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Preventing lodging in bioenergy crops: a biomechanical analysis of maize stalks suggests a new approach

2015/03/30 by Greg Von Forell, Daniel J. Robertson, Shien Yang Lee +1 · 1 citation
Agricultural and Biological Sciences · Engineering · Mathematics · #Agronomy #Bioenergy #Bioenergy crop production and management #Biofuel #Biological system #Biology #Biotechnology #Crop Yield and Soil Fertility #Forest Biomass Utilization and Management #Geometry #Horticulture #Materials science #Mathematics #Silage #Stalk

paper · pdf · doi:10.1093/jxb/erv108

openalex publication_date 2015/03/30 · openalex created_date 2025/10/10 · openalex updated_date 2026/06/22

Abstract

The hypothetical ideal for maize (Zea mays) bioenergy production would be a no-waste plant: high-yielding, with silage that is easily digestible for conversion to biofuel. However, increased digestibility is typically associated with low structural strength and a propensity for lodging. The solution to this dilemma may lie in our ability to optimize maize morphology using tools from structural engineering. To investigate how material (tissue) and geometric (morphological) factors influence stalk strength, detailed structural models of the maize stalk were created using finite-element software. Model geometry was obtained from high-resolution x-ray computed tomography (CT) scans, and scan intensity information was integrated into the models to infer inhomogeneous material properties. A sensitivity analysis was performed by systematically varying material properties over broad ranges, and by modifying stalk geometry. Computational models exhibited realistic stress and deformation patterns. In agreement with natural failure patterns, maximum stresses were predicted near the node. Maximum stresses were observed to be much more sensitive to changes in dimensions of the stalk cross section than they were to changes in material properties of stalk components. The average sensitivity to geometry was found to be more than 10-fold higher than the average sensitivity to material properties. These results suggest a new strategy for the breeding and development of bioenergy maize varieties in which tissue weaknesses are counterbalanced by relatively small increases (e.g. 5%) in stalk diameter that reduce structural stresses.

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