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Original Articles

Statistical optimization and kinetic study on biodiesel production from a potential non-edible bio-oil of wild radish

ORCID Icon, ORCID Icon, ORCID Icon & ORCID Icon
Pages 909-918 | Received 10 Feb 2018, Accepted 04 Oct 2018, Published online: 19 Nov 2018

References

  • Ahuja, K. L., Singh, H., Raheja, R. K., and Labana, K. S. (1987). The oil content and fatty acid composition of various genotypes of cauliflower, turnip and radish, Qual. Plant. - Plant Foods Hum. Nutr., 37, 33–40.
  • Anderson, M. J., and Whitcomb, P. J. (2007). DOE Simplified Practical Tools for Effective Experimentation. Taylor and Francis, Boca Raton, F.L.
  • Armstrong, R. A., Eperjesi, F., and Gilmartin, B. (2002). The application of analysis of variance (ANOVA) to different experimental designs in optometry, Oph. Phys. Opt., 22, 248–256.
  • Atabani, A. E., Silitonga, A. S., Badruddin, I. A., Mahlia, T. M. I., Masjuki, H. H., and Mekhilef, S. (2012). A comprehensive review on biodiesel as an alternative energy resource and its characteristics, Renew. Sust. Energy Rev., 16, 2070–2093.
  • Atabani, A. E., Silitonga, A. S., Ong, H. C., Mahlia, T. M. I., Masjuki, H. H., Badruddin, I. A., and Fayaz, H. (2013). Non-edible vegetable oils: A critical evaluation of oil extraction, fatty acid compositions, biodiesel production, characteristics, engine performance and emissions production, Renew. Sust. Energy Rev., 18, 211–245.
  • Balaji, G., and Cheralathan, M. (2013). Potential of various sources for biodiesel production, Energy Source. Part A, 35, 831–839.
  • Balki, M. K., Sayin, C., and Sarıkaya, M. (2016). Optimization of the operating parameters based on Taguchi method in an SI engine used pure gasoline, ethanol and methanol, Fuel, 180, 630–637.
  • Berchmans, H. J., Morishita, K., and Takarada, T. (2013). Kinetic study of hydroxide-catalyzed methanolysis of Jatropha curcas - waste food oil mixture for biodiesel production, Fuel, 104, 46–52.
  • Carvalho, A. K. F., Conceicao, L. R. V., Silva, J. P. V., Perez, V. H., and Castro, H. F. (2017). Biodiesel production from Mucor circinelloides using ethanol and heteropolyacid in one and two-step transesterification, Fuel, 202, 503–511.
  • Corsini, A., Marchegiani, A., Rispoli, F., Sciulli, F., and Venturini, P. (2015). Vegetable oils as fuels in diesel engine. Engine performance and emissions, Energy Procedia, 81, 942–949.
  • Deepalakshmi, S., Sivalingam, A., Thirumarimurugan, M., Sivakumar, P., and Ashokkumar, V. (2015). Optimization of biodiesel synthesis from Calophyllum inophyllum, Energy Source. Part A, 37, 2601–2608.
  • Demirbas, A. (2008). Biofuels sources, biofuel policy, biofuel economy and global biofuel projections, Energy Convers. Manage., 49, 2106–2116.
  • Demirbas, A. (2009). Potential resources of non-edible oils for biodiesel, Energy Source. Part A, 4, 310–314.
  • Dhote, P. S., Ganvir, V. N., and Bhattacharyulu, Y. C. (2013). Optimization of mahua oil methyl ester by using taguchi experimental design, Int. J. Adv. Eng. Technol., 6, 1140–1145.
  • Domingos, A. K., Saad, E. B., Wilhelm, H. M., and Ramos, L. P. (2008). Optimization of the ethanolysis of Raphanus sativus (L. Var.) crude oil applying the response surface methodology, Bioresour. Technol., 99, 1837–1845.
  • Eevera, T., Rajendran, K., and Saradha, S. (2009). Biodiesel production process optimization and characterization to assess the suitability of the product for varied environmental conditions, Renew. Energy, 34, 762–765.
  • Fadhil, A. B., and Ahmed, A. I. (2018). Production of mixed methyl/ethyl esters from waste fish oil through transesterification with mixed methanol/ethanol system, Chem. Eng. Commun., 205, 1157–1166.
  • Fadhil, A. B., Al-Tikrity, E. T. B., and Khalaf, A. M. (2018). Transesterification of non-edible oils over potassium acetate impregnated CaO solid base catalyst, Fuel, 234, 81–93.
  • Jain, S., and Sharma, M. P. (2010). Kinetics of acid base catalyzed transesterification of Jatropha curcas oil, Bioresour. Technol., 101, 7701–7706.
  • Knothe, G. (2009). Improving biodiesel fuel properties by modifying fatty ester composition, Energy Environ. Sci., 2, 759–766.
  • Kumar, R. S., Sureshkumar, K., and Velraj, R. (2015). Optimization of biodiesel production from Manilkara zapota (L.) seed oil using taguchi method, Fuel, 140, 90–96.
  • Liu, Y., Tu, Q., Knothe, G., and Lu, M. (2017). Direct transesterification of spent coffee grounds for biodiesel production, Fuel, 199, 157–161.
  • Mandal, S., Yadav, S., Singh, R., Begum, G., Suneja, P., and Singh, M. (2002). Correlation studies on oil content and fatty acid profile of some cruciferous species, Genet. Resour. Crop. Evol., 49, 551–556.
  • Mohan, S., Pal, A., and Singh, R. (2016). Biodiesel production from Cedrus deodara oil in different types of ultrasonic reactors and energy analysis, Energy Source. Part A, 38, 3709–3715.
  • Muthukumaran, C., Praniesh, R., Navamani, P., Swathi, R., Sharmila, G., and Kumar, N. M. (2017). Process optimization and kinetic modeling of biodiesel production using non-edible Madhuca indica oil, Fuel, 195, 217–225.
  • Parthiban, K. S., and Muthiah, P. (2016). Kinetic studies on oil extraction and biodiesel production from underutilized Annona squamosa seeds, Fuel, 180, 211–217.
  • Patel, N. K., Nagar, P. S., and Shah, S. N. (2013). Identification of non-edible seeds as potential feedstock for the production and application of bio-diesel, Energy Power, 3, 67–78.
  • Qin, S., Sun, Y., Meng, X., and Zhang, S. (2010). Production and analysis of biodiesel from non-edible seed oil of Pistacia chinensis, Energy Explor. Exploit., 28, 37–46.
  • Qin, S., Sun, Y., Shi, C., He, L., Meng, Y., and Ren, X. (2012). Deacidification of Pistacia chinensis oil as a promising non-edible feedstock for biodiesel production in china, Energies, 5, 2759–2770.
  • Rashid, U., Bhatti, S. G., Ansari, T. M., Yunus, R., and Ibrahim, M. (2016). Biodiesel production from Cannabis sativa oil from Pakistan, Energy Source. Part A, 38, 865–875.
  • Sanli, A., and Karadogan, T. (2017). Geographical impact on essential oil composition of endemic Kundmannia anatolica HUB.-MOR. (apiaceae), Afr. J. Tradit. Complementary Altern. Med., 14, 131–137.
  • Saydut, A., Erdogan, S., Kafadar, B. A., Kaya, C., Aydin, F., and Hamamci, C. (2016). Process optimization for production of biodiesel from hazelnut oil, sunflower oil and their hybrid feedstock, Fuel, 183, 512–517.
  • Silitonga, A. S., Ong, H. C., Masjuki, H. H., Mahlia, T. M. I., Chong, W. T., and Yusaf, T. F. (2013). Production of biodiesel from Sterculia foetida and its process optimization, Fuel, 111, 478–484.
  • Silva, M. A. V. S., Ferreira, B. L. G., Marques, L. G. C., Murta, A. L. S., and Freitas, M. A. V. (2017). Comparative study of NOx emissions of biodiesel-diesel blends from soybean, palm and waste frying oils using methyl and ethyl transesterification routes, Fuel, 194, 144–156.
  • Sivakumar, P., Anbarasu, K., Sivakumar, P., Mathiarasi, R., and Renganathan, S. (2014). An eco-friendly catalyst derived from waste shell of Scylla tranquebarica for biodiesel production, Int. J. Green Energy, 11, 886–897.
  • Sivakumar, P., Parthiban, K. S., Sivakumar, P., Vinoba, M., and Renganathan, S. (2012). Optimization of extraction process and kinetics of Sterculia foetida seed oil and its process augmentation for biodiesel production, Ind. Eng. Chem. Res., 51, 8992–8998.
  • Sivakumar, P., Sindhanaiselvan, S., Gandhi, N. N., Devi, S. S., and Renganathan, S. (2013). Optimization and kinetic studies on biodiesel production from underutilized Ceiba pentandra oil, Fuel, 103, 693–698.
  • Verma, P., Dwivedi, G., and Sharma, M. P. (2017). Comprehensive analysis on potential factors of ethanol in karanja biodiesel production and its kinetic studies, Fuel, 188, 586–594.
  • Zeng, D., Yang, L., and Fang, T. (2017). Process optimization, kinetic and thermodynamic studies on biodiesel production by supercritical methanol transesterification with CH3ONa catalyst, Fuel, 203, 739–748.
  • Zhang, Y., and You, H. (2014). A study on biodiesel produced from beef fat with the assistance of CH3ONa, Energy Source. Part A, 36, 2213–2218.

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