Combining Tree-Ring Width and Density to Separate the Effects of Climate Variation and Insect Defoliation

Author:

Kunz Marcel1ORCID,Esper Jan12ORCID,Kuhl Eileen1,Schneider Lea3ORCID,Büntgen Ulf2456,Hartl Claudia7ORCID

Affiliation:

1. Department of Geography, Johannes Gutenberg-University Mainz, 55099 Mainz, Germany

2. Global Change Research Institute (CzechGlobe), Czech Academy of Sciences, 60300 Brno, Czech Republic

3. Department of Geography, Justus-Liebig-University, 35390 Gießen, Germany

4. Department of Geography, University of Cambridge, Cambridge CB2 1BY, UK

5. Department of Geography, Faculty of Science, Masaryk University, 61137 Brno, Czech Republic

6. Swiss Federal Research Institute (WSL), 8903 Birmensdorf, Switzerland

7. Nature Rings—Environmental Research and Education, 55118 Mainz, Germany

Abstract

Though frequently used in dendroclimatology, European larch (Larix decidua Mill.) is regularly defoliated by mass outbreaks of the larch budmoth (Zeiraphera griseana Hb., LBM). The near-cyclic growth depressions are unrelated to but possibly coincide with cold summers, which challenges signal detection on interannual timescales. LBM defoliation events cause sharp maximum latewood density declines and irregular earlywood/latewood ratios in the outbreak year, followed by one or two anomalously narrow rings. Here, we present a process-based method integrating these diverse response patterns to identify and distinguish LBM-related signals from climate-induced deviations. Application to larch sites along elevational transects in the Swiss Alps reveals the algorithm to perform better than existing extreme event detection methods, though our approach enables additional differentiation between insect- and climate-induced signatures. The new process-based multi-parameter algorithm is a suitable tool to identify different causes of growth disturbances and will therefore help to improve both tree-ring-based climate and insect defoliation reconstructions.

Funder

ERC Advanced Grant Monostar

SustES

Gutenberg Research College, and the German Research Foundation

Publisher

MDPI AG

Subject

Forestry

Reference66 articles.

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