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对L.树干的洞察:通过电阻抗断层成像技术进行水力分析

Insights into trunks of L.: analyses of hydraulics via electrical resistivity tomography.

作者信息

Losso Adriano, Sailer Julia, Bär Andreas, Ganthaler Andrea, Mayr Stefan

机构信息

Department of Botany, University of Innsbruck, Sternwartestraße 15, 6020 Innsbruck, Austria.

Hawkesbury Institute for the Environment, Western Sydney University, Richmond, NSW 2753 Australia.

出版信息

Trees (Berl West). 2020;34(4):999-1008. doi: 10.1007/s00468-020-01976-x. Epub 2020 Apr 16.

Abstract

KEY MESSAGE

The lack of elevational changes in electrical resistivity in trunks indicated consistent growth and hydraulics across elevations. Though, electrical resistivity tomograms exhibited pronounced temperature-driven seasonal changes.

ABSTRACT

Alpine conifers growing at high elevation are exposed to low temperatures, which may limit xylogenesis and cause pronounced seasonal changes in tree hydraulics. Electrical resistivity (ER) tomography enables minimal invasive monitoring of stems in situ. We used this technique to analyze trunks along a 400 m elevational gradient up to the timberline and over seasons. Furthermore, ER data of earlywood across tree rings were compared with the respective specific hydraulic conductivity ( ), measured on extracted wood cores. ER tomograms revealed pronounced changes over the year and a strong correlation between average ER (ER) and air and xylem temperatures. Surprisingly, no elevational changes in ER, earlywood ER or were observed. ER data corresponded to variation in earlywood , which decreased from the youngest (ca. 4-5 cms MPa) to the oldest tree rings (0.63 ± 0.22 cms MPa). The lack of changes in ER data and earlywood along the study transect indicated consistent growth patterns and no major changes in structural and functional hydraulic traits across elevation. The constant decrease in earlywood with tree ring age throughout all elevations highlights the hydraulic relevance of the outermost tree rings in . Seasonal measurements demonstrated pronounced temperature effects on ER, and we thus recommend a detailed monitoring of trunk temperatures for ER tomography.

摘要

关键信息

树干电阻率缺乏海拔变化表明不同海拔间生长和水力特征一致。不过,电阻率断层扫描显示出明显的温度驱动的季节性变化。

摘要

生长在高海拔地区的高山针叶树面临低温环境,这可能会限制木质部形成并导致树木水力特征出现明显的季节性变化。电阻率(ER)断层扫描能够对茎干进行微创原位监测。我们使用该技术分析了沿着海拔梯度达400米直至树线并跨越多个季节的树干。此外,还将不同年轮早材的ER数据与从提取的木芯上测量得到的相应比水力导度( )进行了比较。ER断层扫描显示出一年中的明显变化以及平均ER(ER)与空气温度和木质部温度之间的强相关性。令人惊讶的是,未观察到ER、早材ER或 随海拔的变化。ER数据与早材 的变化相对应,其从最年轻的年轮(约4 - 5厘米/兆帕)到最老的年轮(0.63 ± 0.22厘米/兆帕)逐渐降低。研究样带上ER数据和早材 缺乏变化表明生长模式一致,且不同海拔间结构和功能水力特征无重大变化。所有海拔上早材 随年轮年龄持续降低突出了最外层年轮在 中的水力相关性。季节性测量表明温度对ER有明显影响,因此我们建议对用于ER断层扫描的树干温度进行详细监测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3407/7437670/d7a404755d70/468_2020_1976_Fig1_HTML.jpg

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