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Structure–function relationships of four compression wood types: micromechanical properties at the tissue and fibre level

机译:四种压缩木材类型的结构-功能关系:组织和纤维水平的微机械性能

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摘要

The mechanisms behind compressive stress generation in gymnosperms are not yet fully understood. Investigating the structure–function relationships at the tissue and cell level, however, can provide new insights. Severe compression wood of all species lacks a S3 layer, has a high microfibril angle in the S2 layer and a high lignin content. Additionally, special features like helical cavities or spiral thickenings appear, which are not well understood in terms of their mechanical relevance, but need to be examined with regard to evolutionary trends in compression wood development. Thin compression wood foils and isolated tracheids of four gymnosperm species [Ginkgo biloba L., Taxus baccata L., Juniperus virginiana L., Picea abies (L.) Karst.] were investigated. The tracheids were isolated mechanically by peeling them out of the solid wood using fine tweezers. In contrast to chemical macerations, the cell wall components remained in their original condition. Tensile properties of tissue foils and tracheids were measured in a microtensile apparatus under wet conditions. Our results clearly show an evolutionary trend to a much more flexible compression wood. An interpretation with respect to compressive stress generation is discussed.
机译:裸子植物中产生压应力的机理尚未完全了解。然而,在组织和细胞水平上研究结构与功能的关系可以提供新的见解。所有物种的严重压缩木材都缺少S3层,S2层中的微纤丝角高,木质素含量高。此外,还会出现一些特殊特征,例如螺旋形空腔或螺旋形增厚,就其机械相关性而言尚未很好地理解它们,但需要针对压缩木材发展的演变趋势进行检查。研究了四种裸子植物种类的压缩薄木箔和孤立的气管胞[银杏,紫杉,紫ipe,云杉云杉]。通过使用细镊子将其从实木中剥离,机械地分离出气管。与化学浸渍相反,细胞壁成分保持其原始状态。在潮湿条件下,在微张力设备中测量组织箔和气管的拉伸性质。我们的结果清楚地表明了一种向柔性更大的压缩木材发展的趋势。讨论了关于压应力产生的解释。

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