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[국내논문] 4D printing – fused deposition modeling printing with thermal-responsive shape memory polymers

International journal of precision engineering and manufacturing : Green technology, v.4 no.3, 2017년, pp.267 - 272  

Ly, S. T. ,  Kim, J. Y.

Abstract AI-Helper 아이콘AI-Helper

Shape memory polymers (SMPs), as stimuli-responsive shape-changing polymers, change their deformed shape to pre-determined one under external stimuli, such as temperature, chemicals, light, etc. This research as part of the project in which employs four-dimensional (4D) printing technology to develo...

참고문헌 (29)

  1. Mechatronics G. Monkman 10 4 489 2000 10.1016/S0957-4158(99)00068-9 Monkman, G., “Advances in Shape Memory Polymer Actuation,” Mechatronics, Vol. 10, No. 4, pp. 489-498, 2000. 

  2. Trends in Biotechnology C. L. Randall 30 3 138 2012 10.1016/j.tibtech.2011.06.013 Randall, C. L., Gultepe, E., and Gracias, D. H., “Self-Folding Devices and Materials for Biomedical Applications,” Trends in Biotechnology, Vol. 30, No. 3, pp. 138-146, 2012. 

  3. J. Hu 2012 Smart Materials and Structures Hu, J., Meng, H., Li, G., and Ibekwe, S. I., “A Review of Stimuli-Responsive Polymers for Smart Textile Applications,” Smart Materials and Structures, Vol. 21, No. 5, Paper No. 053001, 2012. 

  4. Macromolecules J. Li 44 1 175 2010 10.1021/ma102279y Li, J. and Xie, T., “Significant Impact of Thermo-Mechanical Conditions on Polymer Triple-Shape Memory Effect,” Macromolecules, Vol. 44, No. 1, pp. 175-180, 2010. 

  5. T. Pretsch 2009 Smart Materials and Structures Pretsch, T., “Triple-Shape Properties of a Thermoresponsive Poly (Ester Urethane),” Smart Materials and Structures, Vol. 19, No. 1, Paper No. 015006, 2009. 

  6. Advanced Functional Materials X. Luo 20 16 2649 2010 10.1002/adfm.201000052 Luo, X. and Mather, P. T., “Triple-Shape Polymeric Composites (TSPCs),” Advanced Functional Materials, Vol. 20, No. 16, pp. 2649-2656, 2010. 

  7. Polymer H. Meng 54 9 2199 2013 10.1016/j.polymer.2013.02.023 Meng, H. and Li, G., “A Review of Stimuli-Responsive Shape Memory Polymer Composites,” Polymer, Vol. 54, No. 9, pp. 2199-2221, 2013. 

  8. Angewandte Chemie International Edition A. Lendlein 41 12 2034 2002 10.1002/1521-3773(20020617)41:12<2034::AID-ANIE2034>3.0.CO;2-M Lendlein, A. and Kelch, S., “Shape-Memory Polymers,” Angewandte Chemie International Edition, Vol. 41, No. 12, pp. 2034-2057, 2002. 

  9. Journal of Materials Chemistry C. Liu 17 16 1543 2007 10.1039/b615954k Liu, C., Qin, H., and Mather, P., “Review of Progress in Shape-Memory Polymers,” Journal of Materials Chemistry, Vol. 17, No. 16, pp. 1543-1558, 2007. 

  10. E. Havens 48 2005 Proc. of the International Society for Optics and Photonics in Smart Structures and Materials Havens, E., Snyder, E. A., and Tong, T. H., “Light-Activated Shape Memory Polymers and Associated Applications,” Proc. of the International Society for Optics and Photonics in Smart Structures and Materials, pp. 48-55, 2005. 

  11. Nature A. Lendlein 434 7035 879 2005 10.1038/nature03496 Lendlein, A., Jiang, H., Jünger, O., and Langer, R., “Light-Induced Shape-Memory Polymers,” Nature, Vol. 434, No. 7035, pp. 879-882, 2005. 

  12. Composites Science and Technology Y. Liu 69 13 2064 2009 10.1016/j.compscitech.2008.08.016 Liu, Y., Lv, H., Lan, X., Leng, J., and Du, S., “Review of Electro-Active Shape-Memory Polymer Composite,” Composites Science and Technology, Vol. 69, No. 13, pp. 2064-2068, 2009. 

  13. J. Leng 2007 Applied Physics Letters Leng, J., Lv, H., Liu, Y., and Du, S., “Electroactivate Shape-Memory Polymer Filled with Nanocarbon Particles and Short Carbon Fibers,” Applied Physics Letters, Vol. 91, No. 14, Paper No. 144105, 2007. 

  14. Macromolecular Rapid Communications A. M. Schmidt 27 14 1168 2006 10.1002/marc.200600225 Schmidt, A. M., “Electromagnetic Activation of Shape Memory Polymer Networks Containing Magnetic Nanoparticles,” Macromolecular Rapid Communications, Vol. 27, No. 14, pp. 1168-1172, 2006. 

  15. Polymer International S. Chen 61 2 314 2012 10.1002/pi.3192 Chen, S., Hu, J., and Chen, S., “Studies of the Moisture-Sensitive Shape Memory Effect of Pyridine-Containing Polyurethanes,” Polymer International, Vol. 61, No. 2, pp. 314-320, 2012. 

  16. Macromolecular Rapid Communications J. W. Cho 26 5 412 2005 10.1002/marc.200400492 Cho, J. W., Kim, J. W., Jung, Y. C., and Goo, N. S., “Electroactive Shape-Memory Polyurethane Composites Incorporating Carbon Nanotubes,” Macromolecular Rapid Communications, Vol. 26, No. 5, pp. 412-416, 2005. 

  17. Q. Ge 2014 Smart Materials and Structures Ge, Q., Dunn, C. K., Qi, H. J., and Dunn, M. L., “Active Origami by 4D Printing,” Smart Materials and Structures, Vol. 23, No. 9, Paper No. 094007, 2014. 

  18. Procedia IUTAM K. Yu 12 193 2015 10.1016/j.piutam.2014.12.021 Yu, K., Ritchie, A., Mao, Y., Dunn, M. L., and Qi, H. J., “Controlled Sequential Shape Changing Components by 3D Printing of Shape Memory Polymer Multimaterials,” Procedia IUTAM, Vol. 12, pp. 193-203, 2015. 

  19. Journal of Reconstructive Microsurgery M. P. Chae 31 6 458 2015 10.1055/s-0035-1549006 Chae, M. P., Hunter-Smith, D. J., De-Silva, I., Tham, S., Spychal, R. T., et al., “Four-Dimensional (4D) Printing: A New Evolution in Computed Tomography-Guided Stereolithographic Modeling. Principles and Application,” Journal of Reconstructive Microsurgery, Vol. 31, No. 6, pp. 458-463, 2015. 

  20. Architectural Design S. Tibbits 84 1 116 2014 10.1002/ad.1710 Tibbits, S., “4D Printing: Multi-Material Shape Change,” Architectural Design, Vol. 84, No. 1, pp. 116-121, 2014. 

  21. I. Gibson 175 2010 10.1007/978-1-4419-1120-9 Additive Manufacturing Technologies Gibson, I., Rosen, D. W., and Stucker, B., “Additive Manufacturing Technologies,” Springer, pp. 175-198, 2010. 

  22. F. Fischer 2014 FDM and Polyjet 3D Printing: Determining which Technology is Right for your Application Fischer, F., “FDM and Polyjet 3D Printing: Determining which Technology is Right for your Application,” Stratasys Ltd., 2014. 

  23. F. Fisher 2001 Thermoplastics: The Strongest Choice for 3D Printing Fisher, F., “Thermoplastics: The Strongest Choice for 3D Printing,” White Paper by Stratasys Inc. (USA), 2001. 

  24. Int. J. Precis. Eng. Manuf.-Green Tech. D. A. Dornfeld 1 1 63 2014 10.1007/s40684-014-0010-7 Dornfeld, D. A., “Moving Towards Green and Sustainable Manufacturing,” Int. J. Precis. Eng. Manuf.-Green Tech., Vol. 1, No. 1, pp. 63-66, 2014. 

  25. Int. J. Precis. Eng. Manuf.-Green Tech. H.-S. Yoon 1 3 261 2014 10.1007/s40684-014-0033-0 Yoon, H.-S., Lee, J.-Y., Kim, H.-S., Kim, M.-S., Kim, E.-S., et al., “A Comparison of Energy Consumption in Bulk Forming, Subtractive, and Additive Processes: Review and Case Study,” Int. J. Precis. Eng. Manuf.-Green Tech., Vol. 1, No. 3, pp. 261-279, 2014. 

  26. A. R. Mohamed 2016 International Journal of Petrochemical Science & Engineering Mohamed, A. R., Bahru, R., Yeoh, W. M., and Yaacob, K. A., “Dimethylformamide as Dispersing Agent for Electrophoretically Deposited of Multi-Walled Carbon Nanotubes,” International Journal of Petrochemical Science & Engineering, Vol. 1, No. 1, Paper No. 00004, 2016. 

  27. Nanomaterials C.-X. Liu 2 4 329 2012 10.3390/nano2040329 Liu, C.-X. and Choi, J.-W., “Improved Dispersion of Carbon Nanotubes in Polymers at High Concentrations,” Nanomaterials, Vol. 2, No. 4, pp. 329-347, 2012. 

  28. Polymer International S. Chen 61 2 314 2012 10.1002/pi.3192 Chen, S., Hu, J., and Chen, S., “Studies of the Moisture-Sensitive Shape Memory Effect of Pyridine-Containing Polyurethanes,” Polymer International, Vol. 61, No. 2, pp. 314-320, 2012. 

  29. Advanced Materials M. Zarek 28 22 4449 2015 10.1002/adma.201503132 Zarek, M., Layani, M., Cooperstein, I., Sachyani, E., Cohn, D., et al., “3D Printing of Shape Memory Polymers for Flexible Electronic Devices,” Advanced Materials, Vol. 28, No. 22, pp. 4449-4454, 2015. 

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