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Absolute, high resolution water transpiration rate measurements on single plant leaves via tunable diode laser absorption spectroscopy (TDLAS) at 1.37μm

机译:通过可调二极管激光吸收光谱(TDLAS)在1.37μm上测量单株植物叶片上的绝对高分辨率水蒸腾速率

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A new sampling-free and calibration-free multichannel hygrometer using near infrared (NIR) tunable diode laser absorption spectroscopy (TDLAS) at 1.37 μn was developed and used to determine absolute transpiration rates of single plant leafs. Four 8×6×4 cm~3, fiber-coupled absorption cells are used to simultaneously measure absolute water vapor concentrations with an absolute accuracy of about 5% and a temporal resolution of about 2 s. Two chambers (BOTTOM, TOP) are directly attached to the leaf surface, while two chambers (IN, OUT) analyze the purge gas supplied to the plant leaf and the total outflow of the leaf chambers. The BOTTOM-TOP comparison provided a direct, leaf-side resolved ratio of stomatal conductance and-by taking into account the purge gas flow and the leaf area exposed-leaf side resolved water transpiration rates. The OUT-IN-difference yielded the total leaf transpiration rate with 2 μmol/m~2/s resolution. The new multi-point hygrometer was validated by monitoring of the transpiration dynamics of a plant of the species Epipremnum pin-natum (L.) Engl. during diurnal variation of the leaf irradiation. During these experiments the differential H_2O concentration resolution between two chambers was determined to be better than 3 ppm at △t = 2 s (i.e. better than 711 ppbmHz~(1/2)). This performance was verified by an Allan analysis over a 30 min time period using CH_4 as a surrogate absorber and yielded an average optimum optical resolution of 4.9 x 10~(-6) for 83 s measurement time, i.e. a CH4 resolution of 892 ppb, which corresponds to the optical resolution needed for a water sensitivity of 454 ppb m Hz~(1/2).
机译:开发了一种新的免采样和免校准的多通道湿度计,该湿度计使用1.37μn的近红外(NIR)可调二极管激光吸收光谱(TDLAS)技术,用于确定单株叶片的绝对蒸腾速率。四个8×6×4 cm〜3的纤维耦合吸收池用于同时测量绝对水蒸气浓度,绝对精度约为5%,时间分辨率约为2 s。两个腔室(底部,顶部)直接连接到叶片表面,而两个腔室(IN,OUT)则分析提供给植物叶片的吹扫气体和叶片腔室的总流出量。 BOTTOM-TOP比较通过考虑吹扫气流和叶面积暴露叶侧分解水的蒸腾速率,提供了叶侧气孔导度的直接解析比。 OUT-IN差异产生了2μmol/ m〜2 / s分辨率的总叶片蒸腾速率。新型多点湿度计通过监测Epipinmnum pin-natum(L.)Engl种植物的蒸腾动力学进行了验证。在叶片辐射的日变化中。在这些实验中,确定两个室之间的H_2O浓度差异在△t = 2 s时优于3 ppm(即优于711 ppbmHz〜(1/2))。通过使用CH_4作为替代吸收剂在30分钟的时间内通过Allan分析验证了此性能,并在83 s的测量时间内获得了4.9 x 10〜(-6)的平均最佳光学分辨率,即892 ppb的CH4分辨率,它对应于454 ppb m Hz〜(1/2)的水敏性所需的光学分辨率。

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