Biomechanical properties of wheat grains: the implications on milling

Биомеханические свойства зерна пшеницы: значение для помола
James E. Hourston, Michael Ignatz, Martin Reith, Gerhard Leubner‐Metzger, Tina Steinbrecher
2017-01-18

endosperm weakeningmilling pretreatmentspuncture force testingshear force testingwheat grain biomechanics
Millennia of continuous innovation have driven ever increasing efficiency in the milling process. Mechanically characterizing wheat grains and discerning the structure and function of the wheat bran layers can contribute to continuing innovation. We present novel shear force and puncture force testing regimes to characterize different wheat grain cultivars. The forces endured by wheat grains during the milling process can be quantified, enabling us to measure the impact of commonly applied grain pretreatments, such as microwave heating, extended tempering, enzyme and hormone treatments on grains of different 'hardness'. Using these methods, we demonstrate the importance of short tempering phases prior to milling and identify ways in which our methods can detect differences in the maximum force, energy and breaking behaviours of hard and soft grain types. We also demonstrate for the first time, endosperm weakening in wheat, through hormone stratification on single bran layers. The modern milling process is highly refined, meaning that small, cultivar specific, adjustments can result in large increases in downstream profits. We believe that methods such as these, which enable rapid testing of milling pretreatments and material properties can help to drive an innovation process that has been core to our industrial efforts since prehistory.
1
Hormone stratification applied to individual bran layers demonstrates endosperm weakening in wheat for the first time.
2
Novel shear-force and puncture-force testing regimes quantify wheat-grain mechanical properties and milling-relevant breaking behavior across cultivars.
3
Rapid mechanical testing can identify cultivar-specific pretreatment adjustments with potential to improve milling efficiency and downstream profitability.
4
Short tempering phases before milling are important, while maximum force, energy, and fracture behavior distinguish hard and soft wheat grains.
5
The methods measure how microwave heating, extended tempering, enzyme treatments, and hormone treatments alter grain forces during milling.

Wheat grains of different cultivars and hardness, including their bran layers and endosperm, subjected to milling pretreatments

Biomechanical properties and fracture behavior of wheat grains during milling, including the effects of pretreatments and tempering on force, energy, breaking, and endosperm weakening

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2017-01-18
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Authors
James E. Hourston
Michael Ignatz
Martin Reith
Gerhard Leubner‐Metzger
Tina Steinbrecher
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