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Water Uptake by Plant Roots: II – Modelling of Water Transfer in the Soil Root-system with Explicit Account of Flow within the Root System – Comparison with Experiments

机译:植物根系的吸水量:II –根系系统内水流的显式计算的土壤根系中水的传递模型–与实验比较

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Soil water uptake by plant roots results from the complex interplay between plant and soil which modulates and determines transport processes at a range of spatial and temporal scales: at small scales, uptake rates are determined by local soil and root hydraulic properties but, at the plant scale, local processes interact within the root system and are integrated through the hydraulic architecture of the root system and plant transpiration. However, because of the inherent complexity of the root system (both structural and functional), plant roots are commonly account for with synthetic but over-simplifying descriptors, valid at a given spatial scale. In this article, we present a model describing both soil and plant processes involved in water uptake at the scale of the whole root system with explicit account of individual roots. This is achieved through the unifying concepts of root system architecture and hydraulic continuity between the soil and plant. The model is based on a combination of architectural, root system hydraulic and soil water transfer modelling. The model can reproduce qualitatively and quantitatively laboratory experimental data obtained from imaging of water uptake by light transmission (cf. Garrigues et al., Water uptake by plant roots: I-Formation and propagation of a water extraction front in mature root systems as evidenced by 2D light transmission imaging. Plant and soil (2006, this issue) or X-ray imaging for two soil types (a sand/clay mix and a sandy clay loam) and different narrow-leaf lupin root systems (taprooted and fibrous), using independently measured soil–plant parameters. Results of the experiments and modelling reported in this paper concur to show that a water extraction front formed on the root system. This uptake front’s spatial extension and propagation were closely related to the local dependence between root and soil hydraulic properties and root axial conductance. Hence, a sharp front formed in the sand/clay mix but was much more attenuated in the sandy loam. Comparison between taprooted and fibrous root systems grown in a sand/clay mix, show that the taprooted architecture induced a more spatially concentrated uptake zone (near the soil surface) with higher flux rates, but with xylem water potential at the base of the root system twice as low than in the fibrous architecture. Modelling provided evidence that hydraulic lift might have occurred when transpiration declined, particularly in soil prone to abrupt variations in soil water potential (sand/clay mix). Finally, such a model, explicitly coupling root system-soil water transfers, can be useful to study water uptake in relation with root architectural traits, distribution of root hydraulic conductance or influence of heterogeneous conditions (localised irrigation, root clumping).
机译:植物根系对土壤水分的吸收源于植物与土壤之间复杂的相互作用,这种相互作用调节和决定了一系列时空尺度上的运输过程:在小范围内,吸收率取决于当地土壤和根系的水力特性,但在植物上在规模上,局部过程在根系内相互作用,并通过根系的水力结构和植物蒸腾作用进行整合。但是,由于根系固有的复杂性(结构性和功能性),植物根通常用合成的但过于简化的描述符来解释,这些描述符在给定的空间尺度上有效。在本文中,我们提出了一个模型,该模型描述了与水吸收有关的土壤和植物过程,涉及整个根系的规模,并明确说明了单个根。这是通过根系体系结构和土壤与植物之间水力连续性的统一概念来实现的。该模型基于建筑模型,根系系统水力学模型和土壤水分传递模型的组合。该模型可以定性和定量地再现通过光透过水获取的成像获得的实验室实验数据(参见Garrigues等人,《植物根系的水吸收:I》,成熟根系中水提取前沿的形成和传播,如二维光透射成像:使用两种土壤类型(沙/粘土混合物和沙质壤土)和不同的窄叶羽扇豆根系(塔状和纤维状)对植物和土壤(2006年,本期)或X射线成像独立测量的土壤-植物参数本文的实验结果和模型结果表明,根系上形成了水提取前沿,该吸收前沿的空间扩展和传播与根与土壤水力的局部依赖性密切相关。性质和根部轴向电导率,因此,在砂/粘土混合物中形成了锋利的锋面,但在沙壤土中却减弱了很多。在沙子/粘土混合物中生长的根系表明,主根构架诱导了空间上更集中的吸收区(靠近土壤表面),具有较高的通量速率,但根系底部的木质部水势比在根系中低两倍。纤维结构。该模型提供了证据,证明蒸腾作用降低时可能发生了水力提升,特别是在土壤中容易发生土壤水势突然变化(沙/粘土混合物)的土壤中。最后,明确耦合根系-土壤水分转移的这种模型对于研究与根系建筑特征,根系水力传导率的分布或非均质条件(局部灌溉,根系结块)的影响有关的吸水率可能是有用的。

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