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Soil charcoal stability over the Holocene across boreal northeastern North America

Published online by Cambridge University Press:  20 January 2017

Guillaume de Lafontaine*
Affiliation:
NSERC Northern Research Chair, Centre d'études nordiques, Département de Biologie, Université Laval, 1045 av. de la Médecine, Québec (QC), Canada G1V 0A6 INRA, UMR BIOGECO 1202, 69 Route d'Arcachon, 33610, Cestas, France
Hugo Asselin
Affiliation:
NSERC/UQAT/UQAM Industrial Chair in Sustainable Forest Management, Université du Québec en Abitibi-Témiscamingue, 445, boulevard de l'Université, Rouyn-Noranda, Québec, Canada J9X 5E4
*
Corresponding author at: INRA, UMR BIOGECO 1202, 69 Route d'Arcachon, 33610, Cestas, France. Fax: + 33 5 57 12 28 81. E-mail addresses:[email protected] (G. de Lafontaine), [email protected] (H. Asselin).

Abstract

The analysis of macroscopic wood charcoal fragments extracted from soils is frequently used as a palaeoecological tool for reconstructing stand-scale forest composition and fire history. Here we explored the putative loss of palaeoecological information due to charcoal degradation through time and in different biogeographical settings. We compared the relationship between charcoal mass and abundance for soil samples from five biogeographical regions of boreal northeastern North America spanning most of the Holocene period. We verified whether charcoal (Ø ≥ 2 mm) conservation differed as a consequence of different taphonomical processes between organic and mineral soil types. We also assessed the mass/abundance relationship as a function of charcoal residence time in soil. Overall, the slope of the regression between charcoal particles mass (g) and abundance (number of particles) was 0.0042. The slope was not significantly different in samples from organic and mineral soil, and all biogeographical regions had similar slope values except one (higher charcoal fragmentation, probably due to high colluvial activity). Charcoal conservation also did not vary according to residence time in soil. This study shows that macroscopic soil charcoal particles resist fragmentation over millennia in different biogeographical settings and under the influence of various taphonomical processes.

Type
Short Paper
Copyright
University of Washington

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References

Ali, A.A., Asselin, H., Larouche, A.C., Bergeron, Y., Carcaillet, C., and Richard, P.J.H. Changes in fire regime explain the Holocene rise and fall of Abies balsamea in the coniferous forests of western Québec, Canada. The Holocene 18, (2008). 693703.CrossRefGoogle Scholar
Asselin, H., and Payette, S. Late Holocene deforestation of a tree line site: estimation of pre-fire vegetation composition and black spruce cover using soil charcoal. Ecography 28, (2005). 801805.CrossRefGoogle Scholar
Asselin, H., and Payette, S. Origin and long-term dynamics of a subarctic tree line. Ecoscience 13, (2006). 135142.CrossRefGoogle Scholar
Asselin, H., Belleau, A., and Bergeron, Y. Factors responsible for the co-occurrence of forested and unforested rock outcrops in the boreal forest. Landscape Ecology 21, (2006). 271280.CrossRefGoogle Scholar
Auger, S., and Payette, S. Four millennia of woodland structure and dynamics at the Arctic treeline of eastern Canada. Ecology 91, (2010). 13671379.CrossRefGoogle ScholarPubMed
Carnelli, A.L., Theurillat, J.-P., Thinon, M., Vadi, G., and Talon, B. Past uppermost tree limit in the Central European Alps (Switzerland) based on soil and soil charcoal. The Holocene 14, (2004). 393405.CrossRefGoogle Scholar
Chen, H.Y.H., and Popadiouk, R.V. Dynamics of North American mixedwoods. Environmental Review 10, (2002). 137166.CrossRefGoogle Scholar
de Lafontaine, G., and Payette, S. The origin and dynamics of subalpine white spruce and balsam fir stands in boreal eastern North America. Ecosystems 13, (2010). 932947.CrossRefGoogle Scholar
de Lafontaine, G., and Payette, S. Shifting zonal patterns of the southern boreal forest in eastern Canada associated with changing fire regime during the Holocene. Quaternary Science Reviews 30, (2011). 867875.CrossRefGoogle Scholar
de Lafontaine, G., Payette, S., in press. Long-term fire and forest history of subalpine balsam fir (Abies balsamea) and white spruce (Picea glauca) stands in eastern Canada inferred from soil charcoal analysis. The Holocene.CrossRefGoogle Scholar
de Lafontaine, G., Turgeon, J., and Payette, S. Phylogeography of white spruce (Picea glauca) in eastern North America reveals contrasting ecological trajectories. Journal of Biogeography 37, (2010). 741751.CrossRefGoogle Scholar
Dutoit, T., Thinon, M., Talon, B., Buisson, E., and Alard, D. Sampling soil wood charcoals at a high spatial resolution: a new methodology to investigate the origin of grassland plant communities. Journal of Vegetation Science 20, (2009). 349358.CrossRefGoogle Scholar
Fesenmyer, K.A., and Christensen, N.L. Reconstructing Holocene fire history in a southern Appalachian forest using soil charcoal. Ecology 91, (2010). 662670.CrossRefGoogle Scholar
Gavin, D.G., Brubaker, L., and Lertzman, K. Holocene fire history of a coastal temperate rain forest based on soil charcoal radiocarbon dates. Ecology 84, (2003). 186201.CrossRefGoogle Scholar
Hart, J.L., Horn, S.P., and Grissino-Mayer, H.D. Fire history from soil charcoal in a mixed hardwood forest on the Cumberland Plateau, Tennessee, USA. Journal of the Torrey Botanical Society 135, (2008). 401410.CrossRefGoogle Scholar
Henry, F., Talon, B., and Dutoit, T. The age and history of the French Mediterranean steppe revisited by soil wood charcoal analysis. The Holocene 20, (2010). 2534.CrossRefGoogle Scholar
Poschlod, P., and Baumann, A. The historical dynamics of calcareous grasslands in the central and southern Franconian Jurassic mountains: a comparative pedoanthracological and pollen analytical study. The Holocene 20, (2010). 1323.CrossRefGoogle Scholar
Reimer, P.J., Baillie, M.G.L., Bard, E., Bayliss, A., Beck, J.W., Bertrand, C.J.H. et al. IntCal04 terrestrial radiocarbon age calibration, 26–0 ka BP. Radiocarbon 46, (2004). 10291058.Google Scholar
Sanborn, P., Geertsema, M., Jull, A.J.T., and Hawkes, B. Soil and sedimentary charcoal evidence for Holocene forest fires in an inland temperate rainforest, east-central British Columbia, Canada. The Holocene 16, (2006). 415427.CrossRefGoogle Scholar
Stuiver, M., and Reimer, P.J. Extended 14C database and revised CALIB radiocarbon calibration program. Radiocarbon 35, (1993). 215230.CrossRefGoogle Scholar
Stuiver, M., Reimer, P.J., and Reimer, R.W. CALIB 5.0. [WWW program and documentation]. http://calib.qub.ac.uk/calib/ (2005). Google Scholar
Talon, B. Reconstruction of Holocene high altitude vegetation cover in the French Southern Alps: evidence from soil charcoal. The Holocene 20, (2010). 3444.CrossRefGoogle Scholar
Talon, B., Payette, S., Filion, L., and Delwaide, A. Reconstruction of the long-term fire history of an old-growth deciduous forest in Southern Québec, Canada, from charred wood in mineral soils. Quaternary Research 64, (2005). 3643.CrossRefGoogle Scholar
Théry-Parisot, I., Chabal, L., and Chrzavzez, J. Anthracology and taphonomy, from wood gathering to charcoal analysis. A review of the taphonomic processes modifying charcoal assemblages, in archaeological contexts. Palaeogeography, Palaeoclimatology, Palaeoecology 291, (2010). 142153.CrossRefGoogle Scholar
Thinon, M., (1992). L'analyse pédoanthracologique : aspects méthodologiques et applications. Ph.D. Thesis, Université Paul Cézanne, Aix-Marseille, France.Google Scholar
Touflan, P., Talon, B., and Walsh, K. Soil charcoal analysis: a reliable tool for spatially precise studies of past forest dynamics. A case study in the French Southern Alps. The Holocene 20, (2010). 4552.CrossRefGoogle Scholar
Vernet, J.-L. History of the Pinus sylvestris and Pinus nigra ssp. salzmanni forest in the Sub-Mediterranean mountains (Grands Causses, Saint-Guilhem-le-Désert, southern Massif Central, France) based on charcoal from limestone and dolomitic deposits. Vegetation History and Archaeobotany 16, (2006). 2342.CrossRefGoogle Scholar
Weng, C. An improved method for quantifying sedimentary charcoal via a volume proxy. The Holocene 15, (2005). 298301.CrossRefGoogle Scholar
Zar, J.H. Biostatistical analysis. 2nd edition (1984). Prentice-Hall, Englewood Cliffs, NJ.Google Scholar