Editors-in-Chief:  Weilun Yin, Beijing Forestry University, China Klaus v. Gadow, University of Göttingen, Germany
Cao Jin-zhen, Li Li-dan, Liu Zhi. Effect of ACQ-D Treatment on the Surface Free Energy of Chinese Fir (Cunninghamia lanceolata)[J]. Forest Ecosystems, 2005, 7(4): 29-34.
Citation: Cao Jin-zhen, Li Li-dan, Liu Zhi. Effect of ACQ-D Treatment on the Surface Free Energy of Chinese Fir (Cunninghamia lanceolata)[J]. Forest Ecosystems, 2005, 7(4): 29-34.

Effect of ACQ-D Treatment on the Surface Free Energy of Chinese Fir (Cunninghamia lanceolata)

Funds: 

Supported by the Foundation for the Author of National Excellent Doctoral Dissertation of China (Grant No. 200352)

More Information
  • Received Date: 19 June 2005
  • Rev Recd Date: 24 September 2005
  • In this study, the contact angles of three different reference liquids (including distilled water, diiodomethane, and formamide) and PF resin on the surfaces of Chinese fir (Cunninghamia lanceolata
    ) samples untreated or treated with different concentrations of ACQ-D (ammoniacal copper quat Type D) solutions were measured. Then, the surface free energy was calculated by two approaches:acid-base approach and geometric mean approach. ACQ-D treatment caused higher contact angles and lower surface free energies at a retention level corresponding to the commodity treated wood products. When wood was treated with much higher concentrations of ACQ-D, the total surface free energy of wood would be higher than the untreated control. Acid-base/polar components related with the hydrogen bonding state in wood were considered to be responsible for the observed changes according to the applied approaches. The hydrophobic properties and also higher contact angles of PF resin drop on wood surfaces after ACQ-D treatment at a reasonable retention level confirms the changes on surface free energy.
  • Related Articles

    [1]Hussein BALIMUNSI, Stefano GRIGOLATO, Rodolfo PICCHIO, Kenneth NYOMBI, Raffaele CAVALLI. Productivity and energy balance of forest plantation harvesting in Uganda[J]. Forest Ecosystems, 2012, 14(4): 276-282. DOI: 10.1007/s11632-012-0404-y
    [2]ZHAO You-ke, Ikuho IIDA, FENG Shang-huan, LU Jian-xiong. Viscoelastic properties of wood from Chinese-fir and poplar plantations[J]. Forest Ecosystems, 2012, 14(2): 107-111. DOI: 10.1007/s11632-012-0201-7
    [3]ZHANG Yong, ZHANG Lei-na, YANG Chun-de, BAO Wen-dong, YUAN Xue-xia. Surface area processing in GIS for different mountain regions[J]. Forest Ecosystems, 2011, 13(4): 311-314. DOI: 10.1007/s11632-011-0403-7
    [4]YU Li-li, GAO Wei, CAO Jin-zhen, TANG Zhen-zhong. Effects of microwave post-treatments on leaching resistance of ACQ-D treated Chinese fir[J]. Forest Ecosystems, 2010, 12(1): 1-8. DOI: 10.1007/s11632-010-0008-3
    [5]ZHENG Xin, CAO Jin-zhen, MAO Jia. Effect of compression on hydroscopicity of extracted Chinese fir heartwood[J]. Forest Ecosystems, 2008, 10(4): 270-273. DOI: 10.1007/s11632-008-0049-z
    [6]Su Kyoung Chun, Sheikh Ali Ahmed. Permeability and meniscus phenomenon in four Korean softwood species[J]. Forest Ecosystems, 2006, 8(3): 56-60. DOI: 10.1007/s11632-006-0026-3
    [7]Tjutju Nurhayati, Yani Waridi, Han Roliadi. Progress in the technology of energy conversion from woody biomass in Indonesia[J]. Forest Ecosystems, 2006, 8(3): 1-8. DOI: 10.1007/s11632-006-0015-6
    [8]Xue Feng-lian, Zhao Guang-jie, Lü Wen-hua. Creep of Chinese Fir Wood Treated by Different Reagents[J]. Forest Ecosystems, 2005, 7(1): 40-45.
    [9]Sa Chao, Du Hongbo, Zhang Biguang, Wang Guozhu. Detection of Veneer Moisture Content by Surface-circle-shaped Resistance[J]. Forest Ecosystems, 2003, 5(4): 41-44.
    [10]Yang Yusheng, Chen Guangshui, He Zongming, Li Xiufang, Chen Yinxiu. Seasonal Dynamics of Energy Return Through Litterfall of A Mixed Forest of Chinese Fir and T. odorum[J]. Forest Ecosystems, 2001, 3(1): 26-31.

Catalog

    Article Metrics

    Article views (353) PDF downloads (0) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return