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    메타세콰이어, 카담, 물푸레나무 세포내강의 액체이동 = Capillary Flow in Different Cells of Metasequoia glyptostroboides, Anthocephalus cadamba, and Fraxinus rhynchophylla

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    https://www.riss.kr/link?id=A106278367

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    A study was carried out to observe the 1% aqueous safranine solution flow speed in longitudinal and radial directions of softwood Metasequoia glyptostroboides, diffuse-porous wood Anthocephalus cadamba and ring-porouswood Fraxinus rhynchophylla. In radial direction, ray cells and in longitudinal direction, tracheids, vessel and wood fiber were considered for the measurement of liquid penetration speed at less than 12% moisture contents (MC). The length, lumen diameter, pit diameter, end wall pit diameter and the numbers of end wall pits determined for the flow rate. The liquid flow in the those cells was captured via video and the capillary flow rate in the ones were measured. Vessel in hardwood species and tracheids in softwood was found to facilitate prime role in longitudinal penetration. Anatomical features like the length and diameter, end-wall pit numbers of ray parenchyma were found also responsible fluid flow differences. On the other hand, vessel and fiber structure affected the longitudinal flow of liquids. Therefore, the average liquid penetration depth in longitudinal tracheids of Metasequoia glyptostroboides was found the highest among all cells considered in Anthocephalus cadamba and Fraxinus rhynchophylla In radial direction, ray parenchyma of Metasequoia glyptostroboides was found the highest depth and the one of Fraxinus rhynchophylla was the lowest. The solution was penetrated lowest depth in the wood fiber of Fraxinus rhynchophylla. The large vessel of Fraxinus rhynchophylla was found the lowest depth among the vessels. The solutin was penetrated to the wood fiber of Anthocephalus cadamba higher than the one of Fraxinus rhynchophylla.
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    A study was carried out to observe the 1% aqueous safranine solution flow speed in longitudinal and radial directions of softwood Metasequoia glyptostroboides, diffuse-porous wood Anthocephalus cadamba and ring-porouswood Fraxinus rhynchophylla. In ra...

    A study was carried out to observe the 1% aqueous safranine solution flow speed in longitudinal and radial directions of softwood Metasequoia glyptostroboides, diffuse-porous wood Anthocephalus cadamba and ring-porouswood Fraxinus rhynchophylla. In radial direction, ray cells and in longitudinal direction, tracheids, vessel and wood fiber were considered for the measurement of liquid penetration speed at less than 12% moisture contents (MC). The length, lumen diameter, pit diameter, end wall pit diameter and the numbers of end wall pits determined for the flow rate. The liquid flow in the those cells was captured via video and the capillary flow rate in the ones were measured. Vessel in hardwood species and tracheids in softwood was found to facilitate prime role in longitudinal penetration. Anatomical features like the length and diameter, end-wall pit numbers of ray parenchyma were found also responsible fluid flow differences. On the other hand, vessel and fiber structure affected the longitudinal flow of liquids. Therefore, the average liquid penetration depth in longitudinal tracheids of Metasequoia glyptostroboides was found the highest among all cells considered in Anthocephalus cadamba and Fraxinus rhynchophylla In radial direction, ray parenchyma of Metasequoia glyptostroboides was found the highest depth and the one of Fraxinus rhynchophylla was the lowest. The solution was penetrated lowest depth in the wood fiber of Fraxinus rhynchophylla. The large vessel of Fraxinus rhynchophylla was found the lowest depth among the vessels. The solutin was penetrated to the wood fiber of Anthocephalus cadamba higher than the one of Fraxinus rhynchophylla.

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    참고문헌 (Reference)

    1 전수경, "은행나무, 감나무, 가중나무 세포내강의 액체이동" 한국가구학회 26 (26): 179-185, 2015

    2 Wheeler, E. A., "Ultrastructural characteristics of red maple (AcerrubrumL.) wood" 14 (14): 43-53, 1982

    3 Olsson, T., "Study of the transverse liquid flow paths in pine and spruce using scanning electron microscopy" 47 : 282-288, 2001

    4 Banks, W. B., "Some factors affecting the permeability of Scots pine and Norway spruce" 5 : 10-17, 1970

    5 Ahmed, S. A., "Ray parenchyma and ray tracheid structure of four Korean pine wood species" 17 (17): 101-107, 2006

    6 Leal, S., "Radial variation of vessel size and distribution in cork oak wood (QuercussuberL.)" 41 : 339-350, 2007

    7 Hansmann, C., "Permeability of wood: A review" 47 : 1-16, 2002

    8 Erickson, H. D, "Permeability of southern pine wood-A review" 2 (2): 149-158, 1970

    9 Petty, J. A., "Permeability and structure of the wood of Sitkaspruce" 175 : 149-166, 1970

    10 Liese, W., "On anatomical causes of the refractory behaviour of spruce and Douglas fir" 19 : 3-14, 1967

    1 전수경, "은행나무, 감나무, 가중나무 세포내강의 액체이동" 한국가구학회 26 (26): 179-185, 2015

    2 Wheeler, E. A., "Ultrastructural characteristics of red maple (AcerrubrumL.) wood" 14 (14): 43-53, 1982

    3 Olsson, T., "Study of the transverse liquid flow paths in pine and spruce using scanning electron microscopy" 47 : 282-288, 2001

    4 Banks, W. B., "Some factors affecting the permeability of Scots pine and Norway spruce" 5 : 10-17, 1970

    5 Ahmed, S. A., "Ray parenchyma and ray tracheid structure of four Korean pine wood species" 17 (17): 101-107, 2006

    6 Leal, S., "Radial variation of vessel size and distribution in cork oak wood (QuercussuberL.)" 41 : 339-350, 2007

    7 Hansmann, C., "Permeability of wood: A review" 47 : 1-16, 2002

    8 Erickson, H. D, "Permeability of southern pine wood-A review" 2 (2): 149-158, 1970

    9 Petty, J. A., "Permeability and structure of the wood of Sitkaspruce" 175 : 149-166, 1970

    10 Liese, W., "On anatomical causes of the refractory behaviour of spruce and Douglas fir" 19 : 3-14, 1967

    11 Ahmed, S. A., "Observation of liquid permeability related to anatomical characteristics in Samaneasaman" 33 (33): 155-163, 2009

    12 Wardrop, A. B., "Morphological factors relating to the penetration of liquids into wood" 15 : 130-141, 1961

    13 Lihra, T., "Longitudinal and transverse permeability of Balsam fir wetwood and normal heartwood" 32 (32): 164-178, 2000

    14 Watanabe, U., "Liquid penetration of precompressed wood VI: Anatomical characterization of pit fractures" 44 : 158-162, 1998

    15 Erickson, H. D., "Liquid flow paths into wood using polymerization techniques: Douglas-fir and styrene" 14 : 293-299, 1964

    16 Owoyemi, J. M., "Effect of incision on preservative capacity of Gmelinaarboreawood" 7 : 351-353, 2008

    17 Fujii, T., "Conductive function of intervessel pits through a growth ring boundary of Machilusthunbergii" 22 (22): 1-14, 2001

    18 Keith, C. T., "Anatomical studies of CCA penetration associated with conventional (tooth) and with micro (needle) incising" 20 : 197-208, 1988

    19 Flynn, K. A., "A review of the permeability, fluid flow, and anatomy of spruce (Piceaspp.)" 27 : 278-284, 1995

    20 Bolton, A. J, "A re-examination of some deviations from Darcy’s Law in coniferous wood" 22 : 311-322, 1988

    21 Bolton, A. J., "A model describing axial flow of liquid through conifer wood" 12 : 37-48, 1978

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    2026 평가 재인증평가 신청대상 (재인증)
    2020-01-01 등재 등재학술지 유지 (재인증) KCI등재
    2017-01-01 등재 등재학술지 유지 (계속평가) KCI등재
    2014-01-01 등재 등재학술지 선정 (계속평가) KCI등재
    2013-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2012-01-01 등재 등재후보학술지 유지 (기타) KCI등재후보
    2011-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2010-01-01 등재 신청제한 (등재후보1차) KCI등재후보
    2009-01-01 등재 등재후보 1차 FAIL (등재후보1차) KCI등재후보
    2007-01-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    2016 0.19 0.19 0.21
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