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Per Schjønning

Researcher at Aarhus University

Publications -  164
Citations -  8374

Per Schjønning is an academic researcher from Aarhus University. The author has contributed to research in topics: Soil water & Soil structure. The author has an hindex of 48, co-authored 160 publications receiving 7243 citations.

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Tortuosity, diffusivity, and permeability in the soil liquid and gaseous phases

TL;DR: In this paper, a diffusion-based analysis of tortuosity in the soil water and soil air phases, related to soil surface area (SA) and poresize distribution (PSD), is presented.
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Predicting the Gas Diffusion Coefficient in Repacked Soil Water-Induced Linear Reduction Model

TL;DR: In this paper, a water-induced linear reduction (WLR) term, equal to the ratio of air-filled porosity to total porosity, was added to the D p (e) model.
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Predicting the Gas Diffusion Coefficient in Undisturbed Soil from Soil Water Characteristics

Abstract: The gas diffusion coefficient in soil (D P ), and its dependency on soil physical characteristics, governs the diffusive transport of oxygen, greenhouse gases, fumigants, and volatile organic pollutants in agricultural, forest, and urban soils. Accurate models for predicting Dp as a function of air-filled porosity (e) in natural, undisturbed soil are needed for realistic gas transport and fate simulations. Using data from 126 undisturbed soil layers, we obtained a high correlation (r 2 = 0.97) for a simple, nonlinear expression describing D P at -100 cm H 2 O of soil water potential (D P,100 ) as a function of the corresponding air-filled porosity (e 100 ), equal to the volume of soil pores with an equivalent pore diameter >30 μm. A new D P (e) model was developed by combining the D P,100 (e 100 ) expression with the Burdine relative hydraulic conductivity model, the latter modified to predict relative gas diffusivity in unsaturated soil. The D P,100 and Burdine terms in the D P (e) model are both related to the soil water characteristic (SWC) curve and, thus, the actual pore-size distribution within the water content range considered. The D P (e) model requires knowledge of the soil's air-filled and total porosities and a minimum of two points on the SWC curve, including a measurement at -100 cm H 2 O. When tested against independent gas diffusivity data for 21 differently textured and undisturbed soils, the SWC-dependent D P (e) model accurately predicted measured data and gave a reduction in root mean square error of prediction between 58 and 83% compared to the classical, soil type-independent Penman and Millington-Quirk models. To further test the new D P (e) model, gas diffusivity and SWC measurements on undisturbed soil cores from three 0.4-m soil horizons (sandy clay loam, sandy loam, and loamy sand) within the 4 to 7 m depth below an industrially polluted soil site were carried out. For these deep subsurface soils the SWC-dependent model best predicted the measured gas diffusivities.
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Linking soil microbial activity to water- and air-phase contents and diffusivities

TL;DR: In this article, a conceptual model balancing the effects of solute and gas diffusivity indicated that the relative trend in the observed optima of water contents across soil types was as expected.
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Turnover of organic matter in differently textured soils: I. Physical characteristics of structurally disturbed and intact soils

TL;DR: In this article, basic physical characteristics were determined for structurally disturbed and intact soil samples from differently textured soils, and they found that disturbed soils have a less continuous and more tortuous pore system than undisturbed reference samples.