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首页> 外文期刊>Annals of Forest Science >Mechanical properties of 'flexure wood': compressive stresses in living trees improve the mechanical resilience of wood and its resistance to damage
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Mechanical properties of 'flexure wood': compressive stresses in living trees improve the mechanical resilience of wood and its resistance to damage

机译:“弯曲木材”的机械性能:生活树中的压缩应力提高了木材的机械弹性及其对损伤的抵抗力

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Key message Mechanical acclimation of young poplars (Populus tremula x Populus alba, INRA 717-1B4) submitted to periodic stem bending is mainly driven by compressive strains. Flexure wood and compressive flexure wood exhibit higher mechanical resilience and lower mechanical damage. Context It is well known that thigmomorphogenesis modulates tree growth and the anatomical structure of wood. However, nothing is known about the mechanical behaviour of the tissues of fresh wood formed under mechanical stimulation. Aims We investigated the elastic and plastic properties of the fresh wood of young poplar trees (Populus tremula x Populus alba, INRA 717-1B4) submitted to periodic controlled stem bending that mimics the mechanical effect of wind. Methods For a set of trees, we applied symmetrical bending treatments, which led to the formation of "flexure wood". For another set of trees, asymmetrical bending treatments, including compression (or tension) only, were applied and generated specific wood formation: "compressive flexure wood" and "tensile flexure wood". We investigated the elastic and plastic properties of these woods at the stem and at the local tissue levels. Results The results revealed that fresh wood formed under compressive treatments is more resistant to damage (damage reduced by 44%) and a higher mechanical resilience (+ 33%), suggesting that this tissue is able to withstand higher mechanical strains than "normal wood". This improvement could explain the higher mechanical strength of the stem to bending (+ 42%). Conclusion When trees experience repetitive mechanical stimulations, they adjust the plastic plastic behaviour of their wood in a way that improves the mechanical safety. This demonstrates the adaptive benefit of the mechanical acclimation of trees.
机译:关键消息幼唇膏的机械适应(Populus Tremula X Populus Alba,InRA 717-1B4),提交给周期性杆弯曲的主要由压缩菌株驱动。弯曲木材和压缩挠性木材表现出更高的机械弹性和较低的机械损坏。背景信息众所周知,Thigmomorphogyesis调节树木生长和木材的解剖结构。然而,没有关于机械刺激形成的新鲜木材组织的机械行为的任何内容。目的我们研究了幼唇雪树(Populus Tremula x Populus Alba)的弹性和塑料特性,提交给定期控制杆弯曲,以模仿风的机械效果。方法对于一组树,我们应用了对称弯曲处理,从而导致形成“弯曲木材”。对于另一组树木,仅施加不对称的弯曲处理,包括压缩(或张力),并产生特定的木材形成:“压缩挠性木材”和“拉伸弯曲木材”。我们调查了这些树木的弹性和塑料特性在茎和局部组织水平。结果结果表明,在压缩处理下形成的新鲜木材更耐受损伤(减少44%的损伤)和更高的机械弹性(+ 33%),表明该组织能够承受比“正常木材”更高的机械菌株。这种改进可以解释茎对弯曲的较高机械强度(+ 42%)。结论树木经历重复机械刺激,它们以改善机械安全的方式调整木材的塑料塑性行为。这证明了树木机械适应的自适应益处。

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