根系加固与干湿循环对草本-黄土复合材料强度的耦合时间效应及微观机制

IF 6.1 1区 农林科学 Q1 SOIL SCIENCE
Zhengjun Mao , Munan Wang , Guozheng Xu , Mimi Geng , Xu Ma , Guangsheng Gao , Yanshan Tian , Lidong Wang , Yu Xi
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引用次数: 0

摘要

为研究草本植物-黄土复合材料根系加固与干湿退化的耦合时间效应及其微观机制,本研究以控制栽培条件下不同生育期的苜蓿根系-黄土复合材料为研究对象。在不同的干湿循环条件下,对裸黄土和根-黄土复合材料进行了根系形态参数测量、干湿循环试验、三轴压缩试验和显微分析(CT扫描和核磁共振)。通过获得抗剪强度参数和细观结构指标,分析了干湿循环作用下根-黄土复合材料抗剪强度和细观结构特征的时间演化规律。结果表明:在同一生长阶段,苜蓿根系-黄土复合有效黏聚力显著高于平原土;在相同的干湿循环条件下,苜蓿根系-黄土复合有效黏聚力在生长阶段呈增加趋势。同一生育期紫花苜蓿根系-黄土复合有效黏聚力与干湿循环次数呈负相关。随着干湿循环次数的增加,土体微观结构(孔隙粗化、水泥水解、裂缝发展)的疲劳损伤不断增加。然而,由于根与土的力学特性不同,根土复合材料阻止了干湿循环对土基质强度的破坏。在草本植物生长过程中,干湿循环作用下根系-土壤复合体抗剪强度的时间效应是草本植物根系的稳土功能与干湿循环引起的劣化相互作用和动态协调的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The coupled temporal effects and micro-mechanism of root reinforcement and dry-wet cycles on the strength of herb-loess composite
To investigate the coupled time effects of root reinforcement and wet-dry deterioration in herbaceous plant-loess composites, as well as their microscopic mechanisms, this study focused on alfalfa root-loess composites at different growth stages cultivated under controlled conditions. The research included measuring root morphological parameters, conducting wet-dry cycling tests, and performing triaxial compression tests and microscopic analyses (CT scanning and nuclear magnetic resonance) on both bare loess and root-loess composites under various wet-dry cycling conditions. By obtaining shear strength parameters and microstructural indices, the study analyzed the temporal evolution of the shear strength and microstructural characteristics of root-loess composites under wet-dry cycling. The findings indicated that the alfalfa root-loess composite effective cohesion was significantly higher than that of the plain soil in the same growth stage. The alfalfa root-loess composite effective cohesion increased during the growth stage in the same dry-wet cycles. The alfalfa root-loess composite effective cohesion in the same growth stage was negatively correlated with the number of dry-wet cycles. The fatigue damage of the soil’s microstructure (pore coarsening, cement hydrolysis, and crack development) increased continuously with the number of dry-wet cycles. However, due to the difference in mechanical properties between roots and the soil, the root-soil composite prevented the deterioration of the soil matrix strength by the dry-wet cycles. As the herbaceous plants grow, the time effect observed in the shear strength of the root-soil composite under the action of dry-wet cycles is the result of the interaction and dynamic coordination between the soil-stabilizing function of the herbaceous plant roots and the deterioration caused by dry-wet cycles.
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来源期刊
Soil & Tillage Research
Soil & Tillage Research 农林科学-土壤科学
CiteScore
13.00
自引率
6.20%
发文量
266
审稿时长
5 months
期刊介绍: Soil & Tillage Research examines the physical, chemical and biological changes in the soil caused by tillage and field traffic. Manuscripts will be considered on aspects of soil science, physics, technology, mechanization and applied engineering for a sustainable balance among productivity, environmental quality and profitability. The following are examples of suitable topics within the scope of the journal of Soil and Tillage Research: The agricultural and biosystems engineering associated with tillage (including no-tillage, reduced-tillage and direct drilling), irrigation and drainage, crops and crop rotations, fertilization, rehabilitation of mine spoils and processes used to modify soils. Soil change effects on establishment and yield of crops, growth of plants and roots, structure and erosion of soil, cycling of carbon and nutrients, greenhouse gas emissions, leaching, runoff and other processes that affect environmental quality. Characterization or modeling of tillage and field traffic responses, soil, climate, or topographic effects, soil deformation processes, tillage tools, traction devices, energy requirements, economics, surface and subsurface water quality effects, tillage effects on weed, pest and disease control, and their interactions.
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