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Experimental Study on the Development of Electromagnetic Pulse Shielding Inorganic Paint Using Carbon Materials

탄소 재료를 사용한 전자파 차폐 무기계 도료 개발에 관한 실험적 연구

  • 장경필 (한국건설기술연구원 건축연구본부) ;
  • 송태협 (한국건설기술연구원 건축연구본부)
  • Received : 2023.08.25
  • Accepted : 2023.09.12
  • Published : 2023.09.30

Abstract

The electromagnetic pulse(EMP) is a general term for high-output electromagnetic waves, and is classified into EMP generated from nuclear weapons, non-nuclear EMP, and EMP generated by natural phenomena. Electromagnetic pulses are means that can cause fatal damage to all electronic devices with electromagnetic elements, such as communication devices, mobile phones, computers, TVs, and means of transportation. In this study, the electromagnetic pulse(EMP) shielding effectiveness evaluation of paints according to the type and amount of carbon material was conducted to develop EMP shielding inorganic paint using carbon materials. In order to analyze the improvement of compatibility and dispersibility between materials, experiments were conducted two times with about 27 types of mixture proportions, and the electromagnetic pulse shielding effectiveness was evaluated by the electrical resistance measurement method. As a result of applying the EMP shielding paint developed through this study to shielding concrete, it was confirmed that the shielding performance was improved from about 25 dB to a maximum of 40 dB.

전자파(EMP)는 고출력 전자파의 총칭으로 핵무기에서 발생하는 EMP, 비핵 EMP, 자연현상에 의해 발생하는 EMP로 분류된다. 전자파는 통신기기, 휴대폰, 컴퓨터, TV, 교통수단 등 전자기적 요소를 지닌 모든 전자장치에 치명적인 손상을 줄 수 있는 수단이다. 본 연구에서는 탄소 재료를 이용한 EMP 차폐 무기 도료 개발을 위해 탄소 재료의 종류와 함량에 따른 도료의 EMP 차폐성능 평가를 수행하였다. 도료 제조에 사용된 원재료들의 상용성 및 분산성 향상을 분석하기 위해 약 27종의 배합으로 총 2회에 걸쳐 실험을 진행하였고, 전기저항 측정법을 이용하여 EMP 차폐 효과를 평가하였다. 본 연구를 통해 개발된 EMP 차폐 도료를 차폐 콘크리트에 적용한 결과 약 25 dB에서 최대 40 dB까지 차폐성능이 향상되는 것을 확인하였다.

Keywords

Acknowledgement

본 연구는 국토교통부 건설기술연구사업(과제번호: 22SCIP-B146646-05)의 연구비 지원에 의해 수행되었습니다.

References

  1. Azim, S.S., Satheesh, A., Ramu, K.K., Ramu, S., Venkatachari, G. (2006). Studies on graphite based conductive paint coatings, Progress in Organic Coatings, 55(1), 1-4.  https://doi.org/10.1016/j.porgcoat.2005.09.001
  2. Chung, D.D.L. (2001). Electromagnetic interference shielding effectiveness of carbon materials, Carbon, 39(2), 279-285.  https://doi.org/10.1016/S0008-6223(00)00184-6
  3. Hyun, S.Y., Du, J.K., Kim, W., Yook, J.G. (2014). Estimation of damage in electric power networks due to high power electromagnetic pulse, The Journal of Korean Institute of Electromagnetic Engineering and Science, 25(7), 757-766 [in Korean].  https://doi.org/10.5515/KJKIEES.2014.25.7.757
  4. Jang, K.P., Kim, S.H. (2021). Evaluation of electromagnetic pulse shielding effectiveness and bonding performance of inorganic paint based on carbon material, Journal of the Korea Academia-Industrial cooperation Society, 22(1), 801-807 [in Korean]. 
  5. JIS K 7194 (2003). Testing Method for Resistivity of Conductive Plastics with a Four-Point Probe Array, Japanese Standards Association. 
  6. Kim, Y.H., Kim, S.H., Park, T.Y. (2015). Concept of EMP(Electromagnetic Pulse) and way of solutions, Proceedings of the Korea Institute of Information and Communication Sciences Conference, 2015 Fall, 468-470 [in Korean]. 
  7. KTL L 378-2022 (2022). Electromagnetic Pulse Shielding Inorganic Paint for Building Interiors, Korea Testing Laboratory, 2022.03.28. [in Korean]. 
  8. Lee, H.S., Park, J.H., Singh, J.K., Choi, J.H., Mandal, S., Jang, J.M., Yang, H.M. (2020a). Electromagnetic shielding performance of carbon black mixed concrete with Zn-Al metal thermal spray coating, Materials, 13(4), 895. 
  9. Lee, N.K., Par, G.J., Park, J.J., Kim, S.W. (2019). Study on the electrical conductivity and electromagnetic shielding of high performance fiber reinforced cementitious composites(HPFRCC), Journal of the Korea Institute for Structural Maintenance and Inspection, 23(2), 37-43 [in Korean]. 
  10. Lee, W.J., Lee, H., Kim, Y.J. (2020b). Literature review on material development and performance evaluation method for EMP shielding concrete, Journal of the Korea Academia-Industrial cooperation Society, 21(12), 67-76 [in Korean]. 
  11. Min, T.B. (2020a). An experimental study on the development of electro magnetic pulse shielding cement using milled carbon fiber, Journal of the Korean Recycled Construction Resources Institute, 8(4), 429-435 [in Korean]. 
  12. Min, T.B. (2020b). An experimental study on the development of EMP shielding concrete according to the types of aggregate of industrial by-products, Journal of the Korean Recycled Construction Resources Institute, 8(3), 310-316 [in Korean]. 
  13. Min, T.B., Cho, H.K. (2022). Evaluation of electromagnetic pulse shielding performance of carbon fiber-mixed cement paste, International Journal of Concrete Structures and Materials, 16, 27. 
  14. Min, T.B., Kim, H.C., Choi, H.K., Roh, J.H., Kim, K.J., Park, Y.J. (2019). Experimental study on the development of EMP shielded concrete using industrial by-products, Journal of the Korea Institute of Building Construction, 19(6), 477-484 [in Korean]. 
  15. Shahzad, F., Alhabeb, M., Hatter, C.B., Anasori, B., Hong, S.M., Koo, C.M., Gogotsi, Y. (2016). Electromagnetic interference shielding with 2D transition metal carbides(MXenes), Science, 353(6304), 1137-1140.  https://doi.org/10.1126/science.aag2421
  16. Shurenkov, V.V., Pershenkov, V.S. (2016). Electromagnetic pulse effects and damage mechanism on the semiconductor electronics, Facta universitatis-series: Electronics and Energetics, 29(4), 621-629.  https://doi.org/10.2298/FUEE1604621S
  17. Vovchenko, K., Perets, Y., Ovsienko, I., Matqui, L., Oliynyk, V., Launetz, V. (2012). Shielding coatings based on carbon-polymer composites, Surface and Coatings Technology, 211, 196-199. https://doi.org/10.1016/j.surfcoat.2011.08.018