Simulation of sap flow in a beech tree by means of a dynamic data-based model as influenced by a solar eclipse

被引:4
作者
Aerts, J. -M. [1 ]
Steppe, K. [2 ]
Boonen, C. [1 ]
Lemeur, R. [2 ]
Berckmans, D. [1 ]
机构
[1] Catholic Univ Louvain, Div Measure Model & Manage Bioresponses, B-3001 Louvain, Belgium
[2] Univ Ghent, Lab Plant Ecol, B-9000 Ghent, Belgium
关键词
D O I
10.1016/j.biosystemseng.2007.09.012
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Responses of crucial plant processes such as transpiration and photosynthesis have often been modelled by mechanistic models or static regression models. The objective of this paper was to quantify the dynamics of sap flow rate in a beech tree to the rapid variations in short-wave solar radiation, air temperature and vapour pressure deficit using an alternative dynamic data-based modelling approach. In order to have enough dynamic information, data from the solar eclipse of 11 August 1999 were used. This permitted determination of the order of the sap flow dynamics, together with the relative contribution of short-wave radiation, air temperature and vapour pressure deficit. A multiple-input and single-output transfer function was used to simulate the sap flow rate responses in three branches at 22, 16 and 9m accurately (R-2 of 0.94, 0.86 and 0.90, respectively). The appropriate model structure was the same for the three branches and was characterised by second-order dynamics. An important advantage of the dynamic modelling approach presented was that it enabled the decomposition of the total sap flow rate response into partial responses to short-wave radiation, air temperature and vapour pressure deficit, respectively. (c) 2007 IAgrE. Published by Elsevier Ltd.
引用
收藏
页码:446 / 454
页数:9
相关论文
共 36 条
[1]   A numerical model to predict crop yield ftom soil water deficit [J].
Adekalu, K. O. ;
Fapohunda, H. O. .
BIOSYSTEMS ENGINEERING, 2006, 94 (03) :359-372
[2]   Dynamic data-based modelling of heat production and growth of broiler chickens: Development of an integrated management system [J].
Aerts, JM ;
Wathes, CM ;
Berckmans, D .
BIOSYSTEMS ENGINEERING, 2003, 84 (03) :257-266
[3]  
Baldocchi DD, 1996, TREE PHYSIOL, V16, P5
[4]   Scaling the spatial distribution of photosynthesis from leaf to canopy in a plant growth chamber [J].
Boonen, C ;
Samson, R ;
Janssens, K ;
Pien, H ;
Lemeur, R ;
Berckmans, D .
ECOLOGICAL MODELLING, 2002, 156 (2-3) :201-212
[5]  
Boonen C, 2000, T ASAE, V43, P1755, DOI 10.13031/2013.3078
[6]  
DISTEFANO JJ, 1976, THEORY PROBLEMS FEED
[7]   Forest canopy hydraulic properties and catchment water balance: observations and modeling [J].
Engel, VC ;
Stieglitz, M ;
Williams, M ;
Griffin, KL .
ECOLOGICAL MODELLING, 2002, 154 (03) :263-288
[8]   The BAYSOFI Campaign -: Measurements carried out during the total solar eclipse of August 11, 1999 [J].
Fabian, P ;
Winterhalter, M ;
Rappenglück, B ;
Reitmayer, H ;
Stohl, A ;
Koepke, P ;
Schlager, H ;
Berresheim, H ;
Foken, T ;
Wichura, B ;
Häberle, KH ;
Matyssek, R ;
Kartschall, T .
METEOROLOGISCHE ZEITSCHRIFT, 2001, 10 (03) :165-170
[9]   A BIOCHEMICAL-MODEL OF PHOTOSYNTHETIC CO2 ASSIMILATION IN LEAVES OF C-3 SPECIES [J].
FARQUHAR, GD ;
CAEMMERER, SV ;
BERRY, JA .
PLANTA, 1980, 149 (01) :78-90
[10]   Fault detection and diagnosis in deep-trough hydroponics using intelligent computational tools [J].
Ferentinos, KP ;
Albright, LD .
BIOSYSTEMS ENGINEERING, 2003, 84 (01) :13-30