Logo image
Relating quantitative soil structure metrics to saturated hydraulic conductivity
Accepted manuscript   Open access   Peer reviewed

Relating quantitative soil structure metrics to saturated hydraulic conductivity

Dennis V. Eck, Mingming Qin, Daniel R. Hirmas, Daniel Giménez and Nathaniel A. Brunsell
Vadose Zone Journal, Vol.15(1), pp.1-11
2016
DOI:
https://doi.org/10.7282/T3R213BQ

Abstract

Multistripe Laser Triangulation (MLT) Preferential flow Quantitative soil morphology Hydrologic modeling
Soil structure affects saturated hydraulic conductivity (Ks) by creating highly conductive macropores that preferentially transmit soil water. In this study, we explore the relationship between Ks and macropores in an Oxyaquic Vertic Argiudoll in northeastern Kansas. Macropores were quantified from an excavation wall using multistripe laser triangulation (MLT) scanning. Soil water contents were measured at four depths within a soil lysimeter installed within 2 meters of the MLT-scanned soil profile and adjacent to an Ameriflux tower monitoring precipitation, air temperature, and solar radiation. Selected hydraulic properties of soil horizons within the lysimeter were optimized to water content data using a Markov chain Monte Carlo technique in combination with the mobile-immobile water (MIM) model in HYDRUS-1D. Estimates of Ks varied between 4198 cm d-1 in the A horizon and 0.6 cm d-1 in a 2Btss2 horizon with strongly expressed wedge structure. Approximately 87% of the variation in Ks was explained by the geometric mean of the widths of pores quantified with the MLT technique and modified by the coefficient of extensibility (COLE). The use of COLE allows the widths of the macropores obtained at dry conditions to be approximated at saturation. Two models that predict Ks from either texture or water retention data resulted in Ks estimates that were similar to each other, but significantly lower than Ks values predicted with MIM in horizons where structural pores dominate water flow. This technique shows a great deal of promise in better understanding and predicting the relationship of soil structure to water flow.
pdf
vzj2015.05.00837.23 MBDownloadView
Accepted Manuscript Open Access
url
http://dx.doi.org/10.2136/vzj2015.05.0083View
Vadose Zone Journal
url
Report an accessibility issueView
Please complete a content remediation request to report an accessibility issue with a library electronic resource, website, or service.

Metrics

147 File downloads
154 Record Views

Details

Logo image