DOI QR코드

DOI QR Code

The Calculation of Flash Point for n-Nonane+n-Decane+n-Tridecane System by Raoult's Law and Multiple Regression Analysis

라울의 법칙과 다중회귀분석법에 의한 n-Nonane+n-Decane+n-Tridecane 계의 인화점 계산

  • Ha, Dong-Myeong (Dept. of Occupational Health and Safety Engineering, Semyung University) ;
  • Lee, Sungjin (Dept. of Clinical Laboratory Science, Semyung University)
  • 하동명 (세명대학교 보건안전공학과) ;
  • 이성진 (세명대학교 임상병리학과)
  • Received : 2017.11.08
  • Accepted : 2018.04.10
  • Published : 2018.04.30

Abstract

The flash point is one of the most important properties to characterize fire and explosion hazard of flammable liquid mixture. In this paper, the flash points of ternary liquid mixture, n-nonane+n-decane+n-tridecane system, were measured using Seta flash closed cup tester. The measured values were compared with the calculated values using Raoult's law and multiple regression analysis. The absolute average errors(AAE) of the results calculated by Raoult's law is $0.6^{\circ}C$. The absolute average errors of the results calculated by multiple regression analysis is $0.4^{\circ}C$. As can be seen from AAE, the calculated values based on multiple regresstion analysis were found to be better than those based on Raoult's law.

가연성 액체 혼합물의 화재와 폭발의 위험성을 규정하는 가장 중요한 성질 중 하나는 인화점이다. 본 논문에서는 삼성분계 액체 혼합물인, n-nonane+n-decane+n-tridecane 계의 인화점을 Seta flash 밀폐식 장치를 사용하여 측정하였다. 실험값은 라울의 법칙을 이용한 방법과 다중회귀분석법에 의해 계산된 값들과 비교되었다. 라울의 법칙에 의한 계산된 결과의 절대평균오차는 $0.6^{\circ}C$이었다. 다중회귀분석법에 의해 계산된 결과의 절대평균 오차는 $0.4^{\circ}C$이었다. 절대평균오차에서 알 수 있듯이 다중회귀분석법에 의한 계산값이 라울의 법칙에 의한 계산값에 비해 측정값을 잘 모사하였다.

Keywords

References

  1. Moghadam, A.Z., Rafiei, A., and Khalili, T., "Assessing Prediction Models on Calculating the Flash Point of Organic Acid, Ketone and Alcohol Mixtures", Fluid Phase Equilibria, 316, 117-121, (2012) https://doi.org/10.1016/j.fluid.2011.12.014
  2. Phoon, L.Y., Mustaffa, A.A., Hashim, H., and Mat, R., "A Review of Flash Point Prediction Models for Flammable Liquid Mixtures", Ind. Eng. Chem. Res., 53, 12553-12565, (2014) https://doi.org/10.1021/ie501233g
  3. Crowl, D.A., and Louver, J.F., "Chemical process Safety Fundamentals with Applications", Prentice-Hall, (1990)
  4. Lance, R.C., Barnard, A.J., and Hooymanm, J.E., "Measurement of Flash Points : Apparatus, Methodology, Applications", J. of Hazardous Materials, 3, 107-119, (1979) https://doi.org/10.1016/0304-3894(79)85008-6
  5. Whckey, R., and Chittenden, D., "Flash Points of Blend Correlated", Hydrocarbon Process, 42(6), 157-158, (1963)
  6. Affens, W.A., and Mclaren, G.W., "Flammability Properties of Hydrocarbon Solutions in Air", J. of Chem. Ind. Eng. Chem. & Eng. Data, 17(4), 482-488, (1972) https://doi.org/10.1021/je60055a040
  7. White, D. and Beyler, C.L., "Flame Spread on Aviation Fuels", Fire Saf. J., 28(1), 1-31, (1997) https://doi.org/10.1016/S0379-7112(96)00070-7
  8. Liaw, H.J., Chen, C.T., Cheng, C.C., and Yang, Y.T., "A Mathematical Model for Predicting the Flash Point of Binary Solution", J. of Loss Prevention in the Process Industries, 15, 429-438, (2002) https://doi.org/10.1016/S0950-4230(02)00068-2
  9. Reid, C.R., Prausnitz, J.M., and Poling, B.E., The Properties of Gases and Liquids, 4th Edition., McGraw-Hill, New York, (1998)
  10. Ha, D.M. and Lee, S.J., "The Estimation of Lower Flash Point for n-Pentanol+n-Propionic Acid and n-Pentanol+n-Butyric Acid Systems Using Optimization Method", KIGAS, 11(4), 73-78, (2007)
  11. Caoire, L., Paulmier, S., and Naudet, V., "Experimental Determination and Estimation of Closed Cup Flash Points of Mixtures of Flammable Solvents", Process Saf. Prog., 25(1), 33-39, (2006) https://doi.org/10.1002/prs.10112
  12. Caoire, L., Paulmier, S., and Naudet, V., "Estimation of Closed Cup Flash Points of Combustible Solvent Blends", J. Phy. Chem. Ref. Data, 35(1), 9-14, (2006) https://doi.org/10.1063/1.1928236
  13. Ha, D.M., and Lee, S.J., "The Measurement and Prediction of Maximum Flash Point Behavior for Binary Solution", Fire Sci. Eng., 27(5), 1-5, (2013) https://doi.org/10.7731/KIFSE.2013.27.5.1
  14. Ha, D.M., and Lee, S.J., "The Flash Point Measurement for Binary Flammable Mixture", KIGAS, 18(5), 60-65, (2014)
  15. American Society for Testing Materials, Annual Book of ASTM Standards, Vol. 06.01, (1999)
  16. Le Chatelier, "Esimation of Firedamp by Flammability limits", Ann. Minmes, 19, 388-392, (1891)
  17. Liaw, H.J., Chen, C.T., Cheng, C.C., and Yang, Y.T., "A Mathematical Model for Predicting the Flash Point of Binary Solution", J. of Loss Prevention in the Process Industries, 15, 429-438, (2002) https://doi.org/10.1016/S0950-4230(02)00068-2
  18. Liaw, H.J., Tang, C.L., and Lai, J.S., "A Model for Predicting the Flash Point of Ternary Flammable Solutions of Liquid", Combust Flame, 138, 308-319, (2004) https://doi.org/10.1016/j.combustflame.2004.06.002
  19. Gmehing, J., Onken, U., and Arlt, W., Vapor-Liquid Equilibrium Data Collection, 1, Part1-Part7, DECHEMA, (1980)
  20. Kim, S.Y., Lee, B.S., Chung, C.B., and Choi, S.H., "Prediction of Flash Point of Binary Systems by Using Multivariate Statistical Analysis", KIGAS, 10(4), 29-33, (2006)
  21. Ha, D.M., and Lee, S.J., "Prediction of Lower Explosive Limits of Binary Liquid Mixtures by Means of Solution Thermodynamics", KIGAS, 13(5), 20-24, (2009)
  22. Vidal, M., Rogers, W.J., Holste, J.C., and Mannan, M.S., "A Review of Estimation Methods for Flash Points and Flammability Limits", Process Safety Progress, 23(1), 47-55, (2004) https://doi.org/10.1002/prs.10004
  23. Ha, D.M., and Lee, S.J., "The Measurement and Estimation of Lower Flash Points for the n-Propanol+Acetic acid and n-Propanol+n-Propionic acid Systems", J. of the Korean Society of Safety, 22(4), 37-42 (2007)