Steaming-caused chemical changes of sugi (Cryptomeria japonica) wood monitored by NIR spectroscopy
##plugins.themes.bootstrap3.article.main##
Abstract
Abstract. Mahdiyanti SH, Tsuchikawa S, Mitsui K, Tolvaj L. 2020. Steaming-caused chemical changes of sugi (Cryptomeria japonica) wood monitored by NIR spectroscopy. Asian J For 4: 6-9. Steaming is a common method to change the color of wood to enhance attractiveness. This study aimed to investigate time-dependence of chemical changes of sugi (Cryptomeria japonica D. Don) wood steamed with temperature of 90 and 110°C and monitored up to 20 days using NIR spectroscopy. The difference spectrum method was applied to find the absorption increases and decreases. Before the subtraction, the spectra were normalized to one unit at 1739 nm to eliminate the parallel shift of the spectra. The results showed that steam-induced chemical changes in the wavelength range of 1300-2100 nm were related to the absorption of water and the absorption of extractives, especially phenolic contents. These chemical changes were suspected to be strongly related to color changes in steamed wood. Longer duration of steaming caused phenolic compounds to change into similar contents in all wood tissues, which cause their color to change more uniformly. Steaming caused a water bounding capacity loss of the cell wall. This change was much faster at 110°C than at 90°C.
2017-01-01
##plugins.themes.bootstrap3.article.details##
Csanady E, Magoss E, Tolvaj L. 2015. Quality of Machined Wood Surfaces. Springer, pp 171-173. http://doi.org/10.1007/978-3-319-22419-0
Dzurenda L. 2017. Modification of wood colour of Acer platanoides L. to a brown-red shade caused by thermal treatment For Wood Technol 98: 26-32.
Dzurenda L. 2018a. Colour modification of robinia pseudoacacia l. during the processes of heat treatment with saturated water steam. Acta Facultatis Xylologiae Zvolen 60(1): 61?70,
Dzurenda L. 2018b. The Shades of Color of Quercus robur L. Wood Obtained through the Processes of Thermal Treatment with Saturated Water Vapour. BioRes 13(1): 1525-1533. http://ojs.cnr.ncsu.edu/index.php/BioRes/article/view/BioRes_13_1_1525_Dzurenda_Shades_Color_Quercus_Thermal
Esteves, BM, Pereira HM. 2009. Wood Modification by Heat Treatment: A Review. BioResources 4: 370–404.
Fengel D, Wegener G. 1984. Wood: chemistry, ultrastructure, reactions. Walter de Gruyter, Berlin-New York pp
Geffert A, Vybohová E, Geffertová J. 2017. Characterization of the changes of colour and some wood components on the surface of steamed beech wood. Acta Facultatis Xylologiae Zvolen 59(1): 49?57. http://doi.org/10.17423/afx.2017.59.1.05
Kurata Y, Mori Y, Ishida A, Nakajima M, Ito N, Hamada M, Yamashita K, Fujiwara T, Tonosaki M, Katayama Y. 2018. Variation in Hemicellulose Structure and Assembly in the Cell Wall Associated with the Transition from Earlywood to Latewood in Cryptomeria Japonica. Journal of Wood Chemistry and Technology 38(3): 254–63. https://doi.org/10.1080/02773813.2018.1434206
Lloyd JA. 1978. Distribution of Extractives in Pinus Radiata Earlywood and Latewood. New Zealand Journal of Forestry Science 8(2): 288–94.
Mili? G, Todorovi? N, Popadi? R. 2015. Influence of steaming on drying quality and colour of beech timber. Glasnik Šumarskog Fakulteta 83-96. https://doi.org/10.2298/GSF1512083M
Schwanninger M,. Rodrigues JC, Fackler K. 2011. A Review of Band Assignments in near Infrared Spectra of Wood and Wood Components. Journal of Near Infrared Spectroscopy 19(5): 287–308. http://dx.doi.org/ 10.1255/jnirs.955
Sikora A, Ka?ík F,·Gaff M,·Vondrová V, Tatiana Bubeníková T, Kubovský I. 2018. Impact of Thermal Modification on Color and Chemical Changes of Spruce and Oak Wood. Journal of Wood Science 64(4): 406–16. http://dx.doi.org/10.1007/s10086-018-1721-0
Straze A, Gorisek Z. 2008. Research on colour variation of steamed Cherry wood (Prunus avium L.). Wood Res Slovakia 52(2): 77-90. http://www.woodresearch.sk/wr/200802/08.pdf
Sundqvist, B. 2002. Color Response of Scots Pine (Pinus Sylvestris), Norway Spruce (Picea Abies) and Birch (Betula Pubescens) Subjected to Heat Treatment in Capillary Phase. Holz als Roh - und Werkstoff 60(2): 106–14.
Tjeerdsma BF, Militz H. 2005. Chemical changes in hydrothermal treated wood: FTIR analysis of combined hydrothermal and dry heat-treated wood. Holz Roh Werkstoff 63: 102-111. https://doi.org/10.1007/s00107-004-0532-8
Tolvaj L, Nemeth R, Varga D, Molnar S. 2009. Colour homogenisation of beech wood by steam treatment. Drewno-Wood 52: 5-17. http://drewno-wood.pl/pobierz-140
Tolvaj L, Molnár S, Németh R, Varga D. 2010. Colour modification of black locust depending on the steaming parameters. Wood Res Slovakia 55(2): 81-88.
Tolvaj L, Papp G, Varga D, Lang E. 2012. Effect of steaming on the colour change of softwoods. BioRes 7(3): 2799-2808.
Tolvaj L, Molnar Zs, Nemeth R. 2013. Photodegradation of wood at elevated temperature: Infrared spectroscopic study. J Photochem Photobiol B: Biol 121: 32–36. https://doi.org/10.1016/j.jphotobiol.2013.02.007
Tolvaj L, Banadics EA, Tsuchikawa S, Mitsui K, Preklet E. 2019. Color modification and homogenization of sugi wood by steaming. Asian J For 3(1): 20-24. https://doi.org/10.13057/asianjfor/r030103
Torres SS, Jomaa W, Marc F, Puiggali JR. 2010. Causes of Color Changes in Wood during Drying. Forestry Studies in China 12(4): 167–75. http://dx.doi.org/10.1007/s11632-010-0404-8
Varga D, Van der Zee ME. 2008. Influence of steaming on selected wood properties of four hardwood species. Holz Roh Werkstoff 66(1): 11-18. https://link.springer.com/article/10.1007/s00107-007-0205-5
Windeisen E, Strobel C, Wegener G. 2007. Chemical changes during the production of thermo-treated beech wood. Wood Sci Technol 41: 523-536. http://dx.doi.org/10.1007/s00226-007-0146-5