[1]赵心迪,秦德志,尹春,等.玉米‖大豆间作水肥高效利用研究进展[J].江苏农业科学,2026,54(1):19-27.
 Zhao Xindi,et al.Research progress on efficient utilization of water and fertilizer in cornsoybean intercropping system[J].Jiangsu Agricultural Sciences,2026,54(1):19-27.
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玉米‖大豆间作水肥高效利用研究进展()

《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第54卷
期数:
2026年第1期
页码:
19-27
栏目:
专论与综述
出版日期:
2026-01-05

文章信息/Info

Title:
Research progress on efficient utilization of water and fertilizer in cornsoybean intercropping system
作者:
赵心迪秦德志尹春陈静崔文芳
内蒙古农业大学,内蒙古呼和浩特 010019
Author(s):
Zhao Xindiet al
关键词:
大豆玉米间作系统水肥高效利用根际互作
Keywords:
-
分类号:
S344.2
DOI:
-
文献标志码:
A
摘要:
在全球耕地资源日益紧张、水肥利用效率亟待提升的背景下,玉米大豆间作作为一种典型的禾豆协同种植模式,对于提高资源利用效率、保障粮食安全以及促进农业可持续发展具有重要意义。本文系统综述了玉米大豆间作系统中水肥高效利用的生理生态机理,并对相关的关键技术进展进行了深入分析。在水分利用方面,探讨了根系空间分布、冠层结构对水分吸收和利用的影响;在养分利用方面,分析了根系分泌物在养分活化方面的作用和玉米大豆间作系统中氮素高效利用机制。重点介绍了水肥一体化管理中灌溉制度与施肥方案的优化,以及通过土壤结构改良提升水肥利用效率的技术措施。本文旨在为玉米大豆间作水肥高效利用理论研究提供参考,推动间作技术在现代农业中的广泛应用,并为进一步提高资源利用率和生态农业可持续发展提供建议与展望。
Abstract:
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参考文献/References:

[1] Wang L Y,Ju C F,Han C,et al. The interaction of nutrient uptake with biotic and abiotic stresses in plants[J]. Journal of Integrative Plant Biology,2025,67(3):455-487.
[2]王宜伦,张许,谭金芳,等. 农业可持续发展中的土壤肥料问题与对策[J]. 中国农学通报,2008,24(11):278-281.
[3]孙晓,孙家庆,丁瑶.“双循环” 战略下保障我国国际粮食供应链安全的思考[J]. 农业经济,2021(11):130-131.
[4]Raseduzzaman M,Jensen E S. Does intercropping enhance yield stability in arable crop production?A meta-analysis[J]. European Journal of Agronomy,2017,91:25-33.
[5]李小飞. 长期间套作下作物生产力、稳定性和土壤肥力研究[D]. 北京:中国农业大学,2017:112-116.
[6]李隆. 间套作强化农田生态系统服务功能的研究进展与应用展望[J]. 中国生态农业学报,2016,24(4):403-415.
[7]肖特,崔阔澍,黄文娟,等. 玉米/大豆带状套作种间根系互作效应与水分利用效率[J]. 西南农业学报,2022,35(12):2758-2771.
[8]高阳,段爱旺,刘战东,等. 玉米‖大豆间作条件下的作物根系生长及水分吸收[J]. 应用生态学报,2009,20(2):307-313.
[9]Ren Y Y,Wang X L,Zhang S Q,et al. Influence of spatial arrangement in maize-soybean intercropping on root growth and water use efficiency[J]. Plant and Soil,2017,415(1/2):131-144.
[10]贾文静,王晨瑜,王仕杰,等. 减量施肥对玉米‖大豆间作系统产量和氮素利用的影响[J]. 应用生态学报,2024,35(12):3435-3443.
[11]姜琴芳. 玉米‖大豆间作种间相互作用对作物和土壤的影响[D]. 银川:宁夏大学,2023:25-40.
[12]王雅梅. 玉米‖大豆不同宽幅间作对大豆光合特性和水分利用效率的影响[D]. 北京:中国农业科学院,2020:35-40.
[13]雷雲翔,陆思豪,应晓成,等. 不同间作方式对玉米/大豆的光合性能、产量和土壤微生态特征的影响[J]. 农业资源与环境学报,2023,40(3):610-618.
[14]蔡倩,孙占祥,王文斌,等. 辽西半干旱区玉米大豆间作对作物产量及水分利用的影响[J]. 中国农业气象,2022,43(7):551-562.
[15]Zhang W,Li S Q,Shen Y F,et al. Film mulching affects root growth and function in dryland maize-soybean intercropping[J]. Field Crops Research,2021,271:108240.
[16]李双伟,朱俊奇,Jochem B. EVERS,等. 基于植物功能-结构模型的玉米-大豆条带间作光截获行间差异研究[J]. 智慧农业(中英文),2022,4(1):97-109.
[17]陈宗培,薛佳欣,李奔,等. 玉米光合特性和冠层微环境对密度和行株距配置的响应[J]. 作物杂志,2020(1):179-186.
[18]王治国,饶晓娟,唐亚莉,等. 不同灌溉模式对枣棉间套作微生态区域温湿度的影响[J]. 新疆农业科学,2011,48(12):2287-2293.
[19]Zheng B C,Zhang X N,Chen P,et al. Improving maizes N uptake and N use efficiency by strengthening roots absorption capacity when intercropped with legumes[J]. PeerJ,2021,9:e11658.
[20]房增国,赵秀芬,孙建好,等. 接种根瘤菌对蚕豆‖玉米间作系统产量及结瘤作用的影响[J]. 土壤学报,2009,46(5):887-893.
[21]吴彩霞,傅华. 根系分泌物的作用及影响因素[J]. 草业科学,2009,26(9):24-29.
[22]Baetz U,Martinoia E. Root exudates:the hidden part of plant defense[J]. Trends in Plant Science,2014,19(2):90-98.
[23]Lu T,Ke M J,Lavoie M,et al. Rhizosphere microorganisms can influence the timing of plant flowering[J]. Microbiome,2018,6(1):231.
[24]Gregory P J. Plant roots:their growth,activity,and interaction with soils[J]. Soil Science Society of America Journal,2007,71(2):636.
[25]陈利,肖靖秀,郑毅. 间作玉米大豆根系分泌物中有机酸的变化特征[J]. 西南林业大学学报,2016,36(5):78-83.
[26]Degryse F,Verma V K,Smolders E. Mobilization of Cu and Zn by root exudates of dicotyledonous plants in resin-buffered solutions and in soil[J]. Plant and Soil,2008,306(1):69-84.
[27]Carvalhais L C,Dennis P G,Fedoseyenko D,et al. Root exudation of sugars,amino acids,and organic acids by maize as affected by nitrogen,phosphorus,potassium,and iron deficiency[J]. Journal of Plant Nutrition and Soil Science,2011,174(1):3-11.
[28]张雷昌,汤利,董艳,等. 根系互作影响玉米大豆间作作物氮吸收[J]. 云南农业大学学报(自然科学),2016,31(6):1111-1119.
[29]祝晓慧,谭婧琳,周慧颖,等. 不同基因型大豆与玉米间作对土壤磷组分与作物磷吸收的影响[J]. 应用生态学报,2024,35(6):1583-1589.
[30]杨欢,周颖,陈平,等. 玉米-豆科作物带状间套作对养分吸收利用及产量优势的影响[J]. 作物学报,2022,48(6):1476-1487.
[31]顾嘉诚,王文敏,王振,等. 玉米‖大豆间作对根际土壤磷素生物有效性和微生物群落结构的影响[J]. 应用生态学报,2023,34(11):3030-3038.
[32]高聚林,王志刚,孙继颖,等. 青贮玉米对氮磷钾的吸收规律[J]. 作物学报,2006,32(3):363-368.
[33]刘玉库,张瑞朋,谈伟. 大豆氮素营养研究进展[J]. 杂粮作物,2006,26(3):200-203.
[34]Zheng B C,Zhou Y,Chen P,et al. Maize-legume intercropping promote N uptake through changing the root spatial distribution,legume nodulation capacity,and soil N availability[J]. Journal of Integrative Agriculture,2022,21(6):1755-1771.
[35]向友珍,张威,唐子竣,等. 减施氮肥和接种根瘤菌对大豆生理生长与氮素利用效率及产量的影响[J]. 农业机械学报,2024,55(3):340-351.
[36]支君,段文标,高明,等. 土地利用方式对土壤细菌群落结构和功能的影响[J]. 植物研究,2025,45(1):22-33.
[37]Virk A L,Lin B J,Kan Z R,et al. Simultaneous effects of legume cultivation on carbon and nitrogen accumulation in soil[J]. Advances in Agronomy,2022,171:75-110.
[38]严佳乐,赖黎明,董瑞敏,等. 内蒙古河套灌区农业常规管理下土壤硝态氮与氮淋失的元分析[J]. 湖北农业科学,2024,63(2):36-40,49.
[39]赵吉霞,酒鹃鹃,李永梅,等. 玉米‖大豆间作对坡耕地红壤团聚体微生物生物量碳氮的影响[J]. 中国水土保持科学(中英文),2025,23(1):150-158.
[40]Shen L,Wang X Y,Liu T T,et al. Border row effects on the distribution of root and soil resources in maize-soybean strip intercropping systems[J]. Soil and Tillage Research,2023,233:105812.
[41]高祥照. 水肥一体化是提高水肥利用效率的核心[J]. 中国农业信息,2013,25(14):3-4.
[42]高鹏,简红忠,魏样,等. 水肥一体化技术的应用现状与发展前景[J]. 现代农业科技,2012(8):250,257.
[43]乔海涛. 大豆‖玉米间作中植株氮磷吸收动态及小气候分析[D]. 哈尔滨:东北农业大学,2010:13-15.
[44]李媛媛,杨恒山,张瑞富,等. 灌溉定额对浅埋滴灌春玉米生长与产量的影响[J]. 水土保持通报,2017,37(2):345-348.
[45]张海林,陈阜,秦耀东,等. 覆盖免耕夏玉米耗水特性的研究[J]. 农业工程学报,2002,18(2):36-40.
[46]毛洪霞. 滴灌大豆需水规律及灌溉制度研究[J]. 干旱地区农业研究,2009,27(5):112-116.
[47]杨月红,孙庆艳,沈浩. 植物的盐害和抗盐性[J]. 生物学教学,2002,27(11):1-2.
[48]Elshaikh A,Elsheikh E,Mabrouki J. Applications of artificial intelligence in precision irrigation[J]. Journal of Environmental & Earth Sciences,2024,6(2):176-186.
[49]Zhao Z X,Li Z Y,Li Y,et al. Optimization of water and nitrogen measures for maize-soybean intercropping under climate change conditions based on the APSIM model in the Guanzhong plain,China[J]. Agricultural Systems,2025,224:104236.
[50]冯吉. 引黄滴灌系统泥沙逐级调控机制及方法研究[D]. 北京:中国农业大学,2017:101-115.
[51]李恺,尹义蕾,侯永. 中国设施园艺水肥一体化设备应用现状及发展趋势[J]. 农业工程技术,2018,38(4):16-21.
[52]王应海,刘凤. 监测与控制技术在精准水肥一体化技术实施中的3个常见问题[J]. 节水灌溉,2017(11):109-110.
[53]邓超,李永梅,范茂攀,等. 大豆单间作对土壤团聚体及固土能力的影响[J]. 水土保持研究,2020,27(2):77-83.
[54]王婷,李永梅,王自林,等. 间作对玉米根系分泌物及团聚体稳定性的影响[J]. 水土保持学报,2018,32(3):185-190.
[55]Liang B,Lehmann J,Solomon D,et al. Black carbon increases cation exchange capacity in soils[J]. Soil Science Society of America Journal,2006,70(5):1719-1730.
[56]Steiner C,Teixeira W G,Lehmann J,et al. Long term effects of manure,charcoal and mineral fertilization on crop production and fertility on a highly weathered Central Amazonian upland soil[J]. Plant and Soil,2007,291:275-290.
[57]Yanai Y,Toyota K,Okazaki M. Effects of charcoal addition on N2O emissions from soil resulting from rewetting air-dried soil in short-term laboratory experiments[J]. Soil Science & Plant Nutrition,2007,53(2):181-188.
[58]刘小宁,蔡立群,黄益宗,等. 生物质炭对旱作农田土壤持水特性的影响[J]. 水土保持学报,2017,31(4):112-117.
[59]Edeh I G,Maek O,Buss W. A meta-analysis on biochars effects on soil water properties:new insights and future research challenges[J]. Science of the Total Environment,2020,714:136857.
[60]Glaser B,Lehmann J,Zech W.Ameliorating physical and chemical properties of highly weathered soils in the tropics with charcoal:a review[J]. Biology and Fertility of Soils,2002,35(4):219-230.
[61]罗家欣,邓金环,田纪辉,等. 生物炭添加对红壤硅磷形态转化、有效性及大豆植株吸收的影响[J]. 华南农业大学学报,2025,46(2):141-150.
[62]林春岭. 甘蔗渣生物炭对铬污染水稻土修复研究[D]. 湛江:广东海洋大学,2023:46-48.
[63]王晓维,杨文亭,缪建群,等. 玉米‖大豆间作和施氮对玉米产量及农艺性状的影响[J]. 生态学报,2014,34(18):5275-5282.
[64]章伟. 黄土旱塬玉米‖大豆间作体系氮素增效调控及根土响应机制[D]. 杨凌:中国科学院大学(中国科学院教育部水土保持与生态环境研究中心),2021:159-161.
[65]Ren Z Y,Zhang L,Li H Z,et al. The BRUTUS iron sensor and E3 ligase facilitates soybean root nodulation by monoubiquitination of NSP1[J]. Nature Plants,2025,11(3):595-611.
[66]代真林,汪娅婷,姚秀英,等. 玉米大豆间作模式对玉米根际土壤微生物群落特征、玉米产量及病害的影响[J]. 云南农业大学学报(自然科学),2020,35(5):756-764.
[67]Lin S F,Pi Y J,Long D Y,et al. Impact of organic and chemical nitrogen fertilizers on the crop yield and fertilizer use efficiency of soybean-maize intercropping systems[J]. Agriculture,2022,12(9):1428.
[68]Palacios-Díaz M P,Mendoza-Grimón V,Fernández-Vera J R,et al. Subsurface drip irrigation and reclaimed water quality effects on phosphorus and salinity distribution and forage production[J]. Agricultural Water Management,2009,96(11):1659-1666.
[69]Xue Y F,Xia H Y,Christie P,et al. Crop acquisition of phosphorus,iron and zinc from soil in cereal/legume intercropping systems:a critical review[J]. Annals of Botany,2016,117(3):363-377.
[70]Chen Z K,Li P,Jiang S S,et al. Evaluation of resource and energy utilization,environmental and economic benefits of rice water-saving irrigation technologies in a rice-wheat rotation system[J]. Science of The Total Environment,2021,757:143748.

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[1]赵银月,耿智德,王铁军.云南省大豆地方种质资源的籽粒特征特性分析及评价[J].江苏农业科学,2013,41(04):62.
[2]孙建伟.水涝胁迫对玉米细胞保护酶同工酶的影响[J].江苏农业科学,2013,41(04):85.
[3]刘荣,张卫建,齐华,等.密植型玉米“中单909”高产群体结构特征[J].江苏农业科学,2013,41(05):56.
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[4]沈浜凯,肖龙云,冯乃杰,等.黄腐酸和AM真菌对玉米幼苗抗旱性的影响[J].江苏农业科学,2013,41(05):64.
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 Zou Xiaowei,et al(0).Different expression of resistance-related genes between Sporisorium reilianum and Ustilago maydis interact with corn[J].Jiangsu Agricultural Sciences,2014,42(1):150.
[8]杨洪兴,陈静,陈艳萍.江苏省玉米机械化生产的发展及育种对策思考[J].江苏农业科学,2014,42(11):116.
 Yang Hongxing,et al().Development and breeding strategy of mechanized production of maize in Jiangsu Province[J].Jiangsu Agricultural Sciences,2014,42(1):116.
[9]张丽妍,霍剑锋,孟繁盛,等.不同肥料、施肥水平及施用方法对玉米产量、性状及效益的影响[J].江苏农业科学,2014,42(11):119.
 Zhang Liyan,et al (9).Effects of different fertilizers,fertilizer levels and fertilizing methods on yield,characters and benefit of maize[J].Jiangsu Agricultural Sciences,2014,42(1):119.
[10]王雷,崔震海,张立军.玉米C4型PEPC全长基因的克隆与表达载体构建[J].江苏农业科学,2014,42(11):26.
 Wang Lei,et al().Cloning and expression vector construction of full-length C4 type PEPC gene in maize[J].Jiangsu Agricultural Sciences,2014,42(1):26.
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 Chen Jianbin,et al.Effect of intercropping soybean on growth of maize under different nitrogen and phosphorus levels[J].Jiangsu Agricultural Sciences,2014,42(1):94.
[12]常子磐,李来武,严经天,等.菊芋、玉米和大豆秸秆颗粒状燃料的燃烧性能比较[J].江苏农业科学,2015,43(03):308.
 Chang Zipan,et al.Comparative study on combustion characteristics of Jerusalem artichoke,corn and soybean straw pellet fuel[J].Jiangsu Agricultural Sciences,2015,43(1):308.
[13]吴凤日,吴明根,朱国君,等.土壤温度、湿度对作物种子发芽能力的影响[J].江苏农业科学,2017,45(03):51.
 Wu Fengri,et al.Effects of soil temperature and humidity on crop seed germination ability[J].Jiangsu Agricultural Sciences,2017,45(1):51.
[14]刘朝茂,李成云.玉米与大豆、马铃薯间作对玉米叶片衰老、产量及病害控制的影响[J].江苏农业科学,2017,45(06):75.
 Liu Chaomao,et al.Effects of maize intercropping with soybean and potato on leaf senescence,yield and disease control of maize[J].Jiangsu Agricultural Sciences,2017,45(1):75.
[15]邢瑶,唐锁海,陈暄,等.幼龄茶园间作大豆、玉米对土壤养分的影响[J].江苏农业科学,2020,48(24):132.
 Xing Yao,et al.Effects of soybean and corn intercropping on soil nutrients in yong tea garden[J].Jiangsu Agricultural Sciences,2020,48(1):132.
[16]酒鹃鹃,李永梅,王梦雪,等.玉米大豆间作对坡耕地红壤团聚体分布及稳定性的影响[J].江苏农业科学,2021,49(22):219.
 Jiu Juanjuan,et al.Impacts of maize-soybean intercropping on distribution and stability of red soil aggregates in slope farmland[J].Jiangsu Agricultural Sciences,2021,49(1):219.
[17]董韦,李思梦,王维,等.大豆行距对玉米‖大豆间作营养品质和土壤养分的影响[J].江苏农业科学,2024,52(16):94.
 Dong Wei,et al.Effects of soybean row spacing on nutrient quality and soil nutrients of maize/soybean intercropping[J].Jiangsu Agricultural Sciences,2024,52(1):94.
[18]许竹溦,雷俊,邵晓伟,等.大豆—玉米免耕轮作体系不同施肥量对产量和氮磷钾吸收利用率的影响[J].江苏农业科学,2025,53(17):233.
 Xu Zhuwei,et al.Effects of different fertilization rates on yield and nutrient uptake and utilization efficiency in soybeancorn notillage rotation system[J].Jiangsu Agricultural Sciences,2025,53(1):233.
[19]汤英,刘艳,李津,等.基于主成分分析的带距和水肥耦合对玉米大豆间作系统综合影响评价[J].江苏农业科学,2025,53(22):100.
 Tang Ying,et al.Evaluation of comprehensive impacts of band distance and waterfertilizer coupling on maize and soybean intercropping system based on principal component analysis[J].Jiangsu Agricultural Sciences,2025,53(1):100.
[20]文章荣,刘汉松,陆大雷,等.化控剂对大豆、玉米带状间作农艺性状及产量的影响[J].江苏农业科学,2025,53(23):73.
 Wen Zhangrong,et al.Effects of chemical control agents on agronomic traits and yield under soybeanmaize strip intercropping mode[J].Jiangsu Agricultural Sciences,2025,53(1):73.

备注/Memo

备注/Memo:
收稿日期:2025-03-28
基金项目:内蒙古自治区教育厅高等学校碳达峰碳中和研究专项(编号:STZX202314);国家自然科学基金(编号:32160506)。
作者简介:赵心迪(2001—),男,山东济宁人,硕士研究生,主要从事作物生理生态研究。E-mail:xindi_2001@163.com。
通信作者:崔文芳,博士,教授,主要从事作物生理生态研究。E-mail:cui.wenfang@163.com。
更新日期/Last Update: 2026-01-05