Scientia Agricultura Sinica ›› 2017, Vol. 50 ›› Issue (1): 38-50.doi: 10.3864/j.issn.0578-1752.2017.01.004

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

Advances and Prospects of High-Yielding and Simplified Cotton Cultivation Technology in Xinjiang Cotton-Growing Area

BAI Yan1, 2, MAO ShuChun3, TIAN LiWen4, LI Li2, Dong HeZhong1   

  1. 1Cotton Research Center, Shandong Academy of Agricultural Sciences, Jinan 250100; 2National Agricultural Technical Extension and Service Center, Beijing 100125; 3Institute of Cotton Research, Chinese Academy of Agricultural Sciences, Anyang 455000, Henan; 4Economic Crop Research Institute, Xinjiang Academy of Agricultural Sciences, Urumqi 830000

  • Received:2016-05-27 Online:2017-01-01 Published:2017-01-01

Abstract:  In the past 20 years, cotton production in Xinjiang has developed considerably through a series of technological strategies such as “exploration of heat potential via earliness-stimulating cultivation”, “exploration of solar radiation potential via dense and dwarf planting”, “improvement of water and fertilizer use efficiency via fertigation”, and improvement of net returns with convenient and simplified cultivation through the integration of agronomic techniques and mechanization. These strategies have considerably reduced labor input by reliance on mechanization rather than manual operations, precision seeding after plastic mulching, simplified plant pruning and synchronized harvesting achieved through rational and high plant density combined with chemical regulation, and improvements in yield and net returns through water-saving irrigation techniques and fertigation. The efficient use of key agronomic techniques and related materials and machinery ensures not only a high or super-high yield, but also a convenient and simplified management, thus resolving the contradiction between high yield and simplification in Xinjiang. The northwest inland of which Xinjiang is the main region has become the country's largest cotton-producing region with the highest average unit yield. To ensure continued high yield and efficiency of cotton production in the future, the cultivation strategy should also advance with the times. On the one hand, it should evolve from achieving high yield and benefits of cotton by exploration of heat and water potential to achieving high yield, fine quality and high net returns by exploitation of the light potential, fertigation, and integration of agronomic techniques and mechanization; on the other hand, in order to achieve simplified management of cotton, the traditional cultivation and management with “30% input to seeding and 70% to field management after seeding” should be changed to that with “70% input to seeding and 30% to field management after seeding”. To simultaneously improve cotton yield and quality, it is important to ensure a high photosynthetic efficiency population through comprehensive regulation of cotton plants. More attention should be paid to seed quality and seeding, and thus to further save costs and increase economic benefits by reducing management processes in cotton production. Studies on mechanisms for achieving simplified cultivation with high economic benefits of cotton in Xinjiang should be strengthened to lay a theoretical foundation for sustainable production.

Key words: Xinjiang, cotton, high yielding and simplification cultivation, technical strategy

[1]    中国农业科学院棉花研究所. 中国棉花栽培学. 上海: 上海科学技术出版社, 2013, 66-91, 884-898.
Cotton Research Institute, Chinese Academy of Agricultural Sciences. Cotton Farming in China. Shanghai: Shanghai Scientific and Technical Press, 2013, 66-91, 884-898. (in Chinese)
[2]    田笑明, 李雪源, 吕新, 李保成, 陈冠文. 新疆棉作理论与现代植棉技术. 北京: 科学出版社, 2016
        TIAN X M, LI X Y, LV X, LI B C, CHEN G W. Principles and Modern Technologies of Cotton Farming in Xinjiang. Beijing: Science Press, 2016. (in Chinese)
[3]    Appiah M K, Feike T, Wiredu A, Mamitimin Y. Cotton production, land use change and resource competition in the Aksu-Tarim River Basin, Xinjiang, China. Quarterly Journal of International Agriculture, 2014, 53(3): 243-261
[4]    Shen Y J, Li S, Chen Y N, Qi Y Q, Zhang S W. Estimation of regional irrigation water requirement and water supply risk in the arid region of Northwestern China 1989-2010. Agricultural Water Management, 2013, 128(10): 55-64.
[5]    汪若海, 张雄伟. 密植促早是当前我国棉花增产的基本技术途径. 中国棉花, 1995, 22(2): 2-3
WANG R H, ZhANG X W. Promoting earliness with high plant density is the basic technical approach to cotton production in China. China Cotton, 1995, 22(2): 2-3. (in Chinese)
[6]    田笑明, 陈冠文, 李国英. 宽膜植棉早熟高产理论与实践. 北京: 中国农业出版社, 2000.
Tian X M, Chen G W, Li G Y. The Theory and Practice of Early Maturing and High-Yielding Cotton with Wide Film Mulching. Beijing: Chinese Agricultural Press, 2000. (in Chinese)
[7]    陈玉娟, 李新裕, 张新玲. 矮密早体系高产棉花器官发育规律的研究. 新疆农业科学, 2001, 38(4): 171-173.
Chen Y J, Li X Y, Zhang X L. Study on organogenesis of high-yielding cotton under the short-dense-early planting system. Xinjiang Agricultural Sciences, 2001, 38(4): 171-173. (in Chinese)
[8]    喻树迅, 周亚立, 何磊. 新疆兵团棉花生产机械化的发展现状及前景. 中国棉花, 2015, 42(8): 1-4.
Yu S X, Zhou Y L, He L. Development of mechanization of cotton production in the Xinjiang production and construction corps. China Cotton, 2015, 42(8): 1-4. (in Chinese)
[9]    马申洁, 李春燕. 机采棉高产栽培技术. 新疆农垦科技, 2006, 29(1): 12-13.
Ma S J, Li C Y. High yielding cultivation techniques for machine picking cotton. Xinjiang Agricultural Reclamation Technology, 2006, 29(1): 12-13. (in Chinese)
[10]   李志军, 王海东, 张富仓, 吴立峰, 王钊, 周建伟. 新疆滴灌施肥棉花生长和产量的水肥耦合效应. 排灌机械工程学报, 2015, 33(12): 1070-1077.
Li Z J, Wang H D, Zhang F C, Wu L F, Wang Z, Zhou J W. Effects of water-fertilizer coupling on field cotton growth and yield under fertigation in Xinjiang. Journal of Drainage and Irrigation Machinery Engineering, 2015, 33(12): 1070-1077. (in Chinese)
[11]   辛存仁. 棉花全程机械化关键技术概述. 新疆农垦科技, 2013, 36(8): 8.
XIN C R. Brief introduction to the key techniques of full mechanization in cotton production. Xinjiang Agricultural Reclamation Technology, 2013, 36(8): 8. (in Chinese)
[12]   李新建, 何清, 袁玉江. 新疆棉花严重气候减产年的热量特征分 析. 新疆农业大学学报, 2000, 23(4): 20-26.
Li X J, He Q, Yuan Y J. Character analysis of amount of heat     in serious reduction years of cotton climatic output in Xinjiang. Journal of Xinjiang Agricultural University, 2000, 23(4): 20-26. (in Chinese)
[13]   陈冠文, 余渝, 林海. 试论新疆棉花高产栽培理论的战略转移—从“向温要棉”到“向光要棉”. 新疆农垦科技, 2014(1): 3-6.
CHEN G W, YU Y, LiN H. A discussion of the strategic shift of cotton high-yielding cultivation theory in Xinjiang—from getting cotton by temperature to getting cotton by light. Xinjiang Reclamation Science & Technology, 2014(1): 3-6. (in Chinese)
[14]   潘旭东, 孙自武, 冯亚静, 刘启斌, 张凤华. 新疆北疆不同积温条件下棉花生育进程及生长解析. 中国农学通报, 2011, 27(5): 274-280.
Pan X D, Sun Z W, Feng Y J, Liu Q B, Zhang F H. Growth stage and growth analysis on cotton with different accumulative temperature in north of Xinjiang. Chinese Agricultural Science Bulletin, 2011, 27(5): 274-280. (in Chinese)
[15]   鲍玉琴, 刘安全, 陈庆宽, 李春平, 刘忠山, 张大伟, 徐建辉. 北疆早熟棉机械采收的发展趋势与品种选择. 中国棉花, 2014, 41(9): 44-45.
Bao Y Q, Liu A Q, Chen Q K, Li C P, Liu Z S, Zhang D W, Xu J H. Development trend and variety choice of mechanical harvest of precocious cotton in the north of Xinjiang. China Cotton, 2014, 41(9): 44-45. (in Chinese)
[16]   赵会薇. 机采棉品种选育现状. 中国种业, 2013(9): 18-19.
Zhao H W. Current status of machine pick cotton variety breeding. China Seed Industry, 2013(9): 18-19. (in Chinese)
[17]   董合忠, 杨国正, 田立文, 郑曙峰. 棉花轻简化栽培. 北京: 科学出版社, 2016.
Dong H Z, Yang G Z, Tian L W, Zheng S F. Light and Simplified Cultivation of Cotton. Beijing: Science Press, 2016. (in Chinese)
[18]   陈绪兰. 谈新疆棉区逆境中棉花一播全苗关键技术. 中国棉花, 2013, 40(6): 36.
Chen X L. Key techniques for full stand establishment of cotton under adverse environment in Xinjiang. China Cotton, 2013, 40(6): 36. (in Chinese)
[19]   董合忠, 毛树春, 张旺锋, 陈德华. 棉花优化成铃栽培理论及其发展. 中国农业科学, 2014, 47(3): 441-451.
Dong H Z, Mao S C, Zhang W F, Chen D H. On the boll-setting optimization theory for cotton cultivation and its new development. Scientia Agricultura Sinica, 2014, 47(3): 441-451. (in Chinese)
[20]   温浩军, 颜利民, 王士国. 棉花双膜覆盖精量播种技术研究应用. 农业机械, 2010, 7: 131-133.
WEN H J, YAN L M, WANG S G. Research and application of precision seeding technology with double plastic mulching. Agricultural Mechanics, 2010, 7: 131-133. (in Chinese)
[21]   陈学庚, 温浩军, 王士国. 浅谈棉花双膜覆盖精量播种问题//中国农业机械学会2008年学术年会论文集. 2008: 42-45.
Chen X G, Wen H J, Wang S G. On the problems of precision seeding under double plastic mulching//Proceedings of annual conference of Chinese Society of Agricultural Machinery in 2008. 2008: 42-45. (in Chinese)
[22]   李星华. 新疆棉花“矮密早”栽培技术的气候条件. 新疆气象, 2002, 6: 19-21.
Li X H. Climate conditions of cultivation technology for short-dense- early cotton in Xinjiang. Bimonthly of Xinjiang Meteorology, 2002, 6: 19-21. (in Chinese)
[23]   张旺锋, 王振林, 余松烈, 李少昆, 房建, 童文崧. 种植密度对新疆高产棉花群体光合作用、冠层结构及产量形成的影响. 植物生态学报, 2004, 28(2): 164-171.
Zhang W F, Wang Z L, Yu S L, LI S K, FANG J, TONG W S. Effects of plant density on canopy photosynthesis, canopy structure and yield formation of high-yield cotton in Xinjiang, China. Acta Phytoecologica Sinica, 2004, 28(2): 164-171. (in Chinese)
[24]   刘翠, 张巨松, 阿依加玛丽, 石俊毅, 武辉. 密度对杂交棉群体冠层及光合特性的影响. 新疆农业科学, 2013, 50(1): 1-7.
Liu C, Zhang J S, AYI J M L, Shi J Y, Wu H. Effect of density on group canopy and photosynthetic production of hybrid cotton. Xinjiang Agricultural Sciences, 2013, 50(1): 1-7. (in Chinese)
[25]   吴杨焕, 贾彪, 李杰, 杨平, 柴顺喜, 陈锐, 张斌, 马富裕. 不同密度棉花群体冠层光合有效辐射的时空分布特征. 西北农业学报, 2016, 25(1): 57-63.
Wu Y H, Jia B, Li J, Yang P, Chai S X, Chen R, Zhang B, Ma F Y. Spatial and temporal distribution of photosynthetic active radiation within cotton canopy. Acta Agriculturae Boreali- occidentalis Sinica, 2016, 25(1): 57-63. (in Chinese)
[26]   李蒙春, 张旺锋, 马富裕, 吕新, 蒋桂英, 王克如. 新疆棉花超高产光合生理基础研究. 新疆农业大学学报, 1999, 22(4): 276-282.
Li M C, Zhang W F, Ma F Y, LÜ X, Jiang G Y, Wang K R. Research on photosynthetic physiological basis of cotton super-high yield in Xinjiang. Journal of Xinjiang Agricultural University, 1999, 22(4): 276-282. (in Chinese)
[27]   周抑强, 张巨松, 陈冰, 孙国华, 侯玲, 张勇. 新疆棉花高产的群体组合研究. 新疆农业大学学报, 1999, 22(1): 15-18.
Zhou Y Q, Zhang J S, Chen B, Sun G H, Hou L, Zhang Y. Study on population combination of high yield of cotton. Journal of Xinjiang Agricultural University, 1999, 22(1): 15-18. (in Chinese)
[28]   陈冠文, 杨秀理, 张国建, 符林, 张鸿静. 论新疆棉花高产栽培理论的战略转移—机采棉田等行距密植的优越性和主要栽培技术. 新疆农垦科技, 2014(4): 11-13.
Chen G W, Yang X L, Zhang G J, Fu L, Zhang H J. On the strategic shift of high-yielding cultivation theory in cotton in Xinjiang-Advantages and key techniques of mechanic harvested cotton with equal row spacing under high plant density. Xinjiang Reclamation Science & Technology, 2014(4): 11-13. (in Chinese)
[29]   王克如, 李少昆, 宋光杰, 陈刚, 曹栓柱. 新疆棉花高产栽培生理指标研究. 中国农业科学, 2002, 35(6): 638-644.
Wang K R, Li S K, Song G J, Chen G, Cao S Z. Studies on cultivated physiological indexes for high-yielding cotton in Xinjiang. Scientia Agricultura Sinica, 2002, 35(6): 638-644. (in Chinese)
[30]   张旺锋, 勾玲, 李蒙春, 刘克贞, 李正尚, 李正河, 蔡红梅, 郭世 明. 北疆高产棉田群体光合速率及与产量关系的研究. 棉花学报, 1999, 11(4): 185-190.
Zhang W F, Gou L, Li M C, Liu K Z, Li Z S, Li Z H, Cai H M, Guo S M. Studies on the relationship between canopy apparent photosynthesis rate and yield in cotton in North Xinjiang. Acta Gossypii Sinica, 1999, 11(4): 185-190. (in Chinese)
[31]   杜明伟, 罗宏海, 张亚黎, 姚炎帝, 张旺锋, 夏东利, 马丽, 朱波. 新疆超高产杂交棉的光合生产特征研究. 中国农业科学, 2009, 42(6): 1952-1962.
Du M W, Luo H H, Zhang Y L, Yao Y D, Zhang W F, Xia D L, Ma L, Zhu B. Photosynthesis characteristics of super-high-yield hybrid cotton in Xinjiang. Scientia Agricultura Sinica, 2009, 42(6): 1952-1962. (in Chinese)
[32]   谈春松. 棉花优质高产栽培. 北京: 农业出版社, 1992.
Tan C S. Fine Quality and High Yielding Cotton Cultivation. Beijing: Agriculture Press, 1992. (in Chinese)
[33]   郭仁松, 魏红国, 张巨松, 田立文, 林涛, 赵强. 新疆超高产棉花群体质量指标研究. 干旱地区农业研究, 2011, 29(6): 86-91.
Guo R S, Wei H G, Zhang J S, Tian L W, Lin T, Zhao Q. Studies on population quality index of super high-yield cotton in Xinjiang. Agricultural Research in the Arid Areas, 2011, 29(6): 86-91. (in Chinese)
[34]   张旺锋, 李蒙春, 张煜星, 马富裕, 李正尚, 李正河, 王立生, 郭世明, 刘克贞, 李继军. 北疆高产棉花(2250 kg皮棉/hm2)栽培生理模式探讨. 石河子大学学报(自然科学版), 1998(增刊): 58-64.
Zhang W F, Li M C, Zhang Y X, MA F Y, LI Z S, LI Z H, W L S, GUO S M, LIU K Z, LI J J. Study on cultivating physiological model of high yield cotton( Lint yield 2250kg/hm-2) in North Xinjiang. Journal of Shihezi University( Natural Science), 1998(Suppl.): 58-64. (in Chinese)
[35]   陈德华, 陈源, 周桂生, 吴云康. 长江流域棉区高产棉花干物质生产与产量及群体构成的关系. 中国棉花, 2001, 28(10): 9-11.
Chen D H, Chen Y, Zhou G S, Wu Y K. Relationship between dry matter production, yield and population structure of cotton in Yangtze River region. China cotton, 2001, 28(10): 9-11. (in Chinese)
[36]   陈德华. 棉花群体质量及其调控//凌其鸿. 作物群体质量. 上海: 上海科学技术出版社, 2005: 293-386.  
Chen D H. Population quality and regulation in cotton//Ling Q H. Crop Population Quality. Shanghai: Shanghai Science and Technology Press, 2005: 293-386. (in Chinese)
[37]   杜明伟, 冯国艺, 姚炎帝, 罗宏海, 张亚黎, 夏东利, 张旺锋. 杂交棉标杂A1和石杂2号超高产冠层特性及其与群体光合生产的关系. 作物学报, 2009, 35(6): 1068-1077.
Du M W, Feng G Y, Yao Y D, Luo H H, Zhang Y L, Xia D L, Zhang W F. Canopy characteristics and its correlation with photosynthesis of super high-yielding hybrid cotton Biaoza A1 and Shiza 2. Acta Agronomica Sinica, 2009, 35(6): 1068-1077. (in Chinese)
[38]   冯国艺, 罗宏海, 姚炎帝, 杨美森, 杜明伟, 张亚黎, 张旺锋. 新疆超高产棉花叶、铃空间分布及与群体光合生产的关系. 中国农业科学, 2012, 45(13): 2607-2617 .
Feng G Y, Luo H H, Yao Y D, Yang M S, Du M W, Zhang  Y L, Zhang W F. Spatial distribution of leaf and boll in relation  to canopy photosynthesis of super high-yielding cotton in  Xinjiang. Scientia Agricultura Sinica, 2012, 45(13): 2607-2617. (in Chinese)
[39]   Peng S, Krieg D R. Single leaf and canopy photosynthesis response to plant age in cotton. Agronomy Journal, 1991, 83(4): 704-708.
[40]   Heitholt J J, Pettigrew W T, Meredith W R. Light interception and lint yield of narrow-row cotton. Crop Science, 1992, 32(3): 728-733.
[41]   Heitholt J J. Canopy characteristics associated with deficient and excessive cotton plant population densities. Crop Science, 1994, 34(5): 1291-1294.
[42]   Chen Y Z, Dong H Z. Mechanisms and regulation of senescence and maturity performance in cotton. Field Crops Research, 2016, 189: 1-9.
[43]   郑巨云, 王俊铎, 艾先涛, 梁亚军, 多力坤, 吐尔逊江, 莫明, 李雪源. 新疆4500 kg/hm2 超高产棉田光合特性与冠层研究. 新疆农业科学, 2013, 50(5): 794-802.
Zheng J Y, Wang J Z, Ai X T, Liang Y J, Duo L K, TuE X J, Mo M, Li X Y. Photosynthesis characteristics and canopy structure of super high-yield cotton (4500 kg/hm2) in Xinjiang. Xinjiang Agricultural Sciences. 2013, 50(5): 794-802. (in Chinese)
[44]   姚炎帝, 崔素倩, 冯国艺, 杨美森, 虎晓兵, 罗宏海, 张亚黎, 张旺锋. 杂交棉稀播条件下冠层结构特征及产量变化研究. 新疆农业科学, 2011, 48(5): 785 -791.
Yao Y D, Cui S Q, Feng G Y, Yang M S, Hu X B, Luo H H, Zhang Y L, Zhang W F. Study on the canopy structure and the yield of hybrid cotton at low-density in Xinjiang. Xinjiang Agricultural Sciences, 2011, 48(5): 785-791. (in Chinese)
[45]   孔庆平, 徐建辉, 田立文, 白灯莎. 棉花高效栽培. 乌鲁木齐: 新疆科学技术出版社, 2015.
Kong Q P, Xu J H, Tian L W, BAI D S. Cotton Efficient Cultivation. Urumqi: Xinjiang Science and Technology Press, 2015. (in Chinese)
[46]   申孝军, 张寄阳, 孙景生, 高阳, 李明思, 刘浩, 杨贵森. 基于恒水位蒸发皿蒸发量的膜下滴灌棉花灌溉指标. 应用生态学报, 2013, 24(11): 3153-3161. 
Shen X J, Zhang J Y, Sun J S, Gao Y, Li M S, Liu H, Yang G S. Optimal irrigation index for cotton drip irrigation under film mulching based on the evaporation from pan with constant water level. Chinese Journal of Applied Ecology, 2013, 24(11): 3153-3161. (in Chinese)
[47]   陈绪兰. 干播湿出技术在棉花上推广应用情况及存在的问题. 巴州科技, 2011(4): 13-15.
Chen X L. Application and the existing problems of dry seeding and wet budding technology in cotton. Bazhou Science and technology, 2011(4): 13-15. (in Chinese)
[48]   肖让, 姚宝林. 干播湿出膜下滴灌棉花现蕾初期地温变化规律. 西北农业学报, 2013, 22(5): 13-15.
Xiao R, Yao B L. Soil temperature variation in cotton budding pre-stage with drip irrigation under mulch with dry seeding and wet emergence method. Acta Agriculturae Boreali-occidentalis Sinica, 2013, 22(5): 13-15. (in Chinese)
[49]   曹健. 棉花干播湿出早期管理技术要点. 农村科技, 2013, 9: 6.
Cao J. Key techniques of field management for cotton seeded in dry soil and germinating in wet soil. Rural Technology, 2013, 9: 6. (in Chinese)
[50]   王久生, 王毅. 干播湿出在盐碱地棉花膜下滴灌条件下的试验效果. 塔里木大学学报, 2006, 18(1): 77-78, 81.
Wang J S, Wang Y. Effect of dry seeding and wet budding of cotton with drip irrigation under plastic film. Journal of Tarim University, 2006, 18(1): 77-78, 81. (in Chinese)
[51]   梁静. 新疆水肥一体化技术应用现状与发展对策. 新疆农垦科技, 2015, 38(1): 38-40.
Liang J. Present situation and the development countermeasures of water and fertilizer integration technology in Xinjiang. Xinjiang Agricultural Reclamation Technology, 2015, 38(1): 38-40. (in Chinese)
[52]   马莉. 刍议新疆水肥一体化技术的应用现状及措施. 北京农业, 2015(21): 75-76.
Ma L. On current situation and countermeasures of water and fertilizer integration technology. Beijing Agriculture, 2015(21): 75-76. (in Chinese)
[53]   马晓利, 孙晓锋. 哈密市棉花高产栽培技术. 新疆农业科技, 2013(4): 21-22.
MA X L, SUN X F. High yield cultivation techniques of cotton in Hami. Xinjiang Agricultural Science and Technology, 2013(4): 21-22. (in Chinese)
[54]   申孝军, 陈红梅, 孙景生, 李明思, 张寄阳. 调亏灌溉对膜下滴灌棉花生长、产量及水分利用效率的影响. 灌溉排水学报, 2010, 29(1): 40-43.
Shen X J, Chen H M, Sun J S, LI M S, ZHANG J Y. Response of different water deficit on cotton growth and water use efficiency and yield under mulched drip irrigation. Journal of Irrigation and Drainage, 2010, 29(1): 40-43. (in Chinese)
[55]   刘素华, 彭延, 彭小峰, 罗振, 董合忠. 调亏灌溉与合理密植对旱区棉花生长发育及产量与品质的影响. 棉花学报, 2016, 28(2): 184-188.
LIU S H, PENG Y, PENG X F, LUO Z, DONG H Z. Effects of regulated deficit irrigation and plant density on plant growth and yield and fiber quality of cotton in dry land area. Cotton Science, 2016, 28(2): 184-188. (in Chinese)
[56]   新疆生产建设兵团. 新疆生产建设兵团棉花生产全程机械化技术体系. 农业机械学报, 2015, 46(4): 379-380.
Xinjiang Production and Construction Corps. Full mechanization technology system for cotton production in Xinjiang Production and Construction Corps. Transactions of Chinese Society for Agricultural Machinery, 2015, 46(4): 379-380 . (in Chinese)
[57]   孔庆平, 孔杰, 徐海江, 朱家辉. 新疆棉花集约高效生产技术研发策略. 新疆农业科学2015, 52(7): 1352-1358.
KONG Q P, KONG J, XU H J, ZHU J H. Research and development strategy of intensive and efficient production technology in Xinjiang cotton. Xinjiang Agricultural Sciences, 2015, 52(7): 1352-1358. (in Chinese)
[58]   毛树春, 李亚兵, 冯璐, 孔庆平, 孙景生. 新疆棉花生产发展问题研究. 农业展望, 2014, 10(11): 33-36.
Mao S C, Li Y B, Feng L, Kong Q P, Sun J S. Study on the development of Xinjiang cotton production. Agricultural Outlook, 2014, 10(11): 33-36. (in Chinese)
[59]   毛树春, 冯璐, 李亚兵, 杨北方, 李鹏程, 薛惠云, 支晓宇. 加快转型升级, 努力建设现代植棉业. 农业展望. 2015, 11(4): 35-40.
Mao S C, Feng L, Li Y B, Yang B F, Li P C, Xue H Y, Zhi X Y. Speeding up transformation and upgrading and striving to build a modern cotton industry farming industry. Agricultural Outlook, 2014, 11(4): 35-40. (in Chinese)
[60]   毛树春, 李亚兵, 支晓宇, 雷亚平, 韩迎春, 王国平, 杨北方. 中国棉花栽培的科技进步. 农业展望. 2016, 12(1): 57-64.
Mao S C, Li Y B, Zhi X Y, Lei Y P, Han Y C, Wang G P, Yang B F. Technology advancement of China’s cotton cultivation. Agricultural Outlook, 2016, 12(1): 57-64. (in Chinese)
[61]   毛树春, 李亚兵, 雷亚平, 冯璐, 芦建华, 李鹏程, 杨北方. 用“品质中高端”引领棉花产业发展—“十三五”中国棉花产业展望. 农业展望, 2016, 12(3): 40-44.
Mao S C, Li Y B, Lei Y P, Feng L, Lu J H, Li P C, YANG B F. Developing China’s cotton industry by producing high quality cotton- China’s cotton industry outlook during 13th five-year plan period. Agricultural Outlook, 2016, 12(3): 40-44. (in Chinese)
[62]   南殿杰, 解红娥, 李燕娥, 武宗信, 任平合, 赵海祯, 柴士伟. 覆盖光降解地膜对土壤污染及棉花生育影响的研究. 棉花学报, 1994, 6(2): 103-108.
Nan D J, Xie H E, Li Y E, Wu Z X, Reng P H, Zhao H Z, Chai S W. Study of the effect of photodegradable plastic film mulching on soil contamination and cotton growth. Acta Gossypii Sinica, 1994,

6(2): 103-108. (in Chinese)
[63]   宋美珍, 毛树春, 张朝军, 邢金松, 韩迎春. 棉花覆盖光生物降解膜的增产效应研究. 河南农业科学, 1997(11): 9-11.
Song M Z, Mao S C, Zhang C J, Xing J S, Han Y C. Study on the effect of cotton yield increasing with the light of biodegradable film. Journal of Henan Agricultural Sciences, 1997(11): 9-11. (in Chinese)
[64]   王延琴, 潘学标, 崔秀稳, 潘仕梅. 纤维素膜覆盖棉田应用效果初报. 中国农学通报, 1998, 5: 60-61.
Wang Y Q, Pan X B, Cui X W, Pan S M. Study on the effect of the cellulose membrane covering on the cotton. Chinese Agricultural Science Bulletin, 1998, 5: 60-61. (in Chinese)
[65]   杨青华, 韩锦峰, 贺德先, 刘华山. 液体地膜覆盖棉花高产机理研究. 中国农业科学, 2008, 41(8): 2520-2527.
Yang Q H, Han J F, He D X, Liu H S. Study on high-yield mechanism of liquid film mulching on cotton. Scientia Agricultura Sinica, 2008, 41(8): 2520-2527. (in Chinese)
[66]   严昌荣, 何文清, 梅秀荣. 农用地膜的应用和污染防治. 北京: 科学出版社, 2010.
Yan C R, He W Q, Mei X R. Application and Pollution Prevention of Agricultural Film. Beijing: Science Press, 2010. (in Chinese)
[67]   孙莉, 张清, 陈曦, 王军, 包安明, 张斌. 精准农业技术系统集成在新疆棉花种植中的应用. 农业工程学报, 2005, 21(8): 83-88.
Sun L, Zhang Q, Chen X, Wang J, Bao A M, Zhang B. Application of the integrated precision farming system of cotton growing in Xinjiang region. Transactions of the Chinese Society of Agricultural Engineering , 2005, 21(8): 83-88. (in Chinese)
[1] WANG CaiXiang,YUAN WenMin,LIU JuanJuan,XIE XiaoYu,MA Qi,JU JiSheng,CHEN Da,WANG Ning,FENG KeYun,SU JunJi. Comprehensive Evaluation and Breeding Evolution of Early Maturing Upland Cotton Varieties in the Northwest Inland of China [J]. Scientia Agricultura Sinica, 2023, 56(1): 1-16.
[2] WANG JunJuan,LU XuKe,WANG YanQin,WANG Shuai,YIN ZuJun,FU XiaoQiong,WANG DeLong,CHEN XiuGui,GUO LiXue,CHEN Chao,ZHAO LanJie,HAN YingChun,SUN LiangQing,HAN MingGe,ZHANG YueXin,FAN YaPeng,YE WuWei. Characteristics and Cold Tolerance of Upland Cotton Genetic Standard Line TM-1 [J]. Scientia Agricultura Sinica, 2022, 55(8): 1503-1517.
[3] YIN YanYu,XING YuTong,WU TianFan,WANG LiYan,ZHAO ZiXu,HU TianRan,CHEN Yuan,CHEN Yuan,CHEN DeHua,ZHANG Xiang. Cry1Ac Protein Content Responses to Alternating High Temperature Regime and Drought and Its Physiological Mechanism in Bt Cotton [J]. Scientia Agricultura Sinica, 2022, 55(23): 4614-4625.
[4] XIE XiaoYu, WANG KaiHong, QIN XiaoXiao, WANG CaiXiang, SHI ChunHui, NING XinZhu, YANG YongLin, QIN JiangHong, LI ChaoZhou, MA Qi, SU JunJi. Restricted Two-Stage Multi-Locus Genome-Wide Association Analysis and Candidate Gene Prediction of Boll Opening Rate in Upland Cotton [J]. Scientia Agricultura Sinica, 2022, 55(2): 248-264.
[5] TANG MingYao,SHEN ChongYang,CHEN ShuHuang,TANG GuangMu,LI QingJun,YAN CuiXia,GENG QingLong,FU GuoHai. Yield of Wheat and Maize and Utilization Efficiency of Nitrogen, Phosphorus and Potassium in Xinjiang [J]. Scientia Agricultura Sinica, 2022, 55(14): 2762-2774.
[6] WANG Juan, MA XiaoMei, ZHOU XiaoFeng, WANG Xin, TIAN Qin, LI ChengQi, DONG ChengGuang. Genome-Wide Association Study of Yield Component Traits in Upland Cotton (Gossypium hirsutum L.) [J]. Scientia Agricultura Sinica, 2022, 55(12): 2265-2277.
[7] WANG Ning,FENG KeYun,NAN HongYu,ZHANG TongHui. Effects of Combined Application of Organic Fertilizer and Chemical Fertilizer on Root Characteristics and Yield of Cotton Under Different Water Conditions [J]. Scientia Agricultura Sinica, 2022, 55(11): 2187-2201.
[8] QIN HongDe, FENG ChangHui, ZHANG YouChang, BIE Shu, ZHANG JiaoHai, XIA SongBo, WANG XiaoGang, WANG QiongShan, LAN JiaYang, CHEN QuanQiu, JIAO ChunHai. F1 Performance Prediction of Upland Cotton Based on Partial NCII Design [J]. Scientia Agricultura Sinica, 2021, 54(8): 1590-1598.
[9] TongYu HOU,TingLi HAO,HaiJiang WANG,Ze ZHANG,Xin LÜ. Advances in Cotton Growth and Development Modelling and Its Applications in China [J]. Scientia Agricultura Sinica, 2021, 54(6): 1112-1126.
[10] LOU ShanWei,DONG HeZhong,TIAN XiaoLi,TIAN LiWen. The " Short, Dense and Early" Cultivation of Cotton in Xinjiang: History, Current Situation and Prospect [J]. Scientia Agricultura Sinica, 2021, 54(4): 720-732.
[11] LI Qing,YU HaiPeng,ZHANG ZiHao,SUN ZhengWen,ZHANG Yan,ZHANG DongMei,WANG XingFen,MA ZhiYing,YAN YuanYuan. Optimization of Cotton Mesophyll Protoplast Transient Expression System [J]. Scientia Agricultura Sinica, 2021, 54(21): 4514-4524.
[12] NIE JunJun,DAI JianLong,DU MingWei,ZHANG YanJun,TIAN XiaoLi,LI ZhaoHu,DONG HeZhong. New Development of Modern Cotton Farming Theory and Technology in China - Concentrated Maturation Cultivation of Cotton [J]. Scientia Agricultura Sinica, 2021, 54(20): 4286-4298.
[13] ZHOU Meng,HAN XiaoXu,ZHENG HengBiao,CHENG Tao,TIAN YongChao,ZHU Yan,CAO WeiXing,YAO Xia. Remote Sensing Estimation of Cotton Biomass Based on Parametric and Nonparametric Methods by Using Hyperspectral Reflectance [J]. Scientia Agricultura Sinica, 2021, 54(20): 4299-4311.
[14] WANG Na,ZHAO ZiBo,GAO Qiong,HE ShouPu,MA ChenHui,PENG Zhen,DU XiongMing. Cloning and Functional Analysis of Salt Stress Response Gene GhPEAMT1 in Upland Cotton [J]. Scientia Agricultura Sinica, 2021, 54(2): 248-260.
[15] ZHOU JingLong,FENG ZiLi,WEI Feng,ZHAO LiHong,ZHANG YaLin,ZHOU Yi,FENG HongJie,ZHU HeQin. Biocontrol Effect and Mechanism of Cotton Endophytic Bacterium YUPP-10 and Its Secretory Protein CGTase Against Fusarium Wilt in Cotton [J]. Scientia Agricultura Sinica, 2021, 54(17): 3691-3701.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!