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作物学报 ›› 2011, Vol. 37 ›› Issue (05): 855-867.doi: 10.3724/SP.J.1006.2011.00855

• 耕作栽培·生理生化 • 上一篇    下一篇

“三定”栽培对双季超级稻产量形成及生理特性的影响

蒋鹏,黄敏,Md.Ibrahim,曾燕,夏冰,邹应斌*   

  1. 湖南农业大学农学院,湖南长沙410128
  • 收稿日期:2010-12-09 修回日期:2011-01-06 出版日期:2011-05-12 网络出版日期:2011-02-24
  • 通讯作者: 邹应斌, E-mail: ybzou123@126.com
  • 基金资助:

    本研究由国家水稻产业技术体系岗位专家项目(2007-2010)和农业部超级稻配套栽培技术研究项目(2006-2010)资助。

Effects of “San-Ding” Cultivation Method on Yield Formation and Physiological Characteristics of Double Cropping Super Rice

JIANG Peng,HUANG Min,Md. Ibrahim,ZENG Yan,XIA Bing,ZOU Ying-Bin*   

  1. College of Agronomy, Hunan Agricultural University, Changsha 410128, China
  • Received:2010-12-09 Revised:2011-01-06 Published:2011-05-12 Published online:2011-02-24
  • Contact: 邹应斌, E-mail: ybzou123@126.com

摘要: 为探讨南方双季稻区超级稻高产栽培技术,于2008—2010年在湖南长沙和浏阳以超级早稻陆两优996、陵两优268和超级晚稻天优华占、丰源优299为材料进行大田定位试验,比较了“三定”栽培、免耕摆栽和传统栽培下双季超级稻的产量形成特点和生理特性。与传统栽培相比,“三定”栽培齐穗期的颖花伤流量、根系氧化力、根冠比、叶面积指数及籽粒结实期剑叶的光合速率较高,齐穗后剑叶SPAD值下降缓慢、干物质积累量大,有效穗数和每穗粒数多,早季平均产量为7.18 t hm-2,增产11.68%,晚季平均产量为8.39 t hm-2,增产7.41%;免耕摆栽干物质积累量大、有效穗数多,但其收获指数、每穗粒数和结实率居劣势,使其单季增产效果不显著。由此可见,南方双季超级稻在“三定”栽培下后期生理优势明显,产量构成因子协调,增产效果显著。

关键词: 栽培方式, 超级稻, 产量, 干物质

Abstract: Rice is the major staple food of China. The realization of its high yield has a great significance for food security and society stability. A field experiment was conducted in Changsha and Liuyang cities of Hunan Province during 2008–2010 to find out a cultivation technique that could increase the yield of double cropping super rice in South China. Super early rice Luliangyou996 and Lingliangyou 268 and super late rice Tianyouhuazhan and Fengyuanyou 299 were used in early and late season cropping, respectively. The cultivation patterns were designed as “Sanding” cultivation (tillage and transplanting, A), no tillage and seedling broadcasting (B), traditional cultivation (C) and no applied fertilizer (D). The characteristics of grain yield formation and their physiological attributes under different cultivation patterns were analyzed. Result showed that the grain yield of pattern A was significantly higher among the tested patterns irrespective of growing seasons, locations and years. Compared with pattern C, the pattern A significantly increased root bleeding intensity per flowering glume, root oxidation ability,root-shoot ratio, LAI and photosynthetic rate in flag leaves at heading stage, and the SPAD reading of pattern A decrease slowly and dry matter production was higher from heading to maturity stages. The average grain yield of pattern A (7.18 t hm-2 and 8.39 t hm-2 in early and late season rice, respectively) was 11.68% and 7.41% higher in early and late season, respectively, mainly due to the contribution of higher number of productive tiller and grain number per panicle. The dry matter accumulation and number of productive tiller of pattern B was higher but the harvest index (HI) and grain-filling percentage were lower than those of pattern C and there was no significant yield increasing or decreasing trend. Thus, the physiological characteristics could be improved through the practicing of “Sanding” cultivation technique which is very important to increase grain yield especially in South China rice production.

Key words: Cultivation patterns, Super rice, Yield, Dry matter

[1]Zhu D-F(朱德峰), Lin X-Q(林贤青), Tao L-X(陶龙兴), Zhang Y-P(张玉屏), Zheng J-G(郑家国), Lü S-H(吕世华), Ma J(马均). Formation and development of the system of rice intensification. China Rice (中国稻米), 2003, (2): 17–18 (in Chinese with English abstract)
[2]Zou Y-B(邹应斌), Huang J-L(黄见良), Tu N-M(屠乃美), Li H-S(李合松), Huang S-P(黄升平), Zhang Y-Z(张杨珠). Effects of the VSW cultural method on yield formation and physiological characteristics in double cropping hybrid rice. Acta Agron Sin (作物学报), 2001, 27(3): 343–350 (in Chinese with English abstract)
[3]Ma J(马均), Tao S-S(陶诗顺). Study on the practice and high-yielding mechanism of super-sparse-cultivation associated with maximum-tiller seedling of hybrid rice. Sci Agric Sin (中国农业科学), 2002, 35(1): 42–48 (in Chinese with English abstract)
[4]Zou Y-B(邹应斌), Tang Q-Y(唐启源), Wang H-L(汪汉林), Liu L-S(刘龙生), Ao H-J(敖和军). A preliminary report of studies on the optimizing technique for high-yielding cultivation of super hybrid rice. Hybrid Rice (杂交水稻), 2003, 18(6): 24–27(in Chinese with English abstract)
[5]Fan M S, Lu S H, Jiang R F, Liu X J, Zhang F S. Triangular transplanting pattern and split nitrogen fertilizer application increase rice yield and nitrogen fertilizer recovery. Agron J, 2009, 101: 1421–1425
[6]Xia Y-L(夏有龙), Jin J-S(金建松). Exploration of quality cultural management in japonica hybrid rice. Hybrid Rice (杂交水稻), 1993, (2): 4–6 (in Chinese with English abstract)
[7]Ling Q-H(凌启鸿), Zhang H-C(张洪程), Ding Y-F(丁艳锋), Zhang Y-B(张益斌). Advance in high-yielding techniques in rice-precise and quantitative cultivation. China Rice (中国稻米), 2005, (1): 3–7 (in Chinese with English abstract)
[8]Xue Y-G(薛亚光), Chen T-T(陈婷婷), Yang C(杨成), Wang Z-Q(王志琴), Liu L-J(刘立军), Yang J-C(杨建昌). Effects of different cultivation patterns on the yield and physiological characteristics in mid-season japonica rice. Acta Agron Sin (作物学报), 2010, 36(3): 466–476 (in Chinese with English abstract)
[9]Zou Y-B(邹应斌), Ao H-J(敖和军), Wang S-H(王淑红), Tang Q-Y(唐启源). Studies on San-Ding cultivation method for super rice: I. The concept and the principle. Chin Agric Sci Bull (中国农学通报), 2006, 22(5): 158-162 (in Chinese with English abstract)
[10]Wang S-H(王淑红), Zou Y-B(邹应斌), Feng Y-H(冯跃华), Ao H-J(敖和军). Studies on San-Ding cultivation method for super rice II. Effects of different fertilizer rate treatments on the yield and characteristics of growth and physiology. Chin Agric Sci Bull (中国农学通报), 2006, 22(6): 141–146 (in Chinese with English abstract)
[11]Ao H-J(敖和军), Zou Y-B(邹应斌), Wang S-H(王淑红), Tang Q-Y(唐启源), Feng Y-H(冯跃华). Studies on San-Ding cultivation method for super rice III. Research on the optimizing cultivation method of super hybrid rice. Chin Agric Sci Bull (中国农学通报), 2006, 22(7): 169–173 (in Chinese with English abstract)
[12]Ao H-J(敖和军), Wang S-H(王淑红), Zou Y-B(邹应斌), Peng S-B(彭少兵), Tang Q-Y(唐启源), Fang Y-X(方远祥), Xiao A-M(肖安民), Chen Y-M(陈玉梅), Xiong C-M(熊昌明). Study on yield stability and dry matter characteristics of super hybrid rice. Sci Agric Sin (中国农业科学), 2008, 41(7): 1927–1936 (in Chinese with English abstract)
[13]Yang J-C(杨建昌), Wang P(王朋), Liu L-J(刘立军), Wang Z-Q(王志琴), Zhu Q-S(朱庆森). Evolution characteristics of grain yield and plant type for mid-season indica rice cultivars. Acta Agron Sin (作物学报), 2006, 32(7): 949–955 (in Chinese with English abstract)
[14]Mohapatra P K, Sahu S K. Heterogeneity of primary branch development and spikelet survival in rice in relation to assimilates of primary branches. J Exp Bot, 1991, 42:871–879
[15]Gao L-Y(高良艳), Zhou H-F(周鸿飞). Relationship between yield component factors and yield in rice. Liaoning Agric Sci (辽宁农业科学), 2007, (1): 26–28 (in Chinese with English abstract)
[16]Zhang H, Xue Y, Wang Z, Yang J, Zhang J. Morphological and physiological traits of roots and their relationships with shoot growth in “super” rice. Field Crops Res, 2009, 113: 31–40
[17]Zhang H-S(张洪松), Tadatoshi I, Sato B. Comparison of matter production and nutrition characteristics for japonica hybrid rice and conventional rice. Southwest China J Agric Sci (西南农业学报), 1995, 8(4): 11–16 (in Chinese with English abstract)
[18]Zhu Q-S(朱庆森), Zhang Z-J(张祖建), Yang J-C(杨建昌), Cao X-Z(曹显祖), Lang Y-Z(郎有忠), Wang Z-C(王增春). Source-sink characteristics related to the yield in intersubspecific hybrid rice. Sci Agric Sin (中国农业科学), 1997, 30(3): 52–59 (in Chinese with English abstract) 
[19]Ling Q-H(凌启鸿), Zhang H-C(张洪程), Cai J-C(蔡建中), Su Z-F(苏祖芳), Ling L(凌励). Investigation on the population quality of high yield and its optimizing control programme in rice. Sci Agric Sin (中国农业科学), 1993, 26(6): 1–11 (in Chinese with English abstract)
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