European Dendroecological Fieldweek (EDF) 2021 in Val Müstair, Switzerland: International education and research during the pandemic

Dendrochronologia - Tập 78 - Trang 126047 - 2023
Kerstin Treydte1, Elisabet Martínez-Sancho1, Isabel Dorado-Liñán2, Ryszard J. Kaczka3, Linda Feichtinger4, Anne Verstege1, Kelley R. Bassett5, Patrick Cassitti6, Roberta D'Andrea7, Olympia Facchinetti8, Costanza M. Fileccia8, Nazimul Islam9, Andreas Kessler10, Natalie Korolyova11, Nadine Kunz8, Mia Marušić12, Jiří Mašek3, Nikolaus Obojes13, Lara Oxley8, Viviane Rennhard14
1Swiss Federal Institute for Forest, Snow and Landscape Research WSL, Birmensdorf, Switzerland
2Dpto. de Sistemas y Recursos Naturales, Universidad Politécnica de Madrid, Spain
3Department of Physical Geography and Geoecology, Faculty of Science, Charles University, Prague, Czech Republic
4Biosfera Val Müstair, Tschierv, Müstair, Switzerland
5Department of Forest Ecology and Management, Swedish University of Agricultural Sciences, Umeå, Sweden
6Foundation pro Convent St. John, Müstair, Switzerland
7Laboratory of Physical and Environmental Geography, University of Limoges, France
8Oeschger Centre for Climate Change Research, University of Bern, Switzerland
9Institute of Earth Surface Dynamics (IDYST), University of Lausanne, Switzerland
10Rathausstrasse 28, 4051 Liestal, Switzerland
11Faculty of Forestry and Wood Sciences, Czech University of Life Sciences Prague, Czech Republic
12Croatian Forest Research Institute, Jastrebarsko, Croatia
13Eurac Research, Institute for Alpine Environment, Bolzano, Italy
14High School for Agriculture, Forestry, and Food Sciences, Bern, Switzerland

Tài liệu tham khảo

Amoroso, 2018, South American dendroecological fieldweek 2016: exploring dendrochronological research in Northern Patagonia, Tree Ring Res., 74, 120, 10.3959/1536-1098-74.1.120 Anfodillo, 2013, Axial conduit widening in woody species: a still neglected anatomical pattern, IAWA J., 34, 352, 10.1163/22941932-00000030 Baillie, 1973, A simple crossdating program for tree-ring research, Tree Ring Bull., 33, 7 Baltensweiler, 1993, Why the larch bud-moth cycle collapsed in the subalpine larch-cembran pine forests in the year 1990 for the first time since 1850, Oecologia, 94, 62, 10.1007/BF00317302 Bundi, 2018, 113 Bunn, 2008, A dendrochronology program library in R (dplR), Dendrochronologia, 26, 115, 10.1016/j.dendro.2008.01.002 Büntgen, 2020, Schweingruber’s cosmos of inspiration, Dendrochronologia, 60, 10.1016/j.dendro.2020.125680 Büntgen, 2009, Three centuries of insect outbreaks across the European Alps, N. Phytol., 182, 929, 10.1111/j.1469-8137.2009.02825.x Büntgen, 2020, Return of the moth: rethinking the effect of climate on insect outbreaks, Oecologia, 192, 543, 10.1007/s00442-019-04585-9 Buras, 2021, dendRolAB: analytical tools for tree-ring data, R. Package Version, 0, 2 Castagneri, 2020, Long-term impacts of defoliator outbreaks on larch xylem structure and tree-ring biomass, Front. Plant Sci., 11, 1, 10.3389/fpls.2020.01078 Cook, E.R., Holmes, R.L., 1986. User’s manual for computer program ARSTAN. In: Tree ring chronologies of western North America: California, eastern Oregon and northern Great Basin. Crivellaro, A., Schweingruber F.H. 2015. Stem anatomical features of Dicotyledons. Xylem, Phloem, Cortex and Periderm Characteristics for Ecological and Taxonomical Analyses. Kessel Verlag. Crivellaro, 2020, Fritz Hans Schweingruber (1936–2020), IAWA J., 41, 125 Eilmann, 2006, Growth reactions of Pinus sylvestris L. and Quercus pubescens Willd. to drought years at a xeric site in Valais, Switz. Dendrochronol., 23, 121, 10.1016/j.dendro.2005.10.002 Enquist, 1998, Allometric scaling of plant energetics and population density, Nature, 395, 163, 10.1038/25977 Esper, 2007, 1200 years of regular outbreaks in alpine insects, Proc. R. Soc. B Biol. Sci., 274, 671, 10.1098/rspb.2006.0191 Feichtinger, 2014, Growth adjustments of conifers to drought and to century-long irrigation, For. Ecol. Manag., 334, 96, 10.1016/j.foreco.2014.08.008 Feichtinger, 2017, Plasticity in gas-exchange physiology of mature Scots pine and European larch drive short- and long-term adjustments to changes in water availability, Plant Cell Environ., 40, 1972, 10.1111/pce.13008 Green, 1977, The weather during July 1976: Some dynamical considerations of the drought, Weather, 32, 120, 10.1002/j.1477-8696.1977.tb04532.x Grew, 1682 Guiterman, 2020, dfoliatR: An R package for detection and analysis of insect defoliation signals in tree rings, Dendrochronologia, 63, 10.1016/j.dendro.2020.125750 2021 Harris, 2020, Version 4 of the CRU TS monthly high-resolution gridded multivariate climate dataset, Sci. Data, 7, 1, 10.1038/s41597-020-0453-3 Hartl-Meier, 2017, Effects of host abundance on larch budmoth outbreaks in the European Alps, Agric. . Entomol., 19, 376, 10.1111/afe.12216 HISTALP, 2021. Monthly mean temperature and precipitation data for 1857 - 2015 from Marienberg/Montemaria meteorological station, Italy. Historical Instrumental Climatological Surface Time Series of the Greater Alpine Region. http://www.zamg.ac.at/histalp/. Hollstein, E., 1980. Mitteleuropäische Eichenchronologie. Trierer dendrochronologische Forschungen zur Archäologie und Kunstgeschichte. Trierer Grabungen u. Forsch. 11 (Mainz). Holmes, 1983, Computer-assisted quality control in tree-ring dating and measurement, Tree Ring Bull., 43, 69 Iyengar, 2016, Impact of climate change on larch budmoth cyclic outbreaks, Sci. Rep., 6, 1, 10.1038/srep27845 Kaczka, 2021, I-BIND: International Blue intensity network development working group, Dendrochronologia, 68, 10.1016/j.dendro.2021.125859 Kaczka, 2018, Different maximum latewood density and blue intensity measurements techniques reveal similar results, Dendrochronologia, 49, 94, 10.1016/j.dendro.2018.03.005 Larsson, L., 2013. CooRecorder and Cdendro Programs of the CooRecorder/Cdendro Package. Version 9.6. http://www.cybis.se/forfun/dendro/. Loader, 2019, Tree ring dating using oxygen isotopes: a master chronology for central England, J. Quat. Sci., 34, 475, 10.1002/jqs.3115 Malpighi, M., 1675. Anatome plantarum. Martyn, London, United Kingdom. Meinzer, 2011 Myers-Smith, 2020, Complexity revealed in the greening of the Arctic, Nat. Clim. Change, 10, 106, 10.1038/s41558-019-0688-1 Oberhuber, 2002, Dendroclimatological spring rainfall reconstruction for an inner Alpine dry valley, Theor. Appl. Climatol., 71, 97, 10.1007/s704-002-8210-8 Oberhuber, 1998, Climate-tree-growth relationships of Scots pine stands (Pinus sylvestris L.) exposed to soil dryness, Trees Struct. Funct., 13, 19 Obojes, 2018, Water stress limits transpiration and growth of European larch up to the lower subalpine belt in an inner-alpine dry valley, New Phytol., 220, 460, 10.1111/nph.15348 Olson, 2014, Universal hydraulics of the flowering plants: vessel diameter scales with stem length across angiosperm lineages, habits and climates, Ecol. Lett., 17, 988, 10.1111/ele.12302 Peters, 2020, Tree physiological monitoring of the 2018 larch budmoth outbreak: Preference for leaf recovery and carbon storage over stem wood formation in Larix decidua, Tree Physiol., 40, 1697, 10.1093/treephys/tpaa087 Reid, 2020, Delta blue intensity vs. Maximum density: a case study using Pinus uncinata in the Pyrenees, Dendrochronologia, 61, 10.1016/j.dendro.2020.125706 Rigling, 2002, Intra-annual tree-ring parameters indicating differences in drought stress of Pinus sylvestris forests within the Erico-Pinion in the Valais (Switzerland), Plant Ecol., 163, 105, 10.1023/A:1020355407821 Rixen, 2017, Non-equilibrium in alpine plant assemblages: shifts in Europe’s summit floras, 285 Rocha, 2020, Reconstructing summer precipitation with MXD data from Pinus sylvestris growing in the Stockholm Archipelago, Atmosphere, 11, 790, 10.3390/atmos11080790 Rydval, 2014, Blue Intensity for dendroclimatology: should we have the blues? Experiments from Scotland, Dendrochronologia, 32, 191, 10.1016/j.dendro.2014.04.003 Sánchez-Salguero, 2017, An intensive tree-ring experience. Connecting education and research during the 25th European Dendroecological Fieldweek (Asturias, Spain), Dendrochronologia, 42, 80, 10.1016/j.dendro.2016.12.005 Schneider, 2012, NIH Image to ImageJ: 25 years of image analysis, Nat. Methods, 9, 671, 10.1038/nmeth.2089 Schneider, 2017, A new archive of large volcanic events over the past millennium derived from reconstructed summer temperatures, Environ. Res. Lett., 12, 94005, 10.1088/1748-9326/aa7a1b Schweingruber, 1988 Schweingruber, F.H., 1996. Tree Rings and Environment. Dendroecology. Paul Haupt, Bern, Switzerland. Schweingruber, F.H. 1990. Anatomie europäischer Hölzer. Anatomy of European woods. Ein Atlas zur Bestimmung europäischer Baum-, Strauch- und Zwergstrauchhölzer. Anatomy of European woods. An atlas for the identification of European trees, shrubs and dwarf shrubs. Birmensdorf; Bern: Eidgenössische Forschungsanstalt für Wald, Schnee und Landschaft; Haupt. 806 pp. Seftigen, 2020, Using Blue Intensity from drought-sensitive Pinus sylvestris in Fennoscandia to improve reconstruction of past hydroclimate variability, Clim. Dyn., 55, 579, 10.1007/s00382-020-05287-2 Seifert, M., 2018. Zur Chronologie und Typologie der Wohnbauten Graubündens im Zeitraum von 1350 bis 1850 In: AS Archäologie Schweiz SAM/Schweizerische Arbeitsgemeinschaft für die Archäologie des Mittelalters und der Neuzeit/SBV Schweizerischer Burgenverein (Eds.) Die Schweiz von 1350 bis 1850 im Spiegel archäologischer Quellen. Basel, 115–128. Speer, 2017, Pinus roxburghii stand dynamics at a heavily impacted site in Nepal: research through an educational fieldweek, Dendrochonologia, 41, 2, 10.1016/j.dendro.2016.01.005 Speer, J.H., Brown, P.B., Krusic, P., Grissino-Mayer, H. 2006. Professional fieldweeks as an educational experience and a venue for explorative research: case study of the North American Dendroecological Fieldweek. J.H. Speer, J.H. (Ed.), 2006. Experiential Learning and Exploratory Research. The 13th Annual North American Dendroecological Fieldweek (NADEF). Indiana State University, Department of Geography, Geology, and Anthropology, Professional Paper Series 23, 3–14. Touchan, R., Meko, D.M., Ballesteros, J.A., Sánchez-Salguero, R., Camarero, J.J., Kerchouche, D., Muntan, E., Khabcheche, M., Blanco, J.A., Rodriguez-Morata, C., Garófano-Gómez, V., Martín, L.A., Alfaro-Sánchez, R., Garah, K., Hevia, A., Madrigal-González, J., Sánchez-Miranda, A., Shestakova, T.A., Tabakova, M., 2013. Dendrochronology course in Valsaín forest, Segovia Spain. Tree-Ring Bulletin 69, 93–100. Trotsiuk, 2021, Tree growth in Switzerland is increasingly constrained by rising evaporative demand, J. Ecol., 109, 2981, 10.1111/1365-2745.13712 Trouet, 2013, KNMI Climate Explorer A web-based research tool for high-resolution paleoclimatology, Tree Ring Res., 69, 3, 10.3959/1536-1098-69.1.3 Van der Maaten-Theunissen, 2015, PointRes: an R package to analyze pointer years and components of resilience, Dendrochronologia, 35, 34, 10.1016/j.dendro.2015.05.006 Von Arx, 2016, Quantitative wood anatomy – practical guidelines, Front. Plant Sci., 7, 781, 10.3389/fpls.2016.00781 Von Arx, 2020, In Memoriam Fritz Hans Schweingruber 1936–2020, Tree Ring Res., 76, 106, 10.3959/TRR2020-8 Weber, 2007, Radial growth responses to drought of Pinus sylvestris and Quercus pubescens in an inner-Alpine dry valley, J. Veg. Sci., 18, 777, 10.1111/j.1654-1103.2007.tb02594.x Wigley, 1984, On the average value of correlated time series, with applications in dendroclimatology and hydrometereology, J. Clim. Appl. Metereol., 23, 201, 10.1175/1520-0450(1984)023<0201:OTAVOC>2.0.CO;2 Zang, 2015, Treeclim: an R package for the numerical calibration of proxy-climate relationships, Ecography, 38, 431, 10.1111/ecog.01335 Schweingruber, 1990, Identification, presentation and interpretation of event years and pointer years in dendrochronology, Dendrochronologia, 8, 9