한국생산제조학회 학술지 영문 홈페이지

Journal Archive

Journal of the Korean Society of Manufacturing Technology Engineers - Vol. 27 , No. 4

[ Article ]
Journal of the Korean Society of Manufacturing Technology Engineers - Vol. 27, No. 4, pp. 339-345
Abbreviation: J. Korean Soc. Manuf. Technol. Eng.
ISSN: 2508-5107 (Online)
Print publication date 15 Aug 2018
Received 09 Apr 2018 Revised 05 Jun 2018 Accepted 25 Jun 2018
DOI: https://doi.org/10.7735/ksmte.2018.27.4.339

강판 위 코팅된 잉크의 건조를 위한 유도가열 공정의 적용에 대한 연구
신승항a ; 김찬규a ; 정윤교a ; 조영태a, *

Study on the Application of Induction Heating for Drying Ink Coated on a Steel Plate
Seunghang Shina ; Chan Kyu Kima ; Yoon Gyo Junga ; Young Tae Choa, *
aDepartment of Mechanical Engineering, Changwon National University, 20, Changwondaehak-ro, Uichang-gu, Changwon, Gyeongnam-do, 51140, Korea
Correspondence to : *Tel.: +82-55-213-3608 Fax: +82-55-275-0101 E-mail address: ytcho@changwon.ac.kr.(Young Tae Cho).

Funding Information ▼

Abstract

Recently, coated steel plates are attracting attention for application in interior and exterior materials. Among the various methods for manufacturing coated steel plates, inkjet printing method is an emerging technology since it can form various patterns on substrates. Ink application necessarily involves a drying process. In this study, we explored the possibility of induction heating instead of hot air drying, which is mainly used in the drying process for ink coated on a substrate. First, an induction heating system was set up and drying experiments were carried out using a solvent ink and an eco-solvent ink. Although the results were slightly different depending on the solvent content, induction heating showed the best adhesion performance. Similar results were obtained when a Ag ink was used. Therefore, we insist that induction heating is the best drying method for steel substrates that can be heated differently than polymer substrates.


Keywords: Induction heating, Adhesion, Coated steel plate, Drying, Ink

Acknowledgments

이 논문은 2017학년도 창원대학교 연구교수 연구비에 의하여 연구되었음.


References
1. Santos, D., Raminhos, H., Costa, M. R., Diamantino, T., Goodwin, F., 2008, Performance of Finish Coated Galvanized Steel Sheets for Automotive Bodies, Progress in Organic Coating, 62 265-273.
2. Srivastava, A., Agarwal, D., Mistry, S., Singh, J., 2008, UV Curable Polyurethane Acrylate Coatings for Metal Surfaces, Pigment & Resin Technology, 37:4 217-223.
3. Lee, J. M., Lee, C. J., Ko, D. C., Lee, S. B., Kim, B. M., 2009, Estimations of the Adhesion Strength of Galvannealed Coatings on Coated Sheet Using Single Lap-Shear Test, Korean Soc. Mech. Eng. A, 33:6 560-567.
4. Lee, J. W., Lee, M. G., 2014, Forming Technology in Advanced High Strength Steels, Auto Journal, 36:3 33-38.
5. Lee, W. R., Lee, J. H., 2011, Joining of Zinc Coated Steel and Aluminum Alloy for Car Body, Journal of the Korean Society of Manufacturing Technology Engineers, 20:2 145-150.
6. D’Anna, G., Monroe, S. H., Angelini, P. J., Goettmann, J. A., Boylan, J. R., 1998, High Gloss Ultraviolet Curable Coating for Porous Substrates, US Patent: 5800884A.
7. Ting, V. W., 1978, U.V. Curable Poly(ester-urethane) Polyacrylate Polymers and Wet Look Coatings Therefrom, US Patent: 4072770A.
8. Kim, Y. S., Kim, C. I., Nam, J. B., Yang, S. H., 2014, Press Forming Characteristics and Recent Forming Technologies of High Strength Steel Sheets, Transactions of Materials Processing, 23:7 453-464.
9. Rudnev, V., Loveless, D., Cook, R. L., 2017, Handbook of Induction Heating, Second Edition, CRC Press, US.
10. Lucia, O., Maussion, P., Dede, E. J., Burdio, J. M., 2014, Induction Heating Technology and Its Applications: Past Developments, Current Technology, and Future Challenges, Journal of IEEE Transactions on industrial Electronics, 61:5 2509-2520.
11. Dolezel, I., Karban, P., Kropik, P., Panek, D., 2010, Accurate Control of Position by Induction Heating-Produced Thermoelasticity, Journal of IEEE Transactions on magnetics, 46:8 2888-2891.
12. Miyagi, D., Saitou, A., Takahashi, N., Uchida, N., Ozaki, K., 2006, Improvement of Zone Control Induction Heating Equipment for High-speed Processing of Semiconductor Devices, Journal of IEEE Transactions on magnetics, 42:2 292-294.
13. Okamoto, Y., Imai, T., Miyagi, D., Takahashi, N., Ozaki, K., Ono, H., Uchida, N., 2004, Optimal Design of Induction Heating Equipment for Highspeed Processing of a Semiconductor, The international journal for computation and mathematics in electrical and electronic engineering, 23:4 1045-1052.
14. Yun, J. O., Yang, Y. S., 2004, A Study on the Flat-Type Induction Heating of Steel Plate, Korean Soc. Mech. Eng. A, 28:7 948-954.
15. Ryu, K. H., Lee, D. J., Kim, D. J., Kim, B. M. Kim, K. H., 2001, Process Design of the Hot Pipe Bending Process Using High Frequency Induction Heating, Journal of the Korean Society of Precision Engineering, 18:9 110-121.
16. Choi, W. D., Ko, D. C., Min, G. S., Kim, B. M., Choi, J. C., 1997, Finite Element Analysis for Forming Process of Semi-Solid Material Considering Induction Heating, Journal of the Korean Society of Precision Engineering, 14:8 82-91.
17. Jo, S. H., Kim, B. I., Son, Y. S., Yun, D. W., 2013, A Basic Study on Induction Heating and Water Cooling System Hybrid Roll for Fine Pattern Processing, Journal of the Korean Society of Manufacturing Technology Engineers, 22:5 871-878.
18. Oh, Y. H., Cho, Y. T., Jung, Y. G., 2015, Simulation of Thick Plate Preheating Process Using Induction Heating, Journal of the Korean Society of Precision Engineering, 32:12 1017-1021.
19. Ahn, S. D., Cho, Y. T., Jung, Y. G., 2015, Analysis of Induction Heating according to Coil Shapes on the V-groove Weld Joint, Journal of the Korean Society of Precision Engineering, 32:2 167-172.
20. Chaboudez, C., Clain, S., Glardon, R., Rappaz, J., Swierkosz, M., Touzani, R., 1994, Numerical Modelling of Induction Heating of Long Workpieces, Journal of IEEE Transactions on magnetics, 30:6 5028-503.
21. Kagimoto, H. M., Daisuke, T. N., U, N., Kawanaka, K., 2010, Effect of Temperature Dependence of Magnetic Properties on Heating Characteristics of Induction Heater, Journal of IEEE Transactions on Magnetics, 46:8 3018-3021.
22. ISO, 2013, Paints and varnishes — Cross-cut test, ISO 2409:2013, International Organization for Standardization, Geneva.