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Article

Effect of Biomass Water Dynamics in Cosmic-Ray Neutron Sensor Observations: A Long-Term Analysis of Maize–Soybean Rotation in Nebraska

School of Natural Resources, University of Nebraska-Lincoln, Lincoln, NE 68503, USA
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Author to whom correspondence should be addressed.
Sensors 2024, 24(13), 4094; https://doi.org/10.3390/s24134094
Submission received: 23 April 2024 / Revised: 15 June 2024 / Accepted: 19 June 2024 / Published: 24 June 2024
(This article belongs to the Topic Metrology-Assisted Production in Agriculture and Forestry)

Abstract

Precise soil water content (SWC) measurement is crucial for effective water resource management. This study utilizes the Cosmic-Ray Neutron Sensor (CRNS) for area-averaged SWC measurements, emphasizing the need to consider all hydrogen sources, including time-variable plant biomass and water content. Near Mead, Nebraska, three field sites (CSP1, CSP2, and CSP3) growing a maize–soybean rotation were monitored for 5 (CSP1 and CSP2) and 13 (CSP3) years. Data collection included destructive biomass water equivalent (BWE) biweekly sampling, epithermal neutron counts, atmospheric meteorological variables, and point-scale SWC from a sparse time domain reflectometry (TDR) network (four locations and five depths). In 2023, dense gravimetric SWC surveys were collected eight (CSP1 and CSP2) and nine (CSP3) times over the growing season (April to October). The N0 parameter exhibited a linear relationship with BWE, suggesting that a straightforward vegetation correction factor may be suitable (fb). Results from the 2023 gravimetric surveys and long-term TDR data indicated a neutron count rate reduction of about 1% for every 1 kg m−2 (or mm of water) increase in BWE. This reduction factor aligns with existing shorter-term row crop studies but nearly doubles the value previously reported for forests. This long-term study contributes insights into the vegetation correction factor for CRNS, helping resolve a long-standing issue within the CRNS community.
Keywords: soil water content; cosmic-ray neutron sensor; biomass correction soil water content; cosmic-ray neutron sensor; biomass correction

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MDPI and ACS Style

Morris, T.C.; Franz, T.E.; Becker, S.M.; Suyker, A.E. Effect of Biomass Water Dynamics in Cosmic-Ray Neutron Sensor Observations: A Long-Term Analysis of Maize–Soybean Rotation in Nebraska. Sensors 2024, 24, 4094. https://doi.org/10.3390/s24134094

AMA Style

Morris TC, Franz TE, Becker SM, Suyker AE. Effect of Biomass Water Dynamics in Cosmic-Ray Neutron Sensor Observations: A Long-Term Analysis of Maize–Soybean Rotation in Nebraska. Sensors. 2024; 24(13):4094. https://doi.org/10.3390/s24134094

Chicago/Turabian Style

Morris, Tanessa C., Trenton E. Franz, Sophia M. Becker, and Andrew E. Suyker. 2024. "Effect of Biomass Water Dynamics in Cosmic-Ray Neutron Sensor Observations: A Long-Term Analysis of Maize–Soybean Rotation in Nebraska" Sensors 24, no. 13: 4094. https://doi.org/10.3390/s24134094

APA Style

Morris, T. C., Franz, T. E., Becker, S. M., & Suyker, A. E. (2024). Effect of Biomass Water Dynamics in Cosmic-Ray Neutron Sensor Observations: A Long-Term Analysis of Maize–Soybean Rotation in Nebraska. Sensors, 24(13), 4094. https://doi.org/10.3390/s24134094

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