Crops ›› 2023, Vol. 39 ›› Issue (2): 131-137.doi: 10.16035/j.issn.1001-7283.2023.02.019

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Effects of Topdressing Nitrogen Amount on Yield and Agronomic Traits of Different Gluten Type Wheat Cultivars

Ma Ruiqi1,2(), Wang Demei1, Tao Zhiqiang1, Wang Yanjie1, Yang Yushuang1, Zhao Guangcai1(), Chang Xuhong1()   

  1. 1Institute of Crop Sciences, Chinese Academy of Agricultural Sciences/Key Laboratory of Crop Physiology and Ecology, Ministry of Agriculture and Rural Affairs, Beijing 100081, China
    2College of Agronomy, Shandong Agriculture University, Tai'an 271000, Shandong, China
  • Received:2022-01-23 Revised:2022-09-21 Online:2023-04-15 Published:2023-04-11

Abstract:

In order to study the nitrogen regulating effects on yield and agronomic traits of different gluten wheat cultivars, three topdressing nitrogen amounts of 75, 105, and 135kg/ha were set in Beijing experimental base of Institute of Crop Sciences, Chinese Academy of Agricultural Sciences during 2016-2017. The tested materials were strong gluten (Gaoyou 2018 and Shiluan 02-1), medium gluten (Zhongmai 8 and Zhongmai 175) and weak gluten (Yangmai 22 and Yangmai 15) cultivars. Nitrogen fertilizer 105kg/ha and phosphorus fertilizer (135kg/ha) were applied as base fertilizers. The results showed that increasing the amount of topdressing nitrogen could promote polarization at jointing stage, reduce ineffective tillering, and increase the number of spikes, and the effects on strong gluten cultivars was greater than that of medium and weak gluten cultivars. Increasing the amount of topdressing nitrogen in the range of 75-135kg/ha could improve the leaf area indexes of all cultivars, slow down the decline rate of leaf area index from flowering to grain filling stage, and the effects on medium gluten cultivars was the most obvious. The plant height, spike length and the number of bearing spikelets were the highest under nitrogen topdressing at 135kg/ha, while the number of sterile spikelets decreased significantly with the increase of nitrogen application. In the range of 75-135kg/ha, the grain yield, the number of spikes, grains per spike and 1000-grain weight of each gluten-type cultivar increased significantly with the increase of topdressing nitrogen, and 135kg/ha treatment was the highest.

Key words: Wheat, Topdressing nitrogen amount, Gluten type, Yield, Agronomic traits

Fig.1

Effects of topdressing nitrogen amount on wheat population dynamics"

Fig.2

Effects of topdressing nitrogen amount on LAI of different wheat cultivars"

Fig.3

Effects of topdressing nitrogen amount on plant height of wheat at different growth stages"

Table 1

Effects of different treatments on spike traits of wheat"

处理
Treatment
穗长
Spike
length (cm)
结实小穗数
Number of
bearing spikelets
不孕小穗数
Sterility spikelet
number
藁优2018
Gaoyou 2018
7.64b 14.22b 2.93ab
师栾02-1
Shiluan 02-1
7.41c 14.02b 3.36a
中麦8号
Zhongmai 8
8.50a 16.18a 2.00c
中麦175
Zhongmai 175
7.18d 16.00a 3.09ab
扬麦22
Yangmai 22
8.44a 16.31a 2.00c
扬麦15
Yangmai 15
8.53a 16.09a 2.64b
B1 7.77b 14.77c 3.08a
B2 7.98a 15.43b 2.60b
B3 8.10a 16.21a 2.33b
A 74.76* 14.70* 8.80*
B 11.12* 13.91* 7.76*
A×B 0.49* 0.60* 0.27*

Table 2

Interaction effects of cultivars and topdressing nitrogen amount on spike traits of wheat"

品种
Cultivar
追氮量
Topdressing
nitrogen
amount
穗长
Spike
length
(cm)
结实小穗数
Number of
bearing
spikelets
不孕小穗数
Number of
sterility
spikelets
藁优2018
Gaoyou 2018
B1 7.51def 12.93e 3.33a
B2 7.65de 14.53bcd 2.80ab
B3 7.77d 15.20ab 2.67abc
师栾02-1
Shiluan 02-1
B1 7.16fg 13.27de 3.60a
B2 7.47def 14.00cde 3.27a
B3 7.61de 14.80bc 3.20a
中麦8号
Zhongmai 8
B1 8.24bc 15.93ab 2.20cd
B2 8.55abc 16.00ab 1.93cd
B3 8.73a 16.60a 1.87cd
中麦175
Zhongmai 175
B1 7.07g 15.27ab 3.60a
B2 7.13fg 15.60ab 3.00ab
B3 7.33efg 17.13a 2.67abc
扬麦22
Yangmai 22
B1 8.17c 15.60ab 2.53abc
B2 8.53abc 16.53a 1.93d
B3 8.60ab 16.80a 1.53d
扬麦15
Yangmai 15
B1 8.48abc 15.60ab 3.20a
B2 8.53abc 15.93ab 2.67bcd
B3 8.59ab 16.73a 2.07bcd

Table 3

Effects of different treatment on wheat grain yield and its components"

处理
Treatment
穗粒数
Grains per spike
穗数
Spikes number (×104/hm2)
千粒重
1000-grain weight (g)
籽粒产量
Grain yield (kg/hm2)
藁优2018
Gaoyou 2018
B1 689.4b 29.33d 41.29bcd 7683.5abc
B2 703.7b 31.67d 42.02abc 7945.5ab
B3 694.2b 33.33cd 42.81a 8111.0a
师栾02-1
Shiluan 02-1
B1 703.7a 29.33d 35.63h 7831.5abc
B2 742.0a 31.00d 36.45h 8156.0a
B3 751.6a 32.00d 37.82g 8190.2a
中麦8号
Zhongmai 8
B1 569.7c 32.33d 40.16def 7696.0abc
B2 545.7cd 33.07cd 40.74cdef 8038.7ab
B3 574.5c 33.73cd 41.11cde 8379.2a
中麦175
Zhongmai 175
B1 670.2b 31.33d 39.91ef 7814.1abc
B2 675.0b 32.13d 40.37def 8057.3ab
B3 679.8b 33.67cd 42.44ab 8240.2a
扬麦22
Yangmai 22
B1 483.5f 38.20ab 39.66f 6711.7d
B2 507.5ef 41.93a 39.87ef 6934.0cd
B3 521.8de 42.40a 40.55def 7165.6bcd
扬麦15
Yangmai 15
B1 392.6h 37.07bc 40.38def 6406.0d
B2 430.9g 38.13ab 41.19bcde 6697.8d
B3 497.9ef 38.67ab 41.30bcd 6769.6d
[1] 崔保伟, 陆引罡, 秦广利, 等. 氮素与播种量对小麦生理特性及产量的影响. 山地农业生物学报, 2007, 26(4):283-287.
[2] 魏艳丽, 王彬龙, 李瑞国, 等. 关中地区施氮量对小麦绿叶性状及产量的影响. 陕西农业科学, 2021, 67(10):85-87.
[3] 王志勇, 白由路, 王磊, 等. 氮素营养水平对冬小麦产量及生物学性状的影响. 中国土壤与肥料, 2011(4):22-25.
[4] 乔祥梅, 程加省, 王志伟, 等. 氮肥施用量对高产型小麦品种“云麦53”产量及农艺性状的影响. 云南农业大学学报(自然科学), 2015, 30(1):96-100.
[5] 张维军, 袁汉民, 陈东升, 等. 氮肥和密度对宁冬11号分蘖成穗及产量的影响. 西北农业学报, 2014, 23(1):63-69.
[6] 马建辉, 齐冰玉, 姜丽娜, 等. 拔节期追氮对冬小麦不同穗粒位籽粒特性的影响. 河南师范大学学报(自然科学版), 2016, 44(3):125-132.
[7] 米勇, 钱兆国, 郭营, 等. 氮肥用量与追氮时期对泰山9818生理指标及品质的影响. 江西农业学报, 2012, 24(7):57-59.
[8] 严海波, 韩根成. 氮肥不同施用量对小麦产量和群体动态的影响. 上海农业科技, 2020(6):111-112.
[9] 杨明达, 马守臣, 杨慎骄, 等. 氮肥后移对抽穗后水分胁迫下冬小麦光合特性及产量的影响. 应用生态学报, 2015, 26(11):3315-3321.
[10] 安霞, 张海军, 蒋方山, 等. 氮肥用量对不同品种小麦群体动态及产量的影响. 中国种业, 2015(12):65-67.
[11] 魏建林, 崔荣宗, 杨果, 等. 不同氮肥运筹对小麦产量及氮肥利用率的影响. 山东农业科学, 2010(9):53-55,59.
[12] 刁操铨, 贺汉林. 作物栽培学实验指导. 北京: 农业出版社,1991.
[13] 李学军. 氮肥用量对小麦生长及水分利用的影响. 农业科技通讯, 2014(11):45-48.
[14] 张文静, 江东国, 黄正来, 等. 氮肥施用对稻茬小麦冠层结构及产量、品质的影响. 麦类作物学报, 2018, 38(1):1-11.
[15] 刘颖杰. 2,4-D,氮肥,多效唑对小麦生理生态的影响. 晋中:山西农业大学, 2005.
[16] 郭传贵, 陈先荣. 小麦追肥时期对其产量性状的影响. 安徽农业科学, 2002(2):267-268.
[17] 吴立峰, 张富仓, 张鹏, 等. 灌水和施氮对甘肃河西绿洲春小麦生长及产量的影响. 西北农林科技大学学报, 2011, 39(7):55-63.
[18] 孔东, 晏云, 段艳, 等. 不同水氮处理对冬小麦生长及产量影响的田间试验. 农业工程学报, 2008, 24(12):36-40.
[19] 徐月明. 中弱筋小麦优质高产群体质量和株型指标与生理基础研究. 扬州:扬州大学, 2004.
[20] 闫建文, 史海滨, 田德龙, 等. 氮肥对小麦生育指标及水分利用效率的影响. 全国农业水土工程第六届学术研讨会, 2010:351-357.
[21] 姚战军, 杨玉锋, 陈若英. 限水灌溉与施氮时期对小麦旗叶光合作用及产量性状的影响. 安徽农业科学, 2011, 39(13):7650-7652.
[22] 赵广才, 常旭虹, 杨玉双, 等. 施氮量和比例对冬小麦产量和蛋白质组分的影响. 麦类作物学报, 2009, 29(2):294-298.
[23] 郭明明, 赵广才, 郭文善, 等. 施氮量和行距对冬小麦产量及生理特性的影响. 核农学报, 2016, 30(4):805-812.
doi: 10.11869/j.issn.100-8551.2016.04.0805
[24] 徐凤娇, 赵广才, 田奇卓, 等. 施氮量对不同品质类型小麦产量和加工品质的影响. 植物营养与肥料学报, 2012, 18(2):300-306.
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