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A Microscale Model for Combined CO2 Diffusion and Photosynthesis in Leaves

机译:微尺度模型联合CO2扩散和光合作用的叶

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摘要

Transport of CO2 in leaves was investigated by combining a 2-D, microscale CO2 transport model with photosynthesis kinetics in wheat (Triticum aestivum L.) leaves. The biophysical microscale model for gas exchange featured an accurate geometric representation of the actual 2-D leaf tissue microstructure and accounted for diffusive mass exchange of CO2. The resulting gas transport equations were coupled to the biochemical Farquhar-von Caemmerer-Berry model for photosynthesis. The combined model was evaluated using gas exchange and chlorophyll fluorescence measurements on wheat leaves. In general a good agreement between model predictions and measurements was obtained, but a discrepancy was observed for the mesophyll conductance at high CO2 levels and low irradiance levels. This may indicate that some physiological processes related to photosynthesis are not incorporated in the model. The model provided detailed insight into the mechanisms of gas exchange and the effects of changes in ambient CO2 concentration or photon flux density on stomatal and mesophyll conductance. It represents an important step forward to study CO2 diffusion coupled to photosynthesis at the leaf tissue level, taking into account the leaf's actual microstructure.
机译:通过将二维微尺度CO2传输模型与小麦(Triticum aestivum L.)叶片的光合作用动力学相结合,研究了CO2在叶片中的运输。用于气体交换的生物物理微观模型具有实际二维叶片组织微观结构的精确几何表示,并解释了CO2的扩散质量交换。将所得的气体传输方程式耦合至用于光合作用的生化Farquhar-von Caemmerer-Berry模型。使用小麦叶片上的气体交换和叶绿素荧光测量评估组合模型。通常,在模型预测和测量之间获得了很好的一致性,但是在高CO2水平和低辐照度水平下观察到了叶肉电导的差异。这可能表明与光合作用有关的某些生理过程未纳入模型。该模型提供了关于气体交换机制以及周围CO2浓度或光子通量密度变化对气孔和叶肉传导的影响的详细见解。考虑到叶片的实际微观结构,这是研究在叶片组织水平上与光合作用相关的CO2扩散的重要一步。

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