DOI QR코드

DOI QR Code

연속발진 레이저에 의한 공기 유동에 노출된 유리섬유 강화 플라스틱 손상효과

Damage Effect on Glass Fibre Reinforced Plastics under Airflow by a Continuous Wave Laser

  • 이광현 (국방과학연구소 국방고등기술원 첨단기술연구센터) ;
  • 신완순 (국방과학연구소 국방고등기술원 첨단기술연구센터) ;
  • 강응철 (국방과학연구소 국방고등기술원 첨단기술연구센터)
  • Lee, Kwang Hyun (Advanced Technology Agile Development Center, Institute of Defense Advanced Technology Research, Agency for Defense Development) ;
  • Shin, Wan-Soon (Advanced Technology Agile Development Center, Institute of Defense Advanced Technology Research, Agency for Defense Development) ;
  • Kang, Eung-Cheol (Advanced Technology Agile Development Center, Institute of Defense Advanced Technology Research, Agency for Defense Development)
  • 투고 : 2014.10.14
  • 심사 : 2015.05.22
  • 발행 : 2015.06.05

초록

We analyzed the damage effect on Glass Fibre Reinforced Plastics(GFRP) under air flow by irradiation of continuous wave near-IR laser. Damage process and temporal temperature distribution were demonstrated and material characteristics were observed with laser intensity, surface flow speed and angle. Surface temperature on GFRP rapidly increased with laser intensity, and the damaged pattern was different with flow characteristics. In case of no flow, penetration on GFRP by burning and flame generation after laser irradiation was appeared at once. GFRP was penetrated by the heat generated from resin ignition. In case of laser irradiation under flow, a flame generated after burning extinguished at once by flow and penetration pattern on GFRP were differently shown with flow angle. From the results, we presented the damage process and its mechanism.

키워드

참고문헌

  1. S. S. Wu, C. D. Boley, J. N. Florando, M. M. LeBlanc, W. H. Lowdermilk, S. M. Rubenchik, and J. R. Stanley, "Deep Penetration in Aerospace Composite Materials Using Near-Infrared Laser Radiation," Laboratory Directed Research and Development 2012 Feasibility Study, 12-FS-014, 1-44, 2012.
  2. E. Aoyama, H. Inouej, T. Hirogaki, H. Nobe, Y. Kitaharal and T. Katayama, "Study on Small Diameter Drilling in GFRP," Composite Structures, 32, 567-573, 1995. https://doi.org/10.1016/0263-8223(95)00022-4
  3. S Fatimah, M Ishak, and S N Aqida, "$CO_2$ Laser Cutting of Glass Fiber Reinforce Polymer Composite," ICMER2011, 2012 IOP Conf. Ser. : Mater. Sci. Eng. 36 012033, 1-7, 2012.
  4. K. C. Yung, S. M. Mei, and T. M. Yue, "A Study of the Heat-Affected Zone in the UV YAG Laser Drilling of GFRP Materials," J. Mater. Process. Technol. 122, 278-285, 2002. https://doi.org/10.1016/S0924-0136(01)01177-3
  5. N. Chand and S. Neogi "Low Stress Abrasion of Laser Irradiated GFRP Composites : An Experimental and Microstructural Study," J. Mater. Science, 37, 2763-2771, 2002. https://doi.org/10.1023/A:1015833519903
  6. 김재상, 유웅재, 이호준, 조용무, 김재도, "GFRP의 레이저 절단특성 연구," 한국정밀공학회 94년 춘계학술대회논문집, 145-150, 1994.
  7. F. T. Wallenberger, J. C. Watson, and H. Li, "Glass Fibers," 2001 ASM International ASM Handbook, Vol. 21: Composites, #06781G, 2001.
  8. F. T. Wallenberger and P. A. Bingham, Fiberglass and Glass Technology(Springer Science + Business Media, LLC 2010) Chap.
  9. YD-115 TDS, 국도화학 catalog.
  10. BPA, Wikipedia(Internet)
  11. Composite Materials Handbook(MIL-HDBK-17-2F, Volume 2 of 5 17 June 2002), Chap 6.
  12. A. K. Jena and M. C. Chaturvedi, Phase Transformation in Materials(Prentice Hall, 1992), Chap. 6.2 pp. 192-206.