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Online since: April 2015
Authors: Lian Bo Ma, Kun Yuan Hu, Mao Wei He, Yun Long Zhu
Modeling and Optimizing Industrial Inkjet Printhead for Printable Electronics Fabrication
Lianbo Ma1,2,a*, Maowei He1,2,b* ,KunyuanHu1,c ,Yunlong Zhu,1d
1 Department of Information Service & Intelligent Control, Shenyang Institute of Automation,
Chinese Academy of Sciences, Shenyang 110016, China
2 University of Chinese Academy of Sciences, Beijing 100049, China
amalb@sia.cn, bhemaowei@sia.cn, chukunyuan@sia.cn, dzhuyunlong@sia.cn
Keywords: Inkjet printhead, Lumped element modeling, Optimization algorithm, Printable electronics fabrication.
As the increasingly attractive alternative to construct PE application, the inkjet printing deposits various versatile nano-materials on flexible substrates in non-contact pattern [3,4].
Advanced Materials, Vol.22, 2010, pp.673–685
[2] H.Jaehyung, W.Alan, K.Antoine, Energetics of metal–organic interfaces: New experiments and assessment of the field, Materials Science and Engineering: R: Reports, Vol.64, 2009, pp.1–31 [3] J.K.Byung, J.H.Je, Geometrical characterization of inkjet-printed conductive lines of nanosilver suspensions on a polymer substrate, Thin Solid Films vol.518, 2010, pp.2890–2896 [4] A.A.Khalate, Optimization-based feedforward control for a Drop-on-Demand inkjet printhead, American Control Conference (ACC), 2010, pp.2182-2187 [5] H.Seitz, J.Heinzl, Modeling of a Microfluidic Device with Piezoelectric Actuators, Journal of Micromechanics and Microengineering, Vol.14, 2004, pp.1140-1147 [6]S.Kim, J.Sung, M.H.Lee, Pressure Wave and Fluid Velocity in a Bend-Mode Inkjet Nozzle with DoublePZT Actuators, Journal of Thermal Science Vol.22, No.1, 2013,pp.29−35 [7]G.Wassink,Inkjet printhead performance enhancement by feedforwardinput design based on two-port modeling.
[8] Q.Gallas, R.Holman, T.Nishida, B.Carroll, M.Sheplak and L.Cattafesta, Lumped Element Modeling of Piezoelectric-Driven Synthetic Jet Actuators, AIAA Journal, Vol. 41, No. 2, 2003, pp. 240-247
As the increasingly attractive alternative to construct PE application, the inkjet printing deposits various versatile nano-materials on flexible substrates in non-contact pattern [3,4].
Advanced Materials, Vol.22, 2010, pp.673–685
[2] H.Jaehyung, W.Alan, K.Antoine, Energetics of metal–organic interfaces: New experiments and assessment of the field, Materials Science and Engineering: R: Reports, Vol.64, 2009, pp.1–31 [3] J.K.Byung, J.H.Je, Geometrical characterization of inkjet-printed conductive lines of nanosilver suspensions on a polymer substrate, Thin Solid Films vol.518, 2010, pp.2890–2896 [4] A.A.Khalate, Optimization-based feedforward control for a Drop-on-Demand inkjet printhead, American Control Conference (ACC), 2010, pp.2182-2187 [5] H.Seitz, J.Heinzl, Modeling of a Microfluidic Device with Piezoelectric Actuators, Journal of Micromechanics and Microengineering, Vol.14, 2004, pp.1140-1147 [6]S.Kim, J.Sung, M.H.Lee, Pressure Wave and Fluid Velocity in a Bend-Mode Inkjet Nozzle with DoublePZT Actuators, Journal of Thermal Science Vol.22, No.1, 2013,pp.29−35 [7]G.Wassink,Inkjet printhead performance enhancement by feedforwardinput design based on two-port modeling.
[8] Q.Gallas, R.Holman, T.Nishida, B.Carroll, M.Sheplak and L.Cattafesta, Lumped Element Modeling of Piezoelectric-Driven Synthetic Jet Actuators, AIAA Journal, Vol. 41, No. 2, 2003, pp. 240-247
Online since: January 2013
Authors: Soo Jin Tan, A.G. Supri, Pei Leng Teh
Experiment
Materials
The fresh water hyacinth fibers were obtained from Local River in Perlis, Malaysia.
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Xiong: Journal of Materials Science Vol. 42 (2007), p. 3398
Online since: September 2013
Authors: Andreas Chrysanthou, Z. Shen, Y.G. Xu
This can be attributed to the inherent brittleness of both the carbon fibre and the matrix materials.
Curtis: Composites Science and Technology Vol. 56 (1996), p. 677
Haritos: Key Engineering Materials Vol. 525-26 (2013), p. 521
Yang: Journal of Composite Materials Vol. 36 (2002), p. 851
Shen: Mechanics of Materials Vol. 40 (2008), p. 183
Curtis: Composites Science and Technology Vol. 56 (1996), p. 677
Haritos: Key Engineering Materials Vol. 525-26 (2013), p. 521
Yang: Journal of Composite Materials Vol. 36 (2002), p. 851
Shen: Mechanics of Materials Vol. 40 (2008), p. 183
Online since: October 2010
Authors: Ana Morán, Rubén Coto, Javier Belzunce, Jose Manuel Artímez
Journal of Nuclear Materials (2008).
Journal of Nuclear Materials (1998).
Journal of Nuclear Materials, (2000).
Journal of Nuclear Materials, (2009) Vol. 386-388; p. 236-240
Journal of Nuclear Materials (1986) Vol. 141-143; p. 1097-1101
Journal of Nuclear Materials (1998).
Journal of Nuclear Materials, (2000).
Journal of Nuclear Materials, (2009) Vol. 386-388; p. 236-240
Journal of Nuclear Materials (1986) Vol. 141-143; p. 1097-1101
Online since: December 2010
Authors: Zhong Ming Zhang, Chun Jie Xu, Ting Wang, Lin Yang
Fatigue Properties of Rapidly Solidified Mg-6Zn-1Y-0.6Ce-0.6Zr Alloy Processed by Reciprocating Extrusion
Zhongming Zhang1a, Chunjie Xu1b, Ting Wang1c and Lin Yang1d
1School of Materials Science and Engineering, Xi'an University of Technology, No.5 South Jinhua Road, Xi'an, Shaanxi, 710048, P.
Experimental materials and methods The preparation of the experimental materials.
Shechtman: Journal of Materials Processing Technology Vol.187-188(2007), p.640 [4] Y.
Kainer: Advanced Engineering Materials Vol.6(2004), p.281 [11] S.Y.
Liu: Journal of Kunming University of Science and Technology (Science and Technology) Vol.31(2006), p.90 [12] H.T.
Experimental materials and methods The preparation of the experimental materials.
Shechtman: Journal of Materials Processing Technology Vol.187-188(2007), p.640 [4] Y.
Kainer: Advanced Engineering Materials Vol.6(2004), p.281 [11] S.Y.
Liu: Journal of Kunming University of Science and Technology (Science and Technology) Vol.31(2006), p.90 [12] H.T.
Online since: May 2007
Authors: Qing Chang Meng, Nian Kui Li, Da Ming Jiang, Xi Gang Fan, Heng Ze Xian
Starink: Materials Science and Technology Vol. 17 (2001), p. 1324-1328
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Online since: August 2014
Authors: Chedly Braham, Naoufel Ben Moussa, Habib Sidhom, Zouhayar Al-Adel
The proposed methodology can be extended for other materials and cutting processes.
[2] Ben Moussa N., Sidhom H., Braham C., International Journal of Mechanical Sciences, 64 (2012) 82-93
Jawahir, International Journal of Mechanical Sciences, 47 (2005) 1611-1628
Lin, Journal of Materials Processing Technology, 115 (2001) 313-325
Guo, International Journal of Mechanical Sciences, 42 (2000) 1069-1086
[2] Ben Moussa N., Sidhom H., Braham C., International Journal of Mechanical Sciences, 64 (2012) 82-93
Jawahir, International Journal of Mechanical Sciences, 47 (2005) 1611-1628
Lin, Journal of Materials Processing Technology, 115 (2001) 313-325
Guo, International Journal of Mechanical Sciences, 42 (2000) 1069-1086
Online since: March 2014
Authors: Jim C. Newman Junior, Chun H. Wang, Kevin Walker
Defence Science Technology Organisation, Melbourne, Australia
2.
ASTM STP 486 American Society for Testing and Materials, West Conshohocken, Pennsylvania, USA, 1971: p. 230-242
Fatigue & Fracture of Engineering Materials & Structures, 2000. 23(1): p. 59-72
Fatigue of Engineering Materials and Structures, 1979. 1: p. 135-148
Fatigue & Fracture of Engineering Materials & Structures, 2002. 25(2): p. 127-139
ASTM STP 486 American Society for Testing and Materials, West Conshohocken, Pennsylvania, USA, 1971: p. 230-242
Fatigue & Fracture of Engineering Materials & Structures, 2000. 23(1): p. 59-72
Fatigue of Engineering Materials and Structures, 1979. 1: p. 135-148
Fatigue & Fracture of Engineering Materials & Structures, 2002. 25(2): p. 127-139
Online since: April 2022
Authors: Djoudi Ramzi, Seghairi Nora, Youcef Sara
Materials and Methods
Experimental apparatus.
Wang, et al., Comprehensive evaluation of substrate materials for contaminants removal in constructed wetlands.
Revue des sciences de l'eau/Journal of Water Science, 1999. 12(2): p. 285-315
Microporous and Mesoporous Materials, 2009. 124(1-3): p. 131-143
Afrique Science: Revue Internationale des Sciences et Technologie, 2009. 5(2): p. 199-216 [35] J.
Wang, et al., Comprehensive evaluation of substrate materials for contaminants removal in constructed wetlands.
Revue des sciences de l'eau/Journal of Water Science, 1999. 12(2): p. 285-315
Microporous and Mesoporous Materials, 2009. 124(1-3): p. 131-143
Afrique Science: Revue Internationale des Sciences et Technologie, 2009. 5(2): p. 199-216 [35] J.
Online since: November 2021
Authors: Yunn Lin Hwang, Thi Na Ta, Adhitya Adhitya
The main objective of this study is to investigate the effect of structural material property on multi-body dynamics.
Acknowledgments The authors are grateful for the financial supports provided by Ministry of Science and Technology, Taiwan through the contracts MOST-107-2221-E-150-011 and MOST-109-2622-E-150-013.
Chenc: An investigation of stick-slip friction on the contouring accuracy of CNC machine tools, International Journal Math Tools Manufacture, Vol. 35 (1995), p. 565-576 [5] O.
Choi: Stick-slip algorithm in a tangential contact force model for multi-body system dynamics, Journal of Mechanical Science and Technology, Vol. 25 (2011), p. 1687 – 1694 [7] U.
Michal: Investigation of frictional stick-slick effect in disk brake NVH, Journal of Mechanical Engineering, Vol. 67 (2017), p. 93 – 100
Acknowledgments The authors are grateful for the financial supports provided by Ministry of Science and Technology, Taiwan through the contracts MOST-107-2221-E-150-011 and MOST-109-2622-E-150-013.
Chenc: An investigation of stick-slip friction on the contouring accuracy of CNC machine tools, International Journal Math Tools Manufacture, Vol. 35 (1995), p. 565-576 [5] O.
Choi: Stick-slip algorithm in a tangential contact force model for multi-body system dynamics, Journal of Mechanical Science and Technology, Vol. 25 (2011), p. 1687 – 1694 [7] U.
Michal: Investigation of frictional stick-slick effect in disk brake NVH, Journal of Mechanical Engineering, Vol. 67 (2017), p. 93 – 100