A global meta‐analysis of soil exchangeable cations, pH, carbon, and nitrogen with afforestation
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Open Access
- 1 December 2009
- journal article
- research article
- Published by Wiley in Ecological Applications
- Vol. 19 (8), 2228-2241
- https://doi.org/10.1890/08-1730.1
Abstract
Afforestation, the conversion of non‐forested lands to forest plantations, can sequester atmospheric carbon dioxide, but the rapid growth and harvesting of biomass may deplete nutrients and degrade soils if managed improperly. The goal of this study is to evaluate how afforestation affects mineral soil quality, including pH, sodium, exchangeable cations, organic carbon, and nitrogen, and to examine the magnitude of these changes regionally where afforestation rates are high. We also examine potential mechanisms to reduce the impacts of afforestation on soils and to maintain long‐term productivity. Across diverse plantation types (153 sites) to a depth of 30 cm of mineral soil, we observed significant decreases in nutrient cations (Ca, K, Mg), increases in sodium (Na), or both with afforestation. Across the data set, afforestation reduced soil concentrations of the macronutrient Ca by 29% on average (P < 0.05). Afforestation by Pinus alone decreased soil K by 23% (P < 0.05). Overall, plantations of all genera also led to a mean 71% increase of soil Na (P < 0.05). Mean pH decreased 0.3 units (P < 0.05) with afforestation. Afforestation caused a 6.7% and 15% (P < 0.05) decrease in soil C and N content respectively, though the effect was driven principally by Pinus plantations (15% and 20% decrease, P < 0.05). Carbon to nitrogen ratios in soils under plantations were 5.7–11.6% higher (P < 0.05). In several regions with high rates of afforestation, cumulative losses of N, Ca, and Mg are likely in the range of tens of millions of metric tons. The decreases indicate that trees take up considerable amounts of nutrients from soils; harvesting this biomass repeatedly could impair long‐term soil fertility and productivity in some locations. Based on this study and a review of other literature, we suggest that proper site preparation and sustainable harvest practices, such as avoiding the removal or burning of harvest residue, could minimize the impact of afforestation on soils. These sustainable practices would in turn slow soil compaction, erosion, and organic matter loss, maintaining soil fertility to the greatest extent possible.Keywords
This publication has 98 references indexed in Scilit:
- Carbon sequestrationPhilosophical Transactions Of The Royal Society B-Biological Sciences, 2007
- Woody debris in a 16-year old Pinus radiata plantation in Australia: Mass, carbon and nitrogen stocks, and turnoverForest Ecology and Management, 2006
- Soil changes and tree growth in intensively managed Pinus radiata in northern SpainForest Ecology and Management, 2004
- Residue management effects on soil carbon and nutrient contents and growth of second rotation eucalyptsForest Ecology and Management, 2003
- Change in soil organic carbon following afforestation of former arable landForest Ecology and Management, 2002
- Soil organic carbon as affected by afforestation with Eucalyptus and Pinus in the Cerrado region of BrazilForest Ecology and Management, 2002
- Soil fertility rehabilitation in young Pinus radiata D. Don. plantations from northern Spain after intensive site preparationForest Ecology and Management, 1999
- Sulphate adsorption and acidification of Calluna heathland and Scots pine forest podzol soils in north-east ScotlandForest Ecology and Management, 1999
- Factors influencing decline in soil pH in Hawaiian Eucalyptus and Albizia plantationsForest Ecology and Management, 1996
- Initial soil changes associated with afforestation withAcacia auriculiformisandPinus kesiyaon denuded Grasslands of the Pantabangan area, Central Luzon, the PhilippinesSoil Science and Plant Nutrition, 1990