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Featured researches published by C. Zweck.


Water Resources Research | 2012

Measurement depth of the cosmic ray soil moisture probe affected by hydrogen from various sources

Trenton E. Franz; Marek Zreda; Ty P. A. Ferré; Rafael Rosolem; C. Zweck; Susan Stillman; Xubin Zeng; William James Shuttleworth

[1] We present here a simple and robust framework for quantifying the effective sensor depth of cosmic ray soil moisture neutron probes such that reliable water fluxes may be computed from a time series of cosmic ray soil moisture. In particular, we describe how the neutron signal depends on three near-surface hydrogen sources: surface water, soil moisture, and lattice water (water in minerals present in soil solids) and also their vertical variations. Through a combined modeling study of one-dimensional water flow in soil and neutron transport in the atmosphere and subsurface, we compare average water content between the simulated soil moisture profiles and the universal calibration equation which is used to estimate water content from neutron counts. By using a linear sensitivity weighting function, we find that during evaporation and drainage periods the RMSE of the two average water contents is 0.0070 m 3 m � 3 with a maximum deviation of 0.010 m 3 m � 3 for a range of soil types. During infiltration, the RMSE is 0.011 m 3 m � 3 with a maximum deviation of 0.020 m 3 m � 3 , where piston like flow conditions exists for the homogeneous isotropic media. Because piston flow is unlikely during natural conditions at the horizontal scale of hundreds of meters that is measured by the cosmic ray probe, this modeled deviation of 0.020 m 3 m � 3 represents the worst case scenario for cosmic ray sensing of soil moisture. Comparison of cosmic ray soil moisture data and a distributed sensor soil moisture network in Southern Arizona indicates an RMSE of 0.011 m 3 m � 3 over a


Hydrology and Earth System Sciences | 2012

COSMOS: The cosmic-ray soil moisture observing system

Marek Zreda; William James Shuttleworth; Xubin Zeng; C. Zweck; Darin Desilets; Trenton E. Franz; Rafael Rosolem


Earth and Planetary Science Letters | 2013

Snow shielding factors for cosmogenic nuclide dating inferred from Monte Carlo neutron transport simulations

C. Zweck; Marek Zreda; Darin Desilets


BHS 3rd International Conference | 2010

The COsmic-ray Soil Moisture Observing System (COSMOS): a non-invasive, intermediate scale soil moisture measurement network

William James Shuttleworth; Marek Zreda; Xubin Zeng; C. Zweck; Ty P. A. Ferré


Chemical Geology | 2012

The theoretical basis of ACE, an Age Calculation Engine for cosmogenic nuclides

C. Zweck; Marek Zreda; Kenneth M. Anderson; Elizabeth Bradley


GEWEX Newsletter | 2011

Cosmic-Ray Neutrons, An Innovative Method for Measuring Area-Average Soil Moisture

Marek Zreda; Xubin Zeng; William James Shuttleworth; C. Zweck; Ty P. A. Ferré; Trenton E. Franz; Rafael Rosolem


Archive | 2006

iCronus : A Computational Tool for Cosmogenic Nuclide Dating

C. Zweck; Marek Zreda; Kenneth M. Anderson; Elizabeth Bradley


Archive | 2006

Early Holocene glaciation in Turkey: large magnitude, fast deglaciation and possible NAO connection

Marek Zreda; C. Zweck; Mehmet Akif Sarıkaya


Water Resources Research | 2012

Measurement depth of the cosmic ray soil moisture probe affected by hydrogen from various sources: MEASUREMENT DEPTH OF THE COSMIC-RAY SOIL MOISTURE PROBE

Trenton E. Franz; Marek Zreda; Ty P. A. Ferré; Rafael Rosolem; C. Zweck; Susan Stillman; Xubin Zeng; William James Shuttleworth


Archive | 2008

COSMOS: COsmic-ray Soil Moisture Observing System planned for the United States

C. Zweck; Marek Zreda; J. W. Shuttleworth; Xiaolu Zeng

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Trenton E. Franz

University of Nebraska–Lincoln

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Elizabeth Bradley

University of Colorado Boulder

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Kenneth M. Anderson

University of Colorado Boulder

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