Restoring Soil Quality to Mitigate Soil Degradation
Восстановление качества почвы для смягчения деградации почв
2015-05-13
SCID: 54.1/vrwqntyc
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conservation agriculturesoil degradationsoil fertilitysoil organic carbonsoil quality restoration
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Abstract (AI)
Feeding the world population, 7.3 billion in 2015 and projected to increase to 9.5 billion by 2050, necessitates an increase in agricultural production of ~70% between 2005 and 2050. Soil degradation, characterized by decline in quality and decrease in ecosystem goods and services, is a major constraint to achieving the required increase in agricultural production. Soil is a non-renewable resource on human time scales with its vulnerability to degradation depending on complex interactions between processes, factors and causes occurring at a range of spatial and temporal scales. Among the major soil degradation processes are accelerated erosion, depletion of the soil organic carbon (SOC) pool and loss in biodiversity, loss of soil fertility and elemental imbalance, acidification and salinization. Soil degradation trends can be reversed by conversion to a restorative land use and adoption of recommended management practices. The strategy is to minimize soil erosion, create positive SOC and N budgets, enhance activity and species diversity of soil biota (micro, meso, and macro), and improve structural stability and pore geometry. Improving soil quality (i.e., increasing SOC pool, improving soil structure, enhancing soil fertility) can reduce risks of soil degradation (physical, chemical, biological and ecological) while improving the environment. Increasing the SOC pool to above the critical level (10 to 15 g/kg) is essential to set-in-motion the restorative trends. Site-specific techniques of restoring soil quality include conservation agriculture, integrated nutrient management, continuous vegetative cover such as residue mulch and cover cropping, and controlled grazing at appropriate stocking rates. The strategy is to produce “more from less” by reducing losses and increasing soil, water, and nutrient use efficiency.
Key Findings
1
Degradation includes accelerated erosion, soil organic carbon depletion, biodiversity loss, fertility decline, elemental imbalance, acidification, and salinization.
2
Increasing soil organic carbon above the critical level of 10 to 15 g/kg is essential for initiating restorative trends.
3
Restorative land use and recommended management practices can reverse degradation by reducing erosion, building positive soil carbon and nitrogen budgets, and improving soil biological activity.
4
Site-specific practices—including conservation agriculture, integrated nutrient management, continuous vegetative cover, and controlled grazing—can improve soil quality and increase soil, water, and nutrient-use efficiency.
5
Soil degradation is a major constraint on the approximately 70% increase in agricultural production needed between 2005 and 2050.
Research Object
Agricultural soils undergoing degradation and restoration
Research Subject
Soil quality restoration strategies and their effects on mitigating soil degradation
Publication Details
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2015-05-13
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