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首页> 外文期刊>Landscape and ecological engineering >Effects of root architecture, physical tree characteristics,and soil shear strength on maximum resistive bending moment for overturning Salix babylonica and Juglans ailanthifolia
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Effects of root architecture, physical tree characteristics,and soil shear strength on maximum resistive bending moment for overturning Salix babylonica and Juglans ailanthifolia

机译:根系结构,物理乔木特征和土壤抗剪强度对翻倒柳柳和核桃的最大电阻弯矩的影响

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Effects of root architecture, physical tree characteristics, and soil shear strength on overturning moment due to flooding were investigated using Salix babylonica and Juglans ailanthifolia, exotic and invasive plants in Japanese rivers. Tree-pulling experiments that simulated flood action were conducted, and the resulting damage was examined to assess the effects of physical tree characteristics and root architecture on the maximum resistive bending moment (M_(max)) for overturning. In situ soil shear strength tests were conducted to measure soil strength parameters. The effects of species differences on the M_(max) were examined by analyzing root architecture. S. babylonica has a heart-root system that produces a greater overturning moment due to the strong root anchorage and the large amount of substrate that must be mobilized during overturning. J. ailanthifolia has a plate-root system that produces a smaller overturning moment. However, trees with the plate-root system may withstand overturning better due to an increased root:shoot ratio. The results of the study show that the M_(max) of a tree for overturning had significant (P < 0.05) correlations with a tree's physical characteristics, including height (H), trunk diameter at breast height (D_(bh)), D_(bh)~2, height multiplied by the second power of D_(bh) (trunk volume index H x D_(bh)~2), and root-soil plate depth (R_d), and root-soil plate radius (R_r). Considering the strategy of J. ailanthifolia to increase the root: shoot ratio for anchoring in the substrate, the trunk volume index (H x D_(bh)~2) is a better parameter than D_(bh)~2 because it indirectly involves the difference in below-ground volume and surface area. Different soil cohesion values were found at different experimental sites, and the average M_(max) for overturning each species decreased linearly with increasing soil cohesion.
机译:研究了日本河流中的柳柳和胡桃叶,外来植物和入侵植物,研究了根系结构,树木的物理特性和土壤抗剪强度对洪水引起的倾覆力矩的影响。进行了模拟洪水作用的拔树实验,并检查了造成的破坏,以评估树木的物理特性和根系结构对倾覆的最大抵抗弯矩(M_(max))的影响。进行了原位土壤抗剪强度测试,以测量土壤强度参数。通过分析根系结构检查了物种差异对M_(max)的影响。婴儿链球菌具有强大的根系系统,这是因为根系牢固,并且在倾覆过程中必须动员大量底物,从而产生较大的倾覆力矩。 J. ailanthifolia具有板根系统,产生较小的倾覆力矩。但是,由于增加了根:茎比率,具有板根系统的树木可能更好地承受倾覆。研究结果表明,用于倾覆的树木的M_(max)与树木的物理特征具有显着的相关性(P <0.05),包括身高(H),胸高的树干直径(D_(bh)),D_ (bh)〜2,高度乘以D_(bh)的第二次幂(树干体积指数H x D_(bh)〜2),根土板深度(R_d)和根土板半径(R_r) 。考虑到花叶假单胞菌增加根,芽比以锚定在基质中的策略,树干体积指数(H x D_(bh)〜2)比D_(bh)〜2是更好的参数,因为它间接地涉及到地下体积和表面积的差异。在不同的实验点发现了不同的土壤内聚力值,并且随着土壤内聚力的增加,推翻每个物种的平均M_(max)呈线性下降。

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