Project Details
Dynamics of soil structure and physical soil functions and their importance for the acquisition of nutrients from the subsoil
Applicant
Professor Dr. Rainer Horn
Subject Area
Soil Sciences
Term
from 2010 to 2016
Project identifier
Deutsche Forschungsgemeinschaft (DFG) - Project number 135946177
Subsoils are an often neglected nutrient source for crops. The mobilisation and use of this potential nutrient source is an important factor in sustainable land use. Nutrient accessibility, release, and transport are strongly dependent on soil structure and its dynamics controlled by spatiotemporally variable physical functions of the pore network. A well structured soil, for example, with numerous interconnected continuous biopores will enhance root growth and oxygen availability and hence nutrient acquisition. In contrast to soils with a poorly developed structure nutrient acquisition is limited by restricted root growth and reduced aeration. The goal of this research project is to investigate different preceding crops and crop sequences in developing characteristic biopore systems in the subsoil and to elaborate their effect on the functional performance of pore networks with respect to nutrient acquisition. The main research question in this context is how soil structure evolves during cultivation of different plant species and how structure formation influences the interaction of physical (water and oxygen transport, shrinking-swelling) biological (microbial activity, root growth) and geochemical processes (e.g. by creating new accessible reaction interfaces). In order to study and quantify pore network architectures non-invasively and in three dimensions X-ray computed microtomography and 3D image analysis algorithms will be employed. The results will be correlated with small- and mesoscale physical/chemical properties obtained from in situ microsensor (oxygen partial pressure, redox potential, oxygen diffusion rate) and bulk soil measurements (transport functions, stress-strain relationships) of the same samples. This will further our process understanding regarding the ability of various crop sequences to form biopore systems which enhance nutrient acquisition from the subsoil by generating pore network architectures with an efficient interaction of physical, biological and geochemical processes.
DFG Programme
Research Units
Participating Person
Professor Dr. Stephan Peth