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1 July 2007 A Model For Predicting Common Cocklebur (Xanthium Strumarium) Emergence in Soybean
Jason K. Norsworthy, Marcos J. Oliveira
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Abstract

The objective of this research was to develop a model to predict common cocklebur seedling emergence in spring tillage and no-spring-tillage systems in the presence and absence of a soybean canopy. A Weibull function was used to accumulate heat units (i.e., growing degree days) at a 2.5 cm soil depth on days when mean soil temperature, soil water potential, and soil thermal fluctuation were above established thresholds. The base temperature, soil water potential, and soil thermal fluctuation thresholds used for model development were 17 C, −100 kPa, and 7.5 C, respectively. A single function adequately described common cocklebur seedling emergence in the presence and absence of drill-seeded soybean from data combined over an artificial (2004) and natural seedbank (2005) (R2  =  0.986). Model parameterization differed between the artificial and natural seedbank in the absence of spring tillage, but emergence was adequately described, regardless of soybean presence. Separate parameter estimates for the artificial and natural seedbanks were needed to adequately describe emergence in the system without spring tillage (R2  =  0.975 to 0.984). The ability of the model to account for reduced emergence when soil moisture is limited or when daily thermal fluctuation requirements are not met could assist practitioners with assessments associated with field scouting for weeds as well as other management decisions.

Nomenclature: Common cocklebur, Xanthium strumarium L. XANST, soybean, Glycine max (L.) Merr

Jason K. Norsworthy and Marcos J. Oliveira "A Model For Predicting Common Cocklebur (Xanthium Strumarium) Emergence in Soybean," Weed Science 55(4), 341-345, (1 July 2007). https://doi.org/10.1614/WS-06-185
Received: 20 October 2006; Accepted: 1 March 2007; Published: 1 July 2007
KEYWORDS
growing degree days
Hydrothermal time
soil temperature
soil thermal fluctuation
soil water potential
thermal time
weed emergence modeling
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