The effects of water availability on transpiration, water potential and growth of Picea abies during a growing season
Tài liệu tham khảo
Bringfelt, 1987, Synoptic evapotranspiration model applied to two northern forests of different density, J. Hydrol., 95, 185, 10.1016/0022-1694(87)90001-1
Bringfelt, 1977, Measurements of Evaporation from Forest (Representative Basin Velen), Swedish Meteorological and Hydrological Institute, Norrköping Final Report, 1
Brutsaert, 1982, Evaporation into the Atmosphere—Theory, History and Applications, 299
Čermák, 1973, A new method of sap flow rate determination in trees, Biol. Plant., 15, 171, 10.1007/BF02922390
Čermák, 1988, Measurements and evaluation of transpiration of tree species on the site Mlynářuy luh, Křivoklátsko, 43
Čermák, 1991, Water consumption of full-grown oak (Quercus robur L.) in a floodplain forest after the secession of flooding, Vol. II, 397
Cienciala, 1992, Assessment of transpiration estimates for Picea abies trees during a growing season, Trees Struct. Funct., 6, 121, 10.1007/BF00202427
Davies, 1990, Sensing of soil water status and the regulation of plant growth and development, Plant Cell Environ., 13, 709, 10.1111/j.1365-3040.1990.tb01085.x
Garnier, 1987, The influence of drought in stomatal conductance and water potential of peach trees growing in the field, Sci. Hortic., 32, 249, 10.1016/0304-4238(87)90091-4
Gash, 1975, The average surface resistance of a pine forest derived from Bowen ratio measurements, Boundary-Layer Meteorol., 8, 453, 10.1007/BF02153564
Halldin, 1989, Willow stand evaporation: simulation of diurnal distribution using synoptic weather data, 121
Harris, 1991, Rapid adjustment of guard-cell abscicis acid levels to current leaf-water status, Plant Physiol., 95, 171, 10.1104/pp.95.1.171
Hsiao, 1973, Plant responses to water stress, Annu. Rev. Plant Physiol., 24, 519, 10.1146/annurev.pp.24.060173.002511
Jansson, 1979, Model for annual water and energy flow in layered soil, 145
Jarvis, 1976, The interpretation of the variations in leaf water potential and stomatal conductance found in canopies in the field, Philos. Trans. R. Soc. London, 273, 593, 10.1098/rstb.1976.0035
Jarvis, 1986, Stomatal control of transpiration, 15, 1
Jarvis, 1985, Modelling canopy exchanges of water vapour and carbon dioxide in coniferous forest plantations, 521
Kaufmann, 1984, A canopy model (RM-CWU) for determining transpiration of subalpine forests. I. Model development, Can. J. For. Res., 14, 218, 10.1139/x84-043
Kaufmann, 1991, Estimating tree transpiration rates in forest stands, 117
Kelliher, 1992, Evaporation, xylem sap flow, and tree transpiration in a New Zealand broad-leaved forest, Agric. For. Meteorol., 62, 53, 10.1016/0168-1923(92)90005-O
Köstner, 1992, Transpiration and canopy conductance in a pristine broad-leaved forest of Nothofagus—an analysis of xylem sap flow and eddy correlation measurements, Oecologia, 91, 350, 10.1007/BF00317623
Kučera, 1977, Improved thermal method of continual recording of transpiration flow rate dynamics, Biol. Plant., 19, 413, 10.1007/BF02922976
Lindroth, 1985, Canopy conductance of coniferous forests related to climate, Water Resour. Res., 21, 297, 10.1029/WR021i003p00297
Marklund, 1988, Biomass functions for pine, spruce and birch in Sweden, 1
Monteith, 1965, Evaporation and atmosphere, 206
Penman, 1948, Natural evaporation from open water, bare soil and grass, 193, 120
Penman, 1953, The physical basis of irrigation control, Vol II, 913
Polster, 1950, Die physiologischen Grundlagen der Stofferzeugung im Walde, 96
Rook, 1977, Reaction of radiata pine to drought, 55
Running, 1984, Documentation and preliminary validation of H2O TRANS and DAYTRANS, two models for predicting transpiration and water stress in western coniferous forests, US For. Serv. Rocky Mount. For. Range Exp. Stn. Pap., RM-252, 45
Schulze, 1986, Whole-plant responses to drought, Aust. J. Plant Physiol., 13, 127, 10.1071/PP9860127
Stewart, 1985, Preliminary study of dependence of surface resistance of Thetford forest on environmental conditions, 91
Zhang, 1990, Changes in the concentration of ABA in xylem sap as a function of changing soil water status can account for changes in leaf conductance and growth, Plant Cell Environ., 13, 277, 10.1111/j.1365-3040.1990.tb01312.x