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Nitrogen and Phosphorus Surplus and Soil Nitrate Nitrogen Accumulation in Typical Rice-Vegetable Rotation and Banana Garden in Hainan
Scientia Agricultura Sinica 2023, 56(15): 2954-2965
Published: 01 August 2023
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【Objective】

Hainan is the province with a large area of rice-vegetable rotation and banana cultivation in China, but the nitrogen (N) and phosphorus (P) fertilizers input by farmers far exceed the nutrient requirements of crops, which may have a negative impact on Hainan’s ecological environment. The aim of this study was to investigate the N and P surpluses, and soil nitrate accumulation in typical cropping systems in Hainan, thus to provide scientific basis for evaluating nutrient losses and their impacts and achieving sustainable nutrient management.

【Method】

In 2021-2022, a typical area for rice-vegetable rotation and banana cultivation in Chengmai, Hainan, was selected as the research area and 20 rice-vegetable rotation plots and 15 banana orchards were identified. The information of chemical and organic fertilizer application, straw returning method and amount of above fields were obtained by real-time record of farmers’ agricultural activities, crop biomass and the nutrient content were determined at crop harvest, and other nutrient input include nutrient deposition and biological N fixation were obtained by literature survey. Five banana orchards were selected and soil was collected by soil auger method and nitrate N accumulation was measured in the 0-400 cm soil profile.

【Result】

The N and P fertilizer inputs to the rice-vegetable rotation were 1 308 kg N·hm-2 (975 kg N·hm-2 of chemical and 333 kg N·hm-2 of organic fertilizer) and 515 kg P·hm-2 (385 kg P·hm-2 of chemical and 130 kg P·hm-2 of organic fertilizer); the aboveground N and P uptake of the crop were 248 kg N·hm-2 and 48 kg P·hm-2; the surplus of N and P in rice and vegetable rotation was 1 196 kg N·hm-2 and 484 kg P·hm-2. The N and P fertilizer inputs to banana orchards were 1 340 kg N·hm-2 (1 293 kg N·hm-2 of chemical and 47 kg N·hm-2 of organic fertilizer) and 447 kg P·hm-2 (442 kg P·hm-2 of chemical and 5 kg P·hm-2 of organic fertilizer); the aboveground N and P uptake were 242 kg N·hm-2 and 23 kg P·hm-2; the banana N and P surpluses were 1 271 kg N·hm-2 and 435 kg P·hm-2. The nitrate-N accumulation in the 0-400 cm soil profile of banana orchards was 1 131 kg N·hm-2.

【Conclusion】

Excessive application of N and P fertilizers has led to the large nutrient surplus in typical soil-crop systems in Hainan, and large amount of nitrate-N has accumulated in banana orchard in the deep soil layer. Hainan produces typical high-value fruit and vegetables at the cost of large nutrient losses and negative environmental impacts, optimized nutrient management should be implemented to ensure its environmental safety.

Issue
Spatial Differences and Driving Factors of Aboveground Nitrogen Uptake in Per Hundred Kilograms Grain of Maize in China
Scientia Agricultura Sinica 2023, 56(20): 3996-4009
Published: 16 October 2023
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Downloads:10
【Objective】

We aim to quantify aboveground nitrogen (N) uptake in per hundred kilograms grain (N100) of maize in different agro-ecological zones at different yield levels in China, and analyze the effects of climate, soil, variety and N fertilization on N100 of maize, thus to provide a scientific basis for determining rational N fertilizer rate.

【Method】

We divided Chinese cropland into six major regions, i.e., northeast, northwest, North China Plain, middle and lower Yangtze River, southwest, and southeast, and collected 349 peer-reviewed papers published during 1980-2022 to analyze the spatial variation of N100 and its changes at different yield levels, and compared the differences in calculated theoretical N rate between constant and region-specific N100. The effects of climate, soil and fertilization on N100 were analyzed using Pearson correlation coefficient, Random forest model and Meta-analysis, to reveal the causes of spatial variation in N100.

【Result】

Under the optimized N management, N100 of spring maize was significantly lower than that of summer maize which were 2.21 and 2.46, respectively; and there were significant differences in N100 of maize among different agro-ecological zones, which were 2.19 (Northeast spring maize), 2.12 (Northwest spring maize), 2.54 (Northwest summer maize), 2.45 (North China Plain summer maize), 2.77 (Middle and Lower Yangtze River spring maize), 2.38 (Middle and Lower Yangtze River summer maize), and 2.39 (Southwestern maize zone), respectively. The difference between calculated the theoretical N rate based on the national average N100 (2.34) and that based on regional-specific N100 was -22-31 kg N·hm-2. Aboveground N uptake, yield, and mean annual temperature were the most important factors affecting N100. The N100 showed a significant quadratic decrease with increasing yield (P<0.01), and grain yield was a good predictor of N100. Varieties significantly affected maize N100, the N100 of common Chinese maize varieties Zhengdan 958, Xianyu 335, and Denghai 605 are 2.42, 2.12, and 2.39, respectively. New varieties had a significant lower N100 than old varieties. The application of N fertilizer significantly increased the N100 of maize, and the greatest increase effect of N100 caused by N fertilizer application was observed at 200-300 kg N·hm-2. Once application of slow and controlled release fertilizer, deep placement, reduction of the ratio of basal N fertilization and increasing the frequency of N fertilizer application all significantly increased N100.

【Conclusion】

When calculate the rational N fertilization, we need to considerate the regional differences of N100, thus to obtain accurate fertilizer N rate, and the N100 of maize is mainly driven by variation in aboveground N uptake, yield and mean annual temperature.

Issue
The coupled effects of various irrigation schedules and split nitrogen fertilization modes on post-anthesis grain weight variation, yield, and grain quality of drip-irrigated winter wheat (Triticum aestivum L.) in the North China Plain
Journal of Integrative Agriculture (JIA) 2025, 24(6): 2123-2137
Published: 03 January 2024
Abstract PDF (1.7 MB) Collect
Downloads:11

Irrigation methods and nitrogen (N) fertilization modes have complicated impacts on wheat physiology, growth, and development, leading to the regulation of wheat grain yield and quality. However, the optimal water-N combination for drip-irrigated winter wheat remains unclear. A two-year field study was conducted to evaluate the influences of various N-fertigation and water regimes on wheat post-anthesis grain weight variation, yield, grain NPK content, and grain quality. The two irrigation quotas were I45 (irrigation when crop evapotranspiration reduced by effective rainfall (ETa-P) reaches 45 mm) and I30 (irrigation when ETa-P reaches 30 mm), while the six N application rates were N0–100 (100% at jointing/booting), N25–75 (25% at sowing and 75% at jointing/booting), N50–50 (50% at sowing and 50% at jointing/booting), N75–25 (75% at sowing and 25% at jointing/booting), N100–0 (100% at sowing), and SRF100 (100% of slow-release fertilizer at sowing). The experimental findings showed that post-anthesis grain weight variation, grain yield, grain NPK content, and grain quality were all markedly influenced by the various irrigation schedules and N-fertilization modes. The N50–50 treatment was more beneficial for winter wheat post-anthesis grain weight variation than the N100–0 and N0–100 treatments under the two irrigation quotas and during the two seasons. The highest grain yields of 9.72 and 9.94 (t ha−1) were obtained with the I45N50–50 treatment in 2020–2021 and 2021–2022, respectively. The grain crude protein was higher in the I45SRF100 treatment during the two seasons. The I45N100–0 combination significantly (P<0.05) enhanced the content of grain total starch by 7.30 and 8.23% compared with the I45N0–100 and I30N0–100 treatments, respectively, during the 2021–2021 season. The I45N100–0 treatment significantly (P<0.05) enhanced the content of grain total starch concentration by 7.77, 7.62 and 7.88% compared with the I45N0–100, I30N0–100, and I30N25–75 treatments, respectively, in the 2021–2022 season. The principal component analysis (PCA) indicated that the N50–50 split N-fertigation mode could be the optimal choice for farmers during winter wheat production via drip irrigation.

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