Measurement and modelling of rainfall interception by three semi-arid canopies

被引:103
|
作者
Domingo, F
Sanchez, G
Moro, MJ
Brenner, AJ
Puigdefabregas, J
机构
[1] CSIC, Estac Expt Zonas Aridas, Kosice 04001, Slovakia
[2] Univ Alicante, Dept Ecol, E-03080 Alicante, Spain
[3] Univ Leeds, Dept Pure & Appl Biol, Leeds LS2 9JT, W Yorkshire, England
关键词
rainfall interception model; rainfall partitioning; canopy drainage; canopy boundary layer conductance; semi-arid canopy;
D O I
10.1016/S0168-1923(98)00068-9
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The main aims of this study were, firstly, to adapt the rainfall interception model of Rutter et al. (Agric. Meterology, 1971, 9, 367-384) to individual plants of two semiarid shrubs (Anthyllis cytisoides L. and Retama sphaerocarpa (L.) Boiss.) and a tussock grass (Stipa tenacissima L,) and secondly, to understand how the different canopy structures influence rainfall partitioning by individual plants. The selected species represent contrasting canopy types typical of vegetation of semiarid areas. Free throughfall coefficients were estimated from field measurements of low volume rainfall events and vertical photographs taken beneath the plant canopy. Canopy drainage curves were measured by continuous weighing of wetted plants. Canopy boundary layer conductances were calculated by measuring the evaporation of water from wet canopies, Field measurements of gross rainfall, throughfall and stemflow were taken for each rainfall event for A. cytisoides and R. sphaerocarpa. The Rutter type model of rainfall interception was adapted for individual shrubs and tested with measured rainfall events showing a good agreement between observed and predicted values for R. sphaerocarpa and for A. cytisoides. The interception model was then run to simulate interception loss during actual rainfall events, using atmospheric conditions measured every 5 s. The results from this simulation showed significant differences in interception loss between species, which can be explained by differences in canopy drainage and boundary layer conductance, and are caused primarily by the structural differences in their canopies. R. sphaerocarpa gave lower interception than the other two species, S. tenacissima gave higher interception, while A. cytisoideshad an intermediate value. The low interception loss by R. sphaerocarpa can be explained by its low total area index, thus, high free throughfall and high canopy drainage rate per unit projected canopy area. On the other hand, S. tenacissima and A. cytisoides, show a low free throughfall and drainage rate per unit projected canopy area because of their higher aerial biomass density. The ecological implications of these adaptations are discussed. (C) 1998 Elsevier Science B,V, All rights reserved.
引用
收藏
页码:275 / 292
页数:18
相关论文
共 50 条
  • [31] SMALL RAINFALL EVENTS - AN ECOLOGICAL ROLE IN SEMI-ARID REGIONS
    SALA, OE
    LAUENROTH, WK
    OECOLOGIA, 1982, 53 (03) : 301 - 304
  • [32] Effects of rainfall on bird reproduction in a semi-arid Neotropical region
    Paiva Cavalcanti, Liana Monique
    de Paiva, Luciana Vieira
    Franca, Leonardo Fernandes
    ZOOLOGIA, 2016, 33 (06):
  • [33] Satellite estimates and subpixel variability of rainfall in a semi-arid grassland
    Chen, Yong
    Duan, Jing
    An, Junling
    Liu, Huizhi
    Goersdorf, Ulrich
    Berger, Franz H.
    ATMOSPHERIC AND OCEANIC SCIENCE LETTERS, 2021, 14 (05)
  • [34] The importance of extreme rainfall events and their timing in a semi-arid grassland
    Post, Alison K.
    Knapp, Alan K.
    JOURNAL OF ECOLOGY, 2020, 108 (06) : 2431 - 2443
  • [35] Rainfall intensification in tropical semi-arid regions: the Sahelian case
    Panthou, G.
    Lebel, T.
    Vischel, T.
    Quantin, G.
    Sane, Y.
    Ba, A.
    Ndiaye, O.
    Diongue-Niang, A.
    Diopkane, M.
    ENVIRONMENTAL RESEARCH LETTERS, 2018, 13 (06):
  • [36] Interception measurements and assessment of Gash model performance for a tropical semi-arid region
    Augusto Medeiros, Pedro Henrique
    de Araujo, Jose Carlos
    Bronstert, Axel
    REVISTA CIENCIA AGRONOMICA, 2009, 40 (02): : 165 - 174
  • [37] Stochastic Modelling of Reservoir Sedimentation in a Semi-Arid Watershed
    N. Adam
    S. Erpicum
    P. Archambeau
    M. Pirotton
    B. Dewals
    Water Resources Management, 2015, 29 : 785 - 800
  • [38] Stochastic Modelling of Reservoir Sedimentation in a Semi-Arid Watershed
    Adam, N.
    Erpicum, S.
    Archambeau, P.
    Pirotton, M.
    Dewals, B.
    WATER RESOURCES MANAGEMENT, 2015, 29 (03) : 785 - 800
  • [39] CHARACTERISATION AND MODELLING OF DUST IN A SEMI-ARID CONSTRUCTION ENVIRONMENT
    Bruce, John
    Datson, Hugh
    Smith, Jim
    Fowler, Mike
    ENVIRONMENTAL FORENSICS, 2015, : 82 - 91
  • [40] Permafrost distribution modelling in the semi-arid Chilean Andes
    Azocar, Guillermo F.
    Brenning, Alexander
    Bodin, Xavier
    CRYOSPHERE, 2017, 11 (02): : 877 - 890