화학공학소재연구정보센터
Korean Journal of Chemical Engineering, Vol.35, No.4, 1033-1044, April, 2018
A novel system dynamics model for forecasting naphtha price
E-mail:
Fluctuations in naphtha price are directly related to the profit of petrochemical companies. Thus, forecasting of naphtha price is becoming increasingly important. To respond to this need, a naphtha crack (the price gap between naphtha and crude oil) forecasting model is developed herein. The objective of this study was to design a reasonable forecasting model that is immediately available and can be used to develop various naphtha supply strategies. However, it is very difficult to forecast a price value with a high accuracy. Therefore, the proposed model focuses not on the price value but on the direction of the crack. These considerations are vital to a company’s decision-making process. In addition, a system dynamics model that considers causal relations is proposed. It was developed based on heuristics, statistical analysis, seasonal effects, and relationships between factors that affect naphtha price, and it exhibits an accuracy rate of 84%-95% in forecasting of the naphtha crack three months in advance.
  1. Dooley G, Lenihan H, Resour. Policy, 30, 208 (2005)
  2. Ryu JH, Korean J. Chem. Eng., 30(1), 27 (2013)
  3. Lee MJ, Kim JY, Korean J. Chem. Eng., 34(6), 1604 (2017)
  4. Kim M, Kim J, Int. J. Hydrog. Energy, 42(7), 3899 (2017)
  5. Pai PF, Lin CS, Omega, 33, 497 (2005)
  6. Brault JM, Labib R, Perrier M, Stuart P, Can. J. Chem. Eng., 89(4), 901 (2011)
  7. Zhou XG, Liu LH, Yuan WK, Can. J. Chem. Eng., 74(5), 638 (1996)
  8. Mandal S, Jana AK, Int. J. Hydrog. Energy, 38, 1244 (2013)
  9. Ochoa-Estopier LM, Jobson M, Smith R, Comput. Chem. Eng., 59, 178 (2013)
  10. Szkuta B, Sanabria L, Dillon T, IEEE Trans. Power Syst., 14, 851 (1999)
  11. Gareta R, Romeo LM, Gil A, Energy Conv. Manag., 47(13-14), 1770 (2006)
  12. Jammazi R, Aloui C, Energy Econ., 34, 828 (2012)
  13. Conejo AJ, Plazas MA, Espinola R, Molina AB, IEEE Trans. Power Syst., 20, 1035 (2005)
  14. Visetsripong P, Sooraksa P, Luenam P, Chaimongkol W, SICE Annual Conference, 659-663 (2008).
  15. Yan X, Chowdhury NA, Int. J. Electr. Power Energy Syst., 53, 20 (2013)
  16. Myklebust J, Tomasgard A, Westgaard S, OPEC Energy Review, 34, 82 (2010)
  17. Salehnia N, Falahi MA, Seifi A, Adeli MHM, J. Nat. Gas Sci. Eng., 14, 238 (2013)
  18. Tak K, Kim J, Kwon H, Cho JH, Moon I, Korean J. Chem. Eng., 33(7), 1999 (2016)
  19. Manca D, Comput. Chem. Eng., 57, 3 (2013)
  20. Rasello R, Manca D, Comput. Aided Chem. Eng., 433 (2014).
  21. Lee KJ, Lee TH, Kim LH, Yeo YK, Korean J. Chem. Eng., 28(7), 1505 (2011)
  22. Lee TH, Lee KJ, Jo BW, Kim LH, Yeo YK, Korean J. Chem. Eng., 28(6), 1331 (2011)
  23. Sung C, Kwon H, Lee J, Yoon H, Moon I, Comput. Aided Chem. Eng., 145 (2012).
  24. Lyu B, Kwon H, Lee J, Yoon H, Jin J, Moon I, Comput. Aided Chem. Eng., 829 (2014).
  25. Kwon H, Lyu B, Tak K, Lee J, Cho JH, Moon I, Comput. Chem. Eng., 84, 226 (2016)
  26. Kwon H, Tak K, Cho JH, Kim J, Moon I, Ind. Eng. Chem. Res., 56(5), 1267 (2017)
  27. Tang X, Zhang BS, Hook M, Feng LY, Energy, 35(7), 3097 (2010)
  28. Aslani A, Helo P, Naaranoja M, Appl. Energy, 113, 758 (2014)
  29. Rendon-Sagardi MA, Sanchez-Ramirez C, Cortes-Robles G, Alor-Hernandez G, Cedillo-Campos MG, Appl. Energy, 123, 358 (2014)
  30. Qudrat-Ullah H, Energy, 59, 285 (2013)
  31. Rehan R, Knight MA, Unger AJA, Haas CT, Tunn Undergr Sp Tech, 39, 116 (2014)
  32. Erdem O, Ceyhan E, Varli Y, Physica A, 414, 274 (2014)