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首页> 外文期刊>Global change biology >MuSICA, a CO sub(2), water and energy multilayer, multileaf pineforest model: evaluation from hourly to yearly time scales andsensitivity analysis
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MuSICA, a CO sub(2), water and energy multilayer, multileaf pineforest model: evaluation from hourly to yearly time scales andsensitivity analysis

机译:MuSICA,CO sub(2),水和能源的多层结构,多叶松林模型:每小时到每年的时间尺度评估和敏感性分析

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The current emphasis on global climate studies has led the scientific community to set up a number of sites for measuring long-term biospheric fluxes, and to develop a wide range of biosphere-atmosphere exchange models. This paper presents a new model of this type, which has been developed for a pine forest canopy. In most coniferous species the canopy layer is well separated from the understorey and several cohorts of needles coexist. It was therefore found necessary to distinguish several vegetation layers and, in each layer, several leaf classes defined not only by their light regime and wetness status but also by their age. This model, named MuSICA, is a multilayer, multileaf process-based model. Each submodel is first independently parameterized using data collected at a EUROFLUX site near Bordeaux (Southwestern France). Particular care is brought to identify the seasonal variations in the various physiological parameters. The full model is then evaluated using a two-year long data set, split up into 12 day-type classes defined by the season, the weather type and the soil water status. Beyond the good overall agreement obtained between measured and modelled values at various time scales, several points of further improvement are identified. They concern the seasonal variations in the stomatal response of needles and the soil/litter respiration, as well as their interaction with soil or litter moisture. A sensitivity analysis to some of the model features (in-canopy turbulent transfer scheme, leaf age classes, water retention, distinction between shaded and sunlit leaves, number of layers) is finally performed in order to evaluate whether significant simplifications can be brought to such a model with little loss in its predictive quality. The distinction between several leaf classes is crucial if one is to compute biospheric fluxes accurately. It is also evidenced that accounting for in-canopy turbulent transfer leads to better estimates of the sensible heat flux.
机译:当前对全球气候研究的重视导致科学界建立了许多测量长期生物圈通量的场所,并开发了广泛的生物圈-大气交换模型。本文介绍了这种类型的新模型,该模型已经开发用于松树林冠层。在大多数针叶树种中,树冠层与下层很好地分开,并且有几组针并存。因此,发现有必要区分几个植被层,并且在每一层中,不仅要根据其光照状态和湿度状态,还要根据其年龄来定义几个叶片类别。该模型名为MuSICA,是一个基于多层,多叶过程的模型。首先使用在波尔多(法国西南部)附近的EUROFLUX站点收集的数据对每个子模型进行独立参数化。特别注意确定各种生理参数的季节性变化。然后,使用一个为期两年的数据集对完整模型进行评估,该数据集分为12个日类型类,分别由季节,天气类型和土壤水状况定义。除了在各种时间范围内获得的测量值和建模值之间的良好总体一致性之外,还确定了进一步改进的几个方面。他们关注针的气孔响应的季节性变化和土壤/枯枝落叶的呼吸,以及它们与土壤或垫料水分的相互作用。最后对某些模型特征(机盖内湍流传递方案,叶龄,保水量,阴暗和阳光照射的叶片的区别,层数)进行敏感性分析,以评估是否可以对这种特征进行显着简化一个模型,其预测质量几乎没有损失。如果要精确计算生物圈通量,则几种叶片类别之间的区别至关重要。也有证据表明,考虑冠层内部的湍流传递可以更好地估计显热通量。

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