Aphalo, P.J.; Jarvis, P.G., 1993. An Analysis of Ball's Empirical Model of Stomatal Conductance. Annals of Botany 62, 321-327.
Arah, J.R.M., J.H.M. Thornley, P.R. Poulton, D.D. Richter, 1997. Simulating trends in soil organic carbon in long-term experiments using the ITE (Edinburgh) Forest and Hurley Pasture ecosystem models. Geoderma 81: 61-74.
Asner, Gregory P. and Wessman, Carol A., 1997. Scaling PAR absorption from the leaf to landscape level in spatially heterogeneous ecosystems. Ecological Modelling 103, 81-97.
Asrar, G., R.B. Myneni, and B.J. Choudhury, 1992, Spatial heterogeneity in vegetation canopies and remote sensing of absorbed photosynthetically active radiation: a modeling study. Remote Sensing of Environment, 41, 85-103.
Avissar, R; Avissar, P.; Mahrer, Y.; Bravdo, B., 1985. A Model to Simulate Response of Plant Stomata to Environmental Conditions. Agricultural and Forest Meteorology 34, 21-29.
Badger, M. R. and Collatz, G. J., 1977. Studies on the kinetic mechanism of ribulose-1,5-bisphosphate carboxylase and oxygenase reactions, with particular reference to the effect of temperature on kinetic parmaeters Carnegie Institution Yearbook 76, 355-361.
Baldocchi, D.; Luxmore, R.J.; Hatfield, J.L., 1991. Discerning the forest from the trees: an essay on scaling canopy stomatal conductance. Agricultural and Forest Meteorology 54, 197-226.
Baldocchi, D., 1994. An analytical solution for coupled leaf photosynthesis and stomatal conuctance models. Tree Physiology 14, 1069-1079.
Baldocchi, D. and Meyers, T., 1998. On using eco-physiological, micrometeorological and biogeochemical theory to evaluate carbon dioxide, water vapor and trace gas fluxes over vegetation: a perspective. Agricultural and Forest Meteorology 90, 1-25.
Ball, J. T.; Woodrow, I. E. and Berry, J. A., 1987. A Model Predicting Stomata Conductance and its Contribution to the Control of Photosynthesis Under Different Environmental Conditions. Progress in Photosynthesis Research, Vol. IV. Biggens, J.(ed.) Martinus Nijhoff , Dordrecht.
Belcher, J. W.; Keddy, P. A.; Twolan Strutt, L., 1995. Root and shoot competition intensity along a soil depth gradient. Journal of Ecology 83, 673-682.
Belsky, A. J., 1990. Tree-grass ratios in East African savannas: a comparison of existing models. Journal of biogeography 17, 483-489.
Berntson, G.M. 1994. Modelling root architecture: Are there tradeofs between efficiency and potential of resource acquisition? New Phytologist 127, 483-493.
Berry, J.A. and Farquhar, G.D., 1978. The CO2 concentrating function of C4 photosynthesis: a biochemical model. Proceedings of the 4th International Congress on Photosynthesis. Hall, D.; Coombs, J. and Goodwin, T. (eds.) Biochemical Society, London. pp. 119-131.
Betts, A. K; Viterbo, P.; Wofsy, S., 1998. Evaluation of land-surface interaction in ECMWF and NCEP/NCAR reanalysis models over grassland (FIFE) and boreal forest (BOREAS). Journal of Geophysical Research 103, 23,079
Bonan, G.B., 1995, Land-atmosphere interactions for climate change system models: coupling biophysical, biogeochemical and ecosystem dynamical processes, Remote Sensing of Environment, 51:57-73.
Borchert, R. 1992. Computer simulation of tree growth periodicity and climatic hydroperiodicity in tropical forests. Biotropica 24, 385-395.
Caldwell, M.M. Richards, J.H., 1986. Competing root systems: morphology and models of absorption. In: On the economy of plant form and function. Givnish, T.J. (ed.) Cambridge University Press. pp. 251-273.
Caldwell, M.M., P.A. Matson, C. Wessman, and J. Gamon, 1993, Prospects for Scaling, In: Scaling Physiological Processes: Leaf to Globe, edited by J. R. Ehleringer and C. B. Field, San Diego, Academic Press pp. 223-230.
Calvet, J. C.; Noilhan, J.; Wigneron, J. P., 1998. An interactive vegetation SVAT model tested against data from six contrasting sites. Agricultural and forest meteorology 92, 73.
Chameides, W. L. and E. M. Perdue, 1996. Biogeochemical Cycles. A computer-Interactive Study of Earth System Science and Global Change. New York, Oxford University Press. 224 pp.
Chen, D.; Coughenour, M.B.; Knapp, A.K. and Owensby, C.E., 1994. Mathematical simulation of C4 grass photosynthesis in ambient and elevated CO2. Ecological Modelling 73, 63-80.
Chertov, O.G., A.S. Komarov, G. Crocker, P. Grace, J. Klir, M. Körschens, P.R. Poulton, D. Richter, 1997. Simulating trends of soil organic carbon in seven long-term experiments using the SOMM model of the humus types. Geoderma 81: 121-135.
Coleman, K., D.S. Jenkinson, G.J. Crocker, P.R. Grace, J. Klír, M. Körschens, P.R. Poulton, D.D. Richter, 1997. Simulating trends in soil organic carbon in long-term experiments using RothC-26.3, Geoderma 81: 29-44.
Collatz, G.J., J.T. Ball, C. Grivet, and J.A. Berry, 1991, Physiological and environmental regulation of stomatal conductance, photosynthesis and transpiration: a model that includes a laminar boundary layer, Agricultural and Forest Meteorology, 54:107-136.
Collatz, G.J., M. Ribas-Carbo, and J.A. Berry, 1992, Coupled Photosynthesis-Stomatal Conductance Model for Leaves of C4 Plants, Australian Journal of Plant Physiology, 19:519-538.
Desanker, P.V. and Prentice, I.C. 1994. MIOMBO - A vegetation dynamics model for the miombo woodlands of Zambezian Africa. Forest Ecology and Management 69, 87-95.
Desanker, P.V. 1996. Modeling vegetation dynamics of miombo woodlands
of Zambezian Africa under changing climatic conditions: Progress and future
directions. Climatic Change 34:279-288.
Desanker, P.V., and I.C.Prentice, 1995. Modeling vegetation dynamics
of miombo woodlands of Zambezian Africa under changing climatic conditions.
In: J. Pernetta, R. Leemans, D. Elder, and S. Humphrey, (eds.), The
Impact of Climate Change on Ecosystems and Species: Terrestrial Ecosystems,
IUCN,
Gland, Switzerland, pp23-38.
Ehleringer, J.R., and C.B. Field, 1993, Scaling Physiological Processes: Leaf to Globe, , Physiological Ecology, San Diego, Academic Press, pp. 388.
Emanuel, W. R., G. G. Killough, W. M. Post, and H. H. Shugart, 1984.
Modeling Terrestrial Ecosystems in the Global Carbon Cycle with Shifts
in Carbon Storage Capacity by Land-Use Change. Ecology 65, 970-983.
Farquhar, G.D., S. von Caemmerer, and J.A. Berry, 1980, A Biochemical
Model of Photosynthetic CO2 Assimilation in Leaves of C3 Species, Planta,
149:78-90.
Farquhar, G.D., and S.C. Wong, 1984, An Empirical Model of Stomatal Conductance, Australian Journal of Plant Physiology, 11:191-210.
Foley, J.A., 1994, Net primary productivity in the terrestrial biosphere: The application of a global model, Journal of Geophysical Research, 99 (10):20,773-20,783.
Foley, J.A., I.C. Prentice, N. Ramankutty, S. Levis, D. Pollard, S. Sitch, and A. Haxeltine, 1996, An integrated biosphere model of land surface processes, terrestrial carbon balance, and vegetation dynamics, Global Biogeochemical Cycles, 10 (4):603-628.
Franklin, J., and A.H. Strahler, 1988, Invertible Canopy Reflectance Modeling of Vegetation Structure in Semiarid Woodland, IEEE Transactions on Geoscience and Remote Sensing, Ge-26 (6):809-825.
Franko, U., G.J. Crocker, P.R. Grace, J. Klír, M. Körschens, P.R. Poulton, D.D. Richter, 1997. Simulating trends in soil organic carbon in long-term experiments using the CANDY model. Geoderma 81: 109-120.
Friend, A.D., 1993, The prediction and physiological significance of tree height, In: Vegetation Dynamics and Global Change, edited by Solomon and H. H. Shugart.
Friend, A.D., 1995, PGEN: an integrated model of leaf photosynthesis, transpiration, and conductance, Ecological Modelling, 77:233-255.
Furniss, P. R., P. Ferrar, J. W. Morris and J. J. Bezuidenhout, 1982. A model of savanna litter decomposition. Ecological Modelling 17, 33-51.
Goel, N.S., 1988, Models of vegetation canopy reflectance and their use in estimation of biophysical parameters from reflectance data, Remote Sensing Reviews, 4:1-212.
Gutschick, V.P., 1991, Joining Leaf Photosynthesis Models and Canopy Photon-Transport Models, In: Photon-Vegetation Interactions: Applications in Optical Remote Sensing and Plant Ecology, edited by R. B. Myneni and J. Ross, Berlin, Springer-Verlag pp. 501-535.
Grant, R.F., 1989, Test of a Simple Biochemical Model for Photosynthesis of Maize and Soybean Leaves, Agricultural and Forest Meteorology, 48:59-74.
Gu, L., 1998b, Modeling Biophysical Exchanges and Micro-Meteorology in Soil-Vegetation-Atmosphere Continuums - Results from a Two-Story Boreal Aspen Forest, PhD Thesis, Dept. of Environmental Sciences, University of Virginia, Charlottesville, 265 pp.
Guenther, A, C.N. Hewitt, D. Erickson, R. Fall, C. Geron, T. Graedel, P. Harley, L. Klinger, M. Lerdau, W.A. McKay, T. Pierce, B. Scholes, R. Steinbrecher, R. Tallamraju, J. Taylor and P. Zimmerman, 1995. A global model of natural organic compound emissions, J. Geophys. Res., 100(D5), 8873-8892.
Hall, A.E., and O. Björkman, 1975, Model of Leaf Photosynthesis and Respiration, In: Perspectives of Biophysical Ecology, edited by D. M. Gates and R. B. Schmerl, New York, Springer-Verlag pp. 55-72.
Hanan, N.P., S.D. Prince, and A. Bégué, 1997, Modelling vegetation primary production during HAPEX-Sahel using production efficiency and canopy conductance model formulations, Journal of Hydrology, 188-189:651-675.
Harley, P.C., and J.D. Tenhunen, 1991, Modeling the Photosynthetic Response to C3 Leaves to Environmental Factors, In: Modeling Crop Photosynthesis - From Biochemistry to Canopy, edited by K. J. Boote and R. S. Loomis, Madison, Wisc., Special Publication of the American Society of Agronomy pp. 17-39.
Harley, P.C., J.D. Tenhunen, and O.L. Lange, 1986, Use of an analytical model to study limitations on net photosynthesis in Arbutus unedo under field conditions, Oecologia, 70:393-401.
Harley, P.C., R.B. Thomas, J.F. Reynolds, and B.R. Strain, 1992, Modelling photosynthesis of cotton grown in elevated CO2, Plant, Cell and Environment, 15:271-282.
Haxeltine, A., and I.C. Prentice, 1996, A general model for the light-use efficiency of primary production, Functional Ecology, 10:551-561.
Heimann, M., and D.C. Keeling, 1989, A three-diminsional model of atmospheric CO2 transport based on observed winds, 2, Model description and simulated tracer experiements, In: Aspects of Climate Variability in the Pacific and the Western Americas, Aspects of Climate Variability in the Pacific and the Western Americas, Geophysical Monographs, 55:237-274.
Hikosaka, K., and T. Hirose, 1998, Leaf and canopy photosynthesis of C3 plants at elevated CO2 in relation to optimal partitioning of nitrogen among photosynthetic components: theroetical prediction, Ecological Modelling, 106:247-259.
Hobbie, E. A.,1997. Isotope modeling of N dynamics. Ph. D. Thesis, University of Virginia.
Holland, EA; Lamarque, JF, 1997. Modeling bio atmospheric coupling of the nitrogen cycle through NOx emissions and NOx deposition. Nutrient cycling in agroecosystems. 48 (1/2), 7-24
Hunt, E.R., S.W. Running, C.A. Federer,1991. Extrapolating plant water flow resistances and capacitances to regional scales. Agricultural and Forest Meteorology 54, 169-195.
Hunt, E.R., and S.W. Running, 1992, Simulated Dry Matter Yields for Aspen and Spruce Stands in the North American Boreal Forest, Canadian Journal of Remote Sensing, 18 (3):126-133.
Hunt, E., Jr. Raymond, S.W. Running, 1992. Effects of Climate and Lifeform on Dry Matter Yield (e) from Simulations using BIOME-BGC. Proceedings of the International Geoscience and Remote Sensing Symposium, IGARSS '92, Vol. II pp1631-1633.
Hunt, E. Raymond, Jr.; S. C. Piper, R. Nemani, C. D. Keeling, R. D. Otto, S. W. Running, 1996. Global net carbon exchange and intra-annual atmospheric CO2 concentrations predicted by an ecosystem process model and three-dimensional atmospheric transport model. Global Biogeochemical Cycles 10, 431-456.
Hutchinson, G.L., M. F. Vigil, J. W. Doran, and A. Kessavalou, 1997. Coarse-scale soil-atmosphere NOx exchange modeling: Status and limitations. Nutrient Cycling in Agroecosystems 48(1-2), 25-35.
Jenkins, C.L.D., R.T. Furbank, and M.D. Hatch, 1989, A Model Describing the Inorganic Carbon Pool in Bundle Sheath Cells, Plant Physiology, 91:1372-1381.
Jensen, L.S., T. Mueller, N.E. Nielsen, S. Hansen, G.J. Crocker, P.R. Grace, J. Klír, M. Körschens, P.R. Poulton, 1997. Simulating trends in soil organic carbon in long-term experiments using the soil--plant--atmosphere model DAISY. Geoderma 81: 5-28.
Johnson, I.R., J. Melkonian, J.H.M. Thornley, and S.J. Riha, 1991, A model of water flow through plants incorporating shoot/root "message" control of stomatal conductance, Plant Cell and Environment, 14:531-544.
Kelly, R.H., W.J. Parton, G.J. Crocker, P.R. Grace, J. Klír, M. Körschens, P.R. Poulton, D.D. Richter, 1997. Simulating trends in soil organic carbon in long-term experiments using the century model. Geoderma 81: 75-90.
Kim, J., and S.B. Verma, 1991, Modeling canopy photosynthesis: scaling up from a leaf to canopy in a temprate grassland ecosystem, Agricultural and forest Meteorology, 57:187-208.
Kirschbaum, M.U.F., 1994, The sensitivity of C3 photosynthesis to increasing CO2 concentration: a theoretical analysis of its depenedence on temperature and background CO2 concentration, Plant, Cell and Environment, 17:747-754.
Kunz, R. P.; Schulze, R. E.; Scholes, R. J., 1995. An Approach to Modelling Spatial Changes of Plant Carbon-Nitrogen Ratios in Southern Africa in Relation to Anticipated Global Climate Change. Journal of Biogeography 22, 401-408.
Kutsch, WL; Kappen, L, 1997. Aspects of carbon and nitrogen cycling in soils of the Bornhoeved Lake district II. Modelling the influence of temperature increase on soil respiration and organic carbon content in arable soils under different managements. Biogeochemistry 39, 207-224.
Leuning, R., F.X. Dunin, and Y.-P. Wang, 1998, A two-leaf model for canopy conductance, photosynthesis and partitioning of available energy. II. comparison with measurements, Agricultural and Forest Meteorology, 91:113-125.
Li, X., A.H. Strahler, and C.E. Woodcock, 1995, A hybrid geometric optical-radiative transfer approach for modeling albedo and direcddtional reflectance of discontinuous canopies, IEEE Transactions on Geoscience and Remote Sensing, Ge-33:466-480.
Li, Changsheng; Frolking, SE; Harriss, RC; Terry, RE, 1994. Modeling nitrous oxide emissions from agriculture: A Florida case study. Chemosphere 28, 1401-1415.
Li, Changsheng, S. Frolking, G. J. Crocker, P. R. Grace, J. Klír,
M. Körchens, P. R. Poulton, 1997. Simulating trends in soil organic
carbon in
long-term experiments using the DNDC model. Geoderma 81: 45-60.
Magill, AH; Aber, JD; Hendricks, JJ; Bowden, RD; Melillo, JM; Steudler,
PA, 1997. Biogeochemical response of forest ecosystems to simulated chronic
nitrogen deposition. Ecological Applications 7, 402-415.
McMurtrie, R., and L. Wolf, 1983, A Model of Competition between Trees and Grass for Radiation, Water and Nutrients, Annals of Botany, 52:449-458.
Medlyn, B.E., 1996, Interactive effects of atmospheric carbon dioxide and leaf nitrogen concentration on canopy light use efficiency: a modeling analysis, Tree Physiology, 16:201-209.
Medlyn, B.E., 1998, Physiological basis of the light use efficiency model, Tree Physiology, 18:167-176.
Melillo, J. M.; Borchers, J.; Chaney, J.; Fisher, H.; Fox, S.; Haxeltine, A.; Janetos, A.; Kicklighter, D. W.; Kittel, T. G.; F.McGuire, A. D.; McKeown, R.; Neilson, R.; Nemani, R.; Ojima, D. S.; Painter, T.; Pan, Y.; Parton, W. J.; Pierce, L.; Pitelka, L.; Prentice, C.; Rizzo, B.; Rosenbloom, N. A.; Running, S.; Schimel, D. S.; Sitch, S., et al.,1995. Vegetation Ecosystem Modeling and Analysis Project - Comparing Biogeography and Biogeochemistry Models in a Continental-Scale Study of Terrestrial Ecosystem Responses to Climate Change and Co2 Doubling. Global Biogeochemical Cycles 9, 407-437.
Menaut, J.C., J. Gignoux, C. Prado and J. Clobert, 1990. Tree community dynamics in a humid savanna of the Côte-d'Voire: modelling the effects of fire and competition with grass and neighbours, J. Biogeogr., 17:471-481.
Mitchell, JFB, 1993. Simulated climate and climate change over southern Africa in high resolution mixed-layer model experiments. Renewable Energy 3: 447-454.
Molina, J.A.E., G.J. Crocker, P.R. Grace, J. Klír, M. Körschens, P.R. Poulton, D.D. Richter, 1997. Simulating trends in soil organic carbon in long-term experiments using the NCSOIL and NCSWAP models. Geoderma 81: 91-107.
Neilson, R.P., 1995, A Model for Predicting Continental-Scale Vegetation Distribution and Water Balance, Ecological Applications, 5 (2):362-385.
Noilhan, J., and S. Planton, 1989, A Simple Parameterization of Land Surface Processes for Meteorological Models, Monthly Weather Review, 117:536-549.
Oreskes, N., K. Shrader-frechette, and K. Belittz, 1994, Verification, Validation, and Confirmation of Numerical Models in the Earth Sciences, Science, 263:641-646.
Parton, W.J., J.W.B. Stewart, and C.V. Cole, 1988. Dynamics of C,N,P and S in grassland soils: a model. Biogeochemistry 5,109-131.
Parton, W.J., J.M.O. Scurlock, D.S. Ojima, T.G. Gilmanov, R.J. Scholes, D.S. Schimel, T. Kirchner, J-C Menaut, T. Seastedt, E. Garcia Moya, Apinan Kamnalrut and J.I. Kinyamario, 1993, Observations and modelling of biomass and soil organic matter dynamics for the grassland biome worldwide, Global Biochemical Cycles, 7(4):785-809.
Paustian, K., E. Levine, W. M. Post, I. M. Ryzhova, 1997. The
use of models to integrate information and understanding of soil C at the
regional scale,
Geoderma 79: 227-260.
Prince, S.D., 1991, A model of regional primary production for use with coarse resolution satellite data, International Journal of Remote Sensing, 12 (6):1313-1330.
Potter, C. S.; Randerson, J. T.; Field, C. B.; Matson, P. A.; Vitousek, P. M.; Mooney, H. A.; Klooster, S. A., 1993. Terrestrial Ecosystem Production: A Process Model Based on Global Satellite and Surface Data.Global Biochemical Cycles 7, 811-841.
Potter, CS; Davidson, EA; Klooster, SA; Nepstad, DC; De Negreiros, GH; Brooks, V, 1998. Regional application of an ecosystem production model for studies of biogeochemistry in Brazilian Amazonia. Global Change Biology 4, 315-333.
Quinn, P.; Beven, K.; Chevallier, P.; Planchon, O., 1991. The Prediction of Hillslope Flow Paths for Distributed Hydrological Modelling Using Digital Terrain Models. Hydrologcal Properties 5, 59-79.
Rastetter, E. B. and G. R. Shaver, 1992. A model of multiple-element limitation for acclimating vegetation. Ecology 73, 1157-1174.
Rastetter, E. B., Agren, G. I., and Shaver, G. R., 1997. Responses of N-limited ecosystems to increased CO2 : A balanced-nutrition, coupled-element-cycles model. Ecological Applications 7, 444-460.
Ruimy, A; Dedieu, G.; Saugier, B., 1996. TURC: A diagnostic model of continental gross primary productivity nd net primary productivity. Global Biochemical Cycles 10, 269-285.
Running, S. W. and J. C. Coughlan, 1988. A general model of forest ecosystem processes for regional applications. I. Hydrology balance, canopy gas exchange and primary production processes. Ecological Modelling 42, 125-154.
Running, S. W.; Nemani, R. R., 1988. Relating Seasonal Patterns of the AVHRR Vegetation Index to Simulated Photosythesis and Transpiration of Forests in Different Climates. Remote Sensing of Environment 24, 347-367.
Running, S. W. and S. T. Gower, 1991.FOREST-BCG, A general model of forest ecosystem processes for regional applications. II. Dynamic carbon allocation and nitrogen budgets. Tree physiology 9, 147-160.
Running, S.W.; Hunt, E.R., 1993. Generalization of a forest ecosystem process model for other biomes, BIOME-BGC, and an application for global scale models. In: Scaling Physiological processes: Leaf to Globe. Ehleringer, J. and Field, C. (eds). Academic Press, Ney York. pp141-158.
Rykiel, E.J., Jr., 1996, Testing ecological models: the meaning of validation, Ecological Modelling, 90:29-244.
Schimel, D. S., B. H. Braswell, E. A. Holland, R. McKeown, D. S. Ojima, T. H. Painter, W. J. Parton, and A. R. Townsend, 1994. Climatic, edaphic and biotic controls over storage and turnover of carbon in soils. Global Biogeochemical Cycles 8, 279-293.
Scholes, R. J. and M. C. Scholes, 1997. Applications of Biogeochemical modeling in Southern Africa. Progress in Physical Geography 21 (1), 102-112.
Sellers, P.J., D.A. Randall, G.J. Collatz, J.A. Berry, C.B. Field, D.A. Dazlich, C. Zhang, G.D. Collelo, and L. Bounoua, 1996, A Revised Land Surface Parameterization (SiB2) for Atmospheric GCMs. Part I: Model Formulation, Journal of Climate, 9:676-705.
Spitters, C.J.T., 1986, Separating the diffuse and direct component of global radiation and its implications for modeling canopy photosynthesis, Part II. Calculation of canopy photosynthesis, Agricultural and Forest Meteorology, 38:231-242.
Spitters, C.J.T., H.A.J.M. Toussaint, and J. Goudriaan, 1986, Separating the diffuse and direct component of global radiation and its implications or modeling canopy photosynthesis, Part I. Components of incoming radiation, Agricultural and Forest Meteorology, 38:217-229.
Strahler, A.H., and D.L.B. Jupp, 1991, Geometric-Optical Modeling of Forests as Remotely-Sensed Scenes Composed of Three-Deminsional, Descrete Objects, In: Photon-Vegetation Interactions: Applications in Optical Remote Sensing and Plant Ecology, edited by R. B. Myneni and J. Ross, Berlin, Springer-Verlag pp. 415-440.
Smith, J. B., 1992. Incorporation of seasonality into a bioclimatic model to predict vegetation distribution in Africa. M. S.Thesis, University of Virginia, Charlottesville.
Smith, P., J.U. Smith, D.S. Powlson, W.B. McGill, J.R.M. Arah, O.G. Chertov, K. Coleman, U. Franko, S. Frolking, D.S. Jenkinson, L.S. Jensen, R.H. Kelly, H. Klein-Gunnewiek, A.S. Komarov, C. Li, J.A.E. Molina, T. Mueller, W.J. Parton, J.H.M. Thornley, A.P. Whitmore, 1997. A comparison of the performance of nine soil organic matter models using datasets from seven long-term experiments. Geoderma 81: 153-222.
Tenhunen, J.D., C.S. Yocum, and D.M. Gates, 1976, Development of a Photosynthesis Model with an Emphasis on Ecological Applications, I. Theory, Oecologia, 26 (2):89-100.
Turner, C R, 1996. Dispersion Modelling for the Highveld Atmosphere. In: Air Pollution and its Impacts on the South African Highveld. G. Held, B. J. Gore, A. D. Surridge, G. R. Tosen, C. R. Turner, and R. D. Walmsley (eds.). Environmental Scientific Association, Cleveland, 144 pp.
Tyson, P. D.; Garstang, M.; Swap, R., 1996. Large-Scale Recirculation of Air Over Southern Africa. Journal of Applied Meteorology 35, 2218-2236.
Tyson, P. D.,1997. Atmospheric Transport of Aerosols and Trace Gases Over Southern Africa. Progress in Physical Geography 21, 79-101.
Tyson, P.; Gasse, F.; Bergonzini, L. and Dabreton, P., 1997. Aerosols, Atmospheric Transmissivity and Hydrological Modelling of Climatic Change Over Africa South of the Equator.International Journal of Climatology 17, 1651-1665.
Tyson, P.; Gasse, F.; Bergonzini, L. and D'Abreton, P., 1997.Aerosols, atmospheric transmissivity and hydrological modelling of climatic change over Africa south of the equator. International Journal of Climatology 17, 1651-1665
Urban, D.L., 1990, A Versatile Model to Simulate Forest Pattern, Environmental Sciences Dept., University of Virginia.
Van Daalen, J. C.; Shugart, H. H., 1989. OUTENIQUA - A computer model to simulate succession in the mixed evergreen forests of the southern Cape, South Africa. Landscape Ecology 2, 255-267.
VEMAP, 1995, Vegetation/ecosystem modeling and analysis project (VEMAP): Comparing biogeography and biogeochemistry models in a continental scale study of terrestrial ecosystem responses to climate change and CO2 doubleing, Global Biogeochemical Cycles, 9:407-437.
Verheof, W., 1984, Light Scattering by Leaf layers with Application to Canopy Reflectance Modeling: the SAIL Model, Remote Sensing of Environment, 16:125-141.
Von Maltitz, G. P.; Scholes, R. J., 1995. The burning of fuelwood in South Africa: When is it sustainable? Environmental Monitoring and Assessment 38, 243-251.
Walker, B.H., and J.L. Langridge, 1996, Modelling plant and soil water dynamics in semi-arid ecosystems with limited site data, Ecological Modelling, 87:153-167.
Wang, Y.-P., and P.G. Jarvis, 1990, Description and validation of an array model - MAESTRO, Agricultural and Forest Meteorology, 51:157-180.
Wang, Y.-P., and R. Leuning, 1998, A two-leaf model for canopy conductance, photosynthesis and paritioning of available energy I: Model description and comparison with a multi-layered model, Agricultural and Forest Meteorology, 91:89-111.
Warnant, P., L. François, D. Strivay, and J.-C. Gérard, 1994, CARAIB: A model of terrestrial biological productivity, Global Biogeochemical Cycles, 8(3):255-270.
Wenhan, Q., 1993, Modeling bidirectional reflectance of multi-component vegetation canopies, Remote Sensing of Environment, 46:235-245.
Whitmore, A.P., H. Klein-Gunnewiek, G.J. Crocker, J. Klír, M. Körschens, P.R. Poulton, 1997. Simulating trends in soil organic carbon in long-term experiments using the Verberne/MOTOR model. Geoderma 81: 137-151.
Woodward, F.I., and T.M. Smith, 1994a, Global photosynthesis and stomatal conductance: Modelling the controls by soils and climate, Advances in Botanical Research, 20:1-41.
Woodward, F.I., T.M. Smith, and W.R. Emanuel, 1995, A global land primary productivity and phytogeography model, Global Biogeochemical Cycles, 9 (4):471-490.
Woomer, P. L., 1993. Impact of cultivation on carbon fluxes in woody
savannas of Southern Africa. Water, Air, & Soil Pollution 70,
403-412