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A selection of the application of Pinus sylvestris L. from Puszcza Notecka by chemical analysis

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Języki publikacji
EN
Abstrakty
EN
Pinus sylvestris L. is the most popular wood material used in building construction and pulp technology. However, it can be also applied for other, more economically beneficial purposes like ethanol, commercial quantities of xylose or glucose as well as substrates for chemical synthesis. The selection of an optimal conversion path of wood should be based on its chemical composition and physical properties. The overall aim of this research was to determine the chemical composition and features of cellulose and lignin structure on a molecular level of Pinus sylvestris L. wood from a primeval forest: Puszcza Notecka was chosen because of its valorisation. The trees from four stands: two from the primeval forest and for comparison two from stands out of the primeval forest were used in the research. The percentage of chemical components of the wood: holocellulose, cellulose, pentosans and lignin as well as components soluble in ethanol and ash were determined. The chemical analysis provided information on the number of wood components. Their variations at a molecular level were investigated by Py-GC/MS, highlighting how the growth place of trees can affect the formation of wood pyrolysis products. The differences between the structures of cellulose and lignin, amidst certain feedstocks were also analysed by FTIR. It was shown that a percentage of the chemical composition of material from the stands in the primeval forest is more homogeneous in comparison to material from other investigated stands. There was a lower content of extractives in wood from the primeval forest which facilitates the gluing and finishing of wood-based materials. A low content of ash in this material gives possibilities to consider using investigated feedstock for energy purposes. The highest content of holocellulose, 77.5%, was found in the wood gained from the primeval forest and this feedstock is the best for obtaining carbohydrate derivatives. Both the low content of lignin and the low content of extractives in wood from Puszcza Notecka allowed them to be applied in the fermentation process. The evaluation of the relative amounts of pyrolysis products deriving from holocellulose and lignin and FTIR analysis highlighted differences between feedstock growing in the compared areas. The results obtained indicated that the trees from Puszcza Notecka are an attractive feedstock for technological branches due to the homogeneous chemical and physical features and they can potentially be used for countless economically-viable applications.
Rocznik
Strony
39--51
Opis fizyczny
Bibliogr. 37 poz., rys., tab.
Twórcy
autor
  • Poznań University of Life Sciences, Poznan, Poland
  • Wood Technology Institute, Poznan, Poland
autor
  • Poznań University of Life Sciences, Poznan, Poland
  • Poznań University of Life Sciences, Poznan, Poland
autor
  • Poznań University of Life Sciences, Poznan, Poland
autor
  • Poznań University of Life Sciences, Poznan, Poland
Bibliografia
  • Baysal E., Altinok M., Colak M., Ozaki S.K., Toker H. [2007]: Fire resistance of Douglas fir (Pseudotsuga menzieesi) treated with borates and natural extractives. Bioresource Technology 98 [5]: 1101-1105
  • Bénes I., Velić N., Planinić M., Šmogrovičová D., Tišma M. [2013]: Utilisation of pentosans from sugar beet pulp by different white-rot fungi. 4th International Conference on Food Engineering and Biotechnology IPCBEE vol. 50. DOI: 10.7763/IPCBEE. 2013.V50. 20
  • Bowyer J.L. [2016]: The U.S. Forest Product Industry – past, present and future. Drewno 59 [197]: 9-24. DOI: 10.12841/wood.1644-3985.C35.03
  • Bozell J.J., Petersen G.R. [2010]: Technology development for the production of biobased products from biorefinery carbohydrates-the US Department of Energy’s Top 10 revisited. Green Chemistry 12: 539-554
  • Ekeberg D., Flate P-O, Eikenes M, Fongen M., Naess-Andresen C. F. [2006]: Qualitative and quantitative determination of extractives in heartwood of Scots pine (Pinus sylvestris L.) by gas chromatography. Journal of Chromatography A 1109: 267-272
  • Fengel D., Wegener G. [1989]: Wood Chemistry, Ultrastructure, Reactions. Walter de Gruyter, Berlin: 613 pp.
  • Fernandes C., Gaspar M.J., Pires J., Alves A., Simões R., Rodrigues J.C., Silva M.E., Carvalho A., Brito J.E., Lousada J.L. [2017]: Physical, chemical and mechanical properties of Pinus sylvestris wood at five sites in Portugal. iForest 10: 669-679
  • Hovelstad H., Leirset I., Oyaas K., Fiksdahl A. [2006]: Screening analyses of pinosylvin stilbenes, resin acids and lignans in norwegian conifers. Molecules 11: 103-114
  • Hse Ch-Y., Kuo M-L. [1988]: Influence of extractives on wood gluing and finishing. Forest Products Journal 38 [1]: 52-56
  • Kibblewhite R.P. [1984]: Pinus radiate wood residue qualities and some utilisation options. New Zealand Journal of Forestry Science 14 [3]: 382-94
  • Korica A., Polis O., Spalvis K.,Bartkevics V. [2015]: Quantitative and qualitative seasonal changes of Scots pine and Norway spruce foliage essential oils in Latvia, and the extraction dynamics thereof. Baltic Forestry 21 [1]: 51-58
  • Krzyżaniak M., Stolarski M., Waliszewska B., Szczukowski S., Tworkowski J., Załuski D., Snieg, M. [2014]: Willow biomass as feedstock for an integrated multi-product. Biorefinery. Industrial Crops and Products 58: 230-237
  • Lindberg L.E., Willför S.M., Holmbom B.R. [2004]: Antibacterial effects of knotwood extractives on paper mill bacteria. Journal of Industrial Microbiology & Biotechnology 31 [3]: 137-147
  • Lucejko J.J. [2010]: Wet archeological wood: chemical study of degradation and evaluation of consolidation treatments. Doctoral dissertation. Pisa, Department of Chemistry and Industrial Chemistry of the University of Pisa
  • Nelson M.L., O’Connor R.T. [1964]: Relation of certain infrared bands to cellulose crystallinity and crystal lattice type. Part I. Spectra of types I, II, III and of amorphous cellulose. Journal of Applied Polymer Science 8:1311-1324
  • Macdonald E., Connolly T., Gardiner B. [2010]: A survey of Scots pine timber quality in the northern periphery programme area of Scotland. In: Kudela J., Lagana R. (eds.), Wood Structure and Properties 10: 13-20
  • Mudgal D., Singh S., Prakash S. [2014]: Corrosion problems in incinerators and biomass-fuel-fired boilers. International Journal of Corrosion. volume 2014, article ID 505306, 14 pp. DOI: http://dx.doi.org/10.1155/2014/505306
  • Piechocki J., Wiśniewski D., Białowiec A. [2014]: Thermal gasification of waste biomass from agriculture production for energy purposes. In: Bundschuh J., Chen G. (eds.), Sustainable Energy Solutions in Agriculture CRC Press: 355-381
  • Prosiński S. [1984]: Chemia drewna. Warszawa PWLiR, 225 pp. [in Polish]
  • Roszyk E., Molinski W., Kusiak W., Pradzynski W., Zborowska M. [2016]: Physical properties of Scots pine wood from the Notecka Forest. Sylwan 160 [7]: 547-555
  • Sable I., Grinfelds U., Jansons A., Vikele L., Irbe I., Verovkins A., Treimanis A. [2012]: Comparison of the properties of wood and pulp fibres from Lodgepole pine (Pinus contorta) and Scots pine (Pinus sylvestris). BioResources 7 [2]: 1771-1783
  • Sandak J., Sandak A. [2011]: FT-NIR assessment of biomass composition of shrub willow clones (Salix sp.) for optimal bio-conversion process. Journal of Near Infrared Spectroscopy 19 [5]: 309-318
  • Sandak A., Sandak J., Negri M. [2012]: Studies on chemical composition of spruce wood in relation to its geographical origin by selected non-destructive methods. IUFRO All Division 5 Conference, Lisbon, Portugal, 8-13 July
  • Sensuła B., Wilczyński S., Monin L., Allan M., Pazdur A., Fagel N. [2017]: Variations of tree ring width and chemical composition of wood of pine growing in the area nearby chemical factories, Geochronometria, 44 [1]: 226-239. DOI: https://doi.org/10.1515/geochr-2015-0064
  • Serrano D., Coronado J.M., Melero, J. [2012]: Conversion of cellulose and hemicellulose into platform molecules: chemical routes. In: Aresta M., Dibenedetto A., Dumeignil F. (eds.), Biorefinery: From Biomass to Chemical and Fuels. DeGruyter, Berlin: 123-141
  • Surmiński J. [1994]: Żywice naturalne. AR Poznań, 137 pp. [in Polish]
  • The National Forest Inventory results of cycle II (2010–2014) [2015]: Work commissioned from the Bureau for Forest Management and Geodesy by the Directorate-General of the State Forests. Sękocin Stary: 433 pp.
  • Tümen I., Reunanen M. [2010]: A comparative study on turpentine oils of oleoresins of Pinus sylvestris L. from three districts of Denizli. Record of Natural. Products 4 [4]: 224-229
  • Ungureanu E., Ungureanu O., Căpraru A.-M., Popa V. I. [2009]: Chemical modification and characterization of straw lignin. Cellulose Chemistry and Technology 43 [7-8]: 263-269
  • Welker M., Balasubramanian V., Petti C., Mohan Rai K., DeBolt S., Mendu V. [2015]: Engineering plant biomass lignin content and composition for biofuels and bioproducts. Energies 8: 7654-7676
  • White R.H. [1987]: Effect of lignin content and extractives on the higher heating value of wood Wood and Fiber Science 4: 446-452
  • Vishtal A., Kraslawski A. [2011]: Challenges in industrial applications of technical lignins. BioResources 6 [3]: 3547-3568
  • Xu F., Yu, J., Tesso T., Dowel F., Wang D. [2013]: Qualitative and quantitative analysis of lignocellulosic biomass using infrared techniques: A mini-review Publications from USDA-ARS/ UNL Faculty. Paper 1227 http://digitalcommons.unl.edu/usdaarsfacpub/1227
  • Zborowska M., Waliszewska B., Sandak A., Sandak J. [2013]: Utilization of NIR for proper biomass conversion. In: Sandak J., Sandak A. (eds), Application of NIR spectroscopy for wood science and technology research – NIR&WOOD – SOUNDS GOOD! Book of abstracts, p. 21-22
  • Zule J., Dolenc J. [2012]: Distribution of mineral substances in different wood tissues European larch (Larix decidua Mill.). Drvna Industrija 63 [1]: 19-25
  • List of standards
  • PN-86/M-04001 Sita tkane kontrolne o oczkach kwadratowych [in Polish]
  • PN-92/P-50092 Drewno. Analiza chemiczna [in Polish]
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-3f0bf995-069a-4dc7-b8ea-9d39696dabc3
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