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基于多重分形方法探究接菌对排土场重构土层土壤孔隙发育的影响

Influence of inoculation on pore development of reconstructed soil layers in dump based on multifractal method

  • 摘要: 我国西部地区水资源匮乏,随着微生物复垦技术在矿区排土场应用,取得初步生态效应。土壤孔隙是影响土壤水分运移与保蓄的关键因素,传统的测量方法未能对土壤孔隙特征进行定量表征。研究基于土壤孔隙三维重构与多重分形方法,探究接菌条件下排土场重构土层土壤孔隙发育特征,采用室内土柱模拟试验,土柱为3层结构(表土层−涵水层−隔水层),设置丛植菌根真菌(Arbuscular Mycorrhizal Fungi,AMF)接菌与对照(CK)2种处理,供试植物为紫穗槐。结果表明:土壤孔隙具有多重分形特征,其分析结果与土壤孔隙率计算结果规律相同,证明多重分形方法可对重构土层土壤孔隙进行量化研究。整个土层土壤孔隙多重分形参数D(0)、D(1)、ΔD、Δα均表现为接菌处理大于对照,表明接菌处理土壤孔隙状况得到改善,土壤孔隙分布趋于复杂,变异程度较高且孔隙分布不均匀。在表土层,接菌处理下孔隙体积、孔隙直径、喉道直径与喉道长度的均值分别提高了137%、36%、65%、23%,在涵水层分别提高了84%、14%、54%、13%,表明接菌促进了各土层内连通孔隙的发育。多重分形参数D(1)、ΔD及土壤孔隙平均喉道长度对于紫穗槐生物量的贡献解释度较高,是影响紫穗槐生长的关键因子。因此,多重分形理论结合土壤孔隙球棍模型可以对孔隙结构的发育状况进行精细地量化,且能作为检测西部露天煤矿区重构土层排土场土壤孔隙发育状况的工具,为检测排土场土壤结构提供技术支持。

     

    Abstract: Water resources are scarce in western China, where microbial reclamation technology is increasingly applied to mine dumps and preliminary ecological benefits are achieved. Soil pores are a key factor affecting soil water transport and retention, whereas conventional measurement methods are limited in quantitatively characterizing soil pore features. Based on three-dimensional reconstruction of soil pores and the multifractal method, the development characteristics of soil pores in reconstructed soil layers of a dump under inoculation conditions are investigated using a laboratory soil-column simulation experiment. The soil column consists of three layers: a topsoil layer, a water-retaining layer, and a water-barrier layer. Two treatments, inoculation with arbuscular mycorrhizal fungi (AMF) and a control (CK), are established, and Amorpha fruticosa is used as the test plant. The results show that soil pores exhibit multifractal characteristics, and the results of multifractal characterization are consistent with the variation in soil porosity, indicating that the multifractal method can be used for the quantitative characterization of soil pores in reconstructed soil layers. Across the entire soil profile, the multifractal parameters D(0), D(1), ΔD, and Δα are all higher under the inoculation treatment than under the control, indicating that soil pore conditions are improved by inoculation and that pore distribution becomes more complex, more heterogeneous, and less uniform. In the topsoil layer, mean pore volume, mean pore diameter, mean throat diameter, and mean throat length are increased by 137%, 36%, 65%, and 23%, respectively, under the inoculation treatment; in the water-retaining layer, the corresponding increases are 84%, 14%, 54%, and 13%, respectively. These results indicate that the development of connected pores in different soil layers is promoted by inoculation. The multifractal parameters D(1) and ΔD, together with mean throat length, show relatively high explanatory contributions to Amorpha fruticosa biomass and are identified as key factors affecting its growth. Therefore, the multifractal method combined with the soil pore network model enables refined quantification of pore-structure development and can be used to evaluate soil pore development in reconstructed soil layers of open-pit coal mine dumps in western China, thereby providing technical support for the assessment of soil structure in mine dumps.

     

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