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Linking saturated hydraulic conductivity and air permeability to the characteristics of biopores derived from X-ray computed tomography

机译:将饱和液压导电性和透气性与X射线计算机断层扫描的生物群体的特征连接

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The different types of soil macropores (e.g., biopores and non-biopores) vary in the conductivity of water or air due to the difference in the 3D pore characteristics. The objectives of this study were to reveal which types of macropores and which macropore characteristics played the most important roles in regulating water or air flow. Intact soil columns sampled from the subsoil of a long-term fertilization experiment were scanned by medical X-ray computed tomography (CT), and subsequently, saturated hydraulic conductivity (K-s) and air permeability at -12 cm water potential (K-a12) were measured. The 3D characteristics of macropores were then analyzed with image analysis. The biopores and the percolating biopores that connected the top and the bottom of a soil column were separated for the biopore-dominated samples (with percolating biopores) and their 3D characteristics were also quantified. Our results showed that the mean macropore diameter of the limiting layer (MDLL) presented the best relationships with K(s )and K-a12 compared with the other macropore characteristics for all the samples. The biopores and percolating biopores contributed 27.8-74.5% and 3.26-64.4% of the volume of total macropores, respectively, for the biopore-dominated samples. The hydraulic radius, mean diameter, compactness, global and local connectivities, and MDLL of biopores, especially those of percolating biopores, were generally larger than those of total macropores. The global connectivity (Gamma) of biopores performed very well for estimating K(s )and K-a12. The MDLL of percolating biopores could predict K-s much better than the MDLL of biopores and total macropores. Moreover, the performance of MDLL for estimating K-a12 was as good as the MDLL of biopores but was much better than the MDLL of total macropores. The findings of this study reveal that the MDLL is a more useful parameter in estimating saturated hydraulic conductivity and air permeability at low water potential than th
机译:由于3D孔隙特性的差异,不同类型的土壤大孔(例如,Biopores和非生物团)在水或空气的导电中变化。本研究的目的是揭示哪种类型的大孔和大孔特性在调节水或空气流动中发挥了最重要的作用。通过医用X射线计算断层扫描(CT)扫描从长期施肥实验的底层采样的完整的土壤柱,随后,饱和液压导电性(Ks)和-12cm水电位(K-A12)的透气性测量了。然后用图像分析分析Macropores的3D特征。分离连接顶部和土壤柱底部的生物团和渗透生物孔,用于生物植物主导的样品(用渗透生物团),并且还量化它们的3D特性。我们的研究结果表明,与所有样品的其他大孔特性相比,限制层(MDLL)的平均大孔直径呈现了与K(S)和K-A12的最佳关系。生物团和渗透生物团分别为生物植物主导的样品分别占总大孔体积的27.8-74.5%和3.26-64.4%。液压半径,平均直径,紧凑性,全球和局部连接,以及Biopores的MDLL,尤其是渗透生物团的MDLL通常大于总麦克风的渗透性。用于估计k(s)和k-a12,生物团的全局连接(γ)表现得非常好。渗透生物团的MDLL可以预测k-s比生物团的MD11好得多,总麦克波雷更好。此外,用于估计K-A12的MDLL的性能与生物团的MDLL一样好,但比总宏植物的MDLL好得多。该研究的发现表明,MDLL是估计饱和液压导电性和低水位潜力的透气性的参数。

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