Canopy transpiration in two Japanese cypress forests with contrasting structures
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  • 作者:Kenji Tsuruta ; Hikaru Komatsu ; Tomonori Kume…
  • 关键词:Canopy conductance ; Canopy transpiration ; Chamaecyparis obtusa ; Sap flow ; Stand structure
  • 刊名:Journal of Forest Research
  • 出版年:2015
  • 出版时间:October 2015
  • 年:2015
  • 卷:20
  • 期:5
  • 页码:464-474
  • 全文大小:2,416 KB
  • 参考文献:Cienciala E, Kucera J, Lindroth A, Cermak J, Grelle A, Halldin S (1997) Canopy transpiration from boreal forest in Sweden during a dry summer. Agric For Meteorol 86:157-67CrossRef
    Clearwater MJ, Meinzer FC, Andrade JL, Goldstein G, Holbrook M (1999) Potential errors in measurements of nonuniform sap flow using heat dissipation probes. Tree Physiol 19:681-87CrossRef PubMed
    Ewers BE, Gower ST, Bond-Lamberty B, Wang CK (2005) Effects of stand age and tree species on canopy transpiration and average stomatal conductance of boreal forests. Plant Cell Environ 28:660-78CrossRef
    Ewers BE, Mackay DS, Tang J, Bolstad PV, Samanta S (2008) Intercomparison of sugar maple (Acer saccharum Marsh.) stand transpiration responses to environmental conditions from the Western Great Lakes Region of the United States. Agric For Meteorol 148:231-46CrossRef
    Ford CR, Hubbard RM, Kloeppel BD, Vose JM (2007) A comparison of sap flux-based evapotranspiration estimates with catchment-scale water balance. Agric For Meteorol 145:176-85CrossRef
    Ford CR, Hubbard RM, Vose JM (2010) Quantifying structural and physiological controls on variation in canopy transpiration among planted pine and hardwood species in the southern Appalachians. Ecohydrology. doi:10.-002/?eco.-36
    Fujimori T (2006) Forest Ecology. Zenrinkyou, Tokyo (in Japanese)
    Granier A (1987) Evaluation of transpiration in a Douglas-fir stand by means of sap flow measurements. Tree Physiol 3:309-20CrossRef PubMed
    Granier A, Biron P, Lemoine D (2000) Water balance, transpiration and canopy conductance in two beech stands. Agric For Meteorol 100:291-08CrossRef
    Hattori S, Tamai K, Abe T (1993) Effects of soil moisture and vapor pressure deficit on evapotranspiration in a hinoki plantation. J Jpn For Soc 75:216-24 (in Japanese with English summary)
    Herbst M, Roberts JM, Rosier PTW, Taylor ME, Gowing DJ (2007) Edge effects and forest water use: a field study in mixed deciduous woodland. For Ecol Manag 250:176-86CrossRef
    Herbst M, Rosier PTW, Morecroft MD, Gowing DJ (2008) Comparative measurements of transpiration and canopy conductance in two mixed deciduous woodlands differing in structure and species composition. Tree Physiol 28:959-70CrossRef PubMed
    Imawaka S, Sato N (2008) Study on new forest maintenance projects by “Forest Environmental Tax- Bull Kyushu Univ 89:75-26 (in Japanese with English summary)
    Irvine J, Law BE, Anthoni PM, Meinzer FC (2002) Water limitations to carbon exchange in old-growth and young ponderosa pine stands. Tree Physiol 22:189-96CrossRef PubMed
    Irvine J, Law BE, Kurpius MR, Anthoni PM, Moore D, Schwarz PA (2004) Age-related changes in ecosystem structure and function and effects on water and carbon exchange in ponderosa pine. Tree Physiol 24:753-63CrossRef PubMed
    Japan Forestry Agency (2010) Current state of forest resources. http://?www.?rinya.?maff.?go.?jp/?j/?keikaku/?genkyou/?h24/?index.?html (in Japanese). Accessed 8 June 2015
    Jarvis PG, McNaughton KG (1986) Stomatal control of transpiration: scaling up from leaf to region. Adv Ecol Res 15:1-9CrossRef
    Komatsu H (2004) A general method of parameterizing the big-leaf model to predict the dry-canopy evaporation rate of individual coniferous forest stands. Hydrol Process 18:3019-036CrossRef
    Komatsu H, Onozawa Y, Kume T, Tsuruta K, Shinohara Y, Otsuki K (2012) Canopy conductance for a Moso Bamboo (Phyllostachys pubescens) forest in western Japan. Agric For Meteorol 156:111-20CrossRef
    Kosugi Y, Katsuyama M (2007) Evapotranspiration over a Japanese cypress forest. II. Comparison of the eddy covariance and water budget methods. J Hydrol 334:305-11CrossRef
    Kumagai T, Aoki S, Nagasawa H, Mabuchi T, Kubota K, Inoue S, Utsumi Y, Otsuki K (2005a) Effects of tree-to-tree and radial variations on sap flow estimates of transpiration in Japanese cedar. Agric For Meteorol 135:110-16CrossRef
    Kumagai T, Nagasawa H, Mabuchi T, Ohsaki S, Kubota K, Kogi K, Utsumi Y, Koga S, Otsuki K (2005b) Sources of error in estimating stand transpiration using allometric relationships between stem diameter and sapwood area for Cryptmeria japonica and Chamaecyparis obtusa. For Ecol Manage 206:191-95CrossRef
    Kumagai T, Aoki S, Shimizu T, Otsuki K (2007) Sap flow estimates of stand transpiration at two slope positions in a Japanese cedar forest watershed. Tree Physiol 27:161-68CrossRef PubMed
    Kumagai T, Tateishi M, Shimizu T, Otsuki K (2008) Transpiration and canopy conductance at two slope positions in a Japanese cedar forest watershed. Agric For Meteorol 148:1444-455CrossRef
    Kume T, Tsuruta K, Komatsu H, Kumagai T, Higashi N, Shinohara Y, Otsuki K (2010) Effects of sample size on sap flux-based stand-scale transpiration estimates. Tree Physiol 30:129-38CrossRef PubMed
    Kume T, Otuski K, Du S, Yamanaka N, Wang YL, Liu GB (2012) Spatial variation in sap flow velocity in semiarid region trees: its impact on stand-scale tran
  • 作者单位:Kenji Tsuruta (1)
    Hikaru Komatsu (2)
    Tomonori Kume (3)
    Yoshinori Shinohara (4)
    Kyoichi Otsuki (5)

    1. Laboratory of Forest Hydrology, Graduate School of Agriculture, Kyoto University, Kitashirakawaoiwake-cho, Sakyo-ku, Kyoto, 606-8502, Japan
    2. The Hakubi Center for Advanced Research, Kyoto University, Kitashirakawaoiwake-cho, Sakyo-ku, Kyoto, 606-8501, Japan
    3. School of Forestry and Resource Conservation, National Taiwan University, 1, Sec. 4, Roosevelt Road., Taipei, 10617, Taiwan
    4. Faculty of Agriculture, Kyushu University, 6-10-1, Hakozaki, Higashi-ku, Fukuoka, 812-8581, Japan
    5. Kasuya Research Forest, Kyushu University, 394 Tsubakuro, Sasaguri, Fukuoka, 811-2415, Japan
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Forestry
    Forestry Management
    Tree Biology
    Plant Sciences
    Plant Ecology
  • 出版者:Springer Japan
  • ISSN:1610-7403
文摘
Canopy transpiration (E C) varies among forest stands with different structures. To evaluate different E C for Japanese cypress we observed E C for 5 months, by use of the sap flow technique, in two adjacent stands of different ages with contrasting structures. Mean diameter at breast height was 13.5 and 44.6 cm and stem density was 2100 and 350 trees ha? for the Sakuta and Hiwada plots, respectively. Mean E C measured was 1.3 mm day? for the Sakuta plot and 0.7 mm day? for the Hiwada plot (or 53 % of that for the Sakuta plot). This difference between E C was caused by differences between both mean stand sap flux density (J S) and stand sapwood area (A S__stand): J S for the Hiwada plot was 69 % of that for the Sakuta plot and A S_stand for the Hiwada plot was 75 % of that for the Sakuta plot. The difference between J S was primarily caused by different reference J S for given meteorological conditions, not by the different response of J S to meteorological conditions. Previous studies of coniferous plantation forests in Japan reported that differences between E C among stands with different structures were mainly caused by different A S_stand. This study revealed this is not always true, and that differences between J S should also be considered when predicting differences between E C among stands with different structures. Keywords Canopy conductance Canopy transpiration Chamaecyparis obtusa Sap flow Stand structure

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