168
Views
0
CrossRef citations to date
0
Altmetric
Articles

Production and quality assessment of biodiesel obtained by thermal process from wet microalgae biomass of Choricystis minor var. minor

, , , , , , , , , & show all
Pages 1103-1111 | Received 02 May 2022, Accepted 24 Jul 2022, Published online: 12 Aug 2022

References

  • Arumugam A, Ponnusami V. Production of biodiesel by enzymatic transesterification of waste sardine oil and evaluation of its engine performance. Heliyon. 2017;3(12):e00486. 10.1016/j.heliyon.2017.e00486.
  • Ratnapuram HP, Vutukuru SS, Yadavalli R. Mixotrophic transition induced lipid productivity in chlorella pyrenoidosa under stress conditions for biodiesel production. Heliyon. 2018;4(1):e00496.
  • Soares AT, da Costa DC, Vieira AAH, et al. Analysis of major carotenoids and fatty acid composition of freshwater microalgae. Heliyon. 2019;5(4):e01529. e01529
  • Taher MI, Hakim M, HMSJ A-J, et al. Optimization of iron dosage for microalgal biomass production as a feedstock for biofuel. Biofuels. 2021;12(5):569–577. doi:10.1080/17597269.2018.1510720
  • Derner RB, Ohse S, Villela M, et al. Microalgas, produtos e aplicações. Cienc Rural. 2006;36(6):1959–1967.
  • D’Alessandro EB, Antoniosi Filho NR. Concepts and studies on lipid and pigments of microalgae: a review. Renewable Sustainable Energy Rev. 2016;58:832–841.
  • Nascimento IA, Marques SSI, Cabanelas ITD, et al. Screening microalgae strains for biodiesel production: Lipid productivity and estimation of fuel quality based on fatty acids profiles as selective criteria. Bioenerg Res. 2013;6(1):1–13.
  • Pereira CMP, Hobuss CB, Maciel JV, et al. Biodiesel renovável derivado de microalgas: avanços e perspectivas tecnológicas. Quím Nova. 2012;35(10):2013–2018.
  • Menezes RS, Leles MIG, Soares AT, et al. Evaluation of the potentiality of freshwater microalgae as a source of raw material for biodiesel production. Quim Nova. 2013;36(1):10–15.
  • Oliveira CYB, D'Alessandro EB, Antoniosi Filho NR, et al. Synergistic effect of growth conditions and organic carbon sources for improving biomass production and biodiesel quality by the microalga Choricystis minor var. minor. Sci Total Environ. 2021;759:143476.
  • de Vree JH, Bosma R, Janssen M, et al. Comparison of four outdoor pilot-scale photobioreactors. Biotechnol Biofuels. 2015;8:215.
  • Ndikubwimana T, Zeng X, Murwanashyaka T, et al. Harvesting of freshwater microalgae with microbial bioflocculant: a pilot-scale study. Biotechnol Biofuels. 2016;9:47.
  • Park S, Ahn Y, Pandi K, et al. Microalgae cultivation in pilot scale for biomass production using exhaust gas from thermal power plants. Energies. 2019;12(18):3497.
  • Wen X, Du K, Wang Z, et al. Effective cultivation of microalgae for biofuel production: a pilot-scale evaluation of a novel oleaginous microalga graesiella sp. WBG-1. Biotechnol Biofuels. 2016;9:123.
  • Díaz GC, Cruz YR, Carliz RG, et al. Cultivation of microalgae monoraphidium sp., in the plant pilot the grand Valle bio energy, for biodiesel production. Nat Sci. 2015;07(07):370–378.
  • Ehimen EA, Sun ZF, Carrington CG. Variables affecting the in situ transesterification of microalgae lipids. Fuel. 2010;89(3):677–684.
  • Soares AT, da Costa DC, Silva BF, et al. Comparative analysis of the fatty acid composition of microalgae obtained by different oil extraction methods and direct biomass transesterification. Bioenergy Res. 2014;7:1035–1044.
  • Sorgatto VG, Carvalho JC, Sydney EB, et al. Microscale direct transesterification of microbial biomass with ethanol for screening of microorganisms by its fatty acid content. Biol Appl Sci. 2019;62:e19180178. doi:10.1590/1678-4324-2019180178.
  • Velasquez-Orta SB, Lee JGM, Harvey AP. Evaluation of FAME production from wet marine and freshwater microalgae by in situ transesterification. Biochem Eng J. 2013;76:83–89.
  • Park J-Y, Park MS, Lee Y-C, et al. Advances in direct transesterification of algal oils from wet biomass. Bioresour Technol. 2015;184:267–275.
  • Ramos LP, Kothe V, F. César-Oliveira MA, et al. Biodiesel: Raw materials, production technologies and fuel properties. Rev Virtual Quim. 2017;9(1):317–369.
  • Alabi A, Tampier M, Bibeau E. 2009. Microalgae technologies & processes for biofuels-bioenergy production in British Columbia current technology, suitability & barriers to implementation. Final Report Submitt to British Columbia Innovation Council 75.
  • Chen L, Liu T, Zhang W, et al. Biodiesel production from algae oil high in free fatty acids by two-step catalytic conversion. Bioresour Technol. 2012;111:208–214.
  • Kim T-H, Suh WI, Yoo G, et al. Development of direct conversion method for microalgal biodiesel production using wet biomass of nannochloropsis salina. Bioresour Technol. 2015;191:438–444. http://doi.org/10.1016/j.biortech.2015.03.033.
  • Aranda DAG, Gonçalves J de A, Peres JS, et al. The use of acids, niobium oxide, and zeolite catalysts for esterification reactions. J Phys Org Chem. 2009;22(7):709–716.
  • Bold HC. The morphology of Chlamydomonas chlamydogama, Sp. Nov. Bull Torrey Bot Club. 1949;76(2):101–108.
  • Bligh, G, Dyer, W. A rapid method for total lipid extraction and purification. Can J Biochem Physiol. 1959;37:911–917. http://dx.doi.org/10.1139/o59-099
  • ANP. Resolução ANP No 45 de 25/08/2014. Agência Nac do Petróleo, Gás Nat e Biocombustíveis. 2014.
  • Borowitzka MA. Commercial production of microalgae: ponds, tanks, tubes and fermenters. J Biotechnol. 1999;70(1–3):313–321.
  • Chisti Y. Raceways-based production of algal crude oil. Green. 2013;3(3–4):195.
  • Chisti Y. Large-scale production of algal biomass: raceway ponds. In: Bux F, Chisti Y, editor. Algae biotechnology. Cham: Green Energy and Technology, Springer; 2016. p. 21–40.
  • Mazzuca Sobczuk T, Chisti Y. Potential fuel oils from the microalga Choricystis minor. J Chem Technol Biotechnol. 2010;85(1):100–108.
  • Mata TM, Martins AA, Caetano NS. Microalgae for biodiesel production and other applications: a review. Renewable Sustainable Energy Rev. 2010;14(1):217–232.
  • Andruleviciute V, Makareviciene V, Skorupskaite V, et al. Biomass and oil content of chlorella sp., haematococcus sp., nannochloris sp. and scenedesmus sp. under mixotrophic growth conditions in the presence of technical glycerol. J Appl Phycol. 2014;26(1):83–90.
  • Hakalin NLS, Paz AP, Aranda DAG, et al. Enhancement of cell growth and lipid content of a freshwater Microalga scenedesmus sp. by optimizing nitrogen, phosphorus and vitamin concentrations for biodiesel production. Nat Sci. 2014;06(12):1044–1054.
  • Almarales A, Chenard G, Abdala R, et al. Hydroesterification of nannochloropsis oculata microalga’s biomass to biodiesel on Al2O3 supported Nb2O5 catalyst. Nat Sci. 2012;04(04):204–210.
  • Chenard Díaz G, GT Leite G, Reyes Cruz Y, et al. Biodiesel by hydroesterification of oil from the microalgae scenedesmus dimorphus. Lett Org Chem. 2013;10(4):263–268.
  • Im H, Kim B, Lee JW. Concurrent production of biodiesel and chemicals through wet in situ transesterification of microalgae. Bioresour Technol. 2015;193:386–392.
  • Menezes RS, Soares AT, Lopes RG, et al. Evaluation of fatty acid composition of the microalgae Choricystis minor var. minor according to two different nutrient feeding strategies. J Renew Sustain Energy. 2015;7:043117(1–7).
  • Ferreira B, Viégas E, Cristina J, et al. Analysis of some chemical elements in marine microalgae for biodiesel production and other uses. Algal Res. 2015;9:312–321.
  • Xu H, Miao X, Wu Q. High quality biodiesel production from a microalga chlorella protothecoides by heterotrophic growth in fermenters. J Biotechnol. 2006;126(4):499–507.
  • ASTM D6751. Standard specification for biodiesel fuel blend stock (B100) for middle distillate fuels. ASTM Int i:1–11; 2010.
  • European Committee. Automotive fuels. Fatty acid methyl esters (FAME) for diesel engines. Requirements and Test Methods. EN 142142003; 2008.
  • Knothe G. Biodiesel and renewable diesel: a comparison. Prog Energy Combust Sci. 2010;36(3):364–373.
  • Lira LFB, dos Santos DCMB, Guida MAB, et al. Determination of phosphorus in biodiesel using FIA with spectrophotometric detection. Fuel. 2011;90(11):3254–3258.
  • Johnson MB, Wen Z. Production of biodiesel fuel from the microalga schizochytrium limacinum by direct transesterification of. Energy Fuels. 2009;23(10):5179–5183.

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.