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Article

Characterization of pyrolytic bio-oil from water hyacinth (Eichhornia crassipes) pyrolysis in a fixed bed reactor

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Pages 899-904 | Received 17 Jul 2018, Accepted 13 Nov 2018, Published online: 06 Feb 2019

References

  • Sensoz S, Angin D. Pyrolysis of safflower (Charthamus tinctorius L.) seed press cake in a fixed-bed reactor: part 2. Structural characterization of pyrolysis bio oils. Bioresour Technol. 2008;99:5498–5504.
  • Muradov N, Fidalgo B, Gujar AC, et al. Pyrolysis of fast-growing aquatic biomass – Lemna minor (duckweed): characterization of pyrolysis products. Bioresour Technol. 2010;101:8424–8428.
  • Villamagna AM, Murphy BR. Ecological and socio-economic impacts of invasive water hyacinth (Eichhornia crassipes): a review. Freshwater Biol. 2010;55:282–298.
  • Zhang Y, Zhang D, Barrett SCH. Genetic uniformity characterizes the invasive spread of water hyacinth (Eichhornia crassipes), a clonal aquatic plant. Mol Ecol. 2010;19:1774–1786.
  • Dhal GC, Singh WR, Kalamdhad AS. Agitated pile composting of water hyacinth, 2nd international conference on environmental science and development, IPCBEE, Singapore, IACSIT Press. 2011;4:79–83.
  • Borokini TI, Babalola FD. Management of invasive plant species in Nigeria through economic exploitation: lessons from other countries. MBI. 2012;3:45–55.
  • Asadullah M, Rahman MA, Ali MM, et al. Production of bio-oil from fixed bed pyrolysis of bagasse. Fuel. 2007;86:25214–22520.
  • Oyebanji JA, Okekunle PO, Lasode OA, et al. Chemical composition of bio-oils produced by fast pyrolysis of two energy biomass. Biofuels. 2018;9:479–487.
  • Wauton I, Ogbeide SE. Investigation of the production of bio-oil from water hyacinth (Eichhornia crassipes) in a fixed bed reactor using pyrolysis process. Int J Green Energy. 2018; Submitted for Publication.
  • Bridgwater AV. Principles and practice of biomass fast pyrolysis processes for liquid fuels. J Anal Appl Pyrolysis. 1999;5:3–22.
  • Greenhalf CE, Nowakowski DJ, Harms AB, et al. A comparative study of straw, perennial grasses and hardwoods in terms of fast pyrolysis. Fuel. 2013;108:216–230.
  • A B. Bio-fuel development and characterization of fuel [Bachelor of Technology's Project], Indian Institute of Technology; 2015.
  • Islam MN, Hoque SMN, Joardder MUH. Fixed bed pyrolysis of date seed waste for liquid oil production. Proceedings of the 8th international conference on mechanical engineering 2009 (ICME2009) 2009. Dhaka: Bangladesh; 2009.
  • Prasad R. Petroleum refining technology. 1st ed. Nai Sarak, Delhi-110006, India: Khanna Publishers; 2010.
  • Seal S. Pyrolysis of cotton seed and characterization of the liquid product [Bachelor of Technology's Project]. Rourkela: National Institute of Technology; 2013.
  • Azduwin K, Ridzuan MJM, Hafis SM, et al. Slow pyrolysis of imperata cylindrical in a fixed bed reactor. Int J Biol Ecol Environ Sci. 2012;1:176–180.
  • Lehto J, Oasmaa A, Solantausta Y. Fuel oil quality and combustion of fast pyrolysis bio-oil. JULKAISIJA – UTGIVARE, VTT Technical Research Centre of Finland, FI-02044 VTT, Finland; 2013.
  • Jahirul MI, Rasul MG, Chowdhury AA, et al. Biofuels production through biomass pyrolysis: a technological review. Energies. 2012;5:4952–5001.
  • Jiu BB, Li BX, Yu QJ. Effects of Pb on pyrolysis behavior of water hyacinth. J Anal Appl Pyrolysis. 2015;112:270–275.
  • Park HJ, Dong J-I, Jeon J-K, et al. Effects of the operating parameters on the production of bio-oil in the fast pyrolysis of Japanese larch. Che Eng J. 2008;143:124–132.
  • Onay O, Beis S, Koçkar OM. Pyrolysis of walnut shell in a well-swept fixed-bed reactor. Energy Sources. 2004;26:771–782.
  • Uddin SM, Joardder MUH, Islam MN. Design and construction of fixed bed pyrolysis system and plum seed pyrolysis for bio-oil production. Int J Adv Renew Energy Res. 2012;1:405–409.
  • WHO. FAO/WHO food additive evaluation. [cited 2017 April, 02, 2017]. Available from: http://apps.who.int/food-additives-contaminants-jecfadatabase/chemical.aspx?chemID=5947/; 2010.
  • Mozaffarieh MC, Grieshaber C, Orgul S, et al. The potential value of natural antioxidative treatment in glaucoma. Surv Ophthalmol. 2008;53:479–505.
  • Pollnitz AP, Pardon KH, Sefton MA. Quantitative analysis of 4-ethylphenol and 4-ethylguaiacol in red wine. J Chromatogr A. 2000;874:101–109.
  • Bendre RS, Rajput JD, Bagul SD, et al. Outlooks on medicinal properties of eugenol and its synthetic derivatives. Nat Prod Chem Res. 2016;4:1–6.
  • Lee HS, Choi EJ, Choi H, et al. Oral administration of 4-hydroxy-3-methoxycinnamaldehyde attenuates atopic dermatitis by inhibiting T cell and keratinocyte activation. Plos One. 2015;1:16.
  • de Souza RP, Yu H, Rataboul F, et al. 5-Hydroxymethylfurfural (5-HMF) production from hexoses: limits of heterogeneous catalysis in hydrothermal conditions and potential of concentrated aqueous organic acids as reactive solvent system. Challenges. 2012;3:212–232.

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