Biodiesel Production. Группа авторов

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      35 35 Talebian‐Kiakalaieh, A., Amin, N.A.S., and Mazaheri, H. (2013). A review on novel processes of biodiesel production from waste cooking oil. Appl. Energy 104: 683–710.

      36 36 Long, Y.D., Fang, Z., Su, T.C., and Yang, Q. (2014). Co‐production of biodiesel and hydrogen from rapeseed and Jatropha oils with sodium silicate and Ni catalysts. Appl. Energy 113: 1819–1825.

      37 37 Martínez, S.L., Romero, R., Natividad, R., and González, J. (2014). Optimization of biodiesel production from sunflower oil by transesterification using Na2O/NaX and methanol. Catal. Today 220–222: 12–20.

      38 38 Tamjidi, S., Esmaeili, H., and Moghadas, B.K. (2021). Performance of functionalized magnetic nanocatalysts and feedstocks on biodiesel production: a review study. J. Clean. Prod. 305: 127200.

      39 39 Shan, R., Lu, L., Shi, Y. et al. (2018). Catalysts from renewable resources for biodiesel production. Energy Convers. Manag. 178: 277–289.

      40 40 Pinto, B.F., Garcia, M.A.S., Costa, J.C.S. et al. (2019). Effect of calcination temperature on the application of molybdenum trioxide acid catalyst: screening of substrates for biodiesel production. Fuel 239: 290–296.

      41 41 Murray, R., King, G., and Wyse‐Mason, R. (2019). Micro‐emulsification vs. transesterification: an investigation of the efficacy of methanol use in improving vegetable oil engine performance. Biofuels https://doi.org/10.1080/17597269.2019.1598316.

      42 42 Marwaha, A., Rosha, P., Mohapatra, S.K. et al. (2018). Waste materials as potential catalysts for biodiesel production: current state and future scope. Fuel Process. Technol. 181: 175–186.

      43 43 Rashid, U., Anwar, F., Yunus, R., and Al‐Muhtaseb, A.H. (2015). Transesterification for biodiesel production using thespesia populnea seed oil: an optimization study. Int. J. Green Energy 12: 479–484.

      44 44 Thiyagarajan, S., Sonthalia, A., Edwin Geo, V. et al. (2020). Effect of manifold injection of methanol/n‐pentanol in safflower biodiesel fuelled CI engine. Fuel 261: 116378.

      45 45 Lertpanyapornchai, B. and Ngamcharussrivichai, C. (2015). Mesostructured Sr and Ti mixed oxides as heterogeneous base catalysts for transesterification of palm kernel oil with methanol. Chem. Eng. J. 264: 789–796.

      46 46 Rashid, U., Anwar, F., Ashraf, M. et al. (2011). Application of response surface methodology for optimizing transesterification of Moringa oleifera oil: biodiesel production. Energy Convers. Manag. 52 (8–9): 3034–3042.

      47 47 Rashid, U., Ibrahim, M., Yasin, S. et al. (2013). Biodiesel from Citrus reticulata (mandarin orange) seed oil, a potential non‐food feedstock. Ind. Crop. Prod. 45: 355–359.

      48 48 Buasri, A., Lukkanasiri, M., Nernrimnong, R. et al. (2016). Rapid transesterification of Jatropha curcas oil to biodiesel using novel catalyst with a microwave heating system. Korean J. Chem. Eng. 33: 3388–3400.

      49 49 Koutsouki, A.A., Tegou, E., Kontakos, S. et al. (2015). In situ transesterification of Cynara cardunculus L. seed oil via direct ultrasonication for the production of biodiesel. Fuel Process. Technol. 134: 122–129.

      50 50 Anwar, F., Rashid, U., Ashraf, M., and Nadeem, M. (2010). Okra (Hibiscus esculentus) seed oil for biodiesel production. Appl. Energy 87 (3): 779–785.

      51 51 Rashid, U., Ibrahim, M., Ali, S. et al. (2012). Comparative study of the methanolysis and ethanolysis of maize oils using alkaline catalysts. Grasas Aceites 63 (1): 35–43.

      52 52 Barminas, J.T., Maina, H.M., Tahir, S. et al. (2001). A preliminary investigation into the biofuel characteristics of tigernut (Cyperus esculentus). Bioresource Technology 79 (1): 87–89.

      53 53 Sbihi, H.M., Nehdi, I.A., Blidi, L.E. et al. (2015). Lipase/enzyme catalyzed biodiesel production from Prunus mahaleb: a comparative study with base catalyzed biodiesel production. Ind. Crop. Prod. 76: 1049–1054.

      54 54 Rashid, U., Knothe, G., Yunus, R., and Evangelista, R.L. (2014). Kapok oil methyl esters. Biomass Bioenerg. 66: 419–425.

      55 55 Sharma, S., Saxena, V., Baranwal, A. et al. (2018). Engineered nanoporous materials mediated heterogeneous catalysts and their implications in biodiesel production. Mater. Sci. Energ. Technol. 1 (1): 11–21.

      56 56 Mokbli, S., Nehdi, I.A., Sbihi, H.M. et al. (2018). Yucca aloifolia seed oil: a new source of bioactive compounds. Waste Biomass Valori. 9 (7): 1087–1093.

      57 57 Syam, A.M., Rashid, U., Yunus, R. et al. (2016). Conversion of Oleum papaveris seminis oil into methyl esters via esterification process: optimization and kinetic study. Grasas Aceites 67 (1): e115.

      58 58 Karmakar, B., Samanta, S., and Halder, G. (2020). Delonix regia heterogeneous catalyzed two‐step biodiesel production from Pongamia pinnata oil using methanol and 2‐propanol. J. Clean. Prod. 255: 120313.

      59 59 Angin, D. and Şensöz, S. (2014). Effect of pyrolysis temperature on chemical and surface properties of biochar of rapeseed (Brassica napus L.). Int. J. Phytoremed. 16 (7–8): 684–693.

      60 60 Kumar, S. and Dinesha, P. (2019). Use of alternative fuels in compression ignition engines: a review. Biofuels 10 (4): 525–535.

      61 61 Lokman, I.M., Rashid, U., and Taufiq‐Yap, Y.H. (2016). Meso‐ and macroporous sulfonated starch solid acid catalyst for esterification of palm fatty acid distillate. Arab. J. Chem. 9 (2): 179–189.

      62 62 Jayakumar, M., Karmegam, N., Gundupalli, M.P. et al. (2021). Heterogeneous base catalysts: synthesis and application for biodiesel production – a review. Bioresour. Technol. 331: 125054.

      63 63 Ajala, E.O., Ajala, M.A., Ajao, A.O. et al. (2020). Calcium‐carbide residue: a precursor for the synthesis of CaO–Al2O3–SiO2–CaSO4 solid acid catalyst for biodiesel production using waste lard. Chem. Eng. J. Adv. 4: 100033.

      64 64 Hajjari, M., Tabatabaei, M., Aghbashlo, M., and Ghanavati, H. (2017). 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: 445–464.

      65 65 Dhawane, S.H., Karmakar, B., Ghosh, S., and Halder, G. (2018). Parametric optimisation of biodiesel synthesis from waste cooking oil via Taguchi approach. J. Environ. Chem. Eng. 6 (4): 3971–3980.

      66 66 Lokman, I.M., Rashid, U., Yunus, R., and Taufiq‐Yap, Y.H. (2014). Carbohydrate‐derived solid acid catalysts for biodiesel production from low‐cost feedstocks: a review. Catal. Rev. Sci. Eng. 56 (2): 187–219.

      67 67 Kächele, R., Nurkowski, D., Martin, J. et al. (2019). An assessment of the viability of alternatives to biodiesel transport fuels. Appl. Energy 251: 113363.

      68 68 Musa, I.A. (2016). The effects of alcohol to oil molar ratios and the type of alcohol on biodiesel production using transesterification process. Egypt. J. Pet. 25 (1): 21–31.

      69 69 Jain, S. (2019). The production of biodiesel using Karanja (Pongamia pinnata) and Jatropha (Jatropha curcas) oil. Biomass, Biopolymer‐Based Materials, and Bioenergy 17: 397–408.

      70 70 Alsharifi, M., Znad, H., Hena, S., and Ang, M. (2017). Biodiesel production from canola oil using novel Li/TiO2 as a heterogeneous catalyst prepared via impregnation method. Renew. Energy 114: 1077–1089.

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