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Night-time transpiration, predawn hydraulic conductance and water potential disequilibrium in hybrid aspen coppice

机译:Hybrid Aspen Coppice中的夜间蒸腾,预先预先液压导电和水潜在不平衡

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Key message Predawn water potential disequilibrium in hybrid aspen coppice growing in humid environment was mostly determined by hydraulic conductance and the ratio of nocturnal to daily water loss was relatively small. Water relations are of crucial importance for biomass accumulation in trees and forest productivity, yet the significance of nocturnal water use is still debated. We investigated which environmental factors influence nocturnal transpiration, development of the equilibrium between soil and plant water potentials and plant hydraulic conductance in hybrid aspen (Populus tremula L. x P. tremuloides Michx.) coppice. Predawn leaf water potential and sap flow were measured simultaneously with relevant environmental factors on 2-year-old coppice shoots during the growing season of 2015. Nocturnal water loss constituted on average 4-5% of daily total transpiration and almost (2)/(3) of nocturnal sap flow. The nocturnal water loss was mainly driven by atmospheric evaporative demand, while maximum sap flux densities could extend 35% of the daytime values on dry nights. Predawn leaf water potential was constantly more negative than soil water potential, resulting in predawn disequlibrium between leaf and soil water potentials (PDD). Total soil-to-leaf hydraulic conductance was the primary factor explaining the variation in PDD. Our results suggest that in humid conditions plant hydraulic capacity is more substantial determining plant predawn water status than stomatal behaviour with respect to current environmental drivers.
机译:关键消息预测水在潮湿环境中生长的杂种白杨蛋白酶的潜在不平衡主要由液压传导和日常水损失的比例相对较小。水关系对于树木和森林生产力的生物量积累至关重要,但夜间用水的重要性仍在讨论。我们调查了哪些环境因素影响夜间蒸腾,在杂交Aspen(Populus Trushula L. Tremuloides Michx)中的土壤和植物水势和植物水力传导之间的均衡的发展。在2015年生长季节期间,在2岁的Coppice芽上同时测量预先测量的叶水潜力和SAP流量。夜间水分损失平均每日总蒸腾的4-5%,差不多(2)/( 3)夜间SAP流。夜间水分损失主要由大气蒸发需求驱动,而最大的SAP助焊剂密度可以在干燥的夜晚延长35%的白天值。预先叶片水潜力比土壤水势持续不成本,导致叶片和土壤水电位(PDD)之间的预先探测脱模。总土壤 - 叶液压导流是解释PDD变异的主要因素。我们的研究结果表明,在潮湿的条件下,植物液压容量比关于当前环境司机的气孔行为更具实质性的确定植物预测水位。

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