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Ethylene Glycol과 물의 혼합비에 따른 자연발화온도 특성

Characteristic of Auto Ignition Temperature due to the Mixture Ratio of Ethylene Glycol and Water

  • 김정훈 (부경대학교 대학원 소방공학과) ;
  • 최재욱 (부경대학교 소방공학과)
  • Kim, Jung-Hun (Graduate School of Fire Protection Engineering, Pukyong National Univ.) ;
  • Choi, Jae-Wook (Dept. of Fire Protection Engineering, Pukyong National Univ.)
  • 투고 : 2015.11.11
  • 심사 : 2016.01.25
  • 발행 : 2016.02.29

초록

자연발화 특성은 가연성물질의 취급 및 화재예방을 위한 중요한 인자이다. 본 연구는 ASTM D2155식 발화온도 측정장치를 사용하여 Ethylene Glycol과 물을 혼합한 시료의 자연발화 특성을 고찰하였다. Ethylene Glycol 100%는 시료량 $75{\mu}l{\sim}160{\mu}l$의 범위에서 $434^{\circ}C$로 나타났다. 물을 첨가하여 Ethylene Glycol 80%와 물 20%를 혼합한 시료는 시료량 $100{\mu}l{\sim}125{\mu}l$의 범위에서 $434^{\circ}C$로 나타났고, Ethylene Glycol 60%와 물 40%를 혼합한 시료에서 시료량 $120{\mu}l{\sim}160{\mu}l$의 범위에서 $437^{\circ}C$로 나타났다. 또한 순간발화온도는 시료량 $125{\mu}l$에서 각각 $579^{\circ}C$, $595^{\circ}C$$611^{\circ}C$를 구하였으며, 물의 비율이 증가할수록 자연발화온도와 순간발화온도는 증가되는 것으로 나타났다.

Autoignition characteristic is an important factor of all combustible substances, and a critical determinant in assessing the effectiveness of fire hazard prevention. This study investigated the autoignition characteristic of mixtures of Ethylene Glycol and water using an ASTM D2155 type ignition temperature measuring apparatus. It was possible to get the minimum temperature as $434^{\circ}C$ from 100% Ethylene Glycol within range of $75{\sim}160{\mu}l$. A volume of $100{\sim}125{\mu}l$ of a mixed sample of Ethylene Glycol and water (80 : 20) was ignited at the same temperature ($434^{\circ}C$). Also it was possible to get the auto ignition temperature as $437^{\circ}C$ from a mixed sample of Ethylene Glycol and water (60 : 40) within range of $120{\sim}160{\mu}l$. The instantaneous ignition temperatures determined for $125{\mu}l$ of each of the three samples were $579^{\circ}C$, $595^{\circ}C$ and $611^{\circ}C$, respectively. Both auto ignition temperatures and instantaneous ignition temperatures were increased through the addition of water to the samples.

키워드

참고문헌

  1. J. W. Choi, Y. S. Mok and D. M. Ha, "A Study on Spontaneous Ignition of Hydroxy Propyl Methyl Cellulose", Fire Science and Engineering, Vol. 15, No. 4, pp. 34-40 (2001).
  2. T. Y. Kim, Y. S. Mok and J. W. Choi, "A Study on the Flash Point and Spontaneous Ignition Determination of 2-Propanol and O-xylene Mixtures", Proceedings of 2011 Fall Annual Conference, Korean Institute of Fire Science & Engineering, pp. 360-363 (2011).
  3. M. G. Zabetakis, A. L. Furno and G. W. Jones, "Minimum Spontaneous Ignition Temperature of Combustible in Air", Industrial and Engineering Chemistry, Vol. 46, No 10, pp. 2173-2178 (1954). https://doi.org/10.1021/ie50538a047
  4. G. S. Scott, G. W. Jones and F. E. Scott, "Determination of Ignition Temperature of Combustible Liquids and Gases", Analytical Chemistry, Vol. 20, No. 3, pp. 238-241 (1948). https://doi.org/10.1021/ac60015a015
  5. J. W. Choi, Y. S. Mok and S. Y. Kim, "A Study on Autoignition Characteristics of 1-Heptene, 2-Heptene and 3-Heptene", Journal of KIIS, Vol. 5, No. 2, pp. 17-23 (1990).
  6. D. M. Ha, "Appropriateness of MSDS by Means of the Measurement of Combustible Properties of Anisole", Fire Science and Engineering, Vol. 29, No. 2, pp. 20-24 (2015). https://doi.org/10.7731/KIFSE.2015.29.2.020
  7. D. M. Ha and K. H. Kim, "A Study of Minimum Autoignition Temperature Behavior (MAITB) of Benzene and n-Hexane Mixture", Fire Science and Engineering, Vol. 27, No. 1, pp. 8-13 (2013). https://doi.org/10.7731/KIFSE.2013.27.1.008
  8. P. J. Dinenno, D. Drysdale, C. L. Beyler, W. D. Walton, R. L. P. Custer, J. R. Hall and J. M. Watts, "The SFPE Handbook of Fire Protection Engineering", Third Edition, SFPE, Maryland, USA, pp. (2)188-(2)199 (2002).
  9. J. W. Choi, Y. S. Mok, I. G. Choi, S. H. Jeon, W. S. Lim and C. W. Min, "A Study on the Spontaneous Ignition of Gasoline and Additive of Fuel", Fire Science and Engineering, Vol. 20, No. 1, pp. 1-5 (2006).
  10. N. N. Semenov, "Chemical Kinetics and Chain Reaction", Oxford University Press, Oxford, Oxfordshire (1935).
  11. KOSHA, "Material Safety Data Sheet of Ethylen Glycol", http://msds.kosha.or.kr/ (2015.12.06.).
  12. D. K. Jung, J. W. Choi, I. S. Lee, W. S. Lim and D. K. Kim, "A Study of Characteristics Such as Spontaneous Ignition, Flash Point and Explosion behavior of Methyl Ethyl Ketone Peroxide in Order to Determine its Hazardousness", Journal of the KOSOS, Vol. 20, No. 3, pp. 78-83 (2005).
  13. D. M. Ha, "Measurement and Prediction of Autoignition Temperature of n-Butanol and sec-Butanol System", Fire Science and Engineering, Vol. 26, No. 5, pp. 48-53 (2012). https://doi.org/10.7731/KIFSE.2012.26.5.048
  14. Poly Science, "Material Safety Data Sheet of Ethylen Glycol", http://www.horizontechinc.com/MSDS/PDF/p110-157.pdf (2015.12.04).
  15. Shell Chemicals, "Material Safety Data Sheet of Ethylen Glycol", http://www.ppe.com/msds/EGF05_EGF55.PDF (2015.12.06.).
  16. Fisher Scientific, "Material Safety Data Sheet of Ethylen Glycol", http://avogadro.chem.iastate.edu/MSDS/ethylene_glycol.htm (2015.12.06.).