Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Thomas Grünwald is active.

Publication


Featured researches published by Thomas Grünwald.


Nature | 2005

Europe-wide reduction in primary productivity caused by the heat and drought in 2003

Ph. Ciais; Markus Reichstein; Nicolas Viovy; A. Granier; Jérôme Ogée; Vincent Allard; Marc Aubinet; Nina Buchmann; Chr. Bernhofer; Arnaud Carrara; F. Chevallier; N. de Noblet; Andrew D. Friend; Pierre Friedlingstein; Thomas Grünwald; Bernard Heinesch; P. Keronen; Alexander Knohl; Gerhard Krinner; Denis Loustau; Giovanni Manca; Giorgio Matteucci; F. Miglietta; Jean-Marc Ourcival; D. Papale; Kim Pilegaard; Serge Rambal; Günther Seufert; Jean-François Soussana; M. J. Sanz

Future climate warming is expected to enhance plant growth in temperate ecosystems and to increase carbon sequestration. But although severe regional heatwaves may become more frequent in a changing climate, their impact on terrestrial carbon cycling is unclear. Here we report measurements of ecosystem carbon dioxide fluxes, remotely sensed radiation absorbed by plants, and country-level crop yields taken during the European heatwave in 2003. We use a terrestrial biosphere simulation model to assess continental-scale changes in primary productivity during 2003, and their consequences for the net carbon balance. We estimate a 30 per cent reduction in gross primary productivity over Europe, which resulted in a strong anomalous net source of carbon dioxide (0.5 Pg C yr-1) to the atmosphere and reversed the effect of four years of net ecosystem carbon sequestration. Our results suggest that productivity reduction in eastern and western Europe can be explained by rainfall deficit and extreme summer heat, respectively. We also find that ecosystem respiration decreased together with gross primary productivity, rather than accelerating with the temperature rise. Model results, corroborated by historical records of crop yields, suggest that such a reduction in Europes primary productivity is unprecedented during the last century. An increase in future drought events could turn temperate ecosystems into carbon sources, contributing to positive carbon-climate feedbacks already anticipated in the tropics and at high latitudes.


Advances in Ecological Research | 2000

Estimates of the annual net carbon and water exchange of forests: The EUROFLUX methodology

Marc Aubinet; Achim Grelle; Andreas Ibrom; Üllar Rannik; John Moncrieff; Thomas Foken; Andrew S. Kowalski; Philippe H. Martin; Paul Berbigier; Christian Bernhofer; Robert Clement; J.A. Elbers; André Granier; Thomas Grünwald; K. Morgenstern; Kim Pilegaard; Corinna Rebmann; W. Snijders; Riccardo Valentini; Timo Vesala

Publisher Summary The chapter has described the measurement system and the procedure followed for the computation of the fluxes and the procedure of flux summation, including data gap filling strategy, night flux corrections and error estimation. It begins with the introduction of estimates of the annual net carbon and water exchange of forests using the EUROFLUX methodology. The chapter then provides us with the theory and moves on to discuss the eddy covariance system and its sonic anemometer, temperature fluctuation measurements, infrared gas analyser, air transport system, and tower instrumentation. Additional measurements are also given in the chapter. Data acquisition and its computation and correction is discussed next in the chapter by giving its general procedure, half-hourly means (co-)variances and uncorrected fluxes, intercomparison of software, and correction for frequency response losses. The chapter has also discussed about quality control and four criteria are investigated here for the same. Spatial representativeness of measured fluxes and summation procedure are reviewed. The chapter then moves on to the discussion of data gap filling through interpolation and parameterization and neural networks. Corrections to night-time data and error estimation are also explored in the chapter. Finally, the chapter closes with conclusions.


Nature | 2000

Respiration as the main determinant of carbon balance in European forests

Riccardo Valentini; Giorgio Matteucci; A. J. Dolman; Ernst-Detlef Schulze; Corinna Rebmann; E.J. Moors; A. Granier; P. Gross; Niels Otto Jensen; Kim Pilegaard; Anders Lindroth; Achim Grelle; Christian Bernhofer; Thomas Grünwald; Marc Aubinet; R. Ceulemans; Andrew S. Kowalski; Timo Vesala; Üllar Rannik; Paul Berbigier; Denis Loustau; J. Guðmundsson; Halldor Thorgeirsson; Andreas Ibrom; K. Morgenstern; Robert Clement; John Moncrieff; Leonardo Montagnani; S. Minerbi; P. G. Jarvis

Carbon exchange between the terrestrial biosphere and the atmosphere is one of the key processes that need to be assessed in the context of the Kyoto Protocol. Several studies suggest that the terrestrial biosphere is gaining carbon, but these estimates are obtained primarily by indirect methods, and the factors that control terrestrial carbon exchange, its magnitude and primary locations, are under debate. Here we present data of net ecosystem carbon exchange, collected between 1996 and 1998 from 15 European forests, which confirm that many European forest ecosystems act as carbon sinks. The annual carbon balances range from an uptake of 6.6 tonnes of carbon per hectare per year to a release of nearly 1 t C ha -1 yr-1, with a large variability between forests. The data show a significant increase of carbon uptake with decreasing latitude, whereas the gross primary production seems to be largely independent of latitude. Our observations indicate that, in general, ecosystem respiration determines net ecosystem carbon exchange. Also, for an accurate assessment of the carbon balance in a particular forest ecosystem, remote sensing of the normalized difference vegetation index or estimates based on forest inventories may not be sufficient.


Tellus B | 2007

A decade of carbon, water and energy flux measurements of an old spruce forest at the Anchor Station Tharandt

Thomas Grünwald; Christian Bernhofer

At Tharandt/Germany eddy covariance (EC) measurements of carbon dioxide and heat fluxes are performed above an old spruce forest since 1996. The last ten years cover almost all meteorological extremes observed during the last 45 years: the coldest and warmest year with mean air temperature of 6.1°C (1996) and 9.6°C (2000) as well as the fourth wettest and the driest year with a precipitation of 1098 mm (2002) and 501 mm (2003), respectively. In general, the observed annual carbon net ecosystem exchange (NEE) indicates a high net sink from .395 g C m-2 a-1 (2003) to .698 g C m-2 a-1 (1999) with a coefficient of variation cv = 16.6%. The yearly evapotranspiration (ET) has a lower interannual variability (cv = 9.5%) between 389 mm (2003) and 537 mm (2000). The influence of flux correction and gap filling on the amount of annual NEE and ET is considerable. Using different methods of gap filling (non-linear regressions, mean diurnal courses) yields annual NEE totals that differ by up to 18%. Consistency analysis regarding energy balance closure, comparisons with independent soil respiration and biomass increment measurements indicate reliability of the fluxes. The average gap of the energy balance is 15% of the available energy based on regression slope with an intercept of 3 to 16 W m-2, but around zero for annual flux ratios. Between 47% and 63% of the net ecosystem productivity was fixed above ground according to up-scaled tree ring data and forest inventories, respectively. Chamber measurements of soil respiration yield up to 90% of nighttime EC based total ecosystem respiration. Thus, we conclude that the EC based flux represents an upper limit of the C sink at the site.


Agricultural and Forest Meteorology | 2002

Phase and amplitude of ecosystem carbon release and uptake potentials as derived from FLUXNET measurements

Eva Falge; John Tenhunen; Dennis D. Baldocchi; Marc Aubinet; Peter S. Bakwin; Paul Berbigier; Christian Bernhofer; Jean-Marc Bonnefond; George Burba; Robert Clement; Kenneth J. Davis; J.A. Elbers; Matthias Falk; Allen H. Goldstein; Achim Grelle; André Granier; Thomas Grünwald; J. Guðmundsson; David Y. Hollinger; Ivan A. Janssens; P. Keronen; Andrew S. Kowalski; Gabriel G. Katul; Beverly E. Law; Yadvinder Malhi; Tilden P. Meyers; Russell K. Monson; E.J. Moors; J. William Munger; Walter Oechel

As length and timing of the growing season are major factors explaining differences in carbon exchange of ecosystems, we analyzed seasonal patterns of net ecosystem carbon exchange (FNEE) using eddy covariance data of the FLUXNET data base (http://www-eosdis.ornl.gov/FLUXNET). The study included boreal and temperate, deciduous and coniferous forests, Mediterranean evergreen systems, rainforest, native and managed temperate grasslands, tundra, and C3 and C4 crops. Generalization of seasonal patterns are useful for identifying functional vegetation types for global dynamic vegetation models, as well as for global inversion studies, and can help improve phenological modules in SVAT or biogeochemical models. The results of this study have important validation potential for global carbon cycle modeling. The phasing of respiratory and assimilatory capacity differed within forest types: for temperate coniferous forests seasonal uptake and release capacities are in phase, for temperate deciduous and boreal coniferous forests, release was delayed compared to uptake. According to seasonal pattern of maximum nighttime release (evaluated over 15-day periods, Fmax) the study sites can be grouped in four classes: (1) boreal and high altitude conifers and grasslands; (2) temperate deciduous and temperate conifers; (3) tundra and crops; (4) evergreen Mediterranean and tropical forests. Similar results are found for maximum daytime uptake (Fmin) and the integral net carbon flux, but temperate deciduous forests fall into class 1. For forests, seasonal amplitudes of Fmax and Fmin increased in the order tropical C3-crops>temperate deciduous forests>temperate conifers>boreal conifers>tundra ecosystems. Due to data restrictions, our analysis centered mainly on Northern Hemisphere temperate and boreal forest ecosystems. Grasslands, crops, Mediterranean ecosystems, and rainforests are under-represented, as are savanna systems, wooded grassland, shrubland, or year-round measurements in tundra systems. For regional or global estimates of carbon sequestration potentials, future investigations of eddy covariance should expand in these systems.


Nature Climate Change | 2014

Land management and land-cover change have impacts of similar magnitude on surface temperature

Sebastiaan Luyssaert; Mathilde Jammet; Paul C. Stoy; Stephen Estel; Julia Pongratz; Eric Ceschia; Galina Churkina; Axel Don; Karl-Heinz Erb; Morgan Ferlicoq; Bert Gielen; Thomas Grünwald; R. A. Houghton; Katja Klumpp; Alexander Knohl; Thomas E. Kolb; Tobias Kuemmerle; Tuomas Laurila; Annalea Lohila; Denis Loustau; Matthew J. McGrath; Patrick Meyfroidt; E.J. Moors; Kim Naudts; Kim Novick; Juliane Otto; Kim Pilegaard; Casimiro Pio; Serge Rambal; Corinna Rebmann

The direct effects of land-cover change on surface climate are increasingly well understood, but fewer studies have investigated the consequences of the trend towards more intensive land management practices. Now, research investigating the biophysical effects of temperate land-management changes reveals a net warming effect of similar magnitude to that driven by changing land cover.


Global Biogeochemical Cycles | 2011

Redefinition and global estimation of basal ecosystem respiration rate

Wenping Yuan; Yiqi Luo; Xianglan Li; Shuguang Liu; Guirui Yu; Tao Zhou; Michael Bahn; Andy Black; Ankur R. Desai; Alessandro Cescatti; Barbara Marcolla; C.M.J. Jacobs; Jiquan Chen; Mika Aurela; Christian Bernhofer; Bert Gielen; Gil Bohrer; David R. Cook; Danilo Dragoni; Allison L. Dunn; Damiano Gianelle; Thomas Grünwald; Andreas Ibrom; Monique Y. Leclerc; Anders Lindroth; Heping Liu; Luca Belelli Marchesini; Leonardo Montagnani; Gabriel Pita; Mirco Rodeghiero

Basal ecosystem respiration rate (BR), the ecosystem respiration rate at a given temperature, is a common and important parameter in empirical models for quantifying ecosystem respiration (ER) globally. Numerous studies have indicated that BR varies in space. However, many empirical ER models still use a global constant BR largely due to the lack of a functional description for BR. In this study, we redefined BR to be ecosystem respiration rate at the mean annual temperature. To test the validity of this concept, we conducted a synthesis analysis using 276 site-years of eddy covariance data, from 79 research sites located at latitudes ranging from similar to 3 degrees S to similar to 70 degrees N. Results showed that mean annual ER rate closely matches ER rate at mean annual temperature. Incorporation of site-specific BR into global ER model substantially improved simulated ER compared to an invariant BR at all sites. These results confirm that ER at the mean annual temperature can be considered as BR in empirical models. A strong correlation was found between the mean annual ER and mean annual gross primary production (GPP). Consequently, GPP, which is typically more accurately modeled, can be used to estimate BR. A light use efficiency GPP model (i.e., EC-LUE) was applied to estimate global GPP, BR and ER with input data from MERRA (Modern Era Retrospective-Analysis for Research and Applications) and MODIS (Moderate resolution Imaging Spectroradiometer). The global ER was 103 Pg C yr (-1), with the highest respiration rate over tropical forests and the lowest value in dry and high-latitude areas.


Ecosystems | 2003

Analyzing the ecosystem carbon dynamics of four European coniferous forests using a biogeochemistry model

Galina Churkina; John Tenhunen; Peter E. Thornton; Eva Falge; J.A. Elbers; Markus Erhard; Thomas Grünwald; Andrew S. Kowalski; Üllar Rannik; Detlef F. Sprinz

AbstractThis paper provides the first steps toward a regional-scale analysis of carbon (C) budgets. We explore the ability of the ecosystem model BIOME-BGC to estimate the daily and annual C dynamics of four European coniferous forests and shifts in these dynamics in response to changing environmental conditions. We estimate uncertainties in the model results that arise from incomplete knowledge of site management history (for example, successional stage of forest). These uncertainties are especially relevant in regional-scale simulations, because this type of information is difficult to obtain. Although the model predicted daily C and water fluxes reasonably well at all sites, it seemed to have a better predictive capacity for the photosynthesis-related processes than for respiration. Leaf area index (LAI) was modeled accurately at two sites but overestimated at two others (as a result of poor long-term climate drivers and uncertainties in model parameterization). The overestimation of LAI (and consequently gross photosynthetic production (GPP)), in combination with reasonable estimates of the daily net ecosystem productivity (NEP) of those forests, also illustrates the problem with modeled respiration. The model results suggest that all four European forests have been net sinks of C at the rate of 100–300 gC/m2/y and that this C sequestration capacity would be 30%–70% lower without increasing nitrogen (N) deposition and carbon dioxide (CO2) concentrations. The magnitude of the forest responses was dependent not only on the rate of changes in environmental factors, but also on site-specific conditions such as climate and soil depth. We estimated that the modeled C exchange at the study sites was reduced by 50%–100% when model simulations were performed for climax forests rather than regrowing forests. The estimates of water fluxes were less sensitive to different initializations of state variables or environmental change scenarios than C fluxes.


Proceedings of the National Academy of Sciences of the United States of America | 2015

The uncertain climate footprint of wetlands under human pressure

A.M.R. Petrescu; Annalea Lohila; Juha-Pekka Tuovinen; Dennis D. Baldocchi; Ankur R. Desai; Nigel T. Roulet; Timo Vesala; A. J. Dolman; Walter C. Oechel; Barbara Marcolla; Thomas Friborg; Janne Rinne; Jaclyn Hatala Matthes; Lutz Merbold; Ana Meijide; Gerard Kiely; Matteo Sottocornola; Torsten Sachs; Donatella Zona; Andrej Varlagin; Derrick Y.F. Lai; Elmar M. Veenendaal; Frans-Jan Parmentier; U. Skiba; Magnus Lund; A. Hensen; Jacobus van Huissteden; Lawrence B. Flanagan; Narasinha J. Shurpali; Thomas Grünwald

Significance Wetlands are unique ecosystems because they are in general sinks for carbon dioxide and sources of methane. Their climate footprint therefore depends on the relative sign and magnitude of the land–atmosphere exchange of these two major greenhouse gases. This work presents a synthesis of simultaneous measurements of carbon dioxide and methane fluxes to assess the radiative forcing of natural wetlands converted to agricultural or forested land. The net climate impact of wetlands is strongly dependent on whether they are natural or managed. Here we show that the conversion of natural wetlands produces a significant increase of the atmospheric radiative forcing. The findings suggest that management plans for these complex ecosystems should carefully account for the potential biogeochemical effects on climate. Significant climate risks are associated with a positive carbon–temperature feedback in northern latitude carbon-rich ecosystems, making an accurate analysis of human impacts on the net greenhouse gas balance of wetlands a priority. Here, we provide a coherent assessment of the climate footprint of a network of wetland sites based on simultaneous and quasi-continuous ecosystem observations of CO2 and CH4 fluxes. Experimental areas are located both in natural and in managed wetlands and cover a wide range of climatic regions, ecosystem types, and management practices. Based on direct observations we predict that sustained CH4 emissions in natural ecosystems are in the long term (i.e., several centuries) typically offset by CO2 uptake, although with large spatiotemporal variability. Using a space-for-time analogy across ecological and climatic gradients, we represent the chronosequence from natural to managed conditions to quantify the “cost” of CH4 emissions for the benefit of net carbon sequestration. With a sustained pulse–response radiative forcing model, we found a significant increase in atmospheric forcing due to land management, in particular for wetland converted to cropland. Our results quantify the role of human activities on the climate footprint of northern wetlands and call for development of active mitigation strategies for managed wetlands and new guidelines of the Intergovernmental Panel on Climate Change (IPCC) accounting for both sustained CH4 emissions and cumulative CO2 exchange.


New Phytologist | 2014

Above-ground woody carbon sequestration measured from tree rings is coherent with net ecosystem productivity at five eddy-covariance sites

Flurin Babst; Olivier Bouriaud; Dario Papale; Bert Gielen; Ivan A. Janssens; Eero Nikinmaa; Andreas Ibrom; Jian Wu; Christian Bernhofer; Barbara Köstner; Thomas Grünwald; Günther Seufert; Philippe Ciais; David Frank

• Attempts to combine biometric and eddy-covariance (EC) quantifications of carbon allocation to different storage pools in forests have been inconsistent and variably successful in the past. • We assessed above-ground biomass changes at five long-term EC forest stations based on tree-ring width and wood density measurements, together with multiple allometric models. Measurements were validated with site-specific biomass estimates and compared with the sum of monthly CO₂ fluxes between 1997 and 2009. • Biometric measurements and seasonal net ecosystem productivity (NEP) proved largely compatible and suggested that carbon sequestered between January and July is mainly used for volume increase, whereas that taken up between August and September supports a combination of cell wall thickening and storage. The inter-annual variability in above-ground woody carbon uptake was significantly linked with wood production at the sites, ranging between 110 and 370 g C m(-2) yr(-1) , thereby accounting for 10-25% of gross primary productivity (GPP), 15-32% of terrestrial ecosystem respiration (TER) and 25-80% of NEP. • The observed seasonal partitioning of carbon used to support different wood formation processes refines our knowledge on the dynamics and magnitude of carbon allocation in forests across the major European climatic zones. It may thus contribute, for example, to improved vegetation model parameterization and provides an enhanced framework to link tree-ring parameters with EC measurements.

Collaboration


Dive into the Thomas Grünwald's collaboration.

Top Co-Authors

Avatar

Christian Bernhofer

Dresden University of Technology

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

E.J. Moors

Wageningen University and Research Centre

View shared research outputs
Top Co-Authors

Avatar

Leonardo Montagnani

Free University of Bozen-Bolzano

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Kim Pilegaard

Technical University of Denmark

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Corinna Rebmann

Helmholtz Centre for Environmental Research - UFZ

View shared research outputs
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge