微藻肥对水土保持和土壤改良的影响盆栽番茄的产量和质量

Agronomy Pub Date : 2024-09-15 DOI:10.3390/agronomy14092102
Chao Li, Yaqi Liang, Qingfeng Miao, Xiang Ji, Pengcheng Duan, Dong Quan
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引用次数: 0

摘要

我们的目的是研究微藻肥对土壤养分、水分保持、作物产量和品质的影响,同时确定微藻肥与化肥的最佳比例。我们以 "新鸥帆 9 号 "番茄为试验对象,进行了四种不同处理的盆栽试验:100% 化肥(CK)对照、T1(25% 微藻肥 + 75% 普通化肥)、T2(75% 微藻肥 + 25% 普通化肥)和 T3(100% 微藻肥)。结果表明,增施微藻肥提高了土壤有机质、铵态氮、可利用磷和钾的含量。T3 的改善幅度最大,其次是 T2。在施用化肥的同时施用微藻肥,能显著增加番茄的茎围、株高和产量。同时,微藻肥能有效调节叶片气孔导度,促进番茄叶片呼吸。随着气孔导度的增加,所有处理的蒸腾速率和净光合速率都有所提高,细胞间二氧化碳浓度随之下降,其中 T2 表现最好。在所有处理中,T2 处理的单株产量最高(0.630 千克),其次是 T3(0.521 千克)。这是因为微藻肥促进了光合产物向果实的分配,提高了番茄的产量和质量。此外,微藻肥还能提高果实中可溶性糖、可溶性蛋白质、维生素 C 和番茄红素的含量,同时降低硝酸盐含量。与对照组 CK 相比,T2 可溶性糖、维生素和番茄红素的含量分别增加了 26.74%、39.29% 和 158.31%。微藻肥还有助于改善土壤水热条件,提高番茄的水分利用效率。与 CK 相比,T2 处理的水分利用率提高了 54.05%。相关性分析表明,水肥因素对番茄产量有显著影响,相关性超过 70%。净光合作用和蒸腾速率对果实品质有显著影响,相关性超过 80%。通过施用微藻肥,可以有效提高水肥利用效率,从而达到节水提质的目的。因此,通过综合分析,采用成员函数法对土壤环境、作物产量、果实品质和水分利用效率等指标进行分析,得出 T2 为最优施肥处理的结论。该研究为微藻生物肥料技术在北方寒冷干旱地区番茄等蔬菜栽培中的应用提供了理论支持。
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The Influence of Microalgae Fertilizer on Soil Water Conservation and Soil Improvement: Yield and Quality of Potted Tomatoes
We aim to study the impact of microalgae fertilizer on soil nutrients, water conservation and crop yield and quality while also determining the optimal ratio of microalgae fertilizer to chemical fertilizer. Using “Xinoufen No.9” tomatoes as the test subject, we conducted pot experiments with four different treatments: control with 100% chemical fertilizer (CK), T1 (25% microalgae fertilizer + 75% regular chemical fertilizer), T2 (75% microalgae fertilizer + 25% regular chemical fertilizer) and T3 (100% microalgae fertilizer). The results show that an increased application of microalgae fertilizer enhanced the soil organic matter, ammonium nitrogen, available phosphorus and potassium content. T3 showed the most improvement followed by T2. The co-application of microalgae fertilizer with chemical fertilizer can significantly increase the stem girth, plant height and yield of tomatoes. At the same time, microalgae fertilizer effectively regulates leaf stomatal conductance, promoting tomato leaf respiration. As the stomatal conductance increases, the transpiration rate and net photosynthesis rate of all treatments improve, followed by a decline in intercellular CO2 concentration, with T2 exhibiting the best performance. Among all treatments, T2 treatment yielded the highest per-plant production (0.630 kg), followed by T3 (0.521 kg). This is because the microalgae fertilizer promotes the distribution of photosynthetic products to the fruit, enhancing the yield and quality of tomatoes. Additionally, the microalgae fertilizer also increases the content of soluble sugars, soluble protein, vitamin C and lycopene in the fruit while reducing the nitrate content. Compared to the control group CK, T2 increases the content of soluble sugars, vitamins and lycopene by 26.74%, 39.29% and 158.31%, respectively. Microalgae fertilizer also helps to improve soil water and thermal conditions, enhancing the water-use efficiency of tomatoes. Compared to CK, the water-use efficiency of T2 treatment increased by 54.05%. Correlation analysis indicates that water and fertilizer factors significantly affect tomato yield, with a correlation exceeding 70%. The net photosynthesis and transpiration rates significantly influence fruit quality, with correlations above 80%. By applying microalgae fertilizer, the efficiency of water and fertilizer use can be effectively improved, thus achieving the goal of water conservation and quality enhancement. Therefore, through comprehensive analysis, using the membership function method of indicators such as soil environment, crop yield, fruit quality and water-use efficiency, it is concluded that T2 is the optimal fertilization treatment. This study provides theoretical support for the application of microalgae biofertilizer technology in the cultivation of tomatoes and other vegetables in the northern, cold and arid regions.
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