Remote Sensing‐Based Forest Modeling Reveals Positive Effects of Functional Diversity on Productivity at Local Spatial Scale

Author:

Schneider Fabian D.12ORCID,Longo Marcos13ORCID,Paul‐Limoges Eugénie2,Scholl Victoria M.245ORCID,Schmid Bernhard2ORCID,Morsdorf Felix2,Pavlick Ryan P.1,Schimel David S.1,Schaepman Michael E.2ORCID,Moorcroft Paul R.6ORCID

Affiliation:

1. Jet Propulsion Laboratory California Institute of Technology Pasadena CA USA

2. Remote Sensing Laboratories Department of Geography University of Zurich Zurich Switzerland

3. Climate and Ecosystem Sciences Division Lawrence Berkeley National Laboratory CA Berkeley USA

4. Earth Lab Cooperative Institute for Research in Environmental Sciences University of Colorado Boulder Boulder CO USA

5. Department of Geography University of Colorado Boulder Boulder CO USA

6. Department of Organismic and Evolutionary Biology Harvard University Cambridge MA USA

Abstract

AbstractForest biodiversity is critical for many ecosystem functions and services. Yet, it remains uncertain how plant functional diversity influences ecosystem functioning across environmental gradients and contiguous larger areas. We integrated remote sensing and terrestrial biosphere modeling to explore functional diversity–productivity relationships at multiple spatial scales for a heterogeneous forest ecosystem in Switzerland. We initialized forest structure and composition in the ecosystem demography model (ED2) through a combination of ground‐based surveys, airborne laser scanning and imaging spectroscopy for forest patches at 10 × 10‐m spatial grain. We derived morphological and physiological forest traits and productivity from model simulations at patch‐level to relate morphological and physiological aspects of functional diversity to the average productivity from 2006 to 2015 at 20 × 20 to 100 × 100‐m spatial extent. We did this for model simulations under observed and experimental conditions (mono‐soils, mono‐cultures and mono‐structures). Functional diversity increased productivity significantly (p < 0.001) across all simulations at 20 × 20 to 30 × 30 m scale, but at 100 × 100‐m scale positive relationships disappeared under homogeneous soil conditions potentially due to the low beta diversity of this forest and the saturation of functional richness represented in the model. Although local functional diversity was an important driver of productivity, environmental context underpinned the variation of productivity (and functional diversity) at larger spatial scales. In this study, we could show that the integration of remotely sensed information on forest composition and structure into terrestrial biosphere models is important to fill knowledge gaps about how plant biodiversity affects carbon cycling and biosphere feedbacks onto climate over large contiguous areas.

Funder

National Aeronautics and Space Administration

Universität Zürich

Publisher

American Geophysical Union (AGU)

Subject

Paleontology,Atmospheric Science,Soil Science,Water Science and Technology,Ecology,Aquatic Science,Forestry

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