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Official Journal of the Japan Wood Research Society

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Vibrational properties of wetwood of todomatsu (Abies sachalinensis) at high temperature

Abstract

The object of this study was to understand precisely the drying characteristics of wetwood of todomatsu (Abies sachalinensis Mast.). For this purpose, the vibrational properties of wetwood of todomatsu at high temperature were compared with those of normal parts that had lower green moisture content than the wetwood. Specimens were cut respectively from the wetwood and normal parts, and matched in the radial direction. The specimens and the measuring systems were placed in an electric drying oven and free-free vibration tests were conducted in the oven under absolutely dry conditions. The wetwood and the normal parts were tested separately. The temperature was raised from room temperature to 200°C and then lowered to 50°C in steps of 25°C. The specific Young’s modulus decreased with an increase in temperature during the heating process while it increased with the decreasing temperature during the cooling process. There was no significant difference in the specific Young’s modulus between the wetwood and the normal part at all tested temperatures. The loss tangent took a minimum value at about 100°C in both the heating and cooling processes. There was no significant difference in the loss tangent between the wetwood and the normal part. Thus, the elastic and viscoelastic behaviors of the wetwood appear to be similar to those of the normal part in the temperature range of an actual kiln-drying process.

References

  1. Hokkaido Prefecture (ed) (2003) Annual report on forest management in Hokkaido 2002–2003 (in Japanese). Hokkaido Prefectural Government, Sapporo

    Google Scholar 

  2. Matsui T, Tabo F, Saito H, Shibuya M, Takahashi K (2003) (in Japanese). Abstracts of the 114th Annual Meeting of the Japan Forestry Society, p 664

  3. Ishida S (1963) On the development of frost cracks on “Todomatsu” trunks, Abies sachalinensis, especially in relation to their wetwood (in Japanese). Bull Hokkaido Univ For 22:273–374

    Google Scholar 

  4. Shida S (1995) Drying of wetwood (I) (in Japanese). Mokuzai Kogyo 50:7–12

    Google Scholar 

  5. Shida S (1995) Drying of wetwood (II) (in Japanese). Mokuzai Kogyo 50:63–65

    Google Scholar 

  6. Yoshimoto M, Shida S (2001) Observation and mechanical properties of wetwood in todomatsu (Abies sachalinensis Mast.) (in Japanese). Bull Tokyo Univ For 106:91–139

    Google Scholar 

  7. Kubojima Y, Wada M, Tonosaki M (2001) Real-time measurement of vibrational properties and fine structural properties of wood at high temperature. Wood Sci Technol 35:503–515

    Article  CAS  Google Scholar 

  8. Yano H, Norimoto M, Yamada T (1986) Changing in acoustical properties of sitka spruce due to acetylation (in Japanese). Mokuzai Gakkaishi 32:990–995

    Google Scholar 

  9. Yano H, Yamada T, Minato K (1986) Changing in acoustical properties of sitka spruce due to formaldehyde (in Japanese). Mokuzai Gakkaishi 32:984–989

    Google Scholar 

  10. Yano H, Kondou H, Kimura Y (1992) Enhancement of the physical properties of wood by resorcin/formaldehyde treatment (in Japanese). Mokuzai Gakkaishi 38:1119–1125

    CAS  Google Scholar 

  11. Ono T, Kataoka A (1979) The frequency dependence of the dynamic Young’s modulus and internal friction of wood used for the soundboards of musical instruments. II (in Japanese). Mokuzai Gakkaishi 25:535–542

    Google Scholar 

  12. Fukada E (1951) The vibrational properties of wood. II. J Phys Soc Jpn 6:417–421

    Article  Google Scholar 

  13. James WL, Boone RS, Galligan WL (1982) Using speed of sound in wood to monitor drying kiln. Forest Prod J 32:27–34

    Google Scholar 

  14. Bernier GA, Kline DE (1968) Dynamic mechanical behavior of birch compared with methyl methacrylate impregnated birch from 90° to 475°K. Forest Prod J 18(4):79–82

    CAS  Google Scholar 

  15. Sellevold EJ, Radik F, Hoffmeyer P (1975) Low temperature internal friction and dynamic modulus for beach wood. Wood Fiber 7:162–169

    Google Scholar 

  16. Cheng P, Nakao T, Kobayashi S (1999) Vibrational properties of wood in frequency ranges including ultrasonic waves. Temperature dependence of dynamic Young’s modulus and loss tangent (in Japanese). Mokuzai Gakkaishi 45:51–56

    CAS  Google Scholar 

  17. Kubojima Y, Okano T, Ohta M (1997) Effect of annual ring widths on structural and vibrational properties of wood. Mokuzai Gakkaishi 43:634–641

    CAS  Google Scholar 

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Correspondence to Hisashi Ohsaki.

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Ohsaki, H., Kubojima, Y., Tonosaki, M. et al. Vibrational properties of wetwood of todomatsu (Abies sachalinensis) at high temperature. J Wood Sci 53, 134–138 (2007). https://doi.org/10.1007/s10086-006-0828-x

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  • DOI: https://doi.org/10.1007/s10086-006-0828-x

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