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首页> 外文期刊>Agricultural Water Management >Comparative monitoring of temporal and spatial changes in tree water status using the non-invasive leaf patch clamp pressure probe and the pressure bomb.
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Comparative monitoring of temporal and spatial changes in tree water status using the non-invasive leaf patch clamp pressure probe and the pressure bomb.

机译:使用非侵入性叶片钳压力探头和压力炸弹比较监测树木水状态的时空变化。

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Real-time monitoring of plant water status under field conditions remains difficult to quantify. Here we give evidence that the magnetic-based leaf patch clamp pressure (LPCP) probe is a non-invasive and online-measuring method that can elucidate short- and long-term temporal and spatial dynamics of leaf water status of trees with high precision in real time. Measurements were controlled remotely by telemetry and data transfer to the Internet. Concomitant measurements using the pressure chamber technique (frequently applied for leaf water status monitoring) showed that both techniques yield in principle the same results despite of the high sampling variability of the pressure chamber data. There was a very good correlation between the output pressure signals of the LPCP probe and the balancing pressure values (on average r2=0.90+or-0.05; n=8), i.e. the external pressure at which water appears at the cut end of a leaf under pressure chamber conditions. Simultaneously performed direct measurements of leaf cell turgor pressure using the well-established cell turgor pressure probe technique evidenced that both techniques measure relative changes in leaf turgor pressure. The output pressure signals of the LPCP probe and the balancing pressure values were inversely correlated to turgor pressure. Consistent with this, the balancing pressure values and the cell turgor pressure values could be fitted quite well by the same firm theoretical backing derived recently for the LPCP probe (Zimmermann et al., 2008). This finding suggests that use of the LPCP probe technique in agricultural water management can be built up on the knowledge accumulated on spot leaf or stem water potential measurements.
机译:在田间条件下对植物水状态的实时监控仍然难以量化。在这里,我们提供的证据表明,基于磁性的叶面膜片钳压(LPCP)探针是一种非侵入性的在线测量方法,可以高精度地阐明树木叶片水状态的短期和长期时空动态。即时的。通过遥测和数据传输到Internet远程控制测量。使用压力室技术(经常用于叶片水状态监测)的伴随测量结果表明,尽管压力室数据的采样可变性很高,但两种技术在原理上都产生相同的结果。 LPCP探头的输出压力信号与平衡压力值之间有很好的相关性(平均 r 2 = 0.90 + or-0.05; n = 8),即在压力室条件下,水出现在叶片切端处的外部压力。使用完善的细胞膨胀压力探针技术同时进行叶细胞膨胀压力的直接测量,证明这两种技术均可测量叶片膨胀压力的相对变化。 LPCP探头的输出压力信号和平衡压力值与膨胀压力成反比。与此相一致,平衡压力值和电池膨胀压力值可以通过最近为LPCP探头获得的相同的牢固理论支持而很好地拟合(Zimmermann等,2008)。这一发现表明,LPCP探针技术在农业用水管理中的使用可以建立在点叶或茎水势测量值积累的知识上。

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