聚乙烯微塑料对土壤物理性质的影响:粒径与含量的交互效应
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塔里木大学

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国家自然科学基金项目(面上项目,重点项目,重大项目)


Effect of Polyethylene Microplastics on Soil Physical Properties: The Interactive Effect of Particle Size and Content
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Tarim university

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The National Natural Science Foundation of China (General Program, Key Program, Major Research Plan)

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    摘要:

    新疆地膜的广泛使用导致农田土壤中富集大量微塑料,使土壤理化性质发生改变,从而影响作物产量。本研究模拟农田微塑料残留环境,系统探索聚乙烯微塑料粒径与含量对土壤物理性质的交互效应。通过设计不同微塑料含量、粒径的处理试验组,并将其指标与空白对照组进行比较,评价了微塑料对土壤物理性能的影响。结果表明,聚乙烯微塑料通过粒径-含量协同作用显著改变土壤热动力学、结构稳定性及水分运移特性。在温度调控方面,微塑料通过增加地表粗糙度及孔隙度降低热导率,使5 cm土壤层日平均温度最高提升0.97 ℃(1 700 μm-1%处理),且热效应随深度衰减(25 cm降幅0.67~0.93 ℃);在结构重塑方面,大粒径(≥550 μm)与高含量(≥0.25%)处理显著降低容重,提升孔隙度(1 700 μm处理组达55.62%~59.41%),并通过物理吸附促进大团聚体(>0.2 mm)形成(比例提升93%,平均重量直径达3.70 mm);水分运移特性显示,低含量(0.1%~0.25%)下大粒径微塑料(≥550 μm)因形成毫米级裂隙使失水速率较48 μm处理高1.2倍,而高含量(1%)时粒径效应被覆盖。相关性分析进一步揭示土壤参数非线性耦合机制,大团聚体比例与平均粒径呈极显著正相关,容重与孔隙度呈负相关。研究指出,当粒径>550 μm、含量>0.25%时,微塑料通过重构孔隙网络及团聚体架桥结构,可能引发土壤抗侵蚀能力退化及水热耦合失衡等生态风险。未来需结合微生物功能与作物生理研究,量化微塑料污染的级联效应,为农田污染治理及风险评估提供跨尺度理论支撑。

    Abstract:

    【Objective】The extensive use of plastic film in Xinjiang has led to the accumulation of a large amount of microplastics (MPs) in farmland soil, causing changes in soil physical and chemical properties and affecting crop yields. 【Method】In this study, the interaction effect of the particle size and content of polyethylene microplastics (PE-MPs) on soil physical properties was systematically investigated by simulating the residual environment of microplastics in farmland. By designing different microplastic content and particle size treatment test groups and comparing their indicators with the blank control group, the impact of microplastics on soil physical properties was evaluated. 【Result】The results showed that PE-MPs significantly changed soil thermal dynamics, structural stability and water transport characteristics through size-content synergism: In terms of temperature control, microplastics reduce thermal conductivity by increasing surface roughness and porosity, and increase the daily average temperature of 5 cm soil layer by 0.97 ℃ (1 700 μm-1% treatment), and the thermal effect decreases with depth (0.67–0.93 ℃ decrease with 25 cm). In terms of structural remodeling, the treatments of large particle size (≥550 μm) and high content (≥0.25%) significantly reduced the bulk density, increased the porosity (55.62%-59.41% in the 1 700 μm treatment group), and promoted the formation of large aggregates (>0.2 mm) by physical adsorption (93% increase in proportion, mean weight diameter up to 3.70 mm); The water transport characteristics show that the water loss rate of large particle size microplastics (≥550 μm) is 1.2 times higher than that of 48 μm treatment due to the formation of millimeter cracks at low content (0.1%-0.25%), and the particle size effect is covered at high content (1%). Correlation analysis further revealed the nonlinear coupling mechanism of soil parameters. Correlation analysis further reveals the nonlinear coupling mechanism of soil parameters, with a highly significant positive correlation between the proportion of large aggregates and average particle size, and a negative correlation between bulk density and porosity.【Conclusion】It is pointed out that when the particle size is >550 μm and the content is >0.25%, microplastics may lead to ecological risks such as soil erosion resistance degradation and hydrothermal coupling imbalance by reconstructing pore network and aggregate bridging structure. In the future, it is necessary to combine microbial function and crop physiology studies to quantify the cascade effect of microplastic pollution, and provide cross-scale theoretical support for farmland pollution control and risk assessment.

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练小晴,张树峰,杨潇,胡灿,王旭峰,汪再斌.聚乙烯微塑料对土壤物理性质的影响:粒径与含量的交互效应[J].土壤学报,DOI:10.11766/trxb202412240508,[待发表]
Lian xiaoqing, Zhang Shufeng, Yang Xiao, Hu Can, Wang Xufeng, Wang Zaibin. Effect of Polyethylene Microplastics on Soil Physical Properties: The Interactive Effect of Particle Size and Content[J]. Acta Pedologica Sinica, DOI:10.11766/trxb202412240508,[In Press]

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  • 收稿日期:2024-12-24
  • 最后修改日期:2025-06-14
  • 录用日期:2025-08-18
  • 在线发布日期: 2025-09-05
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