The strength of plants: theory and experimental methods to measure the mechanical properties of stems

Прочность растений: теория и экспериментальные методы измерения механических свойств стеблей
Darshil U. Shah, Thomas Reynolds, Michael H. Ramage
2017-07-13

axial loading (tensile, compressive, buckling)flexural bending (two-, three-, and four-point bending)mechanical phenotypingmechanical testing of plant stemsstem micro- and macrostructure
From the stems of agricultural crops to the structural trunks of trees, studying the mechanical behaviour of plant stems is critical for both commerce and science. Plant scientists are also increasingly relying on mechanical test data for plant phenotyping. Yet there are neither standardized methods nor systematic reviews of current methods for the testing of herbaceous stems. We discuss the architecture of plant stems and highlight important micro- and macrostructural parameters that need to be controlled and accounted for when designing test methodologies, or that need to be understood in order to explain observed mechanical behaviour. Then, we critically evaluate various methods to test structural properties of stems, including flexural bending (two-, three-, and four-point bending) and axial loading (tensile, compressive, and buckling) tests. Recommendations are made on best practices. This review is relevant to fundamental studies exploring plant biomechanics, mechanical phenotyping of plants, and the determinants of mechanical properties in cell walls, as well as to application-focused studies, such as in agro-breeding and forest management projects, aiming to understand deformation processes of stem structures. The methods explored here can also be extended to other elongated, rod-shaped organs (e.g. petioles, midribs, and even roots).
1
Flexural bending (two-, three-, four-point) and axial loading (tensile, compressive, buckling) tests are critically evaluated and recommended as primary methods for measuring stem structural properties.
2
Methods for stem mechanical testing can be extended to other elongated plant organs such as petioles, midribs, and roots.
3
Stem mechanical behaviour depends on micro- and macrostructural parameters that must be controlled or accounted for in test design and interpretation.
4
The review provides best-practice recommendations for testing relevant to plant biomechanics, mechanical phenotyping, cell wall mechanics, agro-breeding, and forest management applications.
5
There are no standardized methods or systematic reviews for mechanical testing of herbaceous plant stems.

Plant stems (herbaceous and woody stems, including elongated rod-shaped organs like petioles and midribs) being mechanically tested

Mechanical properties and structural behavior of stems under standardized test methods, including flexural bending (two-, three-, four-point) and axial loading (tensile, compressive, buckling), and how micro- and macrostructural parameters determine deformation and strength

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2017-07-13
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Darshil U. Shah
Thomas Reynolds
Michael H. Ramage
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