Scientia Agricultura Sinica ›› 2014, Vol. 47 ›› Issue (7): 1273-1289.doi: 10.3864/j.issn.0578-1752.2014.07.004

• TILLAGE & CULTIVATION·PHYSIOLOGY & BIOCHEMISTRY·AGRICULTURE INFORMATION TECHNOLOGY • Previous Articles     Next Articles

Research Status and Development Discussion on High-Yielding Agronomy of Mechanized Planting Rice in China

 ZHANG  Hong-Cheng, GONG  Jin-Long   

  1. College of Agriculture, Yangzhou University/Innovation Center of Rice Cultivation Technology in the Yangtze Valley, Ministry of Agriculture/Key Laboratory of Crop Genetics and Physiology of Jiangsu Province, Yangzhou 225009, Jiangsu
  • Received:2013-09-11 Online:2014-04-01 Published:2014-01-17

Abstract: Rice planting mechanization is a difficult point of the whole-course mechanized development in crop production in China. Based on the reviewing of development situation of rice planting mechanization in China, the high-yielding rules and cultivation techniques of three mechanized planting methods were highlighted and illustrated. (1) Growth characteristics and high-yielding rules of blanket-seedling mechanical transplanting rice grown in floppy disks were generalized systematically. Firstly, population photosynthesis and matter production at the middle and later period were improved by developing appropriate dynamics of stems and tillers and LAI. Secondly, it was the emphasis to increase the effective and efficient biomass accumulation in the middle period, and matter production after heading and the final biological yield. Thirdly, the sufficient population spikelets were composed of enough panicles and larger spike harmoniously, with normal seed-setting rate and 1000-grain weight at the same time. Moreover, the supporting cultivation techniques for high yield were as follows. ① Nursing standardized seedlings for providing biological basis of building starting point of high-yielding population. ② Precise mechanical planting was conducive to the formation of high-yielding population. ③ Promoting tillers growth earlier in the early period could make sure of suitable stems and tillers for high yield slightly before the critical leaf-age for productive tillers. ④ Field draining earlier and lighter, with an appropriate number of peak seedling (1.4-1.5 folds of expected panicle number), could create conditions for reapplying fertilizer of strong stalk and spikelet promotion as early as possible. ⑤ Committed to optimize the growth in the middle period and increase the effective and efficient biomass accumulation, a right amount of population stems and tillers with strong stalk and large panicle was beneficial to constitute a high-efficiency photosynthetic layer. ⑥ Strengthening material production and accumulation for increasing the enrichment of population sink. (2) Many advantages of the high-yielding cultivation of pot-seedling mechanical transplanting rice were also introduced systematically, such as nursing elder seedlings with soil bowl, almost no damage to machine-transplanting precisely, achieving designed basic seedling of high-yielding cultivation accurately, forming an appropriate number of population stems and tillers with strong stalk and large panicle, improving ventilation and light conditions of population, strengthening the resistance to lodging, coordinating source-sink, strengthening strong photosynthetic production in the middle and later periods, making full use of temperature and solar radiation, creating (super) high yield stably and annual yield in the multiple cropping rotation systems, etc. And the key agronomic techniques for high-yielding cultivation of pot-seedling mechanical transplanting rice were as below. ① Nursing age-lengthening seedlings precisely; ② Precise quantitative mechanical planting; ③ Reapplying tillering fertilizer and spikelet- promoting fertilizer appropriately. (3) Characteristics of growth and yield formation of mechanical drilling rice were reviewed, presented with its supporting techniques including determined planting areas reasonably, selecting large-panicle varieties with appropriate growth duration and strong lodging, mechanical sowing earlier and extremely, chemical weed control and fertilizer management. Simultaneously, the existed main problems in the process of rice planting mechanization in China were analyzed further. According to China’s national conditions, the cultivation model raising nurturing standardized seedlings professionally and mechanical transplanting precisely as well as stable high-yielding-high-efficiency agronomic techniques should be the basic direction of mechanized cultivation for the majority of the localities. And mechanical seeding could be applied in several areas with abundant heat of rice season. Then the corresponding research and development (R & D) focuses for mechanized planting of rice were referred. ① High-yielding cultivation of blanket-seedling mechanical transplanting rice should be classified as the main direction of mechanization in the major rice producing areas so as to R & D further. There were several focal points such as enhanced flexibility of blanket-seedling age and seedling quality, straw machine-returning and land preparation and seedling planting precisely, promoting earlier and stably in the field, cultivating a right amount of population stems and tillers with strong stalk and large panicle and increasing population sink. ② Reducing equipment costs, improving operating efficiency and building stable (super) high-yielding-high-efficiency agronomy techniques were the research priorities of pot-seedling mechanical transplanting rice. ③ However, for the mechanical drilling rice, attention should be focused on improving the quality of previous straw machine-returning and land preparation through efficient mechanical operations, and mechanical precise direct seeding and early germinating for achieving expected seedlings. Finally, the technology integration and demonstration of the whole-process mechanized models under the local main mechanized cultivation methods should be done well in accordance with their characteristics in each main region of rice.

Key words: rice , planting mechanization , high-yielding rules , cultivation agronomy , development direction

[1]张洪程, 郭保卫, 龚金龙. 加快发展水稻丰产栽培机械化 稳步提升我国稻作现代化水平. 中国稻米, 2013, 19(1): 3-6.

Zhang H C, Guo B W, Gong J L. Accelerating the development of mechanizing high-yielding cultivation in rice and promoting rice level of modernization in China steadily. China Rice, 2013, 19(1): 3-6. (in Chinese)

[2]高兴, 王立臣. 关于如何加快江苏省水稻栽植机械发展问题的探讨. 中国农机化, 2010(5): 14-18.

Gao X, Wang L C. Study on how to accelerate the development of rice planting machine in Jiangsu Province. Chinese Agricultural Mechanization, 2010(5): 14-18. (in Chinese)

[3]Thomas E V. Development of a mechanism for transplanting rice seedlings. Mechanism and Machine Theory, 2002, 37(4): 395-410.

[4]李艳大, 叶厚专, 古新序, 姚林桃, 舒时富, 王康军, 陈立才, 李星. 江西水稻种植机械化的现状与发展趋势分析. 中国农机化, 2012(5): 13-16.

Li Y D, Ye H Z, Gu X X, Yao L T, Shu S F, Wang K J, Chen L C, Li X. Current situation, limiting factors, solution countermeasures and development trend of rice planting mechanization in Jiangxi province. Chinese Agricultural Mechanization, 2012(5): 13-16. (in Chinese)

[5]龚金龙, 张洪程, 胡雅杰, 龙厚元, 常勇, 王艳, 邢志鹏, 霍中洋. 灌浆结实期温度对水稻产量和品质形成的影响. 生态学杂志, 2013, 32(2): 482-491.

Gong J L, Zhang H C, Hu Y J, Long H Y, Chang Y, Wang Y, Xing Z P, Huo Z Y. Effects of air temperature during rice grain-filling period on the formation of rice grain yield and its quality. Chinese Journal of Ecology, 2013, 32(2): 482-491. (in Chinese)

[6]Guo L S, Zhang W J. Kinematic analysis of a rice transplanting mechanism with eccentric planetary gear trains. Mechanism and Machine Theory, 2001, 36: 1175-1188.

[7]蒋亦元. 农机科技创新中的农机与农艺相结合问题. 农业机械学报, 2007, 38(3): 179-163.

Jiang Y Y. Combination of agricultural machinery and agronomy in their scientific and technological innovations. Transactions of the Chinese Society for Agricultural Machinery, 2007, 38(3): 179-163. (in Chinese)

[8]陈国伟. 中国水稻栽植机械的发展. 农机化研究, 2006(9): 55-56, 64.

Chen G W. Development of the rice planting machinery in China. Journal of Agricultural Mechanization Research, 2006(9): 55-56, 64. (in Chinese)

[9]Reid J F, Zhang Q, Noguchi N, Dickson M. Agricultural automatic guidance research in north America. Computers and Electronics in Agriculture, 2000, 25: 155-167.

[10]吴崇友, 金诚谦, 卢晏, 涂安富. 我国水稻种植机械发展问题探讨. 农业工程学报, 2000, 16(2): 21-23.

Wu C Y, Jin C Q, Lu Y, Tu A F. Discussion of developing rice planting machine in China. Transactions of the Chinese Society of Agricultural Engineering, 2000, 16(2): 21-23. (in Chinese)

[11]钱银飞, 张洪程, 钱宗华, 刘艳阳, 李杰, 郭振华, 陈烨, 张强. 我国水稻机插秧发展问题的探讨. 农机化研究, 2009(10): 1-5.

Qian Y F, Zhang H C, Qian Z H, Liu Y Y, Li J, Guo Z H, Chen Y, Zhang Q. Discussion on development of mechanical-transplanting rice in China. Journal of Agricultural Mechanization Research, 2009(10): 1-5. (in Chinese)

[12]罗汉亚. 江苏水稻机械化种植方式的研究[D]. 南京: 南京农业大学, 2007.

Luo H Y. Study on rice planting mechanization method in Jiangsu[D]. Nanjing: Nanjing Agriculture University, 2007. (in Chinese)

[13]王琳, 臧英, 罗锡文. 我国水稻生产机械化发展对策. 农机化研究, 2009(6): 1-4, 20.

Wang L, Zang Y, Luo X W. Development countermeasure of rice production mechanization in China. Journal of Agricultural Mechanization Research, 2009(6): 1-4, 20. (in Chinese)

[14]蒲红, 刘宇辉, 孟然. 我国水稻栽植机械的研究现状及展望. 佳木斯大学学报:自然科学版, 2003, 21(2): 208-211.

Pu H, Liu Y H, Meng R. The present status and outlook of the rice planting mechanism in our country. Journal of Jiamusi University: Natural Science Edition, 2003, 21(2): 208-211. (in Chinese)

[15]朱德峰. 水稻机插育秧技术. 北京: 中国农业出版社, 2010.

Zhu D F. Seedling Raising Techniques of Mechanical Transplanting Rice. Beijing: China Agricultural Press, 2010. (in Chinese)

[16]李耀明, 徐立章, 向忠平, 邓玲黎. 日本水稻种植机械化技术的最新研究进展. 农业工程学报, 2005, 21(11): 182-185.

Li Y M, Xu L Z, Xiang Z P, Deng L L. Research advances of rice planting mechanization in Japan. Transactions of the Chinese Society of Agricultural Engineering, 2005, 21(11): 182-185. (in Chinese)

[17]张洪程, 苏祖芳, 钟明喜, 戴其根, 黄建晔, 费中富, 杨兆林, 徐玉光, 冯在根, 严功林, 姚秉琨, 周长军, 何健康. 机插水稻稀播稀植高产理论与技术——机插稻叶龄模式的研究//罗永藩, 马继发, 苏祖芳. 水稻叶龄模式的应用与发展. 南京: 江苏科学技术出版社, 1992: 206-212.

Zhang H C, Su Z F, Zhong M X, Dai Q G, Huang J Y, Fei Z F, Yang Z L, Xu Y G, Feng Z G, Yan G L, Yao B K, Zhou C J, He J K. High-yielding theories and techniques of sparse-sowing-sparse- transplanting for mechanical transplanting rice—Study on the leaf-age model of mechanical transplanting rice // Luo Y F, Ma J F, Su Z F. The Application and Development on the Leaf Age Model of Rice. Nanjing: Jiangsu Science and Technology Press, 1992: 206-212. (in Chinese)

[18]张洪程, 戴其根, 苏祖芳. 机栽小苗水稻生育规律及高产途径的研究//张洪程, 苏祖芳, 黄务涛. 水稻高产高效栽培技术及理论. 南京: 东南大学出版社, 1991: 352-360.

Zhang H C, Dai Q G, Su Z F. Development regularity and high-yielding ways of rice with machine-transplanter // Zhang H C, Su Z F, Huang W T. Principles and Techniques of High Yielding and Efficient Cultivation in Rice. Nanjing: Southeast University Press, 1991: 352-360. (in Chinese)

[19]郭振华. 机插与手栽稻生长发育、产量及品质差异的比较研究[D]. 扬州: 扬州大学, 2009.

Guo Z H. Differences on growth, yield and grain quality of rice transplanted by rice transplanter and hand[D]. Yangzhou: Yangzhou University, 2009. (in Chinese)

[20]宫坂昭. 钱亮译. 水稻机插栽培的原理和应用. 北京: 中国农业出版社, 1983.

Gong B Z. Translated by Qian L. The Principles and Applications of Mechanical Transplanted Rice. Beijing: China Agriculture Press, 1983. (in Chinese)

[21]张洪程, 霍中洋, 许轲, 高辉, 戴其根, 魏海燕, 刘艳阳, 苏祖芳, 李杰, 吴桂成, 姚义, 马群. 水稻新型栽培技术. 北京: 金盾出版社, 2011: 168-189.

Zhang H C, Huo Z Y, Xu K, Gao H, Dai Q G, Wei H Y, Liu Y Y, Su Z F, Li J, Wu G C, Yao Y, Ma Q. New Cultivation Techniques in Rice. Beijing: Jindun Publishing House, 2011: 168-189. (in Chinese)

[22]张洪程. 机插水稻高产栽培途径与技术 // 凌启鸿, 张洪程, 丁艳峰, 仲维功, 祝树德. 水稻丰产高效技术及理论. 北京: 中国农业出版社, 2005: 22-54.

Zhang H C. The high-yielding cultivation approaches and techniques of mechanical transplanted rice // Ling Q H, Zhang H C, Ding Y F, Zhong W G, Zhu S D. The High-yielding Efficient Techniques and Its Theories in Rice. Beijing: China Agriculture Press, 2005: 22-54. (in Chinese)

[23]Hoshikawa K. Physiology of Small Rice Seeding and the Technology of Seedling Nursery. Tokyo: Rural Culture Association, 1972. (in Japanese)

[24]Konishi Y. Technology for Increasing Yield in Rice Transplanted by Machine. Tokyo: Rural Culture Association, 1972. (in Japanese)

[25]张洪程, 赵品恒, 孙菊英, 吴桂成, 徐军, 端木银熙, 戴其根, 霍中洋, 许轲, 魏海燕. 机插杂交粳稻超高产形成群体特征. 农业工程学报, 2012, 28(2): 39-44.

Zhang H C, Zhao P H, Sun J Y, Wu G C, Xu J, Duanmu Y X, Dai Q G, Huo Z Y, Xu K, Wei H Y. Population characteristics of super high yield formation of mechanical transplanted japonica hybrid rice. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(2): 39-44. (in Chinese)

[26]于林惠, 李刚华, 徐晶晶, 凌启鸿, 丁艳锋. 基于高产示范方的机插水稻群体特征研究. 中国水稻科学, 2012, 26(4): 451-456.

Yu L H, Li G H, Xu J J, Ling Q H, Ding Y F. Population characteristics of machine-transplanted japonica rice based on high-yield demonstration fields. Chinese Journal of Rice Science, 2012, 26(4): 451-456. (in Chinese)

[27]吴文革, 张健美. 杂交中籼水稻机插“平衡栽培”技术研究. 中国稻米, 2009, 15(5): 32-37.

Wu W G, Zhang J M. Technology research of “balanced cultivation” for mechanical transplanting in middle-season indica hybrid rice. China Rice, 2009, 15(5): 32-37. (in Chinese)

[28]张洪程, 李杰, 戴其根, 霍中洋, 许轲, 魏海燕, 钱银飞, 黄大山, 夏炎. 机插稻“标秧、精插、稳发、早搁、优中、强后”高产栽培精确定量关键技术. 中国稻米, 2010, 16(5): 1-6.

Zhang H C, Li J, Dai Q G, Huo Z Y, Xu K, Wei H Y, Qian Y F, Huang D S, Xia Y. The key techniques of “standardizing seedlings, precise transplanting, steady growing, earlier drainage, optimizing middle- stage, strengthening later-stage” model for precise quantitative high-yielding cultivation in mechanical transplanting rice. China Rice, 2010, 16(5): 1-6. (in Chinese)

[29]陈惠哲, 朱德峰, 徐一成. 水稻钵形毯状秧苗机插技术及应用效 果. 中国稻米, 2009, 15(3): 5-7.

Chen H Z, Zhu D F, Xu Y C. The mechanical transplanting technique of bowl-shaped blanket seedling in rice and its applied effects. China Rice, 2009, 15(3): 5-7. (in Chinese)

[30]张祖建, 王君, 郎有忠, 于林惠, 薛艳凤, 朱庆森. 机插稻超秧龄秧苗的生长特点研究. 作物学报, 2008, 34(2): 297-304.

Zhang Z J, Wang J, Lang Y Z, Yu L H, Xue Y F, Zhu Q S. Growing characteristics of rice seedlings of over-optimum age for mechanical transplanting. Acta Agronomica Sinica, 2008, 34(2): 297-304. (in Chinese)

[31]霍中洋, 魏海燕, 张洪程, 龚振恺, 戴其根, 许轲. 穗肥运筹对不同秧龄机插超级稻宁粳1号产量及群体质量的影响. 作物学报, 2012, 38(8): 1460-1470.

Huo Z Y, Wei H Y, Zhang H C, Gong Z K, Dai Q G, Xu K. Effect of panicle nitrogen fertilizer management on yield and population quality in mechanical transplanted super rice Ningjing1 with different seedling ages. Acta Agronomica Sinica, 2012, 38(8): 1460-1470. (in Chinese)

[32]邵文娟, 沈建辉, 张祖建, 李伟海, 杨建昌, 朱庆森. 水稻机插双膜育秧床土培肥对秧苗素质和秧龄弹性的影响. 扬州大学学报: 农业与生命科学版, 2004, 25(2): 22-26.

Shao W J, Shen J H, Zhang Z J, Li W H, Yang J C, Zhu Q S. Effects of seedbed fertilizing on quality and flexibility of rice seedlings nursed with tow-layer plastic film for mechanical transplanting. Journal of Yangzhou University: Agricultural and Life Science Edition, 2004, 25(2): 22-26. (in Chinese)

[33]吴一梅. 秧龄对机插水稻生长发育与产量及品质的影响[D]. 扬州: 扬州大学, 2007.

Wu Y M. Effects of rice seedling ages on growth, yield and quality in mechanical transplanting rice[D]. Yangzhou: Yangzhou University, 2007. (in Chinese)

[34]于林惠, 丁艳锋, 薛艳凤, 凌启鸿, 袁钊和. 水稻机插秧田间育秧秧苗素质影响因素研究. 农业工程学报, 2006, 22(3): 73-78.

Yu L H, Ding Y F, Xue Y F, Ling Q H, Yuan Z H. Factors affecting rice seedling quality of mechanical transplanting rice. Transactions of the Chinese Society of Agricultural Engineering, 2006, 22(3): 73-78. (in Chinese)

[35]张祖建, 于林惠, 王君, 郎有忠, 薛艳凤, 朱庆森. 机插稻育秧床土的培肥效应研究. 作物学报, 2006, 32(9): 1384-1390.

Zhang Z J, Yu L H, Wang J, Lang Y Z, Xue Y F, Zhu Q S. Effect of seedbed soil fertilizing for mechanical transplanting rice seedling. Acta Agronomica Sinica, 2006, 32(9): 1384-1390. (in Chinese)

[36]周青, 陈新红, 丁静, 张国良, 王其传, 祁红英. 不同基质育秧对水稻秧苗素质的影响. 上海交通大学学报: 农业科学版, 2007, 25(1): 76-79, 85.

Zhou Q, Chen X H, Ding J, Zhang G L, Wang Q C, Qi H Y. Effect of different substrates on qualities in rice seedling. Journal of Shanghai Jiaotong University: Agricultural Science, 2007, 25(1): 76-79, 85. (in Chinese)

[37]彭长青, 李世峰, 卞新民, 吴九林, 周宇, 刘蓉蓉. 机插水稻高产栽培关键技术的适宜值. 应用生态学报, 2006, 17(9): 1619-1623.

Peng C Q, Li S F, Bian X M, Wu J L, Zhou Y, Liu R R. Appropriate parameters for high-yielding cultivation of machine-transplanted rice. Chinese Journal of Applied Ecology, 2006, 17(9): 1619-1623. (in Chinese)

[38]沈建辉, 邵文娟, 张祖建, 杨建昌, 曹卫星, 朱庆森. 水稻机插中苗双膜育秧落谷密度对苗质和产量影响的研究. 作物学报, 2004, 30(9): 906-911.

Shen J H, Shao W J, Zhang Z J, Yang J C, Cao W X, Zhu Q S. Effects of sowing density on quality of medium-seedling nursed with two-layer plastic film and grain yield in mechanical transplanting rice. Acta Agronomica Sinica, 2004, 30(9): 906-911. (in Chinese)

[39]凌启鸿, 张洪程, 苏祖芳, 郭文善, 陈德华, 陆卫平, 冷锁虎, 凌励, 杨建昌, 丁艳锋, 吴云康, 曹显祖, 朱庆森, 朱耕如. 作物群体质量. 上海: 上海科学技术出版社, 2000.

Ling Q H, Zhang H C, Su Z F, Guo W S, Chen D H, Lu W P, Leng S H, Ling L, Yang J C, Ding Y F, Wu Y K, Cao X Z, Zhu Q S, Zhu G R. Crop Population Quality. Shanghai: Shanghai Science and Technology Press, 2000. (in Chinese)

[40]李刚华, 于林惠, 侯朋福, 王绍华, 刘正辉, 王强盛, 凌启鸿, 丁艳锋. 机插水稻适宜基本苗定量参数的获取与验证. 农业工程学报, 2012, 28(8): 98-104.

Li G H, Yu L H, Hou P F, Wang S H, Liu Z H, Wang Q S, Ling Q H, Ding Y F. Calculation and verification of quantitative parameters of optimal planting density of machine-transplant rice. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(8): 98-104. (in Chinese)

[41]钱银飞. 不同穗型水稻品种机插规格的综合研究[D]. 扬州: 扬州大学, 2009.

Qian Y F. Studies on effect of transplanting pattern on different panicle type mechanical transplanted rice[D]. Yangzhou: Yangzhou University, 2009. (in Chinese)

[42]叶厚专, 李艳大, 沈显华, 古新序, 姚林桃, 舒时富, 万鹏, 江向 荣, 王水发, 尹国庆. 不同机插行距对水稻产量的影响. 中国农机化, 2012(4): 59-62.

Ye H Z, Li Y D, Shen X H, Gu X X, Yao L T, Shu S F, Wan P, Jiang X R, Wang S F, Yin G Q. Effects of different machine-transplanted row spacing on rice yield. Chinese Agricultural Mechanization, 2012(4): 59-62. (in Chinese)

[43]胡雅杰, 邢志鹏, 龚金龙, 张洪程, 戴其根, 霍中洋, 许轲, 魏海 燕, 李德剑, 沙安勤, 周有炎, 刘国林, 陆秀军, 刘国涛, 朱嘉炜. 适宜机插株行距提高不同穗型粳稻产量. 农业工程学报, 2013, 29(14): 33-44.

Hu Y J, Xing Z P, Gong J L, Zhang H C, Dai Q G, Huo Z Y, Xu K, Wei H Y, Li D J, Sha A Q, Zhou Y Y, Liu G L, Lu X J, Liu G T, Zhu J W. Suitable spacing in and between rows of plants by machinery improves yield of different panicle type japonica rices. Transactions of the Chinese Society of Agricultural Engineering, 2013, 29(14): 33-44. (in Chinese)

[44]朱德峰, 陈惠哲, 徐一成, 张玉屏. 我国双季稻生产机械化制约因子与发展对策. 中国稻米, 2013, 19(4): 1-4.

Zhu D F, Chen H Z, Xu Y C, Zhang Y P. The restricting factors and development strategies of mechanized production in the double-cropping rice areas of China. China Rice, 2013, 19(4): 1-4. (in Chinese)

[45]龚振恺. 主要栽培措施对机插水稻生产力的影响[D]. 扬州: 扬州大学, 2006.

Gong Z K. Effect of cultivation measures on productivity of mechanical transplanted rice[D]. Yangzhou: Yangzhou University, 2006. (in Chinese)

[46]凌启鸿, 张洪程, 苏祖芳, 凌励. 稻作新理论——水稻叶龄模式. 北京: 科学出版社, 1994.

Ling Q H, Zhang H C, Su Z F, Ling L. New Theory of Rice Cultural—The Leaf-Age Model of Rice. Beijing: Science Press, 1994. (in Chinese)

[47]张洪程, 吴桂成, 戴其根, 霍中洋, 许轲, 高辉, 魏海燕, 吕修涛, 万靓军, 黄银忠. 水稻氮肥精确后移及其机制. 作物学报, 2011, 37(10): 1837-1851.

Zhang H C, Wu G C, Dai Q G, Huo Z Y, Xu K, Gao H, Wei H Y, Lv X T, Wan L J, Huang Y Z. Precise postponing nitrogen application and its mechanism in rice. Acta Agronomica Sinica, 2011, 37(10): 1837-1851. (in Chinese)

[48]凌启鸿, 张洪程, 丁艳锋, 戴其根, 凌励, 王绍华, 杨建昌, 朱庆 森, 苏祖芳. 水稻精确定量栽培理论与技术. 北京: 中国农业出版社, 2007.

Ling Q H, Zhang H C, Ding Y F, Dai Q G, Ling L, Wang S H, Yang J C, Zhu Q S, Su Z F. Theory and Technology of Precise and Quantitative Cultivation in Rice. Beijing: China Agriculture Press, 2007. (in Chinese)

[49]钱银飞, 张洪程, 吴文革, 陈烨, 李杰, 郭振华, 张强, 戴其根, 霍中洋, 许轲, 魏海燕. 机插穴苗数对不同穗型粳稻品种产量及品质的影响. 作物学报, 2009, 35(9): 1689-1707.

Qian Y F, Zhang H C, Wu W G, Chen Y, Li J, Guo Z H, Zhang Q, Dai Q G, Huo Z Y, Xu K, Wei H Y. Effects of seedlings number per hill on grain yield and quality in different panicle types of mechanical transplanted japonica rice. Acta Agronomica Sinica, 2009, 35(9): 1689-1707. (in Chinese)

[50]万靓军, 张洪程, 霍中洋, 林忠成, 戴其根, 许轲, 张军. 氮肥运筹对超级杂交粳稻产量、品质及氮素利用率的影响. 作物学报, 2007, 33(2): 175-182.

Wan L J, Zhang H C, Huo Z Y, Lin Z C, Dai Q G, Xu K, Zhang J. Effects of nitrogen application regimes on yield, quality, and nitrogen use efficiency of super japonica hybrid rice. Acta Agronomica Sinica, 2007, 33(2): 175-182. (in Chinese)

[51]凌启鸿, 张洪程, 戴其根, 丁艳锋, 凌励, 苏祖芳, 徐茂, 阙金华, 王绍华. 水稻精确定量施氮研究. 中国农业科学, 2005, 38(12): 2457-2467.

Ling Q H, Zhang H C, Dai Q G, Ding Y F, Ling L, Su Z F, Xu M, Que J H, Wang S H. Study on precise and quantitative N application in rice. Scientia Agricultura Sinica, 2005, 38(12): 2457-2467. (in Chinese)

[52]张洪程, 戴其根, 霍中洋, 许轲, 魏海燕. 中国抛秧稻作技术体系及其特征. 中国农业科学, 2008, 41(1): 43-52.

Zhang H C, Dai Q G, Huo Z Y, Xu K, Wei H Y. Cultivation technical system of rice seedling broadcasting and its characteristics. Scientia Agricultura Sinica, 2008, 41(1): 43-52. (in Chinese)

[53]张洪程, 郭保卫, 陈厚存, 周兴涛, 张军, 朱聪聪, 陈京都, 李桂 云, 吴中华, 戴其根, 霍中洋, 许轲, 魏海燕, 高辉, 杨雄. 水稻有序摆、抛栽的生理生态特征及超高产形成机制. 中国农业科学, 2013, 46(3): 463-475.

Zhang H C, Guo B W, Chen H C, Zhou X T, Zhang J, Zhu C C, Chen J D, Li G Y, Wu Z H, Dai Q G, Huo Z Y, Xu K, Wei H Y, Gao H, Yang X. Eco-physiological characteristics and super high yield formation mechanism of ordered transplanting and optimized broadcasting rice. Scientia Agricultura Sinica, 2013, 46(3): 463-475. (in Chinese)

[54]戴其根, 张洪程, 苏宝林, 邱枫, 霍中洋, 许轲. 抛秧水稻生长发育与产量形成的生态生理机制Ⅰ. 活棵立苗及其生态生理特点. 作物学报, 2001, 27(3): 278-285.

Dai Q G, Zhang H C, Su B L, Qiu F, Huo Z Y, Xu K. The eco- physiological mechanism of growth, development and yield formation of broadcasted rice seedlings Ⅰ. Standing and establishment of rice seedlings and its eco-physiological characteristics. Acta Agronomica Sinica, 2001, 27(3): 278-285. (in Chinese)

[55]马瑞峻, 区颖刚, 赵祚喜, 李志伟. 水稻钵苗机械手取秧有序移栽机的改进. 农业工程学报, 2003, 19(1): 113-116.

Ma R J, Qu Y G, Zhao Z X, Li Z W. Development of the order throwing matching for rice seedlings sprouted in the cell-tray. Transactions of the Chinese Society of Agricultural Engineering, 2003, 19(1): 113-116. (in Chinese)

[56]宋来田, 李延华, 田金和, 陈恒高. 齿板式水稻钵秧摆栽机的研究. 农业工程学报, 2000, 16(2): 72-74.

Song L T, Li Y H, Tian J H, Chen H G. Study on scattering type tray grown rice seedling transplanter. Transactions of the Chinese Society of Agricultural Engineering, 2000, 16(2): 72-74. (in Chinese)

[57]Wang Y X, Luo X W, Xiang W B. Research on paddy seedling ordered pneumatic throwing transplantation. Presentation at the 2002 ASAE Annual International Meeting / CICR XVth World Congress. USA, Jul, 2002, Paper No.: 021060.

[58]仙北谷, 康. 大規模稲作農家の展開過程に関する研究. 農業経営研究, 1989(15): 29-43.

Senbokukoku, Kou. The research on the evolution of large-scale rice. Agricultural Management Research, 1989(15): 29-43. (in Japanese)

[59]岡山大学農学部附属農場. 運営概要. 岡山大学農学部農場報告, 1987(10): 37-48.

Agricultural College of Okayama University Affiliated Farm. Operating overview. The Report of Agricultural College of Okayama University Affiliated Farm, 1987(10): 37-48. (in Japanese)

[60]孙德超, 李晓东, 姜阿利, 汪曼. 水稻钵育秧苗机插技术特点及其优势. 农业机械, 2010(20): 69.

Sun D C, Li X D, Jiang A L, Wang M. The characteristics and advantages of mechanical transplanting techniques by nutrition bowl seedlings in rice. Agricultural Machinery, 2010(20): 69. (in Chinese)

[61]张洪程. 钵苗机插是水稻高产与超高产机械化精确栽培的有效途径(摘要). 中国稻米, 2013, 19(4): 140-141.

Zhang H C. Bowl mechanical-transplanting is the effective approach of mechanized precise quantitative cultivation for (super) high yield (Abstract). China Rice, 2013, 19(4): 140-141. (in Chinese)

[62]胡雅杰, 邢志鹏, 龚金龙, 刘国涛, 张洪程, 戴其根, 霍中洋, 许 轲, 魏海燕, 郭保卫, 沙安勤, 周有炎, 罗学超, 刘国林. 钵苗机插水稻群体动态特征及高产形成机制的探讨. 中国农业科学, 2014, 47(5): 865-879.

Hu Y J, Xing Z P, Gong J L, Liu G T, Zhang H C, Dai Q G, Huo Z Y, Xu K, Wei H Y, Guo B W, Sha A Q, Zhou Y Y, Luo X C, Liu G L. Study on population characteristics and formation mechanisms for high yield of pot-seedling mechanical transplanting rice. Scientia Agricultura Sinica, 2014, 47(5): 865-879. (in Chinese)

[63]张洪程, 朱聪聪, 霍中洋, 许轲, 蒋晓鸿, 陈厚存, 高尚勤, 李德 剑, 赵成美, 戴其根, 魏海燕, 郭保卫. 钵苗机插水稻产量形成优势及主要生理生态特点. 农业工程学报, 2013, 29(21): 50-59.

Zhang H C, Zhu C C, Huo Z Y, Xu K, Jiang X H, Chen H C, Gao S Q, Li D J, Zhao C M, Dai Q G, Wei H Y, Guo B W. Advantages of yield formation and the characteristics of physiological and ecological of nutrition bowl mechanical-transplanting rice. Transactions of the Chinese Society of Agricultural Engineering, 2013, 29(21): 50-59. (in Chinese)

[64]张洪程. 钵苗机插水稻生产特点及其利用的核心技术. 农机市场, 2012(8): 19-21.

Zhang H C. The production characteristics and kernel techniques of bowl mechanical-transplanting rice. Agricultural Machinery Market, 2012(8): 19-21. (in Chinese)

[65]龚金龙, 张洪程, 常勇, 胡雅杰, 龙厚元, 戴其根, 霍中洋, 许轲, 魏海燕, 李德剑, 沙安勤, 周有炎, 罗学超. 稻麦“双迟”栽培模式及其周年生产力的综合评价. 中国水稻科学, 2011, 25(6): 629-638.

Gong J L, Zhang H C, Chang Y, Hu Y J, Long H Y, Dai Q G, Huo Z Y, Xu K, Wei H Y, Li D J, Sha A Q, Zhou Y Y, Luo X C. “Double Late” cultivation model for rice and wheat and its comprehensive evaluation on annual productivity. Chinese Journal of Rice Science, 2011, 25(6): 629-638. (in Chinese)

[66]宋云生, 张洪程, 戴其根, 霍中洋, 许轲, 魏海燕, 朱聪聪, 孙圳, 杨大柳, 王惟清, 刘俊, 吴爱国. 水稻钵苗机插秧苗素质的调控研究. 农业工程学报, 2013, 29(22): 11-22.

Song Y S, Zhang H C, Dai Q G, Huo Z Y, Xu K, Wei H Y, Zhu C C, Sun Z, Yang D L, Wang W Q, Liu J. Study on the seedling quality regulation of rice potted-seedling in the mechanical transplanting. Transactions of the Chinese Society of Agricultural Engineering, 2013, 29(22): 11-22. (in Chinese)

[67]朱聪聪, 张洪程, 郭保卫, 曹利强, 江峰, 葛梦婕, 花劲, 宋云生, 周兴涛, 霍中洋, 许轲, 戴其根, 魏海燕, 朱大伟. 钵苗机插密度对不同类型水稻产量及光合物质生产特性的影响. 作物学报, 2014, 40(1): 122-133.

Zhu C C, Zhang H C, Guo B W, Cao L Q, Jiang F, Ge M J, Hua J, Song Y S, Zhou X T, Huo Z Y, Xu K, Dai Q G, Wei H Y, Zhu D W. Effect of different density on the yield and the photosynthetic material production characteristics of different types of rice under bowl mechanical-transplanting method. Acta Agronomica Sinica, 2014, 40(1): 122-133. (in Chinese)

[68]唐湘如, 罗锡文, 黎国喜, 王在满, 郑天翔, 陈伟通, 舒时富. 精量穴直播早稻的产量形成特性. 农业工程学报, 2009, 25(7): 84-87.

Tang X R, Luo X W, Li G X, Wang Z M, Zheng T X, Chen W T, Shu S F. Yield formation characteristics of precision hill–drop drilling early rice. Transactions of the Chinese Society of Agricultural Engineering, 2009, 25(7): 84-87. (in Chinese)

[69]张洪程, 黄以澄, 戴其根, 袁鹤来, 严宏生, 刘金明, 陈新华, 顾有余. 麦茬机械少(免)耕旱直播稻产量形成特性及高产栽培技术的研究. 江苏农学院学院, 1988, 9(4): 21-26.

Zhang H C, Huang Y C, Dai Q G, Yuan H L, Yan H S, Liu J M, Chen X H, Gu Y Y. Study on the yield formation of dry direct-seeding rice and techniques of its high yield cultivation. Journal of Jiangsu Agricultural College, 1988, 9(4): 21-26. (in Chinese)

[70]吴文革, 陈烨, 钱银飞, 王小军, 吴一梅. 水稻直播栽培的发展概况与研究进展. 中国农业科技导报, 2006, 8(4): 32-36.

Wu W G, Chen Y, Qian Y F, Wang X J, Wu Y M. The current status and progresses of the research on direct seeding rice. Review of China Agricultural Science and Technology, 2006, 8(4): 32-36. (in Chinese)

[71]邹应斌, 李克勤, 任泽民. 作物复种的免耕直播栽培研究进展. 中国农学通报, 2004, 20(1): 90-95.

Zou Y B, Li K Q, Ren Z M. Research development of direct seeding and zero-tillage cultivation in multiple cropping systems. Chinese Agricultural Science Bulletin, 2004, 20(1): 90-95. (in Chinese)

[72]张洪程, 李杰, 姚义, 霍中洋, 戴其根, 许轲, 杨波, 赵品恒, 魏海燕. 直播稻种植科学问题研究. 北京: 中国农业科学技术出版社, 2009.

Zhang H C, Li J, Yao Y, Huo Z Y, Dai Q G, Xu K, Yang B, Zhao P H, Wei H Y. Research on Planting Scientific Problems of Direct Seeding Rice. Beijing: Chinese Agricultural Science and Technology Press, 2009. (in Chinese)

[73]李杰, 张洪程, 董洋阳, 倪晓诚, 杨波, 龚金龙, 常勇, 戴其根, 霍中洋, 许轲, 魏海燕. 不同生态区栽培方式对水稻产量、生育期及温光利用的影响. 中国农业科学, 2011, 44(13): 2661-2672.

Li J, Zhang H C, Dong Y Y, Ni X C, Yang B, Gong J L, Chang Y, Dai Q G, Huo Z Y, Xu K, Wei H Y. Effects of cultivation methods on yield, growth stage and utilization of temperature and illumination of rice in different ecological regions. Scientia Agricultura Sinica, 2011, 44(13): 2661-2672. (in Chinese)

[74]李杰, 张洪程, 龚金龙, 常勇, 戴其根, 霍中洋, 许轲, 魏海燕. 不同种植方式对超级稻植株抗倒伏能力的影响. 中国农业科学, 2011, 44(11): 2234-2243.

Li J, Zhang H C, Gong J L, Chang Y, Dai Q G, Huo Z Y, Xu K, Wei H Y. Effects of different planting methods on the culm lodging resistance of super rice. Scientia Agricultura Sinica, 2011, 44(11): 2234-2243. (in Chinese)

[75]Huang M, Zou Y B, Feng Y H, Cheng Z W, Mo Y L, Ibrahim M, Xia B, Jiang P. No-tillage and direct seeding for super hybrid rice production in rice-oilseed rape cropping system. European Journal of Agronomy, 2011, 34(4): 278-286.

[76]张祖建, 谢成林, 谢仁康, 郎有忠, 杨岚, 张菊芳, 朱庆森. 苏中地区直播水稻的群体生产力及氮肥运筹的效应. 作物学报, 2011, 37(4): 677-685.

Zhang Z J, Xie C L, Xie R K, Lang Y Z, Yang L, Zhang J Y, Zhu Q S. Population production capacity of direct-seeding rice in central Jiangsu region and effects of nitrogen application. Acta Agronomica Sinica, 2011, 37(4): 677-685. (in Chinese)

[77]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.

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. (in Chinese)

[78]罗锡文, 刘涛, 蒋恩臣, 李庆. 水稻精量穴直播排种轮的设计与试验. 农业工程学报, 2007, 23(3): 108-112.

Luo X W, Liu T, Jiang E C, Li Q. Design and experiment of hill sowing wheel of precision rice direct-seeder. Transactions of the Chinese Society of Agricultural Engineering, 2007, 23(3): 108-112. (in Chinese)

[79]罗锡文, 欧洲, 蒋恩臣, 李志伟, 黄世醒. 抛掷成穴式水稻精量直播排种器试验. 农业机械学报, 2005, 36(9): 37-40.

Luo X W, Ou Z, Jiang E C, Li Z W, Huang S X. Experimental research on precision rice direct-seeder with hill sowing. Transactions of the Chinese Society of Agricultural Machinery, 2005, 36(9): 37-40. (in Chinese)

[80]姚义, 霍中洋, 张洪程, 夏炎, 倪晓诚, 戴其根, 许轲, 魏海燕. 不同生态区播期对直播稻生育期及温光利用的影响. 中国农业科学, 2012, 45(4): 633-647.

Yao Y, Huo Z Y, Zhang H C, Xia Y, Ni X C, Dai Q G, Xu K, Wei H Y. Effects of sowing date on growth stage and utilization of temperature and illumination of direct seeding rice in different ecological regions. Scientia Agricultura Sinica, 2012, 45(4): 633-647. (in Chinese)

[81]姚义. 江淮下游地区直播稻播期与品种综合生产力及其利用的研究[D]. 扬州: 扬州大学, 2012.

Yao Y. Studies on comprehensive productivity and use of sowing date and varieties of direct seeding rice in the lower Yangtze and Huai valleys[D]. Yangzhou: Yangzhou University, 2012. (in Chinese)

[82]卢燕. 直播密度对水稻不同类型品种综合生产力的影响[D]. 扬州: 扬州大学, 2008.

Lu Y. Impact of direct-seeding densities on comprehensive productivity of different genotypes of rice[D]. Yangzhou: Yanghou University, 2008. (in Chinese)

[83]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.

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. (in Chinese)

[84]殷晓燕, 徐阳春, 沈其荣, 周春霖, 黄新宇, 李曼莉, 尹金来, K1aus D. 直播旱作和水作水稻的氮素吸收利用特征研究. 土壤学报, 2004, 41(6): 983-986.

Yin X Y, Xu Y C, Shen Q R, Zhou C L, Huang X Y, Li M L, Yin J L, K1aus D. Nitrogen uptake and use efficiency by rice crops cultivated in waterlogged field and sowed on dry field without or with different mulchings. Acta Pedologica Sinica, 2004, 41(6): 983-986. (in Chinese)

[85]张洪程, 张军, 龚金龙, 常勇, 李敏, 高辉, 戴其根, 霍中洋, 许轲, 魏海燕. “籼改粳”的生产优势及其形成机理. 中国农业科学, 2013, 46(4): 686-704.

Zhang H C, Zhang J, Gong J L, Chang Y, Li M, Gao H, Dai Q G, Huo Z Y, Xu K, Wei H Y. The productive advantages and formation mechanisms of “indica rice to japonica rice”. Scientia Agricultura Sinica, 2013, 46(4): 686-704. (in Chinese)
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