Biodiesel Washing Machine From Esterification Process Equipped With A Cooling System
DOI:
https://doi.org/10.23887/jstundiksha.v12i1.52068Kata Kunci:
biodisel, pencucian, pendinginAbstrak
Biodiesel is a fuel that can be recycle, is easily obtained, and friendly to the environment. The production process of biodisesl is divided into four stages, they are the esterification process, cooling, washing and filtration. In this study, a biodiesel purifying machine was developed which is equipped with a cooling system. The cooling system uses a thermoelectric module attached to the delivery pipe from the esterification tank to the purifyer tank. The washing process begins with a pre-cooled hot oil deposition process for 20 minutes to obtain two phases of glycerol and crude biodiesel. The glycerol phase is removed by opening the valve at the bottom of the tank. After that the washing process takes place by mixing water and biodiesel. The mixture of water and distilled water was precipitated for 20 minutes and after that the dirty water was discharged through a valve driven by a servo motor. The purifying machine has been successfully developed and has been tested to perform the expected task. The test results show that the temperature sensor work well. Other tests were carried out on the accuracy of valves and flowmeters. The test results show that the test at low volume is relatively less accurate. Accurate results are obtained on testing volumes above 1500 ml. The purifying machine has been tested to perform the function of purifying crude biodiesel. The test results show that the washing process can take place well.
Referensi
Abbaszaadeh, A., Ghobadian, B., Najafi, G., Motevali, A., Mayvan, A. A., Ghobadian, B., … R, M. (2011). Design , Fabrication and Evaluation of a Novel Biodiesel Processor System. System, 2(January), 249–255.
Alamu, O. J., Akintola, T. A., Enweremadu, C. C., & Adeleke, A. E. (2008). Characterization of palm-kernel oil biodiesel produced through NaOH-catalysed transesterification process. Scientific Research and Essays, 3(7), 308–311.
Amenaghawon, A. N., Obahiagbon, K., Isesele, V., & Usman, F. (2022). Optimized biodiesel production from waste cooking oil using a functionalized bio-based heterogeneous catalyst. Cleaner Engineering and Technology, 8(April), 100501. https://doi.org/10.1016/j.clet.2022.100501.
Aziz, M.T, I., Fadhilah, N. H. B., & Hendrawati, H. (2017). Penggunaan H-Zeolit dan Tawas dalam Pemurnian Crude Glycerol dengan Proses Adsorpsi dan Koagulasi. Jurnal Kimia VALENSI, 3(1), 35–43. https://doi.org/10.15408/jkv.v0i0.5143.
César, A. da S., & Batalha, M. O. (2013). Brazilian biodiesel: The case of the palm’s social projects. Energy Policy, 56, 165–174. https://doi.org/10.1016/j.enpol.2012.12.014.
El Zanati, E., Abdallah, H., & Elnahas, G. (2017). Micro-reactor for Non-catalyzed Esterification Reaction: Performance and Modeling. International Journal of Chemical Reactor Engineering, 15(2). https://doi.org/10.1515/ijcre-2016-0099.
Elma, M., Suhendra, S. A., & Wahyuddin, W. (2018). Proses Pembuatan Biodiesel Dari Campuran Minyak Kelapa Dan Minyak Jelantah. Konversi, 5(1), 8. https://doi.org/10.31213/k.v5i1.23.
Farooq, M., & Ramli, A. (2015). Biodiesel production from low FFA waste cooking oil using heterogeneous catalyst derived from chicken bones. Renewable Energy, 76, 362–368. https://doi.org/10.1016/j.renene.2014.11.042.
Fitriani; Agus Haryanto; Sugeng Triyono. (2016). Produski Biodiesel Dari Minyak Jelantah Melalui Transertifikasi Dengan Bantuan Gelombang Ultrasonik. In Prosiding Seminar Nasional Sains Matematika Informatika dan Aplikasinya IV.
Joko Tri Jaryadi, Hendro Priyatman, S. (2013). Rancang Bangun Alat Pengolahan Biodiesel Menggunakan Arduino. Jurnal Teknologi Rekayasa, 4.
Khan, M. Y., Rao, P. S., Pabla, B. S., & Ghotekar, S. (2022). Innovative biodiesel production plant: Design, development, and framework for the usage of biodiesel as a sustainable EDM fluid. Journal of King Saud University - Science, 34(6), 102203. https://doi.org/10.1016/j.jksus.2022.102203.
Koc, A. B., & McKenzie, E. H. (2010). Effects of ultrasonication on glycerin separation during transesterification of soybean oil. Fuel Processing Technology, 91(7), 743–748. https://doi.org/10.1016/j.fuproc.2010.01.020.
Kumar, R., Tiwari, P., & Garg, S. (2013). Alkali transesterification of linseed oil for biodiesel production. Fuel, 104, 553–560. https://doi.org/10.1016/j.fuel.2012.05.002.
Lisa, A., Isalmi, A., Siti, N., & Cristie, O. O. (2018). Pembuatan Biodiesel dengan Cara. Jurnal Kimia VALENSI, 2(1), 71–80.
Lopes, D. de C., Steidle Neto, A. J., Mendes, A. A., & Pereira, D. T. V. (2013). Economic feasibility of biodiesel production from Macauba in Brazil. Energy Economics, 40, 819–824. https://doi.org/10.1016/j.eneco.2013.10.003.
Mowla, O., Kennedy, E., & Stockenhuber, M. (2018). In-situ FTIR study on the mechanism of both steps of zeolite-catalysed hydroesterification reaction in the context of biodiesel manufacturing. Fuel, 232(January), 12–26. https://doi.org/10.1016/j.fuel.2018.05.096.
Nor Irham Nor Azan, M., Kamal, P. N. S. M. M., Rasmadi, M. A. A., Adzhar, M. H., Zakaria, M. A., Taufek, A. S. A., … Alikasturi, A. S. (2020). Production of biodiesel from palm oil refinery pilot plant waste using Ni/CaO (ES) catalyst. Materials Today: Proceedings, 31, 292–299. https://doi.org/10.1016/j.matpr.2020.06.012.
Okvitarini, N., Hidayah, M., Satriadi, H., & Widayat. (2013). Pembuatan Biodiesel dari Minyak Goreng Menggunakan Katalis KOH dengan Penambahan Ekstrak Jagung. Jurnal Teknologi Kimia Dan Industri, 2(3), 24–29.
Prayanto, D. S., Salahudin, M., Qadariyah, L., & Mahfud, M. (2016). Pembuatan Biodiesel Dari Minyak Kelapa Dengan Katalis NaOH Menggunakan Gelombang Mikro (Microwave) Secara Kontinyu. Jurnal Teknik ITS, 5(1), 1–6. https://doi.org/10.12962/j23373539.v5i1.15173.
Rachmadona, N., Harada, Y., Amoah, J., Quayson, E., Aznury, M., Hama, S., … Ogino, C. (2022). Integrated bioconversion process for biodiesel production utilizing waste from the palm oil industry. Journal of Environmental Chemical Engineering, 10(3), 107550. https://doi.org/10.1016/j.jece.2022.107550.
Rafati, A., Tahvildari, K., & Nozari, M. (2019). Production of biodiesel by electrolysis method from waste cooking oil using heterogeneous MgO-NaOH nano catalyst. Energy Sources, Part A: Recovery, Utilization and Environmental Effects, 41(9), 1062–1074. https://doi.org/10.1080/15567036.2018.1539139.
Rahmawaty, M., Hendriko, H., & Haryanisa, E. P. (2021). Development of Heater and Mixer Machine with Control System for Biodiesel Production. International Conference on Electrical Engineering, Computer Science and Informatics (EECSI), 2021-Octob(October), 69–73. https://doi.org/10.23919/EECSI53397.2021.9624315.
S Lamin, M Agustina, M Kamal, D. S. (2016). Prosiding Sn-Smiap. Prosiding Seminar Nasional Sains, Matematika, Informatika Dan Aplikasinya IV, 4(Buku 2), 2086–2342.
Saeedi, M., Fazaeli, R., & Aliyan, H. (2016). Nanostructured sodium–zeolite imidazolate framework (ZIF-8) doped with potassium by sol–gel processing for biodiesel production from soybean oil. Journal of Sol-Gel Science and Technology, 77(2), 404–415. https://doi.org/10.1007/s10971-015-3867-1.
Sahar, Sadaf, S., Iqbal, J., Ullah, I., Bhatti, H. N., Nouren, S., … Iqbal, M. (2018). Biodiesel production from waste cooking oil: An efficient technique to convert waste into biodiesel. Sustainable Cities and Society, 41(December 2017), 220–226. https://doi.org/10.1016/j.scs.2018.05.037.
Sánchez-Cantú, M., Pérez-Díaz, L. M., Morales-Téllez, M., Martínez-Santamaría, I., Hilario-Martínez, J. C., & Sandoval-Ramírez, J. (2017). A sustainable method to produce biodiesel through an emulsion formation induced by a high shear mixer. Fuel, 189, 436–439. https://doi.org/10.1016/j.fuel.2016.10.107.
Sarno, M., & Iuliano, M. (2019a). Biodiesel production from waste cooking oil. Green Processing and Synthesis, 8(1), 828–836. https://doi.org/10.1515/gps-2019-0053.
Sarno, M., & Iuliano, M. (2019b). Self-Dual Leonard Pairs Biodiesel production from waste cooking oil a. Green Process Synth, 8(1), 828–836.
Wahyuni, S., Ramli, & Mahrizal. (2015). Pengaruh Suhu Proses dan Lama Pengendapan Terhadap Kualitas Biodiesel Dari Minyak Jelantah. Pillar of Physics, 6, 33–40.
Wassell, C. S., & Dittmer, T. P. (2006). Are subsidies for biodiesel economically efficient? Energy Policy, 34(18), 3993–4001. https://doi.org/10.1016/j.enpol.2005.09.024.
Yang, R., Su, M., Zhang, J., Jin, F., Zha, C., Li, M., & Hao, X. (2011). Biodiesel production from rubber seed oil using poly (sodium acrylate) supporting NaOH as a water-resistant catalyst. Bioresource Technology, 102(3), 2665–2671. https://doi.org/10.1016/j.biortech.2010.10.131.
Zhang, C. Y., Shao, W. L., Zhou, W. X., Liu, Y., Han, Y. Y., Zheng, Y., & Liu, Y. J. (2019). Biodiesel production by esterification reaction on k+ modified mgal-hydrotalcites catalysts. Catalysts, 9(9). https://doi.org/10.3390/catal9090742.
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