[1] R. Luque, J.C. Lovett, B. Datta, J. Clancy, J.M. Campelo, A.A. Romero, Biodiesel as feasible petrol fuel replacement:A multidisciplinary overview, Energy Environ. Sci. 3(11) (2010) 1706-1721. [2] F.E.M. Alaoui, E.A. Montero, J.P. Bazile, F. Aguilar, C. Boned, Liquid density of biofuel mixtures:(Dibutyl ether +1-butanol) system at pressures up to 140 MPa and temperatures from (293.15 to 393.15) K, J. Chem. Thermodyn. 43(11) (2011) 1768-1774. [3] M. Yadav, S.N. Upadhyay, Y.C. Sharma, Process optimization, kinetics of production jatropha curcus methyl ester, and its utilization in single cylinder diesel engine, Energy Convers. Manag. 160(2018) 364-374. [4] K. Bencheikh, A.E. Atabani, S. Shobana, M.N. Mohammed, G. Uǧuz, O. Arpa, G. Kumar, A. Ayanoǧlu, A. Bokhari, Fuels properties, characterizations and engine and emission performance analyses of ternary waste cooking oil biodieseldiesel-propanol blends, Sustain. Energy Technol. Assessm. 35(2019) 321-334. [5] G. Rubio-Pérez, N. Muñoz-Rujas, A. Srhiyer, E.A. Montero, F. Aguilar, Isobaric vapor-liquid equilibrium, density and speed of sound of binary mixtures 2,2,4-trimethylpentane +1-butanol or dibutyl ether (DBE) at 101.3 kPa, Fluid Phase Equilib. 475(2018) 10-17. [6] M. Hajjari, M. Tabatabaei, M. Aghbashlo, H. Ghanavati, A review on the prospects of sustainable biodiesel production:A global scenario with an emphasis on waste-oil biodiesel utilization, Renew. Sustain. Energy Rev. 72(2017) 445-464. [7] S.H. Teo, A. Islam, E.S. Chan, S.Y. Thomas Choong, N.H. Alharthi, Y.H. TaufiqYap, M.R. Awual, Efficient biodiesel production from jatropha curcus using CaSO4/Fe2O3-SiO2 core-shell magnetic nanoparticles, J. Clean. Prod. 208(2019) 816-826. [8] M.A. Aissa, I.R. Radović, M.L. Kijevčanin, A systematic study on volumetric and transport properties of binary systems 1-propanol + n-hexadecane, 1-butanol + n-hexadecane and 1-propanol + ethyl oleate at different temperatures:Experimental and modeling, Fluid Phase Equilib. 473(2018)1-16. [9] D. Kumar, G. Kumar, R. Johari, P. Kumar, Fast, easy ethanomethanolysis of jatropha curcus oil for biodiesel production due to the better solubility of oil with ethanol in reaction mixture assisted by ultrasonication, Ultrason. Sonochem. 19(4) (2012) 816-822. [10] M. Kariznovi, H. Nourozieh, J. Abedi, Experimental measurements and predictions of density, viscosity, and carbon dioxide solubility in methanol, ethanol, and 1-propanol, J. Chem. Thermodyn. 57(2013) 408-415. [11] G.A. Torín-Ollarves, M.C. Martín, C.R. Chamorro, J.J. Segovia, Densities, viscosities, and isobaric heat capacities of the system (1-butanol + cyclohexane) at high pressures, J. Chem. Thermodyn. 74(2014) 153-160. [12] M.E. Tat, J.H. Van Gerpen, Specific gravity of biodiesel and its blends with diesel fuel, J. Am. Oil Chem. Soc. 77(2) (2000) 115-119. [13] M. Feyzi, Z. Shahbazi, L. Norouzi, Excess molar volumes of binary and ternary mixture of sunflower biodiesel, diesel and 2-propanol at 293.15-353.15 K and ambient pressure, J. Mol. Liq. 249(2018) 1271-1278. [14] T.W. Ryan, L.G. Dodge, T.J. Callahan, The effects of vegetable oil properties on injection and combustion in two different diesel engines, J. Am. Oil Chem. Soc. 61(10) (1984) 1610-1619. [15] E. Alptekin, M. Canakci, Characterization of the key fuel properties of methyl ester-diesel fuel blends, Fuel 88(1) (2009) 75-80. [16] F.M.R. Mesquita, F.X. Feitosa, R.S. Santiago, H.B. de Santana, Density, excess volumes, and partial volumes of binary mixtures of soybean biodiesel + diesel and soybean biodiesel + n-hexadecane at different temperatures and atmospheric pressure, J. Chem. Eng. Data 56(1) (2011) 153-157. [17] F.M.R. Mesquita, F.X. Feitosa, F.R. Do Carmo, R.S. De Santiago-Aguiar, H.B. De Sant'ana, Viscosities and viscosity deviations of binary mixtures of biodiesel + petrodiesel (or n-hexadecane) at different temperatures, Brazil. Chem. Eng. 29(3) (2012) 653-664. [18] T.A. Wani, S. Kitchlu, G. Ram, Genetic variability studies for morphological and qualitative attributes among Jatropha curcas L. accessions grown under subtropical conditions of north India, S. Afr. J. Bot. 79(2012) 102-105. [19] S.K. Duran, A review on oil extraction and biofuels production from various materials, Mater. Today Proc. 26(2020) 261-265. [20] S.H. Teo, U. Rashid, Y.H. Taufiq-Yap, Biodiesel production from crude jatropha curcas oil using calcium based mixed oxide catalysts, Fuel 136(2014) 244-252. [21] P. Chitra, P. Venkatachalam, A. Sampathrajan, Optimisation of experimental conditions for biodiesel production from alkali-catalysed transesterification of jatropha curcus oil, Energy Sustain. Dev. 9(3) (2005) 13-18. [22] F. Alaoui, E. Montero, J.P. Bazile, M.J.P. Comuñas, G. Galliero, C. Boned, Liquid density of 1-butanol at pressures up to 140MPa and from 293.15K to 403.15K, Fluid Phase Equilib. 301(2) (2011) 131-136. [23] G. Torín-Ollarves, C. Martín, J. Segovia, Thermophysical properties of 1,2,4-trimethylbenzene in admixtures with 1-butanol or 2-butanol at high pressures, J. Chem. Thermodyn. 111(2017) 41-51. [24] S. Kumar, J.S. Yadav, V.K. Sharma, W. Lim, J.H. Cho, J. Kim, I. Moon, Physicochemical properties of jatropha curcas biodiesel + diesel fuel No. 2 binary mixture at T=(288.15 to 308.15) K and atmospheric pressure, J. Chem. Eng. Data 56(3) (2011) 497-501. [25] S. Kumar, V.K. Sharma, W. Lim, J.H. Cho, I. Moon, Densities and speeds of sound of jatropha curcas biodiesel +(C4-C5) alkan-1-Ol binary mixtures, J. Chem. Eng. Data 57(2012) 2236-2242. [26] S. Kumar, W. Lim, V. Kumar Sharma, S. Kumar Garg, I. Moon, Synthesis of jatropha curcas biodiesel and physicochemical investigation of molecular interactions in jatropha curcas biodiesel + C2-C 3-alkanol blends, J. Mol. Liq. 181(2013) 55-61. [27] T. Mustafa, S.A. Soomro, M. Najam, M. Amin Assadullah, Ijaz Ahmad, I. production of biodiesel through catalytic transesterification of jatropha oil, J. Appl. Emerg. Sci. 6(2016) 9-13. [28] U.S. Department of Energy, office of energy efficiency and renewable energy alternative fuels data center. http://www.afdc.energy.gov/afdc/fuels/properties.html (accessed Feb 10, 2010). [29] J.A. Riddick, W.B. Bunger, T.K. Skano, Organic Solvents, in:Physical Properties and Methods of Purification, 4th ed., Wiley, New York, 1986. [30] G.P. Dubey, M. Sharma, N. Dubey, Study of densities, viscosities, and speeds of sound of binary liquid mixtures of butan-1-ol with n-alkanes (C6, C8, and C10) at T=(298.15, 303.15, and 308.15) K, J. Chem. Thermodyn. 40(2008) 309-320. [31] G.P. Dubey, M. Sharma, Temperature and composition dependence of the densities,viscosities,and speedsofsoundofbinaryliquidmixturesof1-butanol with hexadecane and squalane, J. Chem. Eng. Data 53(2008) 1032-1038. [32] Rafael Seidl:Green car congress:Comparing the effect of palm and jatropha biodiesel in a diesel engine. http://www.greencarcongress.com/2006/11/comparing_the_e.html (accessed Nov 3, 2006). [33] D. Ramesh, A. Samapathrajan, P. Venkatachalam, Production of biodiesel from jatropha curcas oil by using pilot biodiesel plant, Jatropha J. 18(09) (2006) 1-6. [34] K. Pramanik, Properties and use of jatropha curcas oil and diesel fuel blends in compression ignition engine, Renew. Energy 28(2) (2003) 239-248. [35] D. Fang, X. Hu, K. Liang, Q. Yan, J. Wei, Thermochimica acta the excess molar volume and the molar surface gibbs energy of the binary of the ether-functionalized ionic liquids[C22O1IM][TfO] with ethanol and isomeric propanols at T=(288.15-318.15)K, Thermochim. Acta 682(2019) 178383. [36] J.C. Nobre, L.C.S. Cristino, A.F. Santos, Â.F.S. Castro, C.A.N. De, I.M.S. Lampreia, Volumetric study of the ternary liquid mixture (water + ethanol +1-propanol) at T=293.15 K and P=0.1 MPa, J. Chem. Thermodyn. 140(64) (2020) 1-9. [37] W. Du, X. Wang, Density and viscosity for binary mixtures of methyl decanoate with 1-propanol, 1-butanol, and 1-pentanol, J. Mol. Liq. 294(2019) 111647. [38] R. Srivastava, A. Awasthi, V.K. Pandey, A. Awasthi, Intermolecular interactions in binary mixtures of 2-diethylethanolamine with 1-propanol and 1-butanol at different temperatures, J. Chem. Thermodyn. 126(2018) 11-21. [39] J.C. Cristino, A.F. Nobre, L.C.S. Bioucas, F.E.B. Santos, Â.F.S. Castro, C.A.N. De, I.M.S. Lampreia, Volumetric and sound speed study of aqueous 1-butanol liquid mixtures at different temperatures, J. Chem. Thermodyn. 134(2019) 127-135. [40] N.F. Gajardo-parra, M.J. Lubben, J.M. Winnert, Á. Leiva, J.F. Brennecke, R.I. Canales, Physicochemical properties of choline chloride-based deep eutectic solvents and excess properties of their pseudo-binary mixtures with 1-butanol, J. Chem. Thermodyn. 133(2019) 272-284. [41] J. Taylor, An Introduction to Error Analysis, University Science Books, 1982. [42] BIPM, Evaluation of measurement data-Guide to the expression of uncertainty in measurement, First Edition, 100, Joint Committee for Guides in Metrology, 2008. [43] T. Zhang, J. Hu, S.W. Tang, Densities and surface tensions ofionic liquids/sulfuric acid binary mixtures, Chin. J. Chem. Eng. 26(2018) 1513-1521. [44] O. Redlich, A.T. Kister, Algebraic representation of thermodynamic properties and the classification of solutions, Ind. Eng. Chem. 40(1948) 345-348. |