The improvement of the permeability of wood by underwater shock wave

被引:0
|
作者
Shigeru Itoh
Shiro Nagano
Masahiro Fujita
Tsutomu Takano
Ryouzou Honda
Motoyosi Ikeda
机构
[1] Kumamoto University,Department of Mechanical Engineering
[2] The Ministry of Agriculture,Forest Products Institute
[3] Forests and Fisheries,undefined
[4] Forestry Research and Institute Station of Kumamoto Prefecture,undefined
来源
Metals and Materials | 1998年 / 4卷
关键词
shock wave; underwater explosion; permeability of wood; dryability of wood;
D O I
暂无
中图分类号
学科分类号
摘要
Sugi (Cryptomeria japonica D.Don) wood generally has the so-called black heartwood, which contains the extremely high moisture content. Although subjected to the drying process, it is difficult to be dried up completely so that Sugi wood does not have the sufficient strength for use. The reason is that during drying process, the bordered pit membrane on traicheids closes faster near the heartwood in Sugi wood so that the internal moisture is not easily come out to the outside. At the mean time, it also makes very difficult to saturate the rotten-proof chemicals into the dried Sugi wood to have it become an additionally valuable wood. In this paper, we will develop an underwater shock wave technique to treat the pre-dried wood for the improvement of the drying property as well as the permeability and strength of Sugi wood by selectively fracturing the bordered pit membrane. The result indicates a very remarkable improvement on the drying time. The mechanism of the fracture of the bordered pit by underwater shock wave will be further studied in the future.
引用
收藏
页码:843 / 846
页数:3
相关论文
共 50 条
  • [31] STUDY ON EXPANSION OF A SILICON TUBE BY UNDERWATER SHOCK WAVE
    Iyama, Hirofumi
    Hamashima, Hideki
    Nishi, Keijirou
    Itoh, Shigeru
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE 2009, VOL 4, 2010, : 565 - 569
  • [32] A method for adjusting and controlling underwater explosion shock wave
    Huang C.
    Zhang P.
    Zeng F.
    Xu W.
    Wang J.
    Liu N.
    Baozha Yu Chongji/Explosion and Shock Waves, 2022, 42 (08):
  • [33] Visualization of shock wave propagation due to underwater explosion
    Jayabal Rajasekar
    Tae Ho Kim
    Heuy Dong Kim
    Journal of Visualization, 2020, 23 : 825 - 837
  • [34] Experimental and numerical studies of underwater shock wave attenuation
    T. Saito
    M. Marumoto
    H. Yamashita
    S.H.R. Hosseini
    A. Nakagawa
    T. Hirano
    K. Takayama
    Shock Waves, 2003, 13 : 139 - 148
  • [35] Acoustic characteristics of underwater continuous pulse shock wave
    Fan, Zhi-Qiang
    Ma, Hong-Hao
    Shen, Zhao-Wu
    Jiang, Yao-Gang
    Baozha Yu Chongji/Explosion and Shock Waves, 2013, 33 (05): : 501 - 506
  • [36] Creation of Emulsion Fuel using Underwater Shock Wave
    Goto, Keisuke
    Torii, Shuichi
    EXPLOSION, SHOCK WAVE AND HIGH-ENERGY REACTION PHENOMENA II, 2014, 767 : 239 - 243
  • [37] Research on producing the electrode for generating underwater shock wave
    Matsuo, Nobuyuki
    Tanaka, Shigeru
    Itoh, Shigeru
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE 2010, VOL 5, 2010, : 473 - 476
  • [38] Visualization of shock wave propagation due to underwater explosion
    Rajasekar, Jayabal
    Kim, Tae Ho
    Kim, Heuy Dong
    JOURNAL OF VISUALIZATION, 2020, 23 (05) : 825 - 837
  • [39] The transverse response of sandwich panels to an underwater shock wave
    Mäkinen, K
    JOURNAL OF FLUIDS AND STRUCTURES, 1999, 13 (05) : 631 - 646
  • [40] Basic study for crushing of ice by underwater shock wave
    Watanabe, Toshiaki
    Maehara, Hironori
    Ltoh, Shigeru
    EXPLOSION, SHOCK WAVE AND HYPERVELOCITY PHENOMENA IN MATERIALS II, 2008, 566 : 243 - +