Liquefaction of Oil Palm Fruit Waste and Its Application for The Development of Polyurethane Foams

  • Authors

    • Shaharuddin Kormin
    • Anika Zafiah M. Rus
    • . .
    • . .
    https://doi.org/10.14419/ijet.v7i3.14.18820
  • Solvolysis liquefaction, biomass, biopolyols, renewable polymer, polyurethane, foams.
  • This research utilizes solvolysis liquefaction of oil palm fruit waste (PW) biomass for production of polyurethane (PU) foam. Three part of PW: oil palm mesocarp fibre (PM), oil palm shell (PS) and oil palm kernel (PK) was treated using liquefaction solvent with sulfuric acid. Effects of different liquefaction condition such as effect of raw material/liquefaction solvent ratio, reaction time, liquefaction temperature, catalyst amount and liquefaction solvent on liquefaction yield have been determined. Analytical methods used were SEM and DSC analysis. Result showed that more than 70% of the PW were converted into biopolyols within optimum reaction condition of 120 minutes at 150°C with raw material/liquefaction solvent ratio of 1/3 using PEG400. In liquefaction process, hemicellulose, cellulose and lignin are degraded which results in changes of acid and hydroxyl value. Biopolyols of PM/PEG400 ratios was yielded highest biopolyol which is used to continue the experiment. Foaming kinetic indicate a slight increase from initial mix time to gelling time. Moisture content and water absorption are strongly affected the mechanical properties of PU foam. There is no Tg observed in PMF in DSC analysis. Oil palm fruit waste showed great potential for PU foams fabrication.

     

     

  • References

    1. [1] H. Mazaheri, K. T. Lee, S. Bhatia, and A. R. Mohamed, “Subcritical water liquefaction of oil palm fruit press fiber in the presence of sodium hydroxide: An optimisation study using response surface methodology,†Bioresource Technology, 101(23), 9335–9341, 2010.

      [2] M. F. Awalludin, O. Sulaiman, R. Hashim, and W. N. A. W. Nadhari, “An overview of the oil palm industry in Malaysia and its waste utilization through thermochemical conversion, specifically via liquefaction,†Renewable and Sustainable Energy Reviews, 50, 1469–1484, 2015.

      [3] S. E. Hosseini, M. A. Wahid, and A. Ganjehkaviri, “An overview of renewable hydrogen production from thermochemical process of oil palm solid waste in Malaysia,†Energy Conversion and Management, 94, 415–429, 2015.

      [4] S. Kormin and A. Z. M. Rus, “Preparation and characterization of biopolyol from liquefied oil palm fruit waste: Part 1,†Materials Science Forum, 882, 108–112, 2017.

      [5] J. Xu, J. Jiang, C. Y. Hse, and T. F. Shupe, “Preparation of polyurethane foams using fractionated products in liquefied wood,†Journal of Applied Polymer Science, 131(7), 1–7, 2014.

      [6] N. Mahmood, Z. Yuan, J. Schmidt, and C. (Charles) Xu, “Depolymerization of lignins and their applications for the preparation of polyols and rigid polyurethane foams: A review,†Renewable and Sustainable Energy Reviews, 60, 317–329, 2016.

      [7] S. Kormin and A. Z. M. Rus, “Preparation and characterization of biopolyol from liquefied oil palm fruit waste: Part 2,†Materials Science Forum, 882, 113–118, 2017.

      [8] A. Z. M. Rus, N. Normunira, and M. Hassan, “Thermal characteristic of biopolymer foam using hot compression technique,†Proceedings of the Malaysia University Conference Engineering Technology, 2014, pp. 1-6.

      [9] N. Q. A. Adnan and A. Z. M. Rus, “Sound absorption of laminated biopolymer foam and epoxy foam,†Key Engineering Materials, 594–595, 291–295, 2013.

      [10] A. Z. M. Rus, S. Shafizah, and A. P. Samples, “Acoustic behavior of polymer foam composite of shorea leprosula after UV-irradiation exposure,†International journal of Mechanical, Aerospace, Industrial and Mechatronics, 9(1), 188–192, 2015.

      [11] A. A. Abdel Hakim, M. Nassar, A. Emam, and M. Sultan, “Preparation and characterization of rigid polyurethane foam prepared from sugar-cane bagasse polyol,†Materials Chemistry and Physics, 129(1–2), 301–307, 2011.

      [12] R. Briones, L. Serrano, R. Llano-ponte, and J. Labidi, “Polyols obtained from solvolysis liquefaction of biodiesel production solid residues,†Chemical Engineering Journal, 175, 169–175, 2011.

      [13] M. S. Shengjun Hu, “Production and characterization of bio-based polyols and polyurethanes from biodiesel-derived crude glycerol and lignocellulosic biomass,†PhD thesis, Ohio State University.

      [14] M. S. Fidan and M. H. Alma, “Preparation and characterization of biodegradable rigid polyurethane foams from the liquified eucalyptus and pine woods,†Wood Research, 59(1), 97–108, 2014.

      [15] J. Xie, X. Zhai, C. Y. Hse, T. F. Shupe, and H. Pan, “Polyols from microwave liquefied bagasse and its application to rigid polyurethane foam,†Materials, 8(12), 8496–8509, 2015.

      [16] H. Wang and H. Z. Chen, “A novel method of utilizing the biomass resource: Rapid liquefaction of wheat straw and preparation of biodegradable polyurethane foam (PUF),†Journal of the Chinese Institute of Chemical Engineers, 38(2), 95–102, 2007.

      [17] J. Xie, J. Qi, C. Hse, and T. F. Shupe, “Optimization for microwave-assisted direct liquefaction of bamboo residue in glycerol/methanol mixtures,†Journal of Forestry Research, 26(1), 261–265, 2015.

      [18] B. L. Xue, J. L. Wen, and R. C. Sun, “Producing lignin-based polyols through microwave-assisted liquefaction for rigid polyurethane foam production,†Materials, 8(2), 586–599, 2015.

      [19] R. Briones, L. Serrano, R. Llano-Ponte, and J. Labidi, “Polyols obtained from solvolysis liquefaction of biodiesel production solid residues,†Chemical Engineering Journal, 175(1), 169–175, 2011.

      [20] S. Hu, C. Wan, and Y. Li, “Production and characterization of biopolyols and polyurethane foams from crude glycerol based liquefaction of soybean straw,†Bioresource Technology, 103(1), 227–233, 2012.

      [21] R. Roslan, S. Zakaria, C. H. Chia, R. Boehm, and M. P. Laborie, “Physico-mechanical properties of resol phenolic adhesives derived from liquefaction of oil palm empty fruit bunch fibres,†Industrial Crops and Products, 62, 119–124, 2014.

      [22] H. Lim, S. H. Kim, and B. K. Kim, “Effects of silicon surfactant in rigid polyurethane foams,†Express Polymer Letters, 2(3), 194–200, 2008.

      [23] N. Saifuddin, O. Chun Wen, L. Wei Zhan, K. Xin Ning, “Palm oil based polyols for polyurethane foams application,†Proceedings of the International Conference on Advances in Renewable Energy Technologies, 2010, pp. 6-7.

      [24] M. Zieleniewska, M. K. Leszczyński, M. Kurańska A. Prociak, L. Szczepkowski, M. Krzyzowska, and J. Ryszkowska, “Preparation and characterisation of rigid polyurethane foams using a rapeseed oil-based polyol,†Industrial Crops and Products, 74, 887–897, 2015.

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    Kormin, S., Zafiah M. Rus, A., ., ., & ., . (2018). Liquefaction of Oil Palm Fruit Waste and Its Application for The Development of Polyurethane Foams. International Journal of Engineering & Technology, 7(3.14), 366-375. https://doi.org/10.14419/ijet.v7i3.14.18820