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Modeling carbon fluxes, net primary production and light utilization in boreal forest stands.

机译:对北方森林林中的碳通量,净初级生产和光利用进行建模。

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The use of satellite remote sensing for modeling net primary production (NPP) was evaluated in sixty boreal forest stands spanning a range of site conditions. The work included: (i) estimating annual phenological dynamics and photosynthetically active radiation (PAR) interception with remotely sensed spectral measurements, (ii) linking annually absorbed PAR (APAR) to measured NPP and quantifying variability in light use efficiency({dollar}varepsilonsb{lcub}n{rcub}{dollar}), (iii) evaluating sources of variability in {dollar}varepsilonsb{lcub}n{rcub}{dollar} via mechanistic modeling of ecophysiology and associated carbon fluxes, particularly through analyses of respiratory carbon costs in relation to assimilation gains (the R:A ratio), (iv) assessing generalization of the results through an investigation of the evidence for evolutionary convergence in {dollar}varepsilonsb{lcub}n{rcub}{dollar}, the R:A ratio and assimilation per unit APAR ({dollar}varepsilonsb{lcub}g{rcub}{dollar}).; The analyses showed that observed variability in {dollar}varepsilonsb{lcub}n{rcub}{dollar} reflects a decoupling of PAR harvesting and utilization, primarily as a result of differences in the R:A ratio. Links between {dollar}varepsilonsb{lcub}n{rcub}{dollar} the R:A ratio and standing above-ground biomass were related to differences the carbon (energy) costs associated with synthesis and maintenance of plant constituents, and longevity (i.e. the payback period on investment in carbon gain). Estimating the R:A ratio from above-ground biomass, in order to compensate for variability in {dollar}varepsilonsb{lcub}n{rcub}{dollar}, was found to be problematic owing primarily to covariation of R and A with the amount of respiring biomass (i.e. sapwood and foliage). The analyses also showed that the differences in carbon costs between functional types (plants with related life history traits) resulted in convergence on {dollar}varepsilonsb{lcub}g{rcub}{dollar} rather than {dollar}varepsilonsb{lcub}n{rcub}{dollar}. Variability in {dollar}varepsilonsb{lcub}g{rcub}{dollar} was, however, introduced by stomatal control at some stressed sites. These findings were supported by the remote sensing and simulation modeling results, and the synthesis of work related to evolutionary ecology.; The primary conclusions are that variability in light utilization in these boreal forest stands was determined largely by respiratory carbon costs, and that NPF models based on light harvesting require augmentation with terms that reflect PAR utilization. Possible methods to address these issues, and their implications for NPP modeling over large areas, are discussed.
机译:在六十个不同地点条件下的北方森林林分中,评估了利用卫星遥感模拟净初级生产(NPP)的情况。这项工作包括:(i)用遥感光谱测量法估算年度物候动态和光合有效辐射(PAR)的拦截,(ii)将年吸收的PAR(APAR)与测得的NPP联系起来,并量化光利用效率的变化({dollar} varepsilonsb {lcub} n {rcub} {dollar}),(iii)通过生态生理学和相关碳通量的机械建模,尤其是通过分析呼吸碳来评估{dolus} varepsilonsb {lcub} n {rcub} {dollar}中的变异性来源与同化增益相关的成本(R:A比率),(iv)通过调查{dol} varepsilonsb {lcub} n {rcub} {dollar}中进化收敛的证据来评估结果的一般性,R:每单位APAR的比率和同化率({dollar} varepsilonsb {lcub} g {rcub} {dollar})。分析表明,观察到的{varepsilonsons {{lcub} n {rcub}} {dollar}的变异性主要是由于R:A比率不同而导致的PAR收获和利用之间的脱钩。 {$} varepsilonsb {lcub} n {rcub} {dollar}之间的联系:R:A比率与站立的地面生物量与植物成分的合成和维持相关的碳(能量)成本和寿命(即投资于碳收益的投资回收期)。为了补偿{dollar} varepsilonsb {lcub} n {rcub} {dollar}中的变异性,从地上生物量估算R:A比被发现是有问题的,这主要是由于R和A与量的协变呼吸生物量(边材和树叶)。分析还表明,功能类型(具有相关生活史特征的植物)之间的碳成本差异导致{dollar} varepsilonsb {lcub} g {rcub} {dollar}而非{dollar} varepsilonsb {lcub} n { rcub} {dollar}。然而,在某些压力部位,气孔控制引入了{dol} varepsilonsb {lcub} g {rcub} {dollar}的变异性。这些发现得到了遥感和模拟建模结果以及与进化生态学有关的工作的综合支持。主要结论是,这些北方森林林分中光利用的变化主要由呼吸碳成本决定,并且基于光收集的NPF模型需要增加能反映PAR利用的术语。讨论了解决这些问题的可能方法,以及它们对大面积NPP建模的影响。

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