danforth SC, Wu G, Langrana N, Guceri S, Yardimci A (2002) Feedstock material property-process relationships in fused deposition of ceramics (FDC). Rapid Prototyp J 6:244–252

Yardimci MA, Hattori T, Guceri SI, Danforth SC (1997) Thermal analysis of fused deposition. In: Solid freeform fabrication proceedings. University of Texas at Austin, Austin

Agarwala MK, Jamalabad VR, Langrana NA, Safari A, Whalen PJ, Danforth SC (1996) Structural quality of parts processed by fused deposition. Rapid Prototyp J 2:4–19

Ramanath HS, Chua CK, Leong KF, Shah KD (2008) Melt flow behaviour of poly-epsilon-caprolactone in fused deposition modeling. J Mater Sci-Mater Med 19:2541–2550

Zhang Y, Chou YK (2006) Three-dimensional finite element analysis simulations of the fused deposition modelling process. J Eng Manuf 220(10):1663–1671

Zhang Y, Chou YK (2008) A parameter study of part distortions in FDM using 3D FEA. J Eng Manuf 222:959–967

Mostafa N, Syed HM, Igor S, Andrew G (2009) A study of melt flow analysis of an ABS-iron composite in fused deposition modelling process. Tsinghua Sci Technol 14:29–37

Ji LB, Zhou TR (2010) Finite element simulation of temperature field in fused deposition modeling. Manuf Sci Eng 97/101:2585–2588

Martínez J, Diéguez JL, Ares E, Pereira A, Hernández P, Pérez JA (2013) Comparative between FEM models for FDM parts and their approach to a real mechanical behaviour. Procedia Eng 63:878–884

Nikzad M, Hasan Masood S, Sbarski I, Groth A (2009) Thermo-mechanical properties of a highly filled polymeric composites for fused deposition modeling. Tsinghua Sci Technol 14:29–37

Venkataraman N, Rangarajan S, Matthewson MJ, Safari A, DanforthSC, Yardimci A (1999) Mechanical and rheological properties of feedstock material for fused deposition of ceramics and metals (FDC and FDMet) and their relationship to process performance. In Solid Freeform Fabrication Proceedings, University of Texas at Austin, Austin, pp 351–360

Sood AK, Ohdar RK, Mahapatra SS (2012) Experimental investigation and empirical modelling of FDM process for compressive strength improvement. J Adv Res 3(1):81–90

Jee HJ, Sachs E (2000) A visual simulation technique for 3D printing. Adv Eng Softw 31:97–106

Sachs E, Vezzetti E (2005) Numerical simulation of deposition process for a new 3DP printhead design. J Mater Process Technol 161:509–515

Gockel J, Beuth J, Taminger K (2014) Integrated control of solidification microstructure and melt pool dimensionsin electron beam wire feed additive manufacturing of Ti-6Al-4V. Addit Manuf 1–4:119–126

Shen N, Chou K (2012) Numerical thermal analysis in electron beam additive manufacturing with preheating effects. Proceedings of the 23rd annual international solid freeform fabrication symposium, pp 774–784

Shen N, Chou YK (2012) Thermal modeling of electron beam additive manufacturing process—powder sintering effects. Proc. the 7th ASME 2012 International Manufacturing Science and Engineering Conference, pp 287–295

Markl M, Ammer R, Ljungblad U, Ruede U, Koerner C (2013) Electron beam absorption algorithms for electron beam melting processes simulated by a three–dimensional thermal free surface lattice Boltzmann method in a distributed and parallel environment. Procedia Comput Sci 18:2127–2136

Ammer R, Markl M, Ljungblad U, Koerner C, Rόde U (2014) Simulating fast electron beam melting with a parallel thermal free surface lattice Boltzmann method. Comput Math Appl 67(2):318–330

Chryssolouris G, Kotselis J, Koutzampoikidis P, Zannis S, Mourtzis D (1999) Dimensional accuracy modeling of stereolithography parts, 32nd CIRP International Seminar on Manufacturing Systems, Leuven, pp 213–218

Wiedemann B, Dusel KH, Eschl J (1995) Influence of the polymerization dynamics of stereolithography resins on accuracy. Proceeding of the 6th International Conference on RP University of Dayton, Ohio

NaraharaH, Tamaka F, Kishimani T, Igarashi S, Saito K (1997) Reaction heat effect on initial linear shrinkage of stereolithography resins. Proceedings of Solid Freeform Fabrication Symposium, pp 733–740

Giannatsis J, Deboussis V, Laios L (2001) A study of the build-time estimation problem for stereolithography systems. Robot Comput Integr Manuf 17:295–304

Liu FR, Zhang Q, Zhou WP, Zhao JJ, Chen JM (2012) Micro scale 3D FEM simulation on thermal evolution within the porous structure in selective laser sintering. J Mater Process Technol 212(10):2058–2065

Khairallah SA, Anderson A (2014) Mesoscopic simulation model of selective laser melting of stainless steel powder. J Mater Process Technol 214(11):2627–2636

Kolossov S, Boillat E, Glardon R, Fischer P, Locher M (2004) 3D FE simulation for temperature evolution in the selective laser sintering process. Int J Mach Tools Manuf 44(2–3):117–123

Costa L, Vilar R, Reti T, Deus AM (2005) Rapid tooling by laser powder deposition: process simulation using finite element analysis. Acta Mater 53:3987–3999

Stavropoulos P, Chantzis D, Doukas C, Papacharalampopoulos A, Chryssolouris G (2013) Monitoring and control of manufacturing processes: a review. Procedia CIRP, 14th CIRP Conference on Modelling of Machining Operations, Turin

Yu C, Smurov I (2010) On-line temperature monitoring in selective laser sintering/melting. Phys Procedia Part B 5:515–521

Kwon KS, Choi YS, Lee DY, Kim JS, Kim DS (2012) Low-cost and high speed monitoring system for a multi-nozzle piezo inkjet head. Sensors Actuators A 180:154–165