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Multifractal analysis of soil porosity based on mercury injection and nitrogen adsorption

journal contribution
posted on 2024-11-01, 16:47 authored by Jorge Paz-FerreiroJorge Paz-Ferreiro, Jose Miranda, Eva Vidal-Vazquez
Pore-size distributions (PSD) determined by different methods across various ranges of equivalent pore radius have shown multifractal characteristics. Here, the multifractal formalism was employed to describe both mercury injection porosimetry (MIP) and nitrogen adsorpti on isotherms (NAI) curves, measured in a Mollisol and in a Verti sol. Four different soil use intensifies and three replicate samples per treatment were analyzed. Mercury injection and nitrogen adsorption were used to measure PSDs for equivalent pore radii 150 to 0.005 μm and 0.1 to 0.001 μm, respectively. The scaling properties of all the Hg injection curves and N2 adsorption isotherms could be fitted reasonably well with multifractal models. A generalized dimension spectrum, Dq, led to a better definition of multifractal scaling than a singularity spectrum, f(α). Parameters derived from these two functions showed highly significant differences between MIP and NAI in both soil types. Thus, mean values of entropy dimension, D1 and correlation dimension, D2, were significantly higher for mercury injection than for nitrogen adsorption. On the contrary, Hölder exponents of order zero, α0, were on average significantly higher for nitrogen adsorption. Also, mean widths of the f(α) spectra were much larger for nitrogen adsorption. These results indicate heterogeneity due to the presence of different porous domains at the scale of primary soil aggregates. The multifractal approach was useful to characterize the heterogeneity of the soil pore system and to distinguish between different patterns of PSD corresponding to various degrees of clustering.

History

Related Materials

  1. 1.
    DOI - Is published in 10.2136/vzj2009.0090
  2. 2.
    ISSN - Is published in 15391663

Journal

Vadose Zone Journal

Volume

9

Issue

2

Start page

325

End page

335

Total pages

11

Publisher

Soil Science Society of America

Place published

United States

Language

English

Copyright

© Soil Science Society of America

Former Identifier

2006049536

Esploro creation date

2020-06-22

Fedora creation date

2015-01-20

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