72
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Potential of Pistacia atlantica mutica (Baneh) oil as a biodiesel feedstock using ultrasonic-assisted intensification process

, , , , , & show all
Pages 865-871 | Received 10 Sep 2022, Accepted 24 Feb 2023, Published online: 09 Mar 2023

References

  • Satari B, Jaiswal AK. Green fractionation of 2G and 3G feedstocks for ethanol production: advances, incentives and barriers. Curr Opin Food Sci. 2021;37:1–9.
  • Almasi S, Ghobadian B, Najafi G, et al. A review on bio-lubricant production from non-edible oil-bearing biomass resources in Iran: recent progress and perspectives. J Clean Prod. 2021;290:125830.
  • Dehghani Soufi M, Ghobadian B, Atashgaran M, et al. Biolubricant production from edible and novel indigenous vegetable oils: mainstream methodology, and prospects and challenges in Iran. Biofuels Bioprod Biorefin. 2019;13:838–849.
  • Westbrook CK, Naik CV, Herbinet O, et al. Detailed chemical kinetic reaction mechanisms for soy and rapeseed biodiesel fuels. Combust Flame. 2011;158:742–755.
  • Sabzimaleki M, Ghobadian B, Mazloom Farsibaf M, et al. Optimization of biodiesel ultrasound-assisted synthesis from castor oil using response surface methodology (RSM). Chem Prod Process Model. 2015;10:123–133.
  • Soufi MD, Ghobadian B, Najafi G, et al. Optimization of methyl ester production from waste cooking oil in a batch tri-orifice oscillatory baffled reactor. Fuel Process Technol. 2017;167:641–647.
  • Mehdi S, Asghari A, Ghobadian B, et al. Conversion of Pistacia atlantica mutica oil to trimethylolpropane fatty acid triester as a sustainable lubricant. Biomass Convers Biorefinery. 2020;10:139–148.
  • Farhoosh R, Tavakoli J, Khodaparast MHH. Chemical composition and oxidative stability of kernel oils from two current subspecies of Pistacia atlantica in Iran. J Am Oil Chem Soc. 2008;85:723–729.
  • Rezaie M, Farhoosh R, Sharif A, et al. Chemical composition, antioxidant and antibacterial properties of bene (Pistacia atlantica subsp. mutica) hull essential oil. J Food Sci Technol. 2015;52:6784–6790.
  • Shanjani PS, Mardi M, Pazouki L, et al. Analysis of the molecular variation between and within cultivated and wild pistacia species using AFLPs. Tree Genet Genomes. 2009;5:447–458.
  • Chai M, Tu Q, Lu M, et al. Esterification pretreatment of free fatty acid in biodiesel production, from laboratory to industry. Fuel Process Technol. 2014;125:106–113.
  • Almasi S, Ghobadian B, Najafi GH, et al. Optimization of an ultrasonic-assisted biodiesel production process from one genotype of rapeseed (TERI (OE) R-983) as a novel feedstock using response surface methodology. Energies. 2019;12:2656.
  • Berchmans HJ, Hirata S. Biodiesel production from crude Jatropha curcas L. seed oil with a high content of free fatty acids. Bioresour Technol. 2008;99(6):1716–1721.
  • Almasi S, Ghobadian B, Najafi G, et al. A novel approach for bio-lubricant production from rapeseed oil-based biodiesel using ultrasound irradiation: multi-objective optimization. Sustain Energy Technol Assess. 2021;43:100960.
  • Metcalfe LD, Schmitz AA. The rapid preparation of fatty acid esters for gas chromatographic analysis. Anal Chem. 1961;33:363–364.
  • Wang C, Mccurry J. Determining the ester and linoleic acid methyl ester content to comply with EN14103 application authors. Agil Technol. 2006.
  • Paiva EJM, da Silva MLCP, Barboza JCS, et al. Non-edible babassu oil as a new source for energy production—a feasibility transesterification survey assisted by ultrasound. Ultrason Sonochem. 2013;20(3):833–838.
  • Kakati J, Gogoi TK. Biodiesel production from kutkura (Meyna spinosa roxb. Ex.) fruit seed oil: its characterization and engine performance evaluation with 10% and 20% blends. Energy Convers Manag. 2016;121:152–161.
  • Mohibbeazam M, Waris A, Nahar N. Prospects and potential of fatty acid methyl esters of some non-traditional seed oils for use as biodiesel in India. Biomass Bioenergy. 2005;29:293–302.
  • Atapour M, Kariminia HR. Characterization and transesterification of Iranian bitter almond oil for biodiesel production. Appl Energy. 2011;88:2377–2381.
  • Meher LC, Dharmagadda VSS, Naik SN. Optimization of alkali-catalyzed transesterification of Pongamia pinnata oil for production of biodiesel. Bioresour Technol. 2006;97(12):1392–1397.
  • Selvaraj R, Praveenkumar R, Moorthy IG. A comprehensive review of biodiesel production methods from various feedstocks. Biofuels. 2019;10:325–333.
  • Maghami M, Sadrameli SM, Ghobadian B. Production of biodiesel from fishmeal plant waste oil using ultrasonic and conventional methods. Appl Therm Eng. 2015;75:575–579.
  • Samani BH, Zareiforoush H, Lorigooini Z, et al. Ultrasonic-assisted production of biodiesel from Pistacia atlantica Desf. oil. Fuel. 2016;168:22–26.
  • da Silva N de L, Maciel MRW, Batistella CB. Filho RM optimization of biodiesel production from castor oil. Twenty-Seventh Symposium on Biotechnology for Fuels and Chemicals. Humana Press. 2006. p. 405–414.
  • Yuan X, Liu J, Zeng G, et al. Optimization of conversion of waste rapeseed oil with high FFA to biodiesel using response surface methodology. Renew Energy. 2008;33:1678–1684.
  • Hameed BH, Lai LF, Chin LH. Production of biodiesel from palm oil (Elaeis guineensis) using heterogeneous catalyst: an optimized process. Fuel Process Technol. 2009;90:606–610.
  • Zhang J, Chen S, Yang R, et al. Biodiesel production from vegetable oil using heterogenous acid and alkali catalyst. Fuel. 2010;89:2939–2944.
  • Lee HV, Yunus R, Juan JC, et al. Process optimization design for Jatropha-based biodiesel production using response surface methodology. Fuel Process Technol. 2011;92:2420–2428.
  • Wu X, Leung DYC. Optimization of biodiesel production from camelina oil using orthogonal experiment. Appl Energy. 2011;88:3615–3624.
  • Santos FFP, Rodrigues S, Fernandes FAN. Optimization of the production of biodiesel from soybean oil by ultrasound assisted methanolysis. Fuel Process Technol. 2009;90:312–316.
  • Fayyazi E, Ghobadian B, Najafi G, et al. An ultrasound-assisted system for the optimization of biodiesel production from chicken fat oil using a genetic algorithm and response surface methodology. Ultrason Sonochem. 2015;26:312–320.
  • Sarve A, Sonawane SS, Varma MN. Ultrasound assisted biodiesel production from sesame (Sesamum indicum L.) oil using barium hydroxide as a heterogeneous catalyst: comparative assessment of prediction abilities between response surface methodology (RSM) and artificial neural network (ANN). Ultrason Sonochem. 2015;26:218–228.
  • Khanian‑Najaf‑Abadi M, Ghobadian B, Dehghani‑Souf M, et al. Determination of biodiesel yield and color after purification process using deep eutectic solvent (choline chloride:ethylene glycol). Biomass Convers Biorefin. 2022;1–13.
  • Fan X, Wang X, Chen F, et al. Engine performance test of cottonseed oil biodiesel. Open Fuels Energy Sci J. 2008;1:40–45.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.