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An automated system for trace gas flux measurements from plant foliage and other plant compartments

机译:用于植物叶子和其他植物舱的痕量气体通量测量的自动化系统

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Plant shoots can act as sources or sinks of trace gases including methane and nitrous oxide. Accurate measurements of these trace gas fluxes require enclosing of shoots in closed non-steady-state chambers. Due to plant physiological activity, this type of enclosure, however, leads to CO 2 depletion in the enclosed air volume, condensation of transpired water, and warming of the enclosures exposed to sunlight, all of which may bias the flux measurements. Here, we present ShoTGa-FluMS (SHOot Trace Gas FLUx Measurement System), a novel measurement system designed for continuous and automated measurements of trace gas and volatile organic compound (VOC) fluxes from plant shoots. The system uses transparent shoot enclosures equipped with Peltier cooling elements and automatically replaces fixated CO 2 and removes transpired water from the enclosure. The system is designed for measuring trace gas fluxes over extended periods, capturing diurnal and seasonal variations, and linking trace gas exchange to plant physiological functioning and environmental drivers. Initial measurements show daytime CH 4 emissions of two pine shoots of 0.056 and 0.089? nmol per gram of foliage dry weight (d.w.) per hour or 7.80 and 13.1? nmol m - 2 h - 1 . Simultaneously measured CO 2 uptake rates were 9.2 and 7.6? mmol m - 2 h - 1 , and transpiration rates were 1.24 and 0.90? mol m - 2 h - 1 . Concurrent measurement of VOC emissions demonstrated that potential effects of spectral interferences on CH 4 flux measurements were at least 10-fold smaller than the measured CH 4 fluxes. Overall, this new system solves multiple technical problems that have so far prevented automated plant shoot trace gas flux measurements and holds the potential for providing important new insights into the role of plant foliage in the global CH 4 and N 2 O cycles.
机译:植物芽可以充当痕量气体的源或散布,包括甲烷和氧化亚氮。这些痕量气体通量的精确测量要求在闭合的非稳态室中封闭芽。由于植物生理活性,这种类型的外壳导致封闭式空气量的CO 2耗尽,转发水的冷凝,以及暴露于阳光的外壳的升温,所有这些都可以偏置磁通测量。在这里,我们呈现霰弹花(拍摄痕量气体磁通测量系统),这是一种新的测量系统,用于从植物芽中连续和自动测量的痕量气体和挥发性有机化合物(VOC)通量。该系统使用配备有珀耳帖冷却元件的透明射击机箱,并自动取代固定的CO 2,并从外壳中移除转送水。该系统设计用于在延长的时间内测量痕量气体通量,捕获昼夜和季节性变化,并将痕量气体交换连接到植物生理功能和环境司机。初始测量显示白天CH 4排放两个松树芽为0.056和0.089?每小时每克叶片每小时或7.80和13.1? Nmol M - 2 H - 1。同时测量的CO 2摄取率为9.2和7.6? Mmol M - 2 H-1和蒸腾率为1.24和0.90? mol m - 2 h - 1。 VOC排放的并发测量证明,光谱干扰对CH 4磁通测量的潜在影响比测量的CH 4助熔剂小至少10倍。总的来说,这一新系统解决了多种技术问题,以至于迄今为止防止自动化植物拍摄痕量气体通量测量,并具有在全球CH 4和N 2 O循环中植物叶子的作用提供重要新见解的可能性。

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