• ISSN 1008-505X
  • CN 11-3996/S

豫南黄褐土酸化下土壤性质变化及大豆酸害阈值评估

Changes of soil properties caused by acidification of yellow-cinnamon soil and the acid damage threshold for soybean production in southern Henan

  • 摘要:
    目的 近年来,黄褐土出现酸化现象,威胁着豫东大豆生产的效益和可持续性。我们研究了土壤酸化后,黄褐土化学和生物指标的变化以及不同酸化程度对大豆生长和产量的影响。
    方法 大豆盆栽试验在河南新乡进行。通过在土壤中添加不同量的硫酸亚铁,设置7个供试土壤初始pH值处理:3.5、3.7、4.0、4.4、4.8、5.3 (原土),以及一个添加草木灰处理(pH5.7)。在大豆出苗后的第16、25、35、45、55、71、93天测定大豆株高,收获后调查地上部生物量和籽粒产量。在大豆出苗后第25、46、68、89天及收获期,采集土壤样品分析交换态和有效态养分含量以及和相关酶活性,借助冈珀茨方程(Gompertz)对大豆籽粒产量、生物量与土壤pH进行拟合,计算了达到最高产量的95% (pH95)、50% (pH50)、5% (pH5)时的酸害阈值点,以及敏感pH值。
    结果 随着酸化程度的加剧,土壤交换性酸与铵态氮含量呈上升趋势,盐基离子、有效磷、速效钾及硝态氮等含量有所降低;与此同时,土壤多酚氧化酶活性增强,而酸性磷酸酶和过氧化氢酶活性则相应减弱。在pH6范围内,随着土壤pH值的升高,大豆生物量和籽粒产量均呈现出显著提升态势,最高增幅分别达到60.60%和59.85%。通过冈珀茨方程拟合分析,对应大豆籽粒pH95、pH50、pH5产量的土壤pH分别为5.23、3.64、2.74,敏感pH值为3.41;对应大豆生物量的土壤pH值分别为5.38、3.60、2.61,敏感pH为3.35。
    结论 豫南黄褐土的酸化会导致交换性酸与铵态氮含量升高,盐基离子、有效磷、速效钾及硝态氮含量降低,土壤有机质稳定性降低,微生物环境恶化,土壤整体保肥供肥能力下降。土壤pH值5.23是维持大豆正常生长和产量的下限,该阈值受交换性钙、土壤养分及酶活性共同调控。

     

    Abstract:
    Objectives In recent years, the acidification of yellow-cinnamon soil has posed a significant threat to the profitability and sustainability of soybean production in eastern Henan Province. This study investigated the variations in soil chemical and biological indicators following acidification and assessed the impact of varying degrees of acidification on soybean growth and yield.
    Methods A pot experiment was conducted in Xinxiang, Henan Province. Seven initial soil pH levels were established by adding different amounts of ferrous sulfate: 3.5, 3.7, 4.0, 4.4, 4.8, and 5.3 (control), along with an additional treatment using wood ash (pH 5.7). Soybean plant height was measured at 16, 25, 35, 45, 55, 71, and 93 days after emergence (DAE). Aboveground biomass and grain yield were determined at harvest. Soil samples were collected at 25, 46, 68, and 89 DAE, as well as at harvest, to analyze exchangeable nutrients, available nutrients, and related enzyme activities. The Gompertz Equation was employed to model the relationship between soybean grain yield, biomass, and soil pH. Acidification thresholds corresponding to 95% (pH95), 50% (pH50), and 5% (pH5) of maximum yield, as well as the sensitive pH value, were calculated.
    Results With increasing acidification, soil exchangeable acidity and ammonium nitrogen content increased, whereas base cations, available phosphorus, available potassium, and nitrate nitrogen decreased. Concurrently, soil polyphenol oxidase activity increased, while acid phosphatase and catalase activities declined. Within the pH range of approximately 6.0, soybean biomass and grain yield increased significantly with rising soil pH, with maximum increases of 60.60% and 59.85%, respectively. Gompertz modeling revealed that the soil pH values corresponding to pH95, pH50, and pH5 for grain yield were 5.23, 3.64, and 2.74, respectively, with a sensitive pH of 3.41. For biomass, the corresponding pH values were 5.38, 3.60, and 2.61, with a sensitive pH of 3.35.
    Conclusions Acidification of yellow-cinnamon soil in southern Henan leads to elevated exchangeable acidity and ammonium nitrogen, reduced base cations, available phosphorus, available potassium, and nitrate nitrogen, decreased soil organic matter stability, and deterioration of the microbial environment, ultimately impairing soil fertility. A soil pH of 5.23 serves as the critical threshold for maintaining normal soybean growth and yield, regulated jointly by exchangeable calcium, soil nutrients, and enzyme activities.

     

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