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2020 | OriginalPaper | Chapter

1. Introduction

Author : Sanjay Kumar

Published in: Additive Manufacturing Processes

Publisher: Springer International Publishing

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Abstract

Additive manufacturing (AM), a concept existing for the last 10,000 years, is defined and positioned among other manufacturing processes. The role of tools to separate processes is given. Its main difference from machining is highlighted, and the relation between its complexity and cost is visited. It is classified into two major categories: additive layer manufacturing and additive non-layer manufacturing. Various AM processes are summarized with few lines each, which will provide a quick glimpse into all AM processes. The roles of various processes in processing metals, ceramics, polymers, composites and functionally graded materials are succinctly mentioned.

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Literature
go back to reference ASTM F2792-12a (2012) Standard terminology for additive manufacturing technologies (withdrawn 2015). ASTM International, West Conschohocken ASTM F2792-12a (2012) Standard terminology for additive manufacturing technologies (withdrawn 2015). ASTM International, West Conschohocken
go back to reference Baumers M, Tuck C, Hague R (2015) Selective heat sintering versus laser sintering: comparison of deposition rate, process energy consumption and cost performance. In: SFF proceedings, pp 109–121 Baumers M, Tuck C, Hague R (2015) Selective heat sintering versus laser sintering: comparison of deposition rate, process energy consumption and cost performance. In: SFF proceedings, pp 109–121
go back to reference Bourell DL, Beaman JJ (2003) Chronology and current processes for freeform fabrication. J Jpn Soc Powder Metall 50(11):981–991CrossRef Bourell DL, Beaman JJ (2003) Chronology and current processes for freeform fabrication. J Jpn Soc Powder Metall 50(11):981–991CrossRef
go back to reference Boyle BM, Xiong PT, Mensch TE et al (2019) 3D printing using powder melt extrusion. Addit Manuf 29:100811 Boyle BM, Xiong PT, Mensch TE et al (2019) 3D printing using powder melt extrusion. Addit Manuf 29:100811
go back to reference Brenken B, Barocio E, Favaloro A et al (2018) Fused filament fabrication of fiber-reinforced polymers: a review. Addit Manuf 21:1–16 Brenken B, Barocio E, Favaloro A et al (2018) Fused filament fabrication of fiber-reinforced polymers: a review. Addit Manuf 21:1–16
go back to reference Brown R, Morgan CT, Majweski CE (2018) Not just nylon—improving the range of materials for high speed sintering. In: SFF proceedings, pp 1487–1498 Brown R, Morgan CT, Majweski CE (2018) Not just nylon—improving the range of materials for high speed sintering. In: SFF proceedings, pp 1487–1498
go back to reference Bryant FD, Sui G, Leu MC (2003) A study on effects of process parameters in rapid freeze prototyping. Rapid Prototyp J 9(1):19–23CrossRef Bryant FD, Sui G, Leu MC (2003) A study on effects of process parameters in rapid freeze prototyping. Rapid Prototyp J 9(1):19–23CrossRef
go back to reference Buls S, Vleugels J, Hooreweder BV (2018) Microwave assisted selective laser melting of technical ceramics. In: SFF proceedings, pp 2349–2357 Buls S, Vleugels J, Hooreweder BV (2018) Microwave assisted selective laser melting of technical ceramics. In: SFF proceedings, pp 2349–2357
go back to reference Button ST (2014) Introduction to advanced forming technologies. Compr Mater Process 3:1–5. Elsevier Button ST (2014) Introduction to advanced forming technologies. Compr Mater Process 3:1–5. Elsevier
go back to reference Camacho DD, Clayton P, O’Brien WJ et al (2018) Applications of additive manufacturing in the construction industry- a forward-looking view. Autom Constr 89:110–119CrossRef Camacho DD, Clayton P, O’Brien WJ et al (2018) Applications of additive manufacturing in the construction industry- a forward-looking view. Autom Constr 89:110–119CrossRef
go back to reference Chao Y, Qi L, Xiao Y et al (2012) Manufacturing of micro thin-walled metal parts by micro-droplet deposition. J Mater Process Technol 212(2):484–491CrossRef Chao Y, Qi L, Xiao Y et al (2012) Manufacturing of micro thin-walled metal parts by micro-droplet deposition. J Mater Process Technol 212(2):484–491CrossRef
go back to reference Chen Y, Zhou C, Lao J (2011) A layerless additive manufacturing process based on CNC accumulation. Rapid Prototyp J 17(3):218–227CrossRef Chen Y, Zhou C, Lao J (2011) A layerless additive manufacturing process based on CNC accumulation. Rapid Prototyp J 17(3):218–227CrossRef
go back to reference Cordero ZC, Meyer HM III, Nandwana P, Dehoff RR (2017) Powder bed charging during electron-beam additive manufacturing. Acta Mater 124:437–445CrossRef Cordero ZC, Meyer HM III, Nandwana P, Dehoff RR (2017) Powder bed charging during electron-beam additive manufacturing. Acta Mater 124:437–445CrossRef
go back to reference Cunningham CR, Flynn JM, Shokrani A et al (2018) Invited review article: strategies and processes for high quality wire arc additive manufacturing. Addit Manuf 22:672–686 Cunningham CR, Flynn JM, Shokrani A et al (2018) Invited review article: strategies and processes for high quality wire arc additive manufacturing. Addit Manuf 22:672–686
go back to reference Derby B (2015) Additive manufacturing of ceramic components by ink jet printing. Engineering 1(1):113–123CrossRef Derby B (2015) Additive manufacturing of ceramic components by ink jet printing. Engineering 1(1):113–123CrossRef
go back to reference Dutt S, Gupta AK, Singh M et al (2019) Climate variability and evolution of the Indus civilization. Quat Int 507:15–23CrossRef Dutt S, Gupta AK, Singh M et al (2019) Climate variability and evolution of the Indus civilization. Quat Int 507:15–23CrossRef
go back to reference Enneti RK, Prough KC, Wolfe TA et al (2018) Sintering of WC-12%Co processed by binder jet 3D printing (BJ3DP) technology. Int J Refract Met Hard Mater 71:28–35CrossRef Enneti RK, Prough KC, Wolfe TA et al (2018) Sintering of WC-12%Co processed by binder jet 3D printing (BJ3DP) technology. Int J Refract Met Hard Mater 71:28–35CrossRef
go back to reference Feng Y, Zhan B, He J, Wang K (2018) The double-wire feed and plasma arc additive manufacturing process for deposition in Cr-Ni stainless steel. J Mater Process Technol 259:206–215CrossRef Feng Y, Zhan B, He J, Wang K (2018) The double-wire feed and plasma arc additive manufacturing process for deposition in Cr-Ni stainless steel. J Mater Process Technol 259:206–215CrossRef
go back to reference Fox J, Beuth J (2013) Process mapping of transient melt pool response in wire feed e-beam additive manufacturing of Ti-6Al-4V. In: SFF proceedings, pp 675–683 Fox J, Beuth J (2013) Process mapping of transient melt pool response in wire feed e-beam additive manufacturing of Ti-6Al-4V. In: SFF proceedings, pp 675–683
go back to reference Friedman T (2013) When complexity is free. The New York Times Friedman T (2013) When complexity is free. The New York Times
go back to reference Gallet Y, Genevey A, Goff ML et al (2006) Possible impact of the Earth’s magnetic field on the history of ancient civilizations. Earth Planet Sci Lett 246(1–2):17–26CrossRef Gallet Y, Genevey A, Goff ML et al (2006) Possible impact of the Earth’s magnetic field on the history of ancient civilizations. Earth Planet Sci Lett 246(1–2):17–26CrossRef
go back to reference Goh GL, Agarwala S, Tan YJ, Yeong WY (2018) A low cost and flexible carbon nanotube pH sensor fabricated using aerosol jet technology for live cell applications. Sensors Actuators B Chem 260:227–235CrossRef Goh GL, Agarwala S, Tan YJ, Yeong WY (2018) A low cost and flexible carbon nanotube pH sensor fabricated using aerosol jet technology for live cell applications. Sensors Actuators B Chem 260:227–235CrossRef
go back to reference Gong X, Anderson T, Chou K (2014) Review on powder-based electron beam additive manufacturing technology. Manuf Rev 1(2):1–12 Gong X, Anderson T, Chou K (2014) Review on powder-based electron beam additive manufacturing technology. Manuf Rev 1(2):1–12
go back to reference Grasso M, Colosimo BM (2017) Process defects and insitu monitoring methods in metal powder bed fusion: a review. Meas Sci Technol 28:044005CrossRef Grasso M, Colosimo BM (2017) Process defects and insitu monitoring methods in metal powder bed fusion: a review. Meas Sci Technol 28:044005CrossRef
go back to reference Hafkamp T, Baars GV, Jager BD, Etman P (2017) A trade-off analysis of recoating methods for vat photopolymerization of ceramics. In: SFF proceedings, vol 28, pp 687–711 Hafkamp T, Baars GV, Jager BD, Etman P (2017) A trade-off analysis of recoating methods for vat photopolymerization of ceramics. In: SFF proceedings, vol 28, pp 687–711
go back to reference Hagen D, Kovar D, Beaman JJ (2018) Effects of electric field on selective laser sintering of yttria-stabilized zirconia ceramic powder. In: SFF symposium proceedings, pp 909–913 Hagen D, Kovar D, Beaman JJ (2018) Effects of electric field on selective laser sintering of yttria-stabilized zirconia ceramic powder. In: SFF symposium proceedings, pp 909–913
go back to reference Hagen D, Chen A, Beaman JJ, Kovar D (2019) Selective laser flash sintering of yttria-stabilized zirconia. In: SFF symposium proceedings Hagen D, Chen A, Beaman JJ, Kovar D (2019) Selective laser flash sintering of yttria-stabilized zirconia. In: SFF symposium proceedings
go back to reference Harrer W, Schwentenwein M, Lube T, Danzer R (2017) Fractography of zirconia-specimens made using additive manufacturing (LCM) technology. J Eur Ceram Soc 37:4331–4338CrossRef Harrer W, Schwentenwein M, Lube T, Danzer R (2017) Fractography of zirconia-specimens made using additive manufacturing (LCM) technology. J Eur Ceram Soc 37:4331–4338CrossRef
go back to reference Hartmann D (2015) Complexity is free. Lulu Publishing Services Hartmann D (2015) Complexity is free. Lulu Publishing Services
go back to reference Holt N, Horn AV, Montazeri M, Zhou W (2018) Microheater array powder sintering: a novel additive manufacturing process. J Manuf Process 31:536–551CrossRef Holt N, Horn AV, Montazeri M, Zhou W (2018) Microheater array powder sintering: a novel additive manufacturing process. J Manuf Process 31:536–551CrossRef
go back to reference Janusziewicz R, Tumbleston JR, Quintanilla AL et al (2016) Layerless fabrication with continuous liquid interface production. PNAS 11(42):11703–11708CrossRef Janusziewicz R, Tumbleston JR, Quintanilla AL et al (2016) Layerless fabrication with continuous liquid interface production. PNAS 11(42):11703–11708CrossRef
go back to reference Jerby E, Meir Y, Salzberg A et al (2015) Incremental metal-powder solidification by localized microwave-heating and its potential for additive manufacturing. Addit Manuf 6:53–66 Jerby E, Meir Y, Salzberg A et al (2015) Incremental metal-powder solidification by localized microwave-heating and its potential for additive manufacturing. Addit Manuf 6:53–66
go back to reference Johannes SJ, Keicher DM, Lavin JM et al (2018) Multimaterial aerosol jet printing of passive circuit elements. In: SFF symposium proceedings, pp 473–478 Johannes SJ, Keicher DM, Lavin JM et al (2018) Multimaterial aerosol jet printing of passive circuit elements. In: SFF symposium proceedings, pp 473–478
go back to reference Kamraj A, Lewis S, Sundaram M (2016) Numerical study of localized electrochemical deposition for micro electrochemical additive manufacturing. Procedia CIRP 42:788–792CrossRef Kamraj A, Lewis S, Sundaram M (2016) Numerical study of localized electrochemical deposition for micro electrochemical additive manufacturing. Procedia CIRP 42:788–792CrossRef
go back to reference Karapatis NP, Van Griethuysen JPS, Glardon R (1998) Direct rapid tooling: a review of current research. Rapid Prototyp J 4(2):77–89CrossRef Karapatis NP, Van Griethuysen JPS, Glardon R (1998) Direct rapid tooling: a review of current research. Rapid Prototyp J 4(2):77–89CrossRef
go back to reference Kernan BD, Sachs EM, Oliveira MA, Cima MJ (2007) Three dimensional printing of tungsten carbide-10 wt % cobalt using a cobalt oxide precursor. Int J Refract Met Hard Mater 25:82–94CrossRef Kernan BD, Sachs EM, Oliveira MA, Cima MJ (2007) Three dimensional printing of tungsten carbide-10 wt % cobalt using a cobalt oxide precursor. Int J Refract Met Hard Mater 25:82–94CrossRef
go back to reference Khoshnevis B, Zhang J, Fateri M, Xiao Z (2014) Ceramics 3D printing by selective inhibition sintering. In: SFF proceedings, pp 163–169 Khoshnevis B, Zhang J, Fateri M, Xiao Z (2014) Ceramics 3D printing by selective inhibition sintering. In: SFF proceedings, pp 163–169
go back to reference Kirka M, Bansal R, Das S (2009) Recent progress on scanning laser epitaxy: a new technique for growing single crystal superalloys. In: SFF proceedings, pp 799–806 Kirka M, Bansal R, Das S (2009) Recent progress on scanning laser epitaxy: a new technique for growing single crystal superalloys. In: SFF proceedings, pp 799–806
go back to reference Korner C (2016) Additive manufacturing of metallic components by selective electron beam melting- a review. Int Mater Rev 61(5):361–377CrossRef Korner C (2016) Additive manufacturing of metallic components by selective electron beam melting- a review. Int Mater Rev 61(5):361–377CrossRef
go back to reference Kumar S (2003) Selective laser sintering-a qualitative and objective approach. JOM 55(10):43–47CrossRef Kumar S (2003) Selective laser sintering-a qualitative and objective approach. JOM 55(10):43–47CrossRef
go back to reference Kumar S (2014) Selective laser sintering/melting. Compr Mater Process 10:93–134CrossRef Kumar S (2014) Selective laser sintering/melting. Compr Mater Process 10:93–134CrossRef
go back to reference Kumar N, Jain PK, Tandon P, Pandey PM (2018) Investigation on the effects of process parameters in CNC assisted pellet based fused layer modeling process. J Manuf Process 35:428–436CrossRef Kumar N, Jain PK, Tandon P, Pandey PM (2018) Investigation on the effects of process parameters in CNC assisted pellet based fused layer modeling process. J Manuf Process 35:428–436CrossRef
go back to reference Kunchala P, Kappagantula K (2018) 3D printing high density ceramics using binder jetting with nanoparticle densifiers. Mater Des 155:443–450CrossRef Kunchala P, Kappagantula K (2018) 3D printing high density ceramics using binder jetting with nanoparticle densifiers. Mater Des 155:443–450CrossRef
go back to reference Lanceros-Méndez S, Costa CM (2018) Printed batteries: materials, technologies and applications. Wiley, HobokenCrossRef Lanceros-Méndez S, Costa CM (2018) Printed batteries: materials, technologies and applications. Wiley, HobokenCrossRef
go back to reference Lieberwirth C, Harder A, Seitz H (2017) Extrusion based additive manufacturing. J Mech Eng Autom 7:79–83 Lieberwirth C, Harder A, Seitz H (2017) Extrusion based additive manufacturing. J Mech Eng Autom 7:79–83
go back to reference Liu FH, Liao YS (2010) Fabrication of inner complex ceramic parts by selective laser gelling. J Eur Ceram Soc 30(16):3283–3289CrossRef Liu FH, Liao YS (2010) Fabrication of inner complex ceramic parts by selective laser gelling. J Eur Ceram Soc 30(16):3283–3289CrossRef
go back to reference Liu FH, Lee RT, Lin WH, Liao YS (2013) Selective laser sintering of bio-metal scaffold. Procedia CIRP 5:83–87CrossRef Liu FH, Lee RT, Lin WH, Liao YS (2013) Selective laser sintering of bio-metal scaffold. Procedia CIRP 5:83–87CrossRef
go back to reference Masood SH (2014) Advances in fused deposition modeling. Compr Mater Process 10:69–91CrossRef Masood SH (2014) Advances in fused deposition modeling. Compr Mater Process 10:69–91CrossRef
go back to reference Muhler T, Gomes C, Ascheri M et al (2015) Slurry-based powder beds for selective laser sintering of silicate ceramics. J Ceram Sci Technol 06(02):113–118 Muhler T, Gomes C, Ascheri M et al (2015) Slurry-based powder beds for selective laser sintering of silicate ceramics. J Ceram Sci Technol 06(02):113–118
go back to reference Nguyen AK, Narayan RJ (2017) Two-photon polymerization for biological applications. Mater Today 20(6):314–322CrossRef Nguyen AK, Narayan RJ (2017) Two-photon polymerization for biological applications. Mater Today 20(6):314–322CrossRef
go back to reference Niaki MK, Torabi SA, Nonino F (2019) Why manufacturers adopt additive manufacturing technologies: the role of sustainability. J Clean Prod 222:381–392CrossRef Niaki MK, Torabi SA, Nonino F (2019) Why manufacturers adopt additive manufacturing technologies: the role of sustainability. J Clean Prod 222:381–392CrossRef
go back to reference Niroumand H, Zain MFM, Jamil M, Niroumand S (2013) Earth architecture from ancient until today. Procedia Soc Behav Sci 89:222–225CrossRef Niroumand H, Zain MFM, Jamil M, Niroumand S (2013) Earth architecture from ancient until today. Procedia Soc Behav Sci 89:222–225CrossRef
go back to reference Pham CB, Leong KF, Lim TC, Chian KS (2008) Rapid freeze prototyping technique in bio-plotters for tissue scaffold fabrication. Rapid Prototyp J 14(4):246–253CrossRef Pham CB, Leong KF, Lim TC, Chian KS (2008) Rapid freeze prototyping technique in bio-plotters for tissue scaffold fabrication. Rapid Prototyp J 14(4):246–253CrossRef
go back to reference Ren X, Shao H, Lin T, Zheng H (2016) 3D gel-printing- an additive manufacturing method for producing complex shaped parts. Mater Des 101:80–87CrossRef Ren X, Shao H, Lin T, Zheng H (2016) 3D gel-printing- an additive manufacturing method for producing complex shaped parts. Mater Des 101:80–87CrossRef
go back to reference Roach RA, Bishop JE, Johnson K et al (2018) Using additive manufacturing as a pathway to change the qualification paradigm. In: SFF symposium proceedings, pp 3–13 Roach RA, Bishop JE, Johnson K et al (2018) Using additive manufacturing as a pathway to change the qualification paradigm. In: SFF symposium proceedings, pp 3–13
go back to reference Roschli A, Gaul KT, Boulger AM et al (2019) Designing for big area additive manufacturing. Addit Manuf 25:275–285 Roschli A, Gaul KT, Boulger AM et al (2019) Designing for big area additive manufacturing. Addit Manuf 25:275–285
go back to reference Rudraraju A, Das S (2009) Digital date processing strategies for large area maskless photopolymerization. In: SFF symposium proceedings, pp 299–307 Rudraraju A, Das S (2009) Digital date processing strategies for large area maskless photopolymerization. In: SFF symposium proceedings, pp 299–307
go back to reference Salonitis K (2014) Stereolithography. Compr Mat Process 10:19–67. ElsevierCrossRef Salonitis K (2014) Stereolithography. Compr Mat Process 10:19–67. ElsevierCrossRef
go back to reference Santoliquido O, Colombo P, Ortona A (2019) Additive manufacturing of ceramic components by digital light processing: a comparison between the “bottom-up” and the “top-down” approaches. J Eur Ceram Soc 39(6):2140–2148CrossRef Santoliquido O, Colombo P, Ortona A (2019) Additive manufacturing of ceramic components by digital light processing: a comparison between the “bottom-up” and the “top-down” approaches. J Eur Ceram Soc 39(6):2140–2148CrossRef
go back to reference Scheithauer U, Potschke J, Weingarten S et al (2017) Droplet-based additive manufacturing of hard metal components by thermoplastic 3D printing (T3DP). J Ceram Sci Technol 8(1):155–160 Scheithauer U, Potschke J, Weingarten S et al (2017) Droplet-based additive manufacturing of hard metal components by thermoplastic 3D printing (T3DP). J Ceram Sci Technol 8(1):155–160
go back to reference Schwarzer E, Götz M, Markova D et al (2017) Lithography-based ceramic manufacturing (LCM) – viscosity and cleaning as two quality influencing steps in the process chain of printing green parts. J Eur Ceram Soc 37(16):5329–5338CrossRef Schwarzer E, Götz M, Markova D et al (2017) Lithography-based ceramic manufacturing (LCM) – viscosity and cleaning as two quality influencing steps in the process chain of printing green parts. J Eur Ceram Soc 37(16):5329–5338CrossRef
go back to reference Sillani F, Kleijnen RG, Vetterli M et al (2019) Selective laser sintering and multi jet fusion: process-induced modification of the raw materials and analyses of parts performance. Addit Manuf 27:32–41 Sillani F, Kleijnen RG, Vetterli M et al (2019) Selective laser sintering and multi jet fusion: process-induced modification of the raw materials and analyses of parts performance. Addit Manuf 27:32–41
go back to reference Stringer J, Derby B (2009) Limits to feature size and resolution in ink-jet printing. J Eur Ceram Soc 29:913–918CrossRef Stringer J, Derby B (2009) Limits to feature size and resolution in ink-jet printing. J Eur Ceram Soc 29:913–918CrossRef
go back to reference Tabernero I, Paskual A, Alvarez P, Suarez A (2018) Study on arc welding processes for high deposition rate additive manufacturing. Procedia CIRP 68:358–362CrossRef Tabernero I, Paskual A, Alvarez P, Suarez A (2018) Study on arc welding processes for high deposition rate additive manufacturing. Procedia CIRP 68:358–362CrossRef
go back to reference Tang HH (2002) Direct laser fusing to form ceramic parts. Rapid Prototyp J 8(5):284–289CrossRef Tang HH (2002) Direct laser fusing to form ceramic parts. Rapid Prototyp J 8(5):284–289CrossRef
go back to reference Tarasov SY, Filippov AV, Shamarin NN et al (2019) Microstructural evolution and chemical corrosion of electron beam wire-feed additively manufactured AISI 304 stainless steel. J Alloys Compd 803:364–370CrossRef Tarasov SY, Filippov AV, Shamarin NN et al (2019) Microstructural evolution and chemical corrosion of electron beam wire-feed additively manufactured AISI 304 stainless steel. J Alloys Compd 803:364–370CrossRef
go back to reference Thomas HR, Hopkinson N, Erasenthiran P (2006) High speed sintering- continuing research into a new rapid manufacturing process. In: SFF proceedings, pp 682–691 Thomas HR, Hopkinson N, Erasenthiran P (2006) High speed sintering- continuing research into a new rapid manufacturing process. In: SFF proceedings, pp 682–691
go back to reference Thompson MK, Moroni G, Vaneker T et al (2016) Design for additive manufacturing: trends, opportunities, considerations, and constraints. CIRP Ann 65(2):737–760CrossRef Thompson MK, Moroni G, Vaneker T et al (2016) Design for additive manufacturing: trends, opportunities, considerations, and constraints. CIRP Ann 65(2):737–760CrossRef
go back to reference Vilar R (2014) Laser powder deposition. Compr Mater Process 10:163–216. Elsevier LtdCrossRef Vilar R (2014) Laser powder deposition. Compr Mater Process 10:163–216. Elsevier LtdCrossRef
go back to reference Wang Z, Liu R, Sparks T, Liou F (2016) Large scale deposition system by an industrial robot (I): design of fused pellet modeling system and extrusion process analysis. 3D Print Addit Manuf 3(1):39–47CrossRef Wang Z, Liu R, Sparks T, Liou F (2016) Large scale deposition system by an industrial robot (I): design of fused pellet modeling system and extrusion process analysis. 3D Print Addit Manuf 3(1):39–47CrossRef
go back to reference Wilkinson NJ, Smith MAA, Kay RW et al (2019) A review of aerosol jet printing – a non-traditional hybrid process for micro-manufacturing. Int J Adv Manuf Technol 105:1–21CrossRef Wilkinson NJ, Smith MAA, Kay RW et al (2019) A review of aerosol jet printing – a non-traditional hybrid process for micro-manufacturing. Int J Adv Manuf Technol 105:1–21CrossRef
go back to reference Wu S, Serbin J, Gu M (2006) Two-photon polymerization for three-dimensional micro-fabrication. J Photochem Photobiol A Chem 181:1–11CrossRef Wu S, Serbin J, Gu M (2006) Two-photon polymerization for three-dimensional micro-fabrication. J Photochem Photobiol A Chem 181:1–11CrossRef
go back to reference Yan Z, Liu W, Tang Z et al (2018) Review on thermal analysis in laser-based additive manufacturing. Opt Laser Technol 106:427–441CrossRef Yan Z, Liu W, Tang Z et al (2018) Review on thermal analysis in laser-based additive manufacturing. Opt Laser Technol 106:427–441CrossRef
go back to reference Yin S, Cavaliere P, Aldwell B et al (2018) Cold spray additive manufacturing and repair: fundamentals and applications. Addit Manuf 21:628–650 Yin S, Cavaliere P, Aldwell B et al (2018) Cold spray additive manufacturing and repair: fundamentals and applications. Addit Manuf 21:628–650
go back to reference Yu HZ, Jones ME, Brady GW et al (2018) Non-beam-based metal additive manufacturing enabled by additive friction stir deposition. Scr Mater 153:122–130CrossRef Yu HZ, Jones ME, Brady GW et al (2018) Non-beam-based metal additive manufacturing enabled by additive friction stir deposition. Scr Mater 153:122–130CrossRef
go back to reference Zhang G, Chen H, Zhou H (2017) Additive manufacturing of green ceramic by selective laser gasifying of frozen slurry. J Eur Ceram Soc 37(7):2679–2684CrossRef Zhang G, Chen H, Zhou H (2017) Additive manufacturing of green ceramic by selective laser gasifying of frozen slurry. J Eur Ceram Soc 37(7):2679–2684CrossRef
go back to reference Zhang C, Chen F, Huang Z et al (2019) Additive manufacturing of functionally graded materials: a review. Mater Sci Eng A 764:138209CrossRef Zhang C, Chen F, Huang Z et al (2019) Additive manufacturing of functionally graded materials: a review. Mater Sci Eng A 764:138209CrossRef
go back to reference Zuo H, Li H, Qi L, Zhong S (2016) Influence of interfacial bonding between metal droplets on tensile properties of 7075 Aluminum billets by additive manufacturing technique. J Mater Sci Technol 32(5):485–488CrossRef Zuo H, Li H, Qi L, Zhong S (2016) Influence of interfacial bonding between metal droplets on tensile properties of 7075 Aluminum billets by additive manufacturing technique. J Mater Sci Technol 32(5):485–488CrossRef
Metadata
Title
Introduction
Author
Sanjay Kumar
Copyright Year
2020
DOI
https://doi.org/10.1007/978-3-030-45089-2_1

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