Turn off MathJax
Article Contents
YANG Q R, LI L T, ZHANG X, MIAO Y H, SHENG K, ZHANG D, WANG Y L. Effect of nitrogen application on yield, quality and light temperature physiological characteristics of summer peanut[J]. Chinese Journal of Eco-Agriculture, 2024, 32(0): 1−13 doi: 10.12357/cjea.20230568
Citation: YANG Q R, LI L T, ZHANG X, MIAO Y H, SHENG K, ZHANG D, WANG Y L. Effect of nitrogen application on yield, quality and light temperature physiological characteristics of summer peanut[J]. Chinese Journal of Eco-Agriculture, 2024, 32(0): 1−13 doi: 10.12357/cjea.20230568

Effect of nitrogen application on yield, quality and light temperature physiological characteristics of summer peanut

doi: 10.12357/cjea.20230568
Funds:  This study was supported by National Key Research and Development Program of China (2021YFD1901001).
More Information
  • Corresponding author: E-mail: wangyilunrl@henau.edu.cn
  • Received Date: 2023-09-14
  • Accepted Date: 2023-11-27
  • Rev Recd Date: 2023-11-23
  • Available Online: 2023-12-04
  • Unreasonable application of nitrogen fertilizer leads to resource waste and affects the normal growth, development, yield, and quality of peanuts. The study aimed to investigate the impact of varying nitrogen application rates on the yield, quality, nitrogen accumulation dynamics, physiological characteristics to light and temperature, and root morphology of summer peanuts. The findings aim to offer insights for the efficient and scientific application of nitrogen fertilizers in peanuts. A field experiment on nitrogen fertilizer application was conducted in Wen County, Jiaozuo City, Henan Province, from 2021 to 2022. The tested variety was ‘Yuhua 22’ with five nitrogen fertilizer treatments of 0, 45, 90, 135, and 180 kg·hm−2. The study assessed the yield and quality indicators of summer peanut pods, at the mature stage, and the soil-plant analysis development (SPAD) value, canopy photosynthetic effective radiation, and canopy temperature were conducted at various stages namely the seedling, flowering-pegging, pod-setting, and pod-filling stages. Plant samples were collected to analyze nitrogen accumulation and root morphology. With an increasing nitrogen application rate, the peanut pod yield could be fitted by “linear + platform trends” in both years, with suitable nitrogen application rates of 150 and 113 kg·hm−2, respectively. Nitrogen application increased the yield by an average of 18.86%. The crude protein, oil, and amino acid contents in grain at maturity first increased and then stabilized with an increasing nitrogen application rate. Compared to zero nitrogen application, the application of nitrogen led to notable effects, with average increases of 7.51%, 3.10%, and 10.08%, in crude protein, oil, and amino acid contents in grains respectively. The nitrogen accumulation amount of summer peanuts was fitted using nonlinear regression using a logistic equation. It was concluded that nitrogen application could increase the maximum and average accumulation rates, accelerate the rapid accumulation period, and promote the occurrence of peak absorption, thereby increasing the maximum nitrogen accumulation in peanuts and promoting sustainable and rapid growth of summer peanuts. The maximum, minimum, and mean canopy temperatures at each growth stage firstly decreased then increased with increasing nitrogen application rate; the SPAD value of peanut leaves and the photosynthetic active radiation and components of the canopy significantly increased with nitrogen application at 135 kg·hm−2. The total root length, total root surface area, total root volume, and average root diameter of peanuts increased by 41.03%, 22.36%, 38.71%, and 12.19% at each growth stage after nitrogen application. The nitrogen fertilizer utilization efficiency was the highest under the nitrogen application rate of 135 kg·hm−2. Meanwhile, increasing the nitrogen application rate gradually decreased agricultural efficiency and partial productivity. Reasonable nitrogen application can significantly increase the yield and quality of summer peanuts, promote nitrogen accumulation and utilization, and improve the physiological performance of light and temperature during growth. The recommended nitrogen application rate for summer peanuts under this test condition is 110−150 kg·hm−2.
  • loading
  • [1]
    林松明, 孟维伟, 南镇武, 等. 玉米间作花生冠层微环境变化及其与荚果产量的相关性研究[J]. 中国生态农业学报(中英文), 2020, 28(1): 31−41

    LIN S M, MENG W W, NAN Z W, et al. Canopy microenvironment change of peanut intercropped with maize and its correlation with pod yield[J]. Chinese Journal of Eco-Agriculture, 2020, 28(1): 31−41
    [2]
    中华人民共和国国家统计局. 中国统计年鉴. 2002(总第21期)[M]. 北京: 中国统计出版社, 2002

    National Bureau of Statistics of China. China Statistical Yearbook. 2002 (No. 21)[M]. Beijing: China Statistics Press, 2002
    [3]
    孙虎, 李尚霞, 王月福, 等. 施氮量对不同花生品种积累氮素来源和产量的影响[J]. 植物营养与肥料学报, 2010, 16(1): 153−157

    SUN H, LI S X, WANG Y F, et al. Effects of nitrogen application on source of nitrogen accumulation and yields of different peanut cultivars[J]. Plant Nutrition and Fertilizer Science, 2010, 16(1): 153−157
    [4]
    周录英, 李向东, 汤笑, 等. 氮、磷、钾肥配施对花生生理特性及产量、品质的影响[J]. 生态学报, 2008, 28(6): 2707−2714 doi: 10.3321/j.issn:1000-0933.2008.06.033

    ZHOU L Y, LI X D, TANG X, et al. Effects of N, P, K fertilizer combined application on physiological characteristics, yield and kernel quality of peanut[J]. Acta Ecologica Sinica, 2008, 28(6): 2707−2714 doi: 10.3321/j.issn:1000-0933.2008.06.033
    [5]
    戴良香, 张智猛, 张冠初, 等. 氮肥用量对花生氮素吸收与分配的影响[J]. 核农学报, 2020, 34(2): 370−375 doi: 10.11869/j.issn.100-8551.2020.02.0370

    DAI L X, ZHANG Z M, ZHANG G C, et al. Effects of nitrogen application on nitrogen uptake and distribution in peanut[J]. Journal of Nuclear Agricultural Sciences, 2020, 34(2): 370−375 doi: 10.11869/j.issn.100-8551.2020.02.0370
    [6]
    WANG C B, ZHENG Y M, SHEN P, et al. Determining N supplied sources and N use efficiency for peanut under applications of four forms of N fertilizers labeled by isotope 15N[J]. Journal of Integrative Agriculture, 2016, 15(2): 432−439 doi: 10.1016/S2095-3119(15)61079-6
    [7]
    司贤宗, 张翔, 索炎炎, 等. 不同花生品种氮磷钾钙硫吸收、分配和利用的差异 [J]. 中国农学通报, 2021, 37(16): 1−7

    SI X Z, ZHANG X, SUO Y Y, et al. Differences in absorption, distribution and utilization of nitrogen, phosphorus, potassium, calcium and sulfur among peanut varieties[J]. Chinese Agricultural Science Bulletin, 2021, 37(16): 1−7
    [8]
    胡家齐, 夏桂敏, 张, 等. 花生补灌条件下施氮对土壤氮素吸收与转化的影响[J]. 中国生态农业学报, 2018, 26(1): 96−105

    HU J Q, XIA G M, ZHANG Y, et al. Effect of nitrogen application on soil nitrogen absorption and transformation under supplementary irrigation of peanut[J]. Chinese Journal of Eco-Agriculture, 2018, 26(1): 96−105
    [9]
    刘俊华, 吴正锋, 沈浦, 等. 氮肥与密度互作对单粒精播花生根系形态、植株性状及产量的影响[J]. 作物学报, 2020, 46(10): 1605−1616

    LIU J H, WU Z F, SHEN P, et al. Effects of nitrogen and density interaction on root morphology, plant characteristic and pod yield under single seed precision sowing in peanut[J]. Acta Agronomica Sinica, 2020, 46(10): 1605−1616
    [10]
    张卫峰, 马林, 黄高强, 等. 中国氮肥发展、贡献和挑战[J]. 中国农业科学, 2013, 46(15): 3161−3171 doi: 10.3864/j.issn.0578-1752.2013.15.010

    ZHANG W F, MA L, HUANG G Q, et al. The development and contribution of nitrogenous fertilizer in China and challenges faced by the country[J]. Scientia Agricultura Sinica, 2013, 46(15): 3161−3171 doi: 10.3864/j.issn.0578-1752.2013.15.010
    [11]
    JU X T, KOU C L, ZHANG F S, et al. Nitrogen balance and groundwater nitrate contamination: comparison among three intensive cropping systems on the North China Plain[J]. Environmental Pollution, 2006, 143(1): 117−125 doi: 10.1016/j.envpol.2005.11.005
    [12]
    聂修平. 不同施氮量下调亏灌溉对花生形态生理特征及氮磷积累的影响[D]. 沈阳: 沈阳农业大学, 2022.

    NIE X P. Effect of regulated deficit irrigation on morpho-physiological characteristics, and nitrogen and phosphorus accumulation of peanut under different nitrogen application rates[D]. Shenyang: Shenyang Agricultural University, 2022.
    [13]
    刘一佳, 任学敏, 朱雅, 等. 施氮水平对花生冠层温度和产量性状的影响及其相互关系[J]. 江苏农业科学, 2015, 43(12): 101−104 doi: 10.15889/j.issn.1002-1302.2015.12.029

    LIU Y J, REN X M, ZHU Y, et al. Effects of nitrogen rate on canopy temperature and yield characteristics of peanut and their relationship[J]. Jiangsu Agricultural Sciences, 2015, 43(12): 101−104 doi: 10.15889/j.issn.1002-1302.2015.12.029
    [14]
    ZIAEIDOUSTAN H, AZARPOUR E, SAFIYAR S. Study the effects of different levels of irrigation interval, nitrogen and superabsorbent on yield and yield component of peanut[J]. International Journal of Agriculture and Crop Sciences, 2013, 5(18): 2071−2078.
    [15]
    XIA G M, WANG Y J, HU J Q, et al. Effects of supplemental irrigation on water and nitrogen use, yield, and kernel quality of peanut under nitrogen-supplied conditions[J]. Agricultural Water Management, 2021, 243: 106518 doi: 10.1016/j.agwat.2020.106518
    [16]
    司贤宗, 张翔, 索炎炎, 等. 砂姜黑土区不同花生品种对氮磷钾养分吸收、分配和利用的差异[J]. 中国油料作物学报, 2017, 39(3): 380−385 doi: 10.7505/j.issn.1007-9084.2017.03.013

    SI X Z, ZHANG X, SUO Y Y, et al. Differences of peanut genotype on NPK uptake, distribution and utilization on vertisol soil[J]. Chinese Journal of Oil Crop Sciences, 2017, 39(3): 380−385 doi: 10.7505/j.issn.1007-9084.2017.03.013
    [17]
    王丹丹, 李岚涛, 韩本高, 等. 养分专家系统推荐施肥对夏玉米生理特性及产量的影响[J]. 农业资源与环境学报, 2022, 39(1): 107−117 doi: 10.13254/j.jare.2020.0677

    WANG D D, LI L T, HAN B G, et al. Effects of nutrient expert recommended fertilization on the physiological characteristics and yield of summer maize[J]. Journal of Agricultural Resources and Environment, 2022, 39(1): 107−117 doi: 10.13254/j.jare.2020.0677
    [18]
    GUO J X, TIAN G L, ZHOU Y, et al. Evaluation of the grain yield and nitrogen nutrient status of wheat ( Triticum aestivum L. ) using thermal imaging[J]. Field Crops Research, 2016, 196: 463−472 doi: 10.1016/j.fcr.2016.08.008
    [19]
    任学敏, 朱雅, 王小立, 等. 花生产量性状与冠层温度的关系[J]. 西北农林科技大学学报(自然科学版), 2014, 42(12): 39−45 doi: 10.13207/j.cnki.jnwafu.2014.12.002

    REN X M, ZHU Y, WANG X L, et al. Relationships between yield characteristics and canopy temperature of peanut[J]. Journal of Northwest A & F University (Natural Science Edition), 2014, 42(12): 39−45 doi: 10.13207/j.cnki.jnwafu.2014.12.002
    [20]
    GAO H X, MENG W W, ZHANG C C, et al. Yield and nitrogen uptake of sole and intercropped maize and peanut in response to N fertilizer input[J]. Food and Energy Security, 2020, 9(1): e187. doi: 10.1002/fes3.187
    [21]
    鲍士旦. 土壤农化分析[M]. 3版. 北京: 中国农业出版社, 2000

    BAO S D. Soil and Agricultural Chemistry Analysis[M]. 3rd ed. Beijing: China Agriculture Press, 2000
    [22]
    丁红, 张智猛, 戴良香, 等. 水氮互作对花生根系生长及产量的影响[J]. 中国农业科学, 2015, 48(5): 872−881 doi: 10.3864/j.issn.0578-1752.2015.05.05

    DING H, ZHANG Z M, DAI L X, et al. Effects of water and nitrogen interaction on peanut root growth and yield[J]. Scientia Agricultura Sinica, 2015, 48(5): 872−881 doi: 10.3864/j.issn.0578-1752.2015.05.05
    [23]
    张佳蕾, 郭峰, 孟静静, 等. 酸性土施用钙肥对花生产量和品质及相关代谢酶活性的影响[J]. 植物生态学报, 2015, 39(11): 1101−1109 doi: 10.17521/cjpe.2015.0107

    ZHANG J L, GUO F, MENG J J, et al. Effects of calcium fertilizer on yield, quality and related enzyme activities of peanut in acidic soil[J]. Chinese Journal of Plant Ecology, 2015, 39(11): 1101−1109 doi: 10.17521/cjpe.2015.0107
    [24]
    刘娜, 谢畅, 黄海云, 等. 施钾量对花生根系和根瘤特性、养分吸收及产量的影响[J]. 中国农业科学, 2023, 56(4): 635−648 doi: 10.3864/j.issn.0578-1752.2023.04.004

    LIU N, XIE C, HUANG H Y, et al. Effects of potassium application on root and nodule characteristics, nutrient uptake and yield of peanut[J]. Scientia Agricultura Sinica, 2023, 56(4): 635−648 doi: 10.3864/j.issn.0578-1752.2023.04.004
    [25]
    贺佳, 刘冰峰, 李军. 不同生育时期冬小麦FPAR高光谱遥感监测模型研究[J]. 农业机械学报, 2015, 46(2): 261−269,275

    HE J, LIU B F, LI J. FPAR monitoring model of winter wheat based on hyperspectral reflectance at different growth stages[J]. Transactions of the Chinese Society for Agricultural Machinery, 2015, 46(2): 261−269,275
    [26]
    YIN S Y, LI P C, XU Y, et al. Logistic model-based genetic analysis for kernel filling in a maize RIL population[J]. Euphytica, 2018, 214(5): 86 doi: 10.1007/s10681-018-2162-y
    [27]
    赵长星, 鲁成凯, 王信宏, 等. 不同产量水平下花生功能叶片氮素代谢特征的研究[J]. 中国生态农业学报, 2013, 21(5): 561−565 doi: 10.3724/SP.J.1011.2013.00561

    ZHAO C X, LU C K, WANG X H, et al. Characteristics of nitrogen metabolism in functional leaves of peanut with different yield levels[J]. Chinese Journal of Eco-Agriculture, 2013, 21(5): 561−565 doi: 10.3724/SP.J.1011.2013.00561
    [28]
    WANG Y C, LI X F, LEE T, et al. Effects of nitrogen management on the ratoon crop yield and head rice yield in South USA[J]. Journal of Integrative Agriculture, 2021, 20(6): 1457−1464 doi: 10.1016/S2095-3119(20)63452-9
    [29]
    黄明明, 李文一, 刘燕, 等. 施氮对花生生长、产量及品质影响的Meta分析[J]. 花生学报, 2023, 52(3): 63−72,96 doi: 10.14001/j.issn.1002-4093.2023.03.009

    HUANG M M, LI W Y, LIU Y, et al. Meta-analysis on the effect of nitrogen application on growth, yield and quality of peanut[J]. Journal of Peanut Science, 2023, 52(3): 63−72,96 doi: 10.14001/j.issn.1002-4093.2023.03.009
    [30]
    夏桂敏, 罗秀兰, 聂修平, 等. 不同生育期水分亏缺耦合施氮量对花生光合特性和品质的影响[J]. 农业工程学报, 2022, 38(21): 67−75

    XIA G M, LUO X L, NIE X P, et al. Effects of water deficit in different growth stages coupling with nitrogen application rates on photosynthetic traits and quality of peanuts[J]. Transactions of the Chinese Society of Agricultural Engineering, 2022, 38(21): 67−75
    [31]
    张翔, 李刘杰, 张新友, 等. 花生氮素营养研究进展[J]. 花生学报, 2010, 39(2): 41−44 doi: 10.3969/j.issn.1002-4093.2010.02.010

    ZHANG X, LI L J, ZHANG X Y, et al. Review of advance in research on nitrogen nutrition for peanut[J]. Journal of Peanut Science, 2010, 39(2): 41−44 doi: 10.3969/j.issn.1002-4093.2010.02.010
    [32]
    张翔, 张新友, 毛家伟, 等. 施氮水平对不同花生品种产量与品质的影响[J]. 植物营养与肥料学报, 2011, 17(6): 1417−1423

    ZHANG X, ZHANG X Y, MAO J W, et al. Effects of nitrogen fertilization on yield and quality of different peanut cultivars[J]. Plant Nutrition and Fertilizer Science, 2011, 17(6): 1417−1423
    [33]
    郭佩. 施氮量对不同花生品种生长发育及不同氮源供氮特性的影响[D]. 沈阳: 沈阳农业大学, 2021

    GUO P. Effects of nitrogen application on growth and nitrogen characteristics of different nitrogen sources of peanut varieties[D]. Shenyang: Shenyang Agricultural University, 2021
    [34]
    DANNOWSKI M, BLOCK A. Fractal geometry and root system structures of heterogeneous plant communities[J]. Plant and Soil, 2005, 272(1): 61−76
    [35]
    王启柏, 张高英, 万勇善, 等. 花生根系在土壤中垂直分布特性的研究[J]. 中国油料, 1995, 17(4): 18−22.

    WANG Q B, ZHANG G Y, WAN Y S, et al. Studies on distribution characteristics of root system in peanut along soil profile[J]. Chinese Journal of Oil Crop Sciences, 1995, 17(4): 18−22.
    [36]
    郑永美, 王春晓, 刘岐茂, 等. 氮肥对花生根系生长和结瘤能力的调控效应[J]. 核农学报, 2017, 31(12): 2418−2425

    ZHENG Y M, WANG C X, LIU Q M, et al. Effect of nitrogen fertilizer regulation on root growth and nodulating ability of peanut[J]. Journal of Nuclear Agricultural Sciences, 2017, 31(12): 2418−2425
    [37]
    丁红, 张智猛, 戴良香, 等. 不同水分条件下氮肥对花生根系生长及产量的影响[J]. 花生学报, 2016, 45(1): 8−14 doi: 10.14001/j.issn.1002-4093.2016.01.002

    DING H, ZHANG Z M, DAI L X, et al. Effect of nitrogen fertilizer on peanut root growth and yield under different water conditions[J]. Journal of Peanut Science, 2016, 45(1): 8−14 doi: 10.14001/j.issn.1002-4093.2016.01.002
    [38]
    侯云鹏, 孔丽丽, 蔡红光, 等. 东北半干旱区滴灌施肥条件下高产玉米干物质与养分的积累分配特性[J]. 中国农业科学, 2019, 52(20): 3559−3572

    HOU Y P, KONG L L, CAI H G, et al. The accumulation and distribution characteristics on dry matter and nutrients of high-yielding maize under drip irrigation and fertilization conditions in semi-arid region of Northeastern China[J]. Scientia Agricultura Sinica, 2019, 52(20): 3559−3572
    [39]
    王建国, 张佳蕾, 郭峰, 等. 钙与氮肥互作对花生干物质和氮素积累分配及产量的影响[J]. 作物学报, 2021, 47(9): 1666−1679

    WANG J G, ZHANG J L, GUO F, et al. Effects of interaction between calcium and nitrogen fertilizers on dry matter, nitrogen accumulation and distribution, and yield in peanut[J]. Acta Agronomica Sinica, 2021, 47(9): 1666−1679
    [40]
    王才斌, 吴正锋, 刘俊华, 等. 不同供N水平对花生硝酸盐累积与分布的影响[J]. 植物营养与肥料学报, 2007, 13(5): 915−919 doi: 10.11674/zwyf.2007.0524

    WANG C B, WU Z F, LIU J H, et al. Influence of N rates on nitrate accumulation and distribution in peanut[J]. Plant Nutrition and Fertilizer Science, 2007, 13(5): 915−919 doi: 10.11674/zwyf.2007.0524
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(6)  / Tables(8)

    Article Metrics

    Article views (61) PDF downloads(9) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return