Cross-validation of the high-capacity tensiometer and thermocouple psychrometer for continuous monitoring of xylem water potential in saplings

Author:

Dainese Roberta123,de CFL Lopes Bruna1ORCID,Tedeschi Giuseppe4ORCID,Lamarque Laurent J56,Delzon Sylvain5ORCID,Fourcaud Thierry2ORCID,Tarantino Alessandro1ORCID

Affiliation:

1. Department of Civil and Environmental Engineering, University of Strathclyde, Glasgow, UK

2. CIRAD, UMR AMAP, Montpellier, France

3. AMAP, Univ. Montpellier, CIRAD, CNRS, INRAE, IRD, Montpellier, France

4. Politecnico di Bari, Bari, Italy

5. Univ. Bordeaux, INRAE, UMR BIOGECO, Pessac, France

6. Département des Sciences de l’Environnement, UQTR, Trois-Rivières, Québec, Canada

Abstract

Abstract The pressure chamber, the most popular method used to measure xylem water potential, is a discontinuous and destructive technique and is therefore not suitable for automated monitoring. Continuous non-destructive monitoring could until very recently be achieved only by use of the thermocouple psychrometer (TP). Here we present the high-capacity tensiometer (HCT) as an alternative method for continuous non-destructive monitoring. This provided us with a unique chance to cross-validate the two instruments by installing them simultaneously on the same sapling stem. The HCT and the TP showed excellent agreement for xylem water potential less than –0.5 MPa. Response to day/night cycles and watering was remarkably in phase, indicating excellent response time of both instruments despite substantially different working principles. For xylem water potential greater than –0.5 MPa, the discrepancies sometimes observed between the HCT and TP were mainly attributed to the kaolin paste used to establish contact between the xylem and the HCT, which becomes hydraulically poorly conductive in this range of water potential once dried beyond its air-entry value and subsequently re-wetted. Notwithstanding this limitation, which can be overcome by selecting a clay paste with higher air-entry value, the HCT has been shown to represent a valid alternative to the TP.

Funder

European Commission

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Physiology

Reference30 articles.

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