吴振宇, 杨阳, 周子军, 倪晓宇, 余立祥, 陆荷微, 刘斌美, 吴跃进, 王钰. 新型缓释尿素肥效与功能材料添加量的关系[J]. 中国生态农业学报(中英文), 2017, 25(5): 740-748. DOI: 10.13930/j.cnki.cjea.161006
引用本文: 吴振宇, 杨阳, 周子军, 倪晓宇, 余立祥, 陆荷微, 刘斌美, 吴跃进, 王钰. 新型缓释尿素肥效与功能材料添加量的关系[J]. 中国生态农业学报(中英文), 2017, 25(5): 740-748. DOI: 10.13930/j.cnki.cjea.161006
WU Zhenyu, YANG Yang, ZHOU Zijun, NI Xiaoyu, YU Lixiang, LU Hewei, LIU Binmei, WU Yuejin, WANG Yu. Effects of adding proportions of functional absorption materials on performance of new slow-release urea[J]. Chinese Journal of Eco-Agriculture, 2017, 25(5): 740-748. DOI: 10.13930/j.cnki.cjea.161006
Citation: WU Zhenyu, YANG Yang, ZHOU Zijun, NI Xiaoyu, YU Lixiang, LU Hewei, LIU Binmei, WU Yuejin, WANG Yu. Effects of adding proportions of functional absorption materials on performance of new slow-release urea[J]. Chinese Journal of Eco-Agriculture, 2017, 25(5): 740-748. DOI: 10.13930/j.cnki.cjea.161006

新型缓释尿素肥效与功能材料添加量的关系

Effects of adding proportions of functional absorption materials on performance of new slow-release urea

  • 摘要: 本研究利用煤汽化尿素生产工艺制备6种改性缓释尿素(功能性吸附材料添加量分别为1%、2%、3%、4%、5%和6%),通过砂柱淋溶、氨挥发气室试验和田间玉米试验,以普通尿素为对照,分析功能性吸附材料添加量与尿素缓释特征和田间肥效的关系,探讨适于玉米生产的改性缓释尿素功能性吸附材料最优添加量,为基质缓释肥的研发与农业应用提供借鉴。结果表明:缓释尿素中氮素释放特征可用一级动力学方程Nt=N0(1-e-bx)拟合,其氮素释放速率常数(b)比普通尿素下降67.4%~82.6%,累积氨挥发损失比普通尿素下降15.8%~39.3%。玉米栽培试验中,耕层土壤速效氮含量随功能性吸附材料添加量的提高呈增加趋势,同时玉米叶片中叶绿素含量和硝酸还原酶活性呈增加趋势。借助一元三次模型拟合玉米产量性状与功能性吸附材料添加量的关系发现,功能性吸附材料添加量为5.28%、4.80%、5.24%和4.76%的缓释尿素可分别获得理论最高玉米生物学产量(15 829 kg·hm-2)、地上部生物量(164.0 g·plant-1)、根系生物量(26.9 g·plant-1)和籽粒产量(6 769 kg·hm-2)。综上,基质型缓释尿素的功能性吸附材料具有较好的减少氮素淋溶和氨挥发、改善玉米氮素营养、提高玉米产量的作用,5%的添加量更有利于玉米生物量和产量提高。

     

    Abstract: Nitrogen fertilization enhances crop productivity. However, common nitrogen fertilizers have some drawbacks (e.g., high risk of nitrogen leaching and ammonia volatilization) which lead to environmental and economic problems. The development and application of new types of high-efficiency fertilizers such as matrix-based slow-release fertilizer is a possible solution to these drawbacks. Matrix-based slow-release fertilizer has the advantages of simple production process, low cost and stable performance. The added proportion of modified functional absorption materials affects the performance, effective component content and production cost of slow-release fertilizers. However, little is known about the relationship between the added proportion of functional absorption materials and performance of slow-release urea. The objective of this study was to assess the effects of added proportion of functional absorption materials on the performance of a new materials-based slow-release urea. The tested functional absorption materials were modified zeolite and bentonite by using organic polymer. The nitrogen loss characteristics and field crop performance of the functional absorption materials-based slow-release urea (SRU) were analyzed using sand leaching, ammonia emission chamber and field maize experiment methods. Experimental treatments mainly consisted of common urea (CU, as control), and six SRUs added 1%, 2%, 3%, 4%, 5% and 6% functional absorption materials, respectively. Then nitrogen release characteristics of urea were described using the first-order kinetic model. In field conditions, soil in the plough layer (0-20 cm) and ear leaves of maize were sampled at silking stage for measurement of soil available nitrogen concentration, leaf chlorophyll content and nitrate reductase activity. The optimal added proportion of functional absorption materials in slow-release urea was calculated using a polynomial model. Results showed that the highest nitrogen leaching ratio occurred at the first leaching-i.e., 81.6% in common urea treatment and 27.7%-42.8% in SRU treatments. The cumulative nitrogen leaching ratio in common urea treatment reached 100% at the sixth leaching, while that in SRU treatments reached 90% only at the twelfth leaching. Slow-release urea with 6% functional absorption materials had the best performance of reducing nitrogen leaching. The nitrogen release characteristics was fitted by the first-order kinetic equation-Nt=N0(1-e-bx), where Nt is cumulative nitrogen release ratio, N0 is the maximum cumulative nitrogen release ratio, b is nitrogen release ratio constant, and x is the number of leaching. Nitrogen release ratio constant (b) of SRU treatments was 67.4%-82.6% lower than that of CU treatment, while cumulative ammonia emission of SRU treatments was 15.8%-39.3% lower than that of CU. Available nitrogen content in the plough layer of maize field increased with increasing proportion of functional absorption materials, which also increased leaf chlorophyll content and nitrate reductase activity in maize. SRU increased maize biomass and grain yield. Calculation based on a polynomial model showed that the highest plant biomass (15 829 kg·hm-2), shoot biomass (164.0 g·plant-1), root biomass (26.9 g·plant-1) and grain yield (6 769 kg·hm-2) were obtained in SRU treatments with 5.28%, 4.80%, 5.24% and 4.76% functional absorption materials, respectively. Overall, slow-release urea with 5% functional absorption materials had better performance in terms of nitrogen loss reduction via leaching and ammonia emission reduction, maize nitrogen nutrient improvement, and then maize biomass and grain yield increase.

     

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