首页> 外文期刊>European Journal of Agronomy >MecaNiCAL, a supply-demand model of carbon and nitrogen partitioning applied to defoliated grass. 1. Model description and analysis
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MecaNiCAL, a supply-demand model of carbon and nitrogen partitioning applied to defoliated grass. 1. Model description and analysis

机译:MechaNiCAL,碳和氮分配的供需模型,用于脱叶草。 1.模型描述与分析

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摘要

A model for the dynamic simulation of dry matter distribution between shoots and roots of a grass forage plant is presented. The objective of the work was to develop a relatively simple mechanistic model of grass growth to simulate the response of assimilate partitioning to variations in light and nitrogen supply based on an original theoretical scheme. In the model, called MecaNiCAL, C and N assimilates are partitioned between shoots and roots according to the availability of carbohydrate substrate, organ demands and a fixed priority between each demand. Demand related to organ synthesis is described as a function of the plant concentration in the organic nitrogen substrate and temperature. To stay within an acceptable range of complexity, the model is applied only in one vegetative regrowth performed on a hydroponic system with different light and nitrogen nutrition. Carbon and nitrogen acquisition per day are computed by independent submodels, which makes it possible to connect simple and robust functions of carbon assimilation and nitrogen uptake to the partitioning model. Carbon assimilation is simulated for a plant in a canopy, and nitrogen uptake is simulated by a function which depends on nitrogen plant requirements directly related to plant net photosynthesis and the amount of nitrogen available in the nutritive solution. All the assumptions used to describe assimilate partitioning are discussed in relation to knowledge of physiological processes in order to examine closely the limitsof the model.
机译:提出了一种动态模拟草料植物的茎和根之间干物质分配的模型。这项工作的目的是建立一个相对简单的草生长机理模型,以基于原始理论方案模拟同化物分配对光和氮供应变化的响应。在称为MecaNiCAL的模型中,C和N同化物根据碳水化合物底物的可用性,器官需求和每个需求之间的固定优先级在芽和根之间分配。与器官合成有关的需求被描述为有机氮底物中植物浓度和温度的函数。为了保持在可接受的复杂度范围内,仅将模型应用于在具有不同光和氮营养的水耕系统上进行的一次营养再生。每天的碳和氮获取量由独立的子模型计算,这使将碳同化和氮吸收的简单而强大的功能与分区模型联系起来成为可能。对冠层植物的碳同化进行了模拟,并且通过一个函数模拟了氮的吸收,该函数取决于与植物净光合作用直接相关的氮素需求以及营养液中可用的氮量。为了详细研究模型的局限性,讨论了用于描述同化分区的所有假设,并结合了生理过程的知识。

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