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  4. Driver-Pressure-State-Impact-Response (DPSIR) Analysis and Risk Assessment for Soil Compaction—A European Perspective
 

Driver-Pressure-State-Impact-Response (DPSIR) Analysis and Risk Assessment for Soil Compaction—A European Perspective

URI
https://arbor.bfh.ch/handle/arbor/33505
Version
Published
Date Issued
2015
Author(s)
Schjønning, Per
van den Akker, Jan J.H.
Keller, Thomas
Greve, Mogens H.
Lamandé, Mathieu
Simojoki, Asko
Stettler, Matthias  
Arvidsson, Johan
Breuning-Madsen, Henrik
Type
Book Chapter
Language
English
Subjects

Decision support syst...

Stress

Wheel load

Abstract
Compaction of subsoil is a hidden but persistent damage that impairs a range of soil functions and ecosystem services. We analyzed the soil compaction issue in the Driver-Pressure-State-Impact-Response (DPSIR) context. The driving force (DPSIR-D) is the farmers' efforts to sustain economic viability. This entails a steady increase in the size and weight of the agricultural machinery (DPSIR-P) exerting the specific pressures on the soil system. Simulations using historical data for agricultural machinery show significant increases in the mechanical stresses exerted on the soil profile during the last five decades. Surveys and comparative measurements (DPSIR-S) in the literature indicate that much of the European subsoil is compacted to critical levels for cropping. This calls for changes in agricultural management (DPSIR-R). Mechanical stresses impact the soil (DPSIR-I) by reducing the volume, dimensions, and interconnections of soil pores. Subsequent impacts on ecosystem services (subtle DPSIR-I aspects) include a decrease in crop production, an impaired soil filtering of pollutants, and the risk of higher greenhouse gas emissions. The natural ability of compacted subsoil to recover is poor. We highlight the need to expand the DPSIR concept to include a risk assessment methodology to identify sustainable management systems. Risk assessment involves the evaluation of the mechanistic cause–effect chain of the compaction process. Measured data as well as modeling indicate that contemporary tires are not able to carry the loads frequently inflicted on wet soil without exerting critical stresses on deep subsoil layers. We suggest the use of online modeling tools that combine existing knowledge. Such tools may also create maps of vulnerable areas from the field to the continent scale. Groups of stakeholders including researchers, farmers and their consultants, and policy-makers need to identify sustainable traffic systems that secure both presently focused ecosystem services as well as nonuse soil values (the bequest for future generations).
Subjects
S Agriculture (General)
T Technology (General)
ISBN
9780128030523
DOI
10.24451/arbor.8199
https://doi.org/10.24451/arbor.8199
Publisher DOI
10.1016/bs.agron.2015.06.001
Series/Report No.
Advances in Agronomy
Publisher URL
https://www.sciencedirect.com/science/article/pii/S0065211315001108
Organization
Ressourceneffiziente landwirtschaftliche Produktionssysteme  
Agronomie  
Hochschule für Agrar-, Forst- und Lebensmittelwissenschaften  
Volume
133
Publisher
Elsevier
Submitter
ZimmerD
Citation apa
Schjønning, P., van den Akker, J. J. H., Keller, T., Greve, M. H., Lamandé, M., Simojoki, A., Stettler, M., Arvidsson, J., & Breuning-Madsen, H. (2015). Driver-Pressure-State-Impact-Response (DPSIR) Analysis and Risk Assessment for Soil Compaction—A European Perspective (Vol. 133). Elsevier. https://doi.org/10.24451/arbor.8199
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