Temperature-induced changes in humus quality and δ13C signatures as a proxy indicator of soil burn intensities after forest wildfires

Due to the increasing number and virulence of forest wildfires recently observed around the world, the establishment of a simple, accurate and reliable index that would correctly evaluate the fire effects on soil quality as a support for a suitable forest recovery management is becoming progressivel...

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Detalhes bibliográficos
Autores: Fernández Piñeiro, Irene, Cabaneiro, Ana
Formato: artículo
Fecha de publicación:2019
País:España
Recursos:Consejo Superior de Investigaciones Científicas (CSIC)
Repositorio:DIGITAL.CSIC. Repositorio Institucional del CSIC
OAI Identifier:oai:digital.csic.es:10261/190491
Acesso em linha:http://hdl.handle.net/10261/190491
Access Level:acceso abierto
Palavra-chave:Controlled heating
edaphic thermal alteration
soil burn severity
fire effects
soil organic matter
Stable C isotopes
Descrição
Resumo:Due to the increasing number and virulence of forest wildfires recently observed around the world, the establishment of a simple, accurate and reliable index that would correctly evaluate the fire effects on soil quality as a support for a suitable forest recovery management is becoming progressively more necessary. This objective is addressed here by using both δ13C isotope ratio mass spectrometry and traditional solvent fractionation methods (widely used to assess soil biogenic components or humus fractions) to quantify the temperature-induced changes in soil chemical and isotopic composition. Soil samples from the upper 5 cm layer of two Cambisols developed over granite under pine forest in the NW of Spain were heated in an oven under controlled conditions to attain moderate or intense soil burn severity levels by using two different temperatures (220ºC or 350ºC). Biochemical changes induced by the heating process appreciably differed according to the intensity of the temperature applied. Multilinear regression modelling not only showed a significant relationship between soil C isotopic signature shifts (D soil d13C) with temperature increases but also revealed other key outcomes: i.e. >96 or >81% of its total variance can be predicted by changes in lignin or non-humified organic matter, respectively. Indeed, D soil d13C explained by itself ≈60% of thermal variance, pointing to the aptness of using 13C shifts as a valid index for soil burn severity estimation in wildfires.