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Changes in Physico-chemical Properties of Single or Mixture State of DMF, MEK and Toluene in Synthetic Leather Factories

합성피혁제조업에서 취급하는 DMF, MEK, Toluene의 단일과 혼합물질 상태에 따른 물리·화학적 특성 변화

  • Kim, Ki-Woong (Occupational Safety and Health Research Institute, KOSHA) ;
  • Won, Yong Lim (Occupational Safety and Health Research Institute, KOSHA) ;
  • Park, Dong Jin (Occupational Safety and Health Research Institute, KOSHA) ;
  • Lee, Jung-Suk (Occupational Safety and Health Research Institute, KOSHA) ;
  • Han, In-Soo (Occupational Safety and Health Research Institute, KOSHA) ;
  • Lee, Su-Hee (Deaku Regional Office, KOSHA)
  • 김기웅 (한국산업안전보건공단 산업안전보건연구원) ;
  • 원용림 (한국산업안전보건공단 산업안전보건연구원) ;
  • 박동진 (한국산업안전보건공단 산업안전보건연구원) ;
  • 이정석 (한국산업안전보건공단 산업안전보건연구원) ;
  • 한인수 (한국산업안전보건공단 산업안전보건연구원) ;
  • 이수희 (한국산업안전보건공단 대구지역본부)
  • Received : 2014.04.16
  • Accepted : 2014.06.20
  • Published : 2014.06.30

Abstract

Objectives: It was known that workers in synthetic leather company are mainly co-exposed to dimethylformamide(DMF) with methyl ethyl ketone(MEK) or toluene(TOL) instead of a single dimethylformamide. This study was examined to the physico-chemical properties in single DMF and binary mixture DMF with MEK or TOL. Materials: Physico-chemical properties were measured by Korean and American Standard Test Methods. Results: Boiling point, specific gravity and flash point in single DMF were significantly higher than binary mixture DMF with MEK or TOL and such difference was dependent on the mixing ratio of MEK and TOL, and low explosion limit in binary mixture DMF with TOL was only significantly lower than single DMF. However, Reid vapor pressure had significantly higher in binary mixture DMF with MEK or TOL compared with single DMF. Conclusions: Our results demonstrate that the binary mixture DMF with MEK or TOL synergistically increases volatilization of DMF. It was concluded that the interaction between DMF and MEK and/or TOL might play a key role in the volatilization process of DMF under environmental conditions of workplace.

Keywords

References

  1. Abou-Naccoul R, Mokbel L, Bassil G, Saab J, Stephan K, Jose J. Aqueous solubility(in the range between 298.15 and 338.15 K), vapor pressure (in the range between $10^{-5}$ and 80 Pa) and Henry's law constant of 1,2,3,4-dibenzanthracene and 1,2,5,6-dibenzanthracene. Chemosphere 2014;94: 41-49
  2. American Standard Test Method. Concentration limits of flammability of chemicals(vapors and gases). ASTM E 681-09, 2009.
  3. Aralaguppi MI, Baragi JG. Physicochemical and excess properties of the binary mixtures of methylcyclohexane +ethanol, +propan-1-ol, +propan-2-ol, +butan-1-ol, +2-methyl-1-propanol, or 3-methyl-1-butanol at T=(298.15, 303.15, and 308.15) K. J Chem Thermodynamics 2006;38: 434-442 https://doi.org/10.1016/j.jct.2005.06.011
  4. Aruoja V, Moosus M, Kahru A, Sihtmae M, Maran U. Measurement of baseline toxicity and QSAR analysis of 50 non-polar and 58 polar narcotic chemicals for the alga Pseudokirchneriella subcapitata. Chemosphere 2014;96:23-32 https://doi.org/10.1016/j.chemosphere.2013.06.088
  5. Bartatt MD. Quantitative structure-activity relationships for skin irritation and corrosivity of neural and electrophilic organic chemicals. Toxicol In Vitro 1996;10:247-256 https://doi.org/10.1016/0887-2333(96)00007-0
  6. Benfenati E, Gini G. Computational predictive programs (expert systems) in toxicology. Toxicology 1997;119:213-225 https://doi.org/10.1016/S0300-483X(97)03631-7
  7. Blaauboer BJ. The integration of data on physico-chemical properties, invitro-derived toxicity data and physiologically based kinetic and dynamic as modelling a tool in hazard and risk assessment. A commentary. Toxicol Letter 2003;138:161-171 https://doi.org/10.1016/S0378-4274(02)00367-3
  8. Chan K, Jensen N, O'Brien PJ. Structure-activity relationships for thiol reactivity and rat or human hepatocyte toxicity induced by substituted ${\rho}$-benzoquinone compounds. J Appl Toxicol 2008;28:608-620 https://doi.org/10.1002/jat.1312
  9. Chen J, Liao Y, Zhao Y, Wang L, Lu G, Zhao T. Quantitative structure- activity relationships and mixture toxicity studies of heterocyclic nitrogen compounds. Bull Environ Contam Toxicol 1996;57:77-83. https://doi.org/10.1007/s001289900158
  10. Hansch C, Leo A. Substituent constants for correlation analysis in chemistry and biology. John Wiley & Sons. New York. 1979
  11. International Programme on Chemical Safety(IPCS). Dimethylformamide. Environmental Health Criteria 114, WHO, Geneva, 1991
  12. International Programme on Chemical Safety(IPCS). Methyl Ethyl Keton. Environmental Health Criteria 143, WHO, Geneva, 1993
  13. International Programme on Chemical Safety(IPCS). Toluene. Environmental Health Criteria 52, WHO, Geneva, 1985
  14. Kamlet MJ, Doherty RM, Abraham MH, Marcus Y, Taft RW. Linear solvation energy relationships: 46. An improved equation for correlation and prediction of octanol/water partition coefficients of organic nonelectrolytes (including strong hydrogen bond donor solutes). J Phys Chem 1988;92:5244-5255 https://doi.org/10.1021/j100329a035
  15. Kar S, Roy K. Quntification of contributions of molecular fragments for eye irritation of organic chemicals using QSAR study. Computer in Biology and Medicin 2014;48:102-108 https://doi.org/10.1016/j.compbiomed.2014.02.014
  16. Korean Standard(KS). Determination of boiling temperature for chemical agents. Method KS M 1071-2. Korean Standard Association, Seoul. 2007
  17. Korean Standard(KS). Test methods for density and relative density of chemical products. Method KS M 0004. Korean Standard Association, Seoul. 1977
  18. Korean Standard(KS). Testing methods for flash point of crude oil and petroleum products-Determination of flash point-Tag closed cup method. Methods KS M 2010. Korean Standard Association, Seoul. 2008
  19. Korean Standard(KS). Petroleum products and crude petroleum-Determination of vapour pressure-Reid method. Method KS M ISO 3007. Korean Standard Association, Seoul. 2012
  20. Lang KL, Silva IT, Machado VR, Zimmermann LA, Caro MSB, Simoes CMO, Schenkel EP, Duran FJ, Bernardes LSC, de Melo EB. Multivariate SAR and QSAR of cucurbitacin derivatives as cytotoxic compounds in a human lung adenocarcinoma cell line. J Mol Graphics and Modelling 2014;48:70-79 https://doi.org/10.1016/j.jmgm.2013.12.004
  21. Lin ZF, Yu HX, Huang L, Feng JF, Wang LS. Partitioning regularity of nonionic organic mixtures in organic phase/water system. Chin Sci Bull 2001a;46:1422-1425 https://doi.org/10.1007/BF03187021
  22. Lin ZF, Yu HX, Kong DY, Feng J, Wang LS. A new method of for determining the C18 emporeTM disk/water partition coefficients of organic pollutants. Environ Chem 2001b:20:139-145(Chinese).
  23. Lin ZF, Yu HX, Wei DB, Wang GH, Feng JF, Wamg LS. Prediction of mixture toxicity with its total hydrophobicity. Chemosphere 2002;46:305-310 https://doi.org/10.1016/S0045-6535(01)00083-2
  24. Luan F, Xu X, Liu H, Cordeiro MN. Prediction of the baseline toxicity of non-polar narcotic chemical mixtures by QSAR approach. Chemosphere 2013;90:1980-1986 https://doi.org/10.1016/j.chemosphere.2012.10.065
  25. Melcer H. Monitoring and modeling VOCs in wastewater facilities. Environ Sci Technol 1994;28(7):328-335 https://doi.org/10.1021/es00056a717
  26. Ministry of Employment and Labor's(MoEL) official notice No. 2009-38. Standard for test of risk and hazardous of industrial chemical substances. Ministry of Employment and Labor, Gwacheon (Korea). 2009.
  27. Rathbun RE. Prediction of stream volatilization coefficients. J Environ Eng Division, ASCE 1990;116(3):615-631 https://doi.org/10.1061/(ASCE)0733-9372(1990)116:3(615)
  28. Scott RM. Chemical Hazards in the workplace, Michigan: Lewis Publishers Inc.; 1989.p.57-58
  29. Verhaar HJM, Busser FJM, Hermens JLM. A surrogate parameter for the baseline toxicity content of contaminated water. Environ Sci Technol 1995;29(3):726-734 https://doi.org/10.1021/es00003a021
  30. Yang RSH, Thomas RS, Gustafson DL, Campain J, Benjamin SA, Verhaar HJM, Mumtaz MM. Approaches to developing alternative and predictive toxicology based on PBPK/PD and QSAR modeling. Environ Health Perspect 1998;106(Suppl.):1385-1393 https://doi.org/10.1289/ehp.98106s61385

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