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Articles

Thermodynamic study of oxygenised fuel additives (isomeric butanediols with ethyl acetate) at 298.15-323.15K

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Pages 62-89 | Received 19 May 2019, Accepted 20 Oct 2019, Published online: 11 Nov 2019

References

  • Available from: https://www.mordorintelligence.com/industry-reports/ethyl-acetate-market
  • Available from: https://patents.google.com/patent/US20110296744A1/en
  • Arcoumanis C, Bae C, Crookes R, et al. The potential of di-methyl ether (DME) as an alternative fuel for compression-ignition engines: a review. Fuel. 2008;87:1014–1030.
  • Gilani AG, Paktinat N, Moghadam M. Relative permittivity data of binary mixtures containing 2-butanol, 2-butanone, and cyclohexane. J Chem Thermodyn. 2011;43:569–575.
  • Pal A, Kumar H, Maan R, et al. Densities and speeds of sound of binary liquid mixtures of some n-alkoxypropanols with methyl acetate, ethyl acetate, and n-butyl acetate at T = (288.15, 293.15, 298.15, 303.15, and 308.15) K. J Chem Eng Data. 2013;58:225−239.
  • Anwar N, Yasmeen S. Volumetric, compressibility and viscosity studies of binary mixtures of [EMIM][NTf2] with ethylacetate/methanol at (298.15–323.15) K. J Mol Liq. 2016;224:189–200.
  • Malek NI, Singh A, Surati R, et al. Study on thermo physical and excess molar properties of binary systems of ionic liquids. I: [Cnmim][PF6] (n = 6, 8) and alkyl acetates. J Chem Thermodyn. 2014;74:103–118.
  • Rafiee HR, Frouzesh F, Miri S. Volumetric properties for binary mixtures of ethyl acetate, vinyl acetate and tert-butyl acetate with 1-propanol and iso-butanol at T = (293.15–313.15) K and P = 0.087 MPa. J Mol Liq. 2016;213:255–267.
  • Pal A, Kumar H, Maan R, et al. Volumetric and acoustic studies of binary liquid mixtures of dipropylene glycol dimethyl ether with methyl acetate, ethyl acetate and n-butyl acetate in the temperature range T 5 (288.15, 293.15, 298.15, 303.15, and 308.15) K. J Solution Chem. 2013;42:1988–2011.
  • Oswal SL, Oswal P, Modi PS, et al. Acoustic, volumetric, compressibility and refractivity properties and Flory’s reduction parameters of some homologous series of alkyl alkanoates from 298.15 to 333.15 K. Thermochim Acta. 2004;410:1–14.
  • Grineva OV, Zhuravlev VI. Densities and dielectric permittivities of three butanediols and their solutions with 10 mol % water. J Chem Eng Data. 1996;41:604–607.
  • Hawrylak B, Gracie K, Palepu R. Thermodynamic properties of binary mixtures of butanediols with water. J Solution Chem. 1998;27:17–31.
  • Geyer H, Ulbig P, Görnert M. Measurement of densities and excess molar volumes for (1,2-ethanediol, or 1,2-propanediol, or 1,2-butanediol + water) at the temperatures (278.15, 288.15, 298.15, 308.15, and 318.15) K and for (2,3-butanediol + water) at the temperatures (308.15, 313.15, and 318.15) K. J Chem Thermodyn. 2000;32:1585–1596.
  • George J, Sastry NV. Densities, dynamic viscosities, speeds of sound, and relative permittivities for water + alkanediols (propane-1,2- and −1,3-diol and butane-1,2-, −1,3-, −1,4-, and −2,3-diol) at different temperatures. J Chem Eng Data. 2003;48:1529–1539.
  • Parsa JB, Haghro MF. Excess molar volume and viscosity deviation for binary mixtures of polyethylene glycol dimethyl ether 250 with 1,2-alkanediols (C3-C6) at T = (293.15 to 323.15) K. J Chem Thermodyn. 2008;40:782–788.
  • Zorębski E, Geppert-Rybczyńska M. Thermodynamic and transport properties of (1-butanol + 1,4-butanediol) at temperatures from (298.15 to 318.15) K. J Chem Thermodyn. 2010;42:409–418.
  • Zorebski E, Dzida M. The effect of temperature and pressure on acoustic and thermodynamic properties of 1,4-butanediol. the comparison with 1,2-, and 1,3-butanediols. J Chem Thermodyn. 2012;54:100–107.
  • Atilhan M, Aparicio S. PρT measurements and derived properties of liquid 1,2-alkanediols. J Chem Thermodyn. 2013;57:137–144.
  • Zorębski E, Góralski P, Godula B, et al. Thermodynamic and acoustic properties of binary mixtures of 1-butanol with 1,2-butanediol. the comparison with the results for 1,3-, and 1,4-butanediol. J Chem Thermodyn. 2014;68:145–152.
  • Alavianmehr MM, Shahsavar S, Ghodrati H, et al. Measurement and modeling of volumetric properties and speeds of sound of several mixtures of alcohol liquids containing butanediol. J Chem Eng Data. 2015;60:1956–1967.
  • Sha F, Zhao T, Guo B, et al. Density, viscosity and spectroscopic studies of the binary system 1,2-ethylenediamine + 1,4-butanediol at T = (293.15 to 318.15) K. J Mol Liq. 2015;208:373–379.
  • Srinivasu JV, Krishna TS, Narendra K, et al. Elucidation of H-bond and molecular interactions of 1,4-butanediol with cresols: acoustic and volumetric data. J Mol Liq. 2017;236:27–37.
  • Zorebski E, Dzida M. Study of the acoustic and thermodynamic properties of 1,2- and 1,3-butanediol by means of high-pressure speed of sound measurements at temperatures from (293 to 318) K and pressures up to 101 MPa. J Chem Eng Data. 2007;52:1010–1017.
  • Nain AK. Densities and volumetric properties of binary mixtures of formamide with 1-butanol, 2-butanol, 1,3-butanediol and 1,4-butanediol at temperatures between 293.15 and 318.15 K. J Solution Chem. 2007;36:497–516.
  • Zorebski E, Goralski P. Molar heat capacities for (1-butanol+ 1, 4-butanediol, 2, 3-butanediol, 1, 2-butanediol, and 2-methyl-2, 4-pentanediol) as function of temperature. J Chem Thermodyn. 2007;39:1601–1607.
  • Moosavi M, Rostami AA. Densities, viscosities, refractive indices, and excess properties of aqueous 1,2-etanediol, 1,3-propanediol, 1,4-butanediol, and 1,5-pentanediol binary mixtures. J Chem Eng Data. 2017;62:156–168.
  • Scholz E. Karl fischer titration. Berlin: Springer-Verlag; 1984.
  • Bhavani MD, Satyaveni S, Ratnakar A. Acoustic and volumetric study of renewable oxygenated fuel additives at (298.15–323.15) K: isomeric butanediols with ethylbutyrate. J Che Thermodyn. 2019;136:100–115.
  • Davis MI, Douhéret G, Reis JCR, et al. The scattering of light and its applications to chemistry. Phys Chem Chem Phys. 2001;3:4555–4559.
  • Benson GC, Kiyohara O. Evaluation of excess isentropic compressibilities and isochoric heat capacities. J Chem Thermodyn. 1979;11:1061–1064.
  • Douhéret G, Davis MI, Reis JCR, et al. Isentropic compressibilities-experimental origin and the quest for their rigorous estimation in thermodynamically ideal liquid mixtures. Chem Phys Chem. 2001;2:148–161.
  • Reid RC, Prausnitz JM, Poling BE. The properties of gases and liquids. 4th ed. New York: McGraw Hill Inc.; 1987. p. 139.
  • Redlich O, Kister AT. Algebric representation of thermodynamic properties and classification of solutions. Ind Eng Chem. 1948;40:345–348.
  • Preeti D, Nain AK. Experimental and theoretical studies of acoustic and viscometric properties of binary mixtures of tetrahydrofuran with some alkyl acrylates at temperatures from 293.15 to 318.15K. J Mol Liq. 2017;241:549–562.
  • Iloukhani H, Ghorbani R. Volumetric properties of N, N-dimethylformamide with 1, 2-alkanediols at 20° C. J Solution Chem. 1998;27:141–149.
  • Yang C, Ma P, Zhou Q. Excess molar volumes and viscosities of binary mixtures of sulpholane with benzene, toluene, ethylbenzene, p-xylene, o-xylene, andm-xylene at 303.15 and 323.15Kand atmospheric pressure. J Chem Eng Data. 2004;49:881–885.
  • Gilani AG, Gilani HG, Ansari M, et al. Dielectric data of binary mixtures of 1,2-butanediol with 2-ethyl-1-hexanol and 1,4-dioxane at T = (298.2, 308.2, and 318.2) K. J Chem Thermodyn. 2012;44:44–50.
  • Gilani AG, Gilani HG, Ansari M. Dielectric analysis of binary systems of primary diols with 1-hexanol and 1, 4-dioxane at various temperatures. J Mol Liq. 2014;196:270–279.
  • Rajagopal K, Chenthilnath S. Excess thermodynamic studies of binary liquid mixtures of 2-methyl-2-propanol with ketones. Indian J Pure Appl Phys. 2010;48:326–333.
  • Wang H, Liu W, Huang J. Densities and volumetric properties of a (xylene+ dimethyl sulfoxide) at temperature from (293.15 to 353.15) K. J Chem Thermodyn. 2004;36:743–752.
  • Awwad AM. Excess molar volumes for (2-ethoxyethanol+a glycol) at 298.15 K. J Chem Thermodyn. 1986;18:443–445.
  • Mehta SK, Ram G, Bhasin KK. Effect of placement of hydroxyl groups in isomeric butanediol on the behaviour of thermophysical and spectroscopic properties of pyrrolidin-2-one. J Chem Thermodyn. 2005;37:791–801.
  • Mehta SK, Ram G, Mani C, et al. A comparative study of thermophysical and spectroscopic properties in mixtures of isomeric butanediol and N, N-dimethylformamide. J Chem Thermodyn. 2006;38:836–848.
  • Kuhn LP, Von R, Schleyer P, et al. Conformational effects and hydrogen bonding in 1, 4-diols. J Am Chem Soc. 1964;86:650–658.
  • Ratnam MV. Viscosity studies in binary liquid mixtures of ethyl acetate with hydrocarbons and halogen compounds at 313.15 K. Proc Indian Natn Sci Aca. 1987;53(A(4)):588–591.
  • Krishna TS, Narendra K, Gowrisankar M, et al. Physicochemical and spectroscopic studies of molecular interactions of 1-butyl-3-methylimidazolium hexafluorophosphate +2-methoxyethanol or 2-ethoxyethanol binary mixtures at temperatures from 298.15 to 323.15 K. J Mol Liq. 2017;227:333–350.
  • Kawaizumi F, Ohno M, Miyahara Y. Ultrasonic and volumetric investigation of aqueous solutions of amides. Bull Chem Soc Jpn. 1977;50:2229–2233.
  • Canzonieri S, Camacho A, Tabarrozzi R, et al. Volumetric and viscous behaviour of the binary and ternary systems formed by methyl acetate, ethyl acetate and 1-propanol at 283.15, 298.15 and 313.15 K. Phys Chem Liq. 2012;50:530–545.
  • Eyring H, Kincaid JC. The activated complex in chemical reactions. J Chem Phys. 1938;6:620–630.
  • Pal A, Kumar B. Volumetric, acoustic and spectroscopic studies for binary mixtures of ionic liquid (1-butyl-3-methylimidazolium hexafluorophosphate) with alkoxyalkanols at T=(288.15 to 318.15) K. J Mol Liq. 2011;163:128–134.
  • Kermanpour F, Sharifi T. Thermodynamic study of binary mixture of x1 [C6mim][BF4]+ x21-propanol: measurements and molecular modeling. Thermochim Acta. 2012;527:211–218.
  • Hall L. The origin of ultrasonic absorption in water. Phys Rev. 1948;73:775–784.
  • Suneetha P, Krishna TS, Gowrisankar M, et al. Molecular interaction between binary mixtures 1-butyl-3-methyl-imidazolium bis (trifluoromethylsulfonyl) imide with N-Vinyl-2-pyrrolidinone at different temperatures. J Chem Thermodyn. 2017;108:181–192.
  • Cooper EI, O’Sullivan EJ. New, stable, ambient-temperature molten salts. Proc Electrochem Soc. 1992;16:386–396.
  • Vercher E, Miguel PJ, Llopis FJ, et al. Volumetric and acoustic properties of aqueous solutions of trifluoromethanesulfonate-based ionic liquids at several temperatures. J Chem Eng Data. 2012;57:1953−1963.
  • Pal A, Kumar B, Kang TS. Effect of structural alteration of ionic liquid on their bulk and molecular level interactions with ethylene glycol. Fluid Phase Equilib. 2013;358:241–249.

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