Scientia Agricultura Sinica ›› 2022, Vol. 55 ›› Issue (21): 4211-4224.doi: 10.3864/j.issn.0578-1752.2022.21.009

• SOIL & FERTILIZER·WATER-SAVING IRRIGATION·AGROECOLOGY & ENVIRONMENT • Previous Articles     Next Articles

Integration of Agricultural Machinery and Agronomic Techniques for Crop Nutrient Management in China

MI GuoHua1(),HUO YueWen1(),ZENG AiJun2,LI GangHua3,WANG Xiu4,ZHANG FuSuo1()   

  1. 1College of Resources and Environmental Sciences, China Agricultural University, Beijing 100193
    2College of Science, China Agricultural University, Beijing 100193
    3College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing 210095
    4National Engineering Research Centre of Information Technology in Agriculture, Beijing 100097
  • Received:2021-09-26 Accepted:2021-12-21 Online:2022-11-01 Published:2022-11-09
  • Contact: FuSuo ZHANG E-mail:miguohua@cau.edu.cn;huoyuewen@cau.edu.cn;zhangfs@cau.edu.cn

Abstract:

The efficient nutrient management is essential for agricultural green development. With the increase of farm land scale and the development of agricultural mechanization, the mismatch between agricultural machinery and agronomy in nutrient management becomes increasingly obvious. There is a requirement to coordinate agronomic techniques and machinery operation. This paper analyzed the current situation and improvement direction in nutrient management techniques and agricultural machinery in the cropping system of spring maize in northeast China, winter wheat-summer maize in north China, and rice planting system in south China. It is indicated that efficient fertilizer application technology needs suitable fertilizer application machinery as guarantee, new fertilizer products need new fertilizer application machinery, changing cultivation and tillage methods generates new demand for agricultural machinery, and fertilizer application mechanization to be upgraded by using information and automatic intelligent techniques. At the same time, the fertilizer products and fertilizer application technology innovation need to take into consideration of the feasibility of mechanization. This paper described the research progress of starter fertilizer, synchronized fertilizer application and sowing technology, and straw mulching strip tillage technology in maize, within-season mechanized fertilizer application technology in wheat, mechanized side-depth fertilizer application technology in rice, and mechanized variable fertilizer application technology in China. The suggestions were provided to enhance the integration of agricultural machinery and agronomic technology, so as to upgrade the level of nutrient management of field crops.

Key words: wheat, maize, rice, nutrient management, fertilizer application machinery, match machinery with agronomy, agricultural green development

Fig. 1

High-clearance fertilizer side-dressing applicator in maize"

Fig. 2

The machine for strip-till and maize growth performance"

Fig. 3

Rice transplanting machine with side-and-deep fertilization application apparatus and fertilizing effect"

Fig. 4

Liquid fertilizer injection machine for wheat"

[1] FAO(Food and Agriculture Organization of the United Nations). FAOSTAT. http://www.fao.org/faostat/en/#home.2010.10.
[2] 林葆, 林继雄, 李家康. 长期施肥的作物产量和土壤肥力变化. 植物营养与肥料学报, 1994(1): 6-18.
LIN B, LIN J X, LI J K. The changes of crop yield and soil fertility with long-term fertilizer application. Plant Nutrition and Fertilizing Science, 1994(1): 6-18. (in Chinese)
[3] 张福锁. 测土配方施肥技术. 北京: 中国农业大学出版社, 2011.
ZHANG F S. Soil Testing and Fertilization Recommendation. Beijing: China Agricultural University Press, 2011. (in Chinese)
[4] 张福锁. 协调作物高产与环境保护的养分资源综合管理技术研究与应用. 北京: 中国农业大学出版社, 2008.
ZHANG F S. Research and Application of Integrated Nutrient Resource Management Technology for Reconciling High Crop Yield and Environmental Protection. Beijing: China Agricultural University Press. 2008. (in Chinese)
[5] 赵春江, 薛绪掌, 王秀, 陈立平, 潘瑜春, 孟志军. 精准农业技术体系的研究进展与展望. 农业工程学报, 2003, 19(4): 7-12. doi:10.3321/j.issn:1002-6819.2003.04.002.
ZHAO C J, XUE X Z, WANG X, CHEN L P, PAN Y C, MENG Z J. Advance and prospects of precision agriculture technology system. Transactions of the Chinese Society of Agricultural Engineering, 2003, 19(4): 7-12. doi:10.3321/j.issn:1002-6819.2003.04.002 (in Chinese)
[6] 赵秉强. 新型肥料. 北京: 科学出版社, 2013.
ZHAO B Q. New Fertilizers. Beijing: Science Press, 2013. (in Chinese)
[7] 白由路. 国内外施肥机械的发展概况及需求分析. 中国土壤与肥料, 2016(3): 1-4. doi:10.11838/sfsc.20160301.
BAI Y L. Analysis of the development and the demands of fertilization machinery. Soil and Fertilizer Sciences in China, 2016(3): 1-4. doi:10.11838/sfsc.20160301. (in Chinese)
[8] 罗锡文. 对加速我国农业机械化发展的思考. 农业工程, 2011, 1(4): 1-8, 56.
LUO X W. Thoughts on accelerating the development of agricultural mechanization in China. Agricultural Engineering, 2011, 1(4): 1-8, 56. (in Chinese)
[9] 罗锡文, 廖娟, 胡炼, 臧英, 周志艳. 提高农业机械化水平促进农业可持续发展. 农业工程学报, 2016, 32(1): 1-11.
LUO X W, LIAO J, HU L, ZANG Y, ZHOU Z Y. Improving agricultural mechanization level to promote agricultural sustainable development. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(1): 1-11. (in Chinese)
[10] 潘彪, 田志宏. 购机补贴政策对中国农业机械使用效率的影响分析. 中国农村经济, 2018(6): 21-37.
PAN B, TIAN Z H. The impacts of agricultural machinery purchase subsidy policies on the utilization efficiency of agricultural machinery in China. Chinese Rural Economy, 2018(6): 21-37. (in Chinese)
[11] 张福锁, 王激清, 张卫峰, 崔振岭, 马文奇, 陈新平, 江荣风. 中国主要粮食作物肥料利用率现状与提高途径. 土壤学报, 2008, 45(5): 915-924. doi:10.3321/j.issn:0564-3929.2008.05.018.
ZHANG F S, WANG J Q, ZHANG W F, CUI Z L, MA W Q, CHEN X P, JIANG R F. Nutrient use efficiencies of major cereal crops in China and measures for improvement. Acta Pedologica Sinica, 2008, 45(5): 915-924. doi:10.3321/j.issn:0564-3929.2008.05.018. (in Chinese)
[12] DUCSAY L, LOŽEK O. Effect of topdressing with nitrogen on the yield and quality of winter wheat grain. Plant, Soil and Environment, 2011, 50(7): 309-314. doi:10.17221/4037-pse.
[13] PAN S G, HUANG S Q, ZHAI J, WANG J P, CAO C G, CAI M L, ZHAN M, TANG X R. Effects of N management on yield and N uptake of rice in central China. Journal of Integrative Agriculture, 2012, 11(12): 1993-2000. doi:10.1016/S2095-3119(12)60456-0.
[14] 高强, 冯国忠, 王志刚. 东北地区春玉米施肥现状调查. 中国农学通报, 2010, 26(14): 229-231.
GAO Q, FENG G Z, WANG Z G. Present situation of fertilizer application on spring maize in northeast China. Chinese Agricultural Science Bulletin, 2010, 26(14): 229-231. (in Chinese)
[15] 吴良泉. 基于“大配方、小调整”的中国三大粮食作物区域配肥技术研究[D]. 北京: 中国农业大学, 2014.
WU L Q. Fertilizer recommendations for three major cereal crops based on regional fertilizer formula and site specific adjustment in China[D]. Beijing: China Agricultural University, 2014. (in Chinese)
[16] 张福锁, 崔振岭, 陈新平. 高产高效养分管理技术. 北京: 中国农业大学出版社, 2012.
ZHANG F S, CUI Z L, CHEN X P. Nutrient Management Technology for High-Yield and High-Efficiency Crop Production. Beijing: China Agricultural University Press, 2012. (in Chinese)
[17] 李金鹏, 宋文越, 姚春生, 周晓楠, 张震, 王志敏, 张英华. 微喷水肥一体化对冬小麦产量和水分利用效率的影响. 中国农业大学学报, 2020, 25(3): 1-9. doi:10.11841/j.issn.1007-4333.2020.03.01.
LI J P, SONG W Y, YAO C S, ZHOU X N, ZHANG Z, WANG Z M, ZHANG Y H. Effects of nitrogen fertilizer application and micro-sprinkling irrigation integration on grain yield and water use efficiency of winter wheat. Journal of China Agricultural University, 2020, 25(3): 1-9. doi:10.11841/j.issn.1007-4333.2020.03.01. (in Chinese)
[18] 苏效坡, 曾爱军, 米国华. 中国和美国雨养玉米区机械化施肥技术比较分析. 玉米科学, 2015, 23(6): 142-148. doi:10.13597/j.cnki.maize.science.20150625.
SU X P, ZENG A J, MI G H. Current status of mechanized fertilization techniques in rain-fed maize in China and the USA. Journal of Maize Sciences, 2015, 23(6): 142-148. doi:10.13597/j.cnki.maize.science.20150625. (in Chinese)
[19] MATSUNAMI T, NOTOYA M, MATSUNAMI M, KON K. Effect of no topdressing on yield and grain quality of sparsely planted rice cultivar akitakomachi in Akita prefecture. Japanese Journal of Crop Science, 2016, 85(1): 1-9. doi:10.1626/jcs.85.1.
[20] FUKUSHIMA A, OHTA H, YOKOGAMI N, TSUDA N. Effects of nitrogen topdressing time on growth, yield, grain appearance and eating quality of the rice varieties bred by Tohoku Agricultural Research Center. Japanese Journal of Crop Science, 2017, 86(1): 7-14. doi:10.1626/jcs.86.7.
[21] YAO Z S, ZHENG X H, ZHANG Y N, LIU C Y, WANG R, LIN S, ZUO Q, BUTTERBACH-BAHL K. Urea deep placement reduces yield-scaled greenhouse gas (CH4 and N2O) and NO emissions from a ground cover rice production system. Scientific Reports, 2017, 7: 11415. doi:10.1038/s41598-017-11772-2.
[22] PAN S G, WEN X C, WANG Z M, UMAIR A, TIAN H, DUAN M Y, MO Z W, FAN P S, TANG X R. Benefits of mechanized deep placement of nitrogen fertilizer in direct-seeded rice inSouth China. Field Crops Research, 2017, 203: 139-149. doi:10.1016/j.fcr.2016.12.011.
[23] 丁艳锋, 李刚华, 李伟玮, 高深, 汪瑜辉, 刘正辉, 陈琳, 丁承强, 唐设, 江瑜. 水稻机插缓混一次施肥技术的研发与示范. 中国稻米, 2020, 26(5): 11-15. doi:10.3969/j.issn.1006-8082.2020.05.002.
DING Y F, LI G H, LI W W, GAO S, WANG Y H, LIU Z H, CHEN L, DING C Q, TANG S, JIANG Y. Introduction to the one-time fertilization technology for mechanized transplanting rice: side deep application of controlled-release blend fertilizer. China Rice, 2020, 26(5): 11-15. doi:10.3969/j.issn.1006-8082.2020.05.002. (in Chinese)
[24] 王晓丹, 向镜, 张玉屏, 张义凯, 王亚梁, 陈惠哲. 水稻机插同步侧深施肥技术进展及应用. 中国稻米, 2020, 26(5): 53-57. doi:10.3969/j.issn.1006-8082.2020.05.012.
WANG X D, XIANG J, ZHANG Y P, ZHANG Y K, WANG Y L, CHEN H Z. Research advances and application of rice mechanized transplanting with side deep fertilization technology. China Rice, 2020, 26(5): 53-57. doi:10.3969/j.issn.1006-8082.2020.05.012. (in Chinese)
[25] LIU T Q, FAN D J, ZHANG X X, CHEN J, LI C F, CAO C G. Deep placement of nitrogen fertilizers reduces ammonia volatilization and increases nitrogen utilization efficiency in no-tillage paddy fields in central China. Field Crops Research, 2015, 184: 80-90. doi:10.1016/j.fcr.2015.09.011.
[26] NKEBIWE P M, WEINMANN M, BAR-TAL A, MÜLLER T. Fertilizer placement to improve crop nutrient acquisition and yield: A review and meta-analysis. Field Crops Research, 2016, 196: 389-401. doi:10.1016/j.fcr.2016.07.018.
[27] 米国华, 伍大利, 陈延玲, 夏婷婷, 冯国忠, 李前, 石东峰, 苏效坡, 高强. 东北玉米化肥减施增效技术途径探讨. 中国农业科学, 2018, 51(14): 2758-2770. doi:10.3864/j.issn.0578-1752.2018.14.013.
MI G H, WU D L, CHEN Y L, XIA T T, FENG G Z, LI Q, SHI D F, SU X P, GAO Q. The ways to reduce chemical fertilizer input and increase fertilizer use efficiency in maize in northeast China. Scientia Agricultura Sinica, 2018, 51(14): 2758-2770. doi:10.3864/j.issn.0578-1752.2018.14.013. (in Chinese)
[28] REEVES D W, TOUCHTON J T, BURMESTER C H. Starter fertilizer combinations and placement for conventional and no-tillage corn. Journal of Fertilizer Issues, 1986, 3(3): 80-85.
[29] REHM G W, EVANS S D., NELSON W W, RANDALL G W. Influence of placement of phosphorus and potassium on yield of corn and soybeans. Journal of Fertilizer Issues, 1988(5): 6-13.
[30] TOUCHTON, J T. Starter fertilizer combinations for corn grown on soils high in residual-P. Journal of fertilizer issues, 1988, 5(4): 126-130.
[31] 黄燕, 汪春, 衣淑娟. 液体肥料的应用现状与发展前景. 农机化研究, 2006, 28(2): 198-200. doi:10.3969/j.issn.1003-188X.2006.02.072.
HUANG Y, WANG C, YI S J. The application situation of fluid fertilizer and its developmental prospects. Journal of Agricultural Mechanization Research, 2006, 28(2): 198-200. doi:10.3969/j.issn.1003-188X.2006.02.072. (in Chinese)
[32] XUE X Y, XU X F, ZHANG Z L, ZHANG B, SONG S R, LI Z, HONG T S, HUANG H X. Variable rate liquid fertilizer applicator for deep-fertilization in precision farming based on ZigBee technology. 6th International-Federation-of-Automatic-Control (IFAC) Conference on Sensing, Control and Automation Technologies for Agriculture. 2019, 52(30):43-50.
[33] SINGH J, MAHAL J S, MANES G S, MANJEET S, SINGH J, SINGH M. Development and evaluation of nitrogen (liquid Urea) applicator for straw mulched no-till wheat. Agricultural Engineering International: CIGR Journal, 2013, 15(4): 30-38.
[34] CHEN Y, SAMSON R. Integration of liquid manure into conservation tillage corn systems. Transactions of the ASAE, 2002, 45(3): 629-638. doi:10.13031/2013.8826.
[35] 郎春玲, 王金武, 王金峰, 何剑南, 郗晓焕. 深施型液态肥变量施肥控制系统. 农业机械学报, 2013, 44(2): 43-47, 62.
LANG C L, WANG J W, WANG J F, HE J N, XI X H. Variable fertilizer control system for deep-fertilization liquid fertilizer applicator. Transactions of the Chinese Society for Agricultural Machinery, 2013, 44(2): 43-47, 62. (in Chinese)
[36] CHIANG P N, OU-YANG T, CHIOU C S, LIN Y, WANG M K, LIU C C. Reclamation of zinc-contaminated soil using a dissolved organic carbon solution prepared using liquid fertilizer from food-waste composting. Journal of Hazardous Materials, 2016, 301: 100-105. doi:10.1016/j.jhazmat.2015.08.015.
[37] PETPERSEN J M, SVENDSEN J A, ØVLAND S. A method of studying the influence of fertilizer particle size on the distribution from a twin-disc spreader. Journal of Agricultural Engineering Research, 1991, 50: 291-303. doi:10.1016/S0021-8634(05)80021-6.
[38] MALGERYD J, WETTERBERG C. Physical properties of solid and liquid manures and their effects on the performance of spreading machines. Journal of Agricultural Engineering Research, 1996, 64(4): 289-298. doi:10.1006/jaer.1996.0070.
[39] BERNIK R, DUHOVNIK J, BENEDICIC J. The design of more usable manure spreader. Actual Tasks on Agricultural Engineering- Zagreb, 2003, 31: 177-185.
[40] 舒畅. 液态肥不好使已成过去时丹青诺和液态粪肥还田模式得到认可. 农民日报, 2021-03-06.
SHU C. Liquid fertilizer is a thing of the past, Denzinno and liquid manure return model is recognized. Farmers' Daily, 2021-03-06. (in Chinese)
[41] 杨轶囡, 吴迪, 刘文明, 舒坤良, 臧笑磊, 单魁贤. 吉林省玉米秸秆资源化利用的问题与对策研究. 玉米科学, 2016, 24(2): 171-174. doi:10.13597/j.cnki.maize.science.20160230.
YANG Y N, WU D, LIU W M, SHU K L, ZANG X L, SHAN K X. Maize straw resource utilization and countermeasures in Jilin Province. Journal of Maize Sciences, 2016, 24(2): 171-174. doi:10.13597/j.cnki. maize.science.20160230. (in Chinese)
[42] 石东峰, 米国华. 玉米秸秆覆盖条耕技术及其应用. 土壤与作物, 2018, 7(3): 349-355. doi:10.11689/j.issn.2095-2961.2018.03.010.
SHI D F, MI G H. Straw mulching strip-till technology and its application in corn production. Soil and Crop, 2018, 7(3): 349-355. doi:10.11689/j.issn.2095-2961.2018.03.010. (in Chinese)
[43] FENG X M, HAO Y B, LATIFMANESH H, LAL R, CAO T H, GUO J R, DENG A X, SONG Z W, ZHANG W J. Effects of subsoiling tillage on soil properties, maize root distribution, and grain yield on mollisols of northeastern China. Agronomy Journal, 2018, 110(4): 1607-1615. doi:10.2134/agronj2018.01.0027.
[44] ZHANG M H, WANG Z M, LUO X W, ZANG Y, YANG W W, XING H, WANG B L, DAI Y Z. Review of precision rice hill-drop drilling technology and machine for paddy. International Journal of Agricultural and Biological Engineering, 2018, 11(3): 1-11. doi:10.25165/j.ijabe.20181103.4249.
[45] 汤海涛, 马国辉, 罗锡文, 曾山, 许文燕, 龙继锐, 胡承伟, 马付建. 水稻机械精量穴直播定位深施肥节氮栽培效果研究. 农业现代化研究, 2011, 32(1): 111-114. doi:10.3969/j.issn.1000-0275.2011.01.025.
TANG H T, MA G H, LUO X W, ZENG S, XU W Y, LONG J R, HU C W, MA F J. Effects of mechanical precise hill-drop drilling and located depth-fertilization on rice nitrogen-saving. Research of Agricultural Modernization, 2011, 32(1): 111-114. doi:10.3969/j.issn.1000-0275.2011.01.025. (in Chinese)
[46] 郭建华, 赵春江, 王秀, 陈立平. 作物氮素营养诊断方法的研究现状及进展. 中国土壤与肥料, 2008(4): 10-14. doi:10.3969/j.issn.1673-6257.2008.04.003
GUO J H, ZHAO C J, WANG X, CHEN L P. Research advancement and status on crop nitrogen nutrition diagnosis. Soil and Fertilizers Sciences in China, 2008(4): 10-14. doi:10.3969/j.issn.1673-6257.2008.04.003. (in Chinese)
[47] COLOMINA I, MOLINA P. Unmanned aerial systems for photogrammetry and remote sensing: A review. ISPRS Journal of Photogrammetry and Remote Sensing, 2014, 92: 79-97. doi:10.1016/j.isprsjprs.2014.02.013.
[48] 韩英, 贾如, 唐汉. 精准变量施肥机械研究现状与发展建议. 农业工程, 2019, 9(5): 1-6. doi:10.3969/j.issn.2095-1795.2019.05.002.
HAN Y, JIA R, TANG H. Research status and development suggestions of precision variable-rate fertilization machine. Agricultural Engineering, 2019, 9(5): 1-6. doi:10.3969/j.issn.2095-1795.2019.05.002. (in Chinese)
[49] 姬长英, 周俊. 农业机械导航技术发展分析. 农业机械学报, 2014, 45(9): 44-54. doi:10.6041/j.issn.1000-1298.2014.09.008.
JI C Y, ZHOU J. Current situation of navigation technologies for agricultural machinery. Transactions of the Chinese Society for Agricultural Machinery, 2014, 45(9): 44-54. doi:10.6041/j.issn.1000-1298.2014.09.008. (in Chinese)
[50] 王秀, 赵春江, 孟志军, 陈立平, 潘瑜春, 薛绪掌. 精准变量施肥机的研制与试验. 农业工程学报, 2004, 20(5): 114-117. doi:10.3321/j.issn:1002-6819.2004.05.024.
WANG X, ZHAO C J, MENG Z J, CHEN L P, PAN Y C, XUE X Z. Design and experiment of variable rate fertilizer applicator. Transactions of the Chinese Society of Agricultural Engineering, 2004, 20(5): 114-117. doi:10.3321/j.issn:1002-6819.2004.05.024. (in Chinese)
[51] ZHANG H J, XU C B, WANG J X. Fertilizer strength prediction model based on shape characteristics. IEEE Access, 2021, 9: 87007-87023. doi:10.1109/ACCESS.2021.3068147.
[52] 杨庆璐, 黄幸媛, 王庆杰, 李洪文, 王英博, 王揽月. 玉米空间分层施肥装置结构优化与试验. 农业机械学报, 2020, 51(S1): 175-185.
YANG Q L, HUANG X Y, WANG Q J, LI H W, WANG Y B, WANG L Y. Structure optimization and experiment of corn layered fertilization device. Transactions of the Chinese Society for Agricultural Machinery, 2020, 51(S1): 175-185. (in Chinese)
[53] 孟晓琛, 张富仓, 刘蓝骄, 陆军胜, 何平如, 肖超. 播期和水氮互作对滴灌施肥春玉米生长和水氮利用的影响. 植物营养与肥料学报, 2020, 26(10): 1794-1804. doi:10.11674/zwyf.20088.
MENG X C, ZHANG F C, LIU L J, LU J S, HE P R, XIAO C. Effects of sowing date and water-nitrogen interaction on the growth and water and nitrogen utilization of spring maize under drip fertigation. Plant Nutrition and Fertilizer Science, 2020, 26(10): 1794-1804. doi:10.11674/zwyf.20088. (in Chinese)
[54] 褚清河, 潘根兴, 李健英, 李典友, 张旭辉. 不同施氮量下北方稻田一次与分次施氮对水稻产量的影响. 土壤通报, 2008, 39(1): 82-86. doi:10.19336/j.cnki.trtb.2008.01.016.
CHU Q H, PAN G X, LI J Y, LI D Y, ZHANG X H. Effect of single or multiple N applications under different total N fertilization on rice yield in a paddy soil of North China. Chinese Journal of Soil Science, 2008, 39(1): 82-86. doi:10.19336/j.cnki.trtb.2008.01.016. (in Chinese)
[55] 李前, 陈延玲, 陈晓超, 张洁, 米国华. 基肥、种肥施用技术对东北春玉米苗期生长及产量的影响. 玉米科学, 2017, 25(1): 147-152. doi:10.13597/j.cnki.maize.science.20170124.
LI Q, CHEN Y L, CHEN X C, ZHANG J, MI G H. Effect of basal and seed fertilizers on seedling growth and grain yield in spring maize in northeast China. Journal of Maize Sciences, 2017, 25(1): 147-152. doi:10.13597/j.cnki.maize.science.20170124. (in Chinese)
[56] 吴小宾. 集约化玉米体系养分高效利用的根层调控及其机械化实现途径研究[D]. 北京: 中国农业大学, 2016.
WU X B. Mechanisms and mechanical approaches of root-zone management for efficient nutrient use in intensive cropping system for maize[D]. Beijing: China Agricultural University, 2016. (in Chinese)
[57] 吕小凡, 赵海蓓, 白如霄, 张新疆, 刘玲慧, 危常州. 施用启动肥对土壤特性、玉米生长及产量的影响. 中国土壤与肥料, 2021(1): 240-246. doi:10.11838/sfsc.1673-6257.19600.
LÜ X F, ZHAO H B, BAI R X, ZHANG X J, LIU L H, WEI C Z. Effect of starter fertilizer on yield, growth and soil characteristics of maize. Soils and Fertilizers Sciences in China, 2021(1): 240-246. doi:10.11838/sfsc.1673-6257.19600. (in Chinese)
[58] 胡红, 李洪文, 王庆杰, 何进, 张翼夫, 陈婉芝, 王宪良. 玉米行间定点扎穴深施追肥机的设计与试验. 农业工程学报, 2016, 32(24): 26-35. doi:10.11975/j.issn.1002-6819.2016.24.004.
HU H, LI H W, WANG Q J, HE J, ZHANG Y F, CHEN W Z, WANG X L. Design and experiment of targeted hole-pricking and deep-application fertilizer applicator between corn rows. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(24): 26-35. doi:10.11975/j.issn.1002-6819.2016.24.004. (in Chinese)
[59] 袁文胜, 李坤, 金诚谦, 胡敏娟, 张文毅. 穴施肥排肥器设计与试验. 农机化研究, 2018, 40(1): 145-149, 165. doi:10.13427/j.cnki.njyi.2018.01.027.
YUAN W S, LI K, JIN C Q, HU M J, ZHANG W Y. Design and experiment of hill placement fertilizer applicator. Journal of Agricultural Mechanization Research, 2018, 40(1): 145-149, 165. doi:10.13427/j.cnki.njyi.2018.01.027. (in Chinese)
[60] VYN T J, RAIMBAULT B A. Evaluation of strip tillage systems for corn production in Ontario. Soil and Tillage Research, 1992, 23(1/2): 163-176. doi:10.1016/0167-1987(92)90012-Z.
[61] PITTELKOW C M, LIANG X Q, LINQUIST B A, VAN GROENIGEN K J, LEE J, LUNDY M E, VAN GESTEL N, SIX J, VENTEREA R T, VAN KESSEL C. Productivity limits and potentials of the principles of conservation agriculture. Nature, 2015, 517(7534): 365-368. doi:10.1038/nature13809.
[62] KOVÁCS P, VYN T J. Full-season retrospectives on causes of plant-to-plant variability in maize grain yield response to nitrogen and tillage. Agronomy Journal, 2014, 106(5): 1746-1757. doi:10.2134/agronj14.0173.
[63] AL-KAISI M, LICHT M A. Effect of strip tillage on corn nitrogen uptake and residual soil nitrate accumulation compared with no-tillage and chisel plow. Agronomy Journal, 2004, 96(4): 1164-1171. doi:10.2134/agronj2004.1164.
[64] 石东峰. 东北雨养区春玉米秸秆覆盖条耕技术研究[D]. 北京: 中国农业大学, 2018.
SHI D F. The research of straw mulching strip-till technology in rain-fed spring maize area in Northeast of China[D]. Beijing: China Agricultural University, 2018. (in Chinese)
[65] 位国建, 荐世春, 崔荣江, 李娜. 水稻机插秧同步侧深施肥技术分析及试验. 农机化研究, 2017, 39(9): 190-194. doi:10.13427/j.cnki.njyi.2017.09.037.
WEI G J, JIAN S C, CUI R J, LI N. Analysis and experiment of mechanical transplanting rice sync with the side deep fertilizing technology. Journal of Agricultural Mechanization Research, 2017, 39(9): 190-194. doi:10.13427/j.cnki.njyi.2017.09.037. (in Chinese)
[66] 罗锡文, 蒋恩臣, 王在满, 唐湘如, 李就好, 陈伟通. 开沟起垄式水稻精量穴直播机的研制. 农业工程学报, 2008, 24(12): 52-56. doi:10.3321/j.issn:1002-6819.2008.12.011.
LUO X W, JIANG E C, WANG Z M, TANG X R, LI J H, CHEN W T. Precision rice hill-drop drilling machine. Transactions of the Chinese Society of Agricultural Engineering, 2008, 24(12): 52-56. doi:10.3321/j.issn:1002-6819.2008.12.011. (in Chinese)
[67] 王在满, 罗锡文, 唐湘如, 马国辉, 张国忠, 曾山. 基于农机与农艺相结合的水稻精量穴直播技术及机具. 华南农业大学学报, 2010, 31(1): 91-95. doi:10.3969/j.issn.1001-411X.2010.01.022.
WANG Z M, LUO X W, TANG X R, MA G H, ZHANG G Z, ZENG S. Precision rice hill-direct-seeding technology and machine based on the combination of agricultural machinery and agronomic technology. Journal of South China Agricultural University, 2010, 31(1): 91-95. doi:10.3969/j.issn.1001-411X.2010.01.022. (in Chinese)
[68] 曾山, 汤海涛, 罗锡文, 马国辉, 王在满, 臧英, 张明华. 同步开沟起垄施肥水稻精量旱穴直播机设计与试验. 农业工程学报, 2012, 28(20): 12-19.
ZENG S, TANG H T, LUO X W, MA G H, WANG Z M, ZANG Y, ZHANG M H. Design and experiment of precision rice hill-drop drilling machine for dry land with synchronous fertilizing. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(20): 12-19. (in Chinese)
[69] 陈长海. 水稻插秧机螺旋搅龙式侧深施肥装置的设计与试验研究[D]. 大庆: 黑龙江八一农垦大学, 2016.
CHEN C H. Design and experimental research on the spiral auger type side deep fertilizer apparatus of rice transplanter[D]. Daqing: Heilongjiang Bayi Agricultural University, 2016. (in Chinese)
[70] 左兴健, 武广伟, 付卫强, 李立伟, 魏学礼, 赵春江. 风送式水稻侧深精准施肥装置的设计与试验. 农业工程学报, 2016, 32(3): 14-21. doi:10.11975/j.issn.1002-6819.2016.03.003.
ZUO X J, WU G W, FU W Q, LI L W, WEI X L, ZHAO C J. Design and experiment on air-blast rice side deep precision fertilization device. Transactions of the Chinese Society of Agricultural Engineering, 2016, 32(3): 14-21. doi:10.11975/j.issn.1002-6819.2016.03.003. (in Chinese)
[71] 位国建, 荐世春, 付乾坤, 彭强吉. 水稻插秧施肥联合作业机的设计. 农机化研究, 2015, 37(11): 104-107, 112. doi:10.13427/j.cnki.njyi.2015.11.023.
WEI G J, JIAN S C, FU Q K, PENG Q J. The design of rotary transplanting with fertilizing combine machine. Journal of Agricultural Mechanization Research, 2015, 37(11): 104-107, 112. doi:10.13427/j.cnki.njyi.2015.11.023. (in Chinese)
[72] 朱从桦, 张玉屏, 向镜, 张义凯, 武辉, 王亚梁, 朱德峰, 陈惠哲. 侧深施氮对机插水稻产量形成及氮素利用的影响. 中国农业科学, 2019, 52(23): 4228-4239. doi:10.3864/j.issn.0578-1752.2019.23.004.
ZHU C H, ZHANG Y P, XIANG J, ZHANG Y K, WU H, WANG Y L, ZHU D F, CHEN H Z. Effects of side deep fertilization on yield formation and nitrogen utilization of mechanized transplanting rice. Scientia Agricultura Sinica, 2019, 52(23): 4228-4239. doi:10.3864/j.issn.0578-1752.2019.23.004. (in Chinese)
[73] 钟雪梅, 吴远帆, 彭建伟, 王刚, 卢文璐, 宋思明, 唐启源, 湛冬至, 周旋. 控释掺混肥机插侧深施实现双季稻增产与增效. 水土保持学报, 2020, 34(4): 256-262. doi:10.13870/j.cnki.stbcxb.2020.04.038.
ZHONG X M, WU Y F, PENG J W, WANG G, LU W L, SONG S M, TANG Q Y, ZHAN D Z, ZHOU X. Machine-transplanting with Side-deep fertilization of controlled-release blended fertilizer improved yield and nitrogen use efficiency of double-cropping rice. Journal of Soil and Water Conservation, 2020, 34(4): 256-262. doi:10.13870/j.cnki.stbcxb.2020.04.038. (in Chinese)
[74] 柯健. 氮肥种类和施肥方式对水稻产量及氮素去向的影响[D]. 南京: 南京农业大学, 2017.
KE J. Effects of different nitrogen fertilizer and placement on grain yield and the fate of nitrogen in paddy soil of machine-transplanted rice[D]. Nanjing: Nanjing Agricultural University, 2017. (in Chinese)
[75] KE J, HE R C, HOU P F, DING C, DING Y F, WANG S H, LIU Z H, TANG S, DING C Q, CHEN L, LI G H. Combined controlled- released nitrogen fertilizers and deep placement effects of N leaching, rice yield and N recovery in machine-transplanted rice. Agriculture, Ecosystems & Environment, 2018, 265: 402-412. doi:10.1016/j.agee.2018.06.023.
[76] 李刚华, 缪学宽, 丁艳锋, 邢晓鸣, 王绍华, 刘正辉, 唐设. 一种用于水稻机插的缓释复混肥. CN103922853A, 2014-07-16.
LI G H, MIAO X K, DING Y F, XING X M, WANG S H, LIU Z H, TANG S. A kind of slow-release compound fertilizer for rice machine insertion. CN103922853A, 2014-07-16.
[77] 宋卫堂, 封俊, 刘亚佳. 地轮驱动离心式化肥撒布机的设计与试验. 农业机械学报, 2002, 33(1): 39-42.
SONG W T, FENG J, LIU Y J. Design and performance test of a centrifugal type of fertilizer broadcaster with land-wheel driven. Transactions of the Chinese Society of Agricultural Machinery, 2002, 33(1): 39-42. (in Chinese)
[78] 刘彩玲, 黎艳妮, 宋建农, 马拓, 王蒙蒙, 王徐建, 张超. 基于EDEM的离心甩盘撒肥器性能分析与试验. 农业工程学报, 2017, 33(14): 32-39. doi:10.11975/j.issn.1002-6819.2017.14.005.
LIU C L, LI Y N, SONG J N, MA T, WANG M M, WANG X J, ZHANG C. Performance analysis and experiment on fertilizer spreader with centrifugal swing disk based on EDEM. Transactions of the Chinese Society of Agricultural Engineering, 2017, 33(14): 32-39. doi:10.11975/j.issn.1002-6819.2017.14.005. (in Chinese)
[79] 张睿, 王秀, 马伟, 周建军, 姜凯, 范鹏飞, 冯青春. 变量施肥抛撒机撒肥机构研究. 农机化研究, 2013, 35(11): 153-155, 163. doi:10.13427/j.cnki.njyi.2013.11.043.
ZHANG R, WANG X, MA W, ZHOU J J, JIANG K, FAN P F, FENG Q C. Design and experiment on spreading mechanism of variable rate fertilizer spreader. Journal of Agricultural Mechanization Research, 2013, 35(11): 153-155, 163. doi:10.13427/j.cnki.njyi.2013.11.043. (in Chinese)
[80] 冯慧敏, 高娜娜, 孟志军, 陈立平, 李由, 郭玉明. 基于自动导航的小麦精准对行深施追肥机设计与试验. 农业机械学报, 2018, 49(4): 60-67. doi:10.6041/j.issn.1000-1298.2018.04.007.
FENG H M, GAO N N, MENG Z J, CHEN L P, LI Y, GUO Y M. Design and experiment of deep fertilizer applicator based on autonomous navigation for precise row-following. Transactions of the Chinese Society for Agricultural Machinery, 2018, 49(4): 60-67. doi:10.6041/j.issn.1000-1298.2018.04.007. (in Chinese)
[81] 王金峰, 王金武, 何剑南. 深施型液态施肥装置施肥过程高速摄像分析. 农业机械学报, 2012, 43(4): 55-59. doi:10.6041/j.issn.1000-1298.2012.04.012.
WANG J F, WANG J W, HE J N. High-speed capture analysis of fertilization process for deep-fertilization liquid fertilizer device. Transactions of the Chinese Society for Agricultural Machinery, 2012, 43(4): 55-59. doi:10.6041/j.issn.1000-1298.2012.04.012. (in Chinese)
[82] 李金朋, 赵春江, 王秀, 王继环. 液体点状注肥机的分流器均匀性试验研究. 中国农机化学报, 2015, 36(6): 49-53. doi:10.13733/j.jcam.issn.2095-5553.2015.06.013.
LI J P, ZHAO C J, WANG X, WANG J H. Design and experiments on the distribution system of the self-propelled liquid fertilizer machine. Journal of Chinese Agricultural Mechanization, 2015, 36(6): 49-53. doi:10.13733/j.jcam.issn.2095-5553.2015.06.013. (in Chinese)
[83] FAR S T, REZAEI-MOGHADDAM K. Impacts of the precision agricultural technologies in Iran: An analysis experts’ perception & their determinants. Information Processing in Agriculture, 2018, 5(1): 173-184. doi:10.1016/j.inpa.2017.09.001.
[84] SCHUMANN A W. Precise placement and variable rate fertilizer application technologies for horticultural crops. HortTechnology, 2010, 20(1): 34-40. doi:10.21273/horttech.20.1.34.
[85] KEMPENAAR C, BEEN T, BOOIJ J, VAN EVERT F, MICHIELSEN J M, KOCKS C. Advances in variable rate technology application in potato in the Netherlands. Potato Research, 2017, 60(3): 295-305. doi:10.1007/s11540-018-9357-4.
[86] 张睿, 王秀, 赵春江, 白由路, 孟志军, 陈立平. 链条输送式变量施肥抛撒机的设计与试验. 农业工程学报, 2012, 28(6): 20-25. doi:10.3969/j.issn.1002-6819.2012.06.004.
ZHANG R, WANG X, ZHAO C J, BAI Y L, MENG Z J, CHEN L P. Design and experiment of variable rate fertilizer spreader with conveyor chain. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(6): 20-25. doi:10.3969/j.issn.1002-6819.2012.06.004. (in Chinese)
[87] 施印炎, 陈满, 汪小旵, MORICE O O, 李成光, 丁为民. 离心匀肥罩式水稻地表变量撒肥机设计与试验. 农业机械学报, 2018, 49(3): 86-93, 113. doi:10.6041/j.issn.1000-1298.2018.03.010.
SHI Y Y, CHEN M, WANG X C, MORICE O O, LI C G, DING W M. Design and experiment of variable-rate fertilizer spreader with centrifugal distribution cover for rice paddy surface fertilization. Transactions of the Chinese Society for Agricultural Machinery, 2018, 49(3): 86-93, 113. doi:10.6041/j.issn.1000-1298.2018.03.010. (in Chinese)
[88] 王金武, 潘振伟, 周文琪, 王金峰, 何剑南, 郎春玲. SYJ-2型液肥变量施肥机设计与试验. 农业机械学报, 2015, 46(7): 53-58. doi:10.6041/j.issn.1000-1298.2015.07.008.
WANG J W, PAN Z W, ZHOU W Q, WANG J F, HE J N, LANG C L. Design and test of SYJ-2 type liquid variable fertilizer. Transactions of the Chinese Society for Agricultural Machinery, 2015, 46(7): 53-58. doi:10.6041/j.issn.1000-1298.2015.07.008. (in Chinese)
[1] CHEN JiHao, ZHOU JieGuang, QU XiangRu, WANG SuRong, TANG HuaPing, JIANG Yun, TANG LiWei, $\boxed{\hbox{LAN XiuJin}}$, WEI YuMing, ZHOU JingZhong, MA Jian. Mapping and Analysis of QTL for Embryo Size-Related Traits in Tetraploid Wheat [J]. Scientia Agricultura Sinica, 2023, 56(2): 203-216.
[2] XIAO DeShun, XU ChunMei, WANG DanYing, ZHANG XiuFu, CHEN Song, CHU Guang, LIU YuanHui. Effects of Rhizosphere Oxygen Environment on Phosphorus Uptake of Rice Seedlings and Its Physiological Mechanisms in Hydroponic Condition [J]. Scientia Agricultura Sinica, 2023, 56(2): 236-248.
[3] ZHANG XiaoLi, TAO Wei, GAO GuoQing, CHEN Lei, GUO Hui, ZHANG Hua, TANG MaoYan, LIANG TianFeng. Effects of Direct Seeding Cultivation Method on Growth Stage, Lodging Resistance and Yield Benefit of Double-Cropping Early Rice [J]. Scientia Agricultura Sinica, 2023, 56(2): 249-263.
[4] YAN YanGe, ZHANG ShuiQin, LI YanTing, ZHAO BingQiang, YUAN Liang. Effects of Dextran Modified Urea on Winter Wheat Yield and Fate of Nitrogen Fertilizer [J]. Scientia Agricultura Sinica, 2023, 56(2): 287-299.
[5] XU JiuKai, YUAN Liang, WEN YanChen, ZHANG ShuiQin, LI YanTing, LI HaiYan, ZHAO BingQiang. Nitrogen Fertilizer Replacement Value of Livestock Manure in the Winter Wheat Growing Season [J]. Scientia Agricultura Sinica, 2023, 56(2): 300-313.
[6] CHAI HaiYan,JIA Jiao,BAI Xue,MENG LingMin,ZHANG Wei,JIN Rong,WU HongBin,SU QianFu. Identification of Pathogenic Fusarium spp. Causing Maize Ear Rot and Susceptibility of Some Strains to Fungicides in Jilin Province [J]. Scientia Agricultura Sinica, 2023, 56(1): 64-78.
[7] ZHAO ZhengXin,WANG XiaoYun,TIAN YaJie,WANG Rui,PENG Qing,CAI HuanJie. Effects of Straw Returning and Nitrogen Fertilizer Types on Summer Maize Yield and Soil Ammonia Volatilization Under Future Climate Change [J]. Scientia Agricultura Sinica, 2023, 56(1): 104-117.
[8] ZHANG Wei,YAN LingLing,FU ZhiQiang,XU Ying,GUO HuiJuan,ZHOU MengYao,LONG Pan. Effects of Sowing Date on Yield of Double Cropping Rice and Utilization Efficiency of Light and Heat Energy in Hunan Province [J]. Scientia Agricultura Sinica, 2023, 56(1): 31-45.
[9] FENG XiangQian,YIN Min,WANG MengJia,MA HengYu,CHU Guang,LIU YuanHui,XU ChunMei,ZHANG XiuFu,ZHANG YunBo,WANG DanYing,CHEN Song. Effects of Meteorological Factors on Quality of Late Japonica Rice During Late Season Grain Filling Stage Under ‘Early Indica and Late Japonica’ Cultivation Pattern in Southern China [J]. Scientia Agricultura Sinica, 2023, 56(1): 46-63.
[10] LI ZhouShuai,DONG Yuan,LI Ting,FENG ZhiQian,DUAN YingXin,YANG MingXian,XU ShuTu,ZHANG XingHua,XUE JiQuan. Genome-Wide Association Analysis of Yield and Combining Ability Based on Maize Hybrid Population [J]. Scientia Agricultura Sinica, 2022, 55(9): 1695-1709.
[11] ZHAO HaiXia,XIAO Xin,DONG QiXin,WU HuaLa,LI ChengLei,WU Qi. Optimization of Callus Genetic Transformation System and Its Application in FtCHS1 Overexpression in Tartary Buckwheat [J]. Scientia Agricultura Sinica, 2022, 55(9): 1723-1734.
[12] XIONG WeiYi,XU KaiWei,LIU MingPeng,XIAO Hua,PEI LiZhen,PENG DanDan,CHEN YuanXue. Effects of Different Nitrogen Application Levels on Photosynthetic Characteristics, Nitrogen Use Efficiency and Yield of Spring Maize in Sichuan Province [J]. Scientia Agricultura Sinica, 2022, 55(9): 1735-1748.
[13] LI YiLing,PENG XiHong,CHEN Ping,DU Qing,REN JunBo,YANG XueLi,LEI Lu,YONG TaiWen,YANG WenYu. Effects of Reducing Nitrogen Application on Leaf Stay-Green, Photosynthetic Characteristics and System Yield in Maize-Soybean Relay Strip Intercropping [J]. Scientia Agricultura Sinica, 2022, 55(9): 1749-1762.
[14] WANG HaoLin,MA Yue,LI YongHua,LI Chao,ZHAO MingQin,YUAN AiJing,QIU WeiHong,HE Gang,SHI Mei,WANG ZhaoHui. Optimal Management of Phosphorus Fertilization Based on the Yield and Grain Manganese Concentration of Wheat [J]. Scientia Agricultura Sinica, 2022, 55(9): 1800-1810.
[15] SANG ShiFei,CAO MengYu,WANG YaNan,WANG JunYi,SUN XiaoHan,ZHANG WenLing,JI ShengDong. Research Progress of Nitrogen Efficiency Related Genes in Rice [J]. Scientia Agricultura Sinica, 2022, 55(8): 1479-1491.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!