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蚯蚓和植物根系对土壤的穿透——压实土壤生物扰动的机械能学

Soil Penetration by Earthworms and Plant Roots--Mechanical Energetics of Bioturbation of Compacted Soils.

作者信息

Ruiz Siul, Or Dani, Schymanski Stanislaus J

机构信息

Department of Environmental Systems Science, ETHZ, Zurich, Switzerland.

出版信息

PLoS One. 2015 Jun 18;10(6):e0128914. doi: 10.1371/journal.pone.0128914. eCollection 2015.

Abstract

We quantify mechanical processes common to soil penetration by earthworms and growing plant roots, including the energetic requirements for soil plastic displacement. The basic mechanical model considers cavity expansion into a plastic wet soil involving wedging by root tips or earthworms via cone-like penetration followed by cavity expansion due to pressurized earthworm hydroskeleton or root radial growth. The mechanical stresses and resulting soil strains determine the mechanical energy required for bioturbation under different soil hydro-mechanical conditions for a realistic range of root/earthworm geometries. Modeling results suggest that higher soil water content and reduced clay content reduce the strain energy required for soil penetration. The critical earthworm or root pressure increases with increased diameter of root or earthworm, however, results are insensitive to the cone apex (shape of the tip). The invested mechanical energy per unit length increase with increasing earthworm and plant root diameters, whereas mechanical energy per unit of displaced soil volume decreases with larger diameters. The study provides a quantitative framework for estimating energy requirements for soil penetration work done by earthworms and plant roots, and delineates intrinsic and external mechanical limits for bioturbation processes. Estimated energy requirements for earthworm biopore networks are linked to consumption of soil organic matter and suggest that earthworm populations are likely to consume a significant fraction of ecosystem net primary production to sustain their subterranean activities.

摘要

我们对蚯蚓和生长中的植物根系穿透土壤的常见机械过程进行了量化,包括土壤塑性位移所需的能量。基本力学模型考虑了在塑性湿土中的空洞扩展,这涉及到根尖或蚯蚓通过类似圆锥体的穿透进行楔入,随后由于蚯蚓液压骨骼的压力或根系径向生长而导致空洞扩展。机械应力和由此产生的土壤应变决定了在不同土壤流体力学条件下,对于实际范围内的根/蚯蚓几何形状进行生物扰动所需的机械能。建模结果表明,较高的土壤含水量和较低的粘土含量会降低土壤穿透所需的应变能。临界蚯蚓或根系压力随着根或蚯蚓直径的增加而增加,然而,结果对圆锥顶点(尖端形状)不敏感。单位长度投入的机械能随着蚯蚓和植物根系直径的增加而增加,而单位土壤位移体积的机械能随着直径的增大而减小。该研究为估算蚯蚓和植物根系进行土壤穿透工作所需的能量提供了一个定量框架,并描绘了生物扰动过程的内在和外在机械限制。对蚯蚓生物孔隙网络的能量需求估计与土壤有机质的消耗有关,这表明蚯蚓种群可能会消耗生态系统净初级生产力的很大一部分来维持其地下活动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffcd/4472233/341f75be4a41/pone.0128914.g001.jpg

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