高级检索

    煤矸石复配比例对基质栽培功能及植株生长的影响

    Effects of Coal Gangue Mixing Proportion on Substrate Cultivation Function and Plant Growth

    • 摘要: 将煤矸石配制为植株栽培基质是实现其资源化利用的有效途径,但高比例煤矸石基质在连续植株种植过程中的持水性、力学性质及养分供应演变尚不明确。本研究设置6种煤矸石–蛭石–浮石复配方案(T1~T6,煤矸石体积占比0%~100%),开展连续四期种植试验(第一期高粱,第二~四期黑麦草),评估基质理化性质与植物生长响应。结果表明:随煤矸石比例增加,植物生物量显著降低,高粱及黑麦草总干重分别由T1的15.33 g和18.37~20.61 g降至T6的4.41 g和2.92~3.46 g;菌根真菌接种可有效促进植物生长。沿T1~T6梯度,基质饱和持水量由150.00%降至29.14%,而首期后抗剪强度由54.78 kPa增至131.75 kPa。纯煤矸石基质经四期种植后,pH由9.23降至7.04,抗剪强度降至100.17 kPa;碱解氮和速效磷分别下降84.95%和73.13%,而速效钾增至348.63 mg/kg。研究表明,煤矸石基质的适用性取决于持水、力学与养分的协同平衡,基质设计应关注连续种植中的动态性能而非单一周期表现,高比例利用须以维持基础植物支撑力为前提。本研究为煤矸石在无土栽培中的长效安全利用与生态基质精准调控提供理论依据与数据支撑。

       

      Abstract: Coal gangue, a major solid waste generated from coal mining and processing, has been increasingly explored as a component of cultivation substrates. Most existing evaluations focus on a single planting cycle, leaving it unclear whether substrates with high gangue proportions can maintain adequate water retention, mechanical stability, and nutrient supply across repeated cropping. To address this gap, this study evaluated six coal gangue–vermiculite–pumice blends (T1–T6) across four consecutive planting cycles. Coal gangue was sieved to ≤2 mm, while vermiculite and pumice were sieved to 3–6 mm; the gangue volume fraction ranged from 0% to 100%, with the remaining two components adjusted in equal proportions. Sorghum was cultivated in the first cycle, followed by ryegrass in cycles 2–4. Each treatment included four biological replicates inoculated with the arbuscular mycorrhizal fungus Rhizophagus irregularis and one uninoculated control. Plant dry weight, saturated water-holding capacity, and shear strength were determined for all treatments, whereas pH, electrical conductivity, alkali-hydrolyzable nitrogen, available phosphorus, and available potassium were additionally measured in the pure coal gangue substrate. Plant biomass decreased continuously with increasing coal gangue content. Sorghum total dry weight dropped from 15.33 g in T1 to 4.41 g in T6, and cumulative ryegrass total dry weight over cycles 2–4 reached 18.37–20.61 g in T1 but only 2.92–3.46 g in T6. Inoculated treatments generally produced higher biomass than the uninoculated control at equivalent gangue contents, although the overall declining trend persisted. Along the T1–T6 gradient, saturated water-holding capacity decreased from 150.00% to 29.14%, whereas shear strength under 100 kPa normal stress increased from 54.78 to 131.75 kPa after the first cycle. In the pure coal gangue substrate, pH dropped from 9.23 before planting to 7.04 after the fourth cycle, and shear strength decreased from 131.75 to 100.17 kPa between cycles 1 and 4. Alkali-hydrolyzable nitrogen and available phosphorus declined by 84.95% and 73.13%, respectively, whereas available potassium increased from 137.00 to 348.63 mg/kg. The suitability of coal gangue–based substrates for crop cultivation depends on a coordinated balance among water retention, mechanical properties, and nutrient supply, rather than on the gangue proportion alone. Formulation design should account for performance dynamics during successive cropping rather than relying on single-cycle outcomes; higher gangue utilization is justified only when the substrate maintains sufficient plant-supporting capacity. Three limitations should be noted: (i) because the proportions of all three components varied simultaneously, differences among formulations cannot be attributed solely to independent coal gangue effects; (ii) the uninoculated control lacked biological replication, rendering inoculation effects descriptive; and (iii) the absence of an unplanted control prevents isolating plant-driven effects from temporal substrate weathering. This study provides a theoretical basis and data support for the long-term, safe utilization of coal gangue in soilless cultivation and the precise regulation of ecological substrates.

       

    /

    返回文章
    返回