Development of DLP-Based Stereolithography System
207
References
1. Ikuta K, Hirowatari K (1993) Real three-dimensional microfabrication using stereolithography
and metal mold. In: Proceedings of IEEE international workshop on micro electro mechanical
systems (MEMS’93), pp 42–47
2. Bertsch A, Zissi S, Jezequel J, Corbel S, Andre J (1997) Microstereolithography using liquid
crystal display as dynamic mask-generator. Microsyst Technol 3(2):42–47
3. Itoga K, Kobayashi J, Yamato M, Okano T (2010) Development of microfabrication technology
with maskless photolithography device using LCD projector. J Robot Mechatron 22(5)
4. Hadipoespito GW, Yang Y, Choi H, Ning G, Li X (2003) Digital micromirror device based
microstereolithography for micro structures of transparent photopolymer and nanocomposites.
Department of Mechanical Engineering University of Wisconsin-Madison, Madison, WI 53706
5. Zhou C, Chen Y (2011) Additive manufacturing based on optimized mask video projection for
improved accuracy and resolution. in: Proceedings of NAMRI/SME, vol 39
6. Gandhi P, Deshmukh S, Ramtekkar R, Bhole K, Baraki A (2013) “On-axis” linear focused spot
scanning microstereolithography system: optomechatronic design, analysis and development.
J Adv Manuf Syst 12(01):43–68
7. Valentincic J, Perosa M, Jerman M, Sabotin I, Lebar A (2017) Low cost printer for DLP
stereolithography. J Mech Eng 63(10):559–566
8. Chua C, Leong K, Lim C (2010) Rapid prototyping: principles and applications, 3rd edn. World
Scientific
9. Kwok TH (2019) Comparing slicing technologies for digital light processing printing (ASME).
Department of Mechanical, Industrial and Aerospace Engineering Concordia University
Montreal, Canada
10. Zyzalo JR (2008) Masked projection stereolithography: improvement of Limaye model for
curing single layer medium sized parts. Ph.D. thesis, Massey University, Albany, New Zealand
11. Takahasi K (2001) A new application of DMD to photolithography and rapid prototyping
system. In: 8th international display workshops, pp 1339–1342
12. Sager B, Rosen D, Stereolithography process resolution. The George W. Woodruff School of
Mechanical Engineering Georgia Institute of Technology, Atlanta, USA
207
References
1. Ikuta K, Hirowatari K (1993) Real three-dimensional microfabrication using stereolithography
and metal mold. In: Proceedings of IEEE international workshop on micro electro mechanical
systems (MEMS’93), pp 42–47
2. Bertsch A, Zissi S, Jezequel J, Corbel S, Andre J (1997) Microstereolithography using liquid
crystal display as dynamic mask-generator. Microsyst Technol 3(2):42–47
3. Itoga K, Kobayashi J, Yamato M, Okano T (2010) Development of microfabrication technology
with maskless photolithography device using LCD projector. J Robot Mechatron 22(5)
4. Hadipoespito GW, Yang Y, Choi H, Ning G, Li X (2003) Digital micromirror device based
microstereolithography for micro structures of transparent photopolymer and nanocomposites.
Department of Mechanical Engineering University of Wisconsin-Madison, Madison, WI 53706
5. Zhou C, Chen Y (2011) Additive manufacturing based on optimized mask video projection for
improved accuracy and resolution. in: Proceedings of NAMRI/SME, vol 39
6. Gandhi P, Deshmukh S, Ramtekkar R, Bhole K, Baraki A (2013) “On-axis” linear focused spot
scanning microstereolithography system: optomechatronic design, analysis and development.
J Adv Manuf Syst 12(01):43–68
7. Valentincic J, Perosa M, Jerman M, Sabotin I, Lebar A (2017) Low cost printer for DLP
stereolithography. J Mech Eng 63(10):559–566
8. Chua C, Leong K, Lim C (2010) Rapid prototyping: principles and applications, 3rd edn. World
Scientific
9. Kwok TH (2019) Comparing slicing technologies for digital light processing printing (ASME).
Department of Mechanical, Industrial and Aerospace Engineering Concordia University
Montreal, Canada
10. Zyzalo JR (2008) Masked projection stereolithography: improvement of Limaye model for
curing single layer medium sized parts. Ph.D. thesis, Massey University, Albany, New Zealand
11. Takahasi K (2001) A new application of DMD to photolithography and rapid prototyping
system. In: 8th international display workshops, pp 1339–1342
12. Sager B, Rosen D, Stereolithography process resolution. The George W. Woodruff School of
Mechanical Engineering Georgia Institute of Technology, Atlanta, USA