In order to reveal the difference in growth duration and utilization of temperature and solar radiation between indica and japonica super rice, a field experiment was conducted with five main representative super hybrid indica combinations and five conventional japonica super rice varieties as materials in the ricewheat cropping areas. The main growth stages, dry matter accumulation, effective accumulated temperature, production efficiency of temperature, photosynthetically active radiation and solar energy utilization were analyzed systematically. Results showed that, the growth processes of japonica rice in the field were later than indica rice, 16.2 days later for rice maturity and harvest time. Grain filling stage of japonica rice was significantly longer than that of indica rice, with an increasing rate of 2582%. Compared with indica rice, japonica rice had strong adaptability to low temperature, which was beneficial for prolonging heading and grain filling appropriately, lengthening grain filling and growth duration, and increasing the utilization of temperature and solar radiation in late autumn. Japonica rice had significantly higher grain yield, biological yield, grain yield per day, and growth duration, effective accumulated temperature, photosynthetically active radiation and solar energy utilization of the whole growth duration, and No. of days, effective accumulated temperature and photosynthetically active radiation of the major growth duration, and production efficiency of temperature from heading to maturity, and dry matter accumulation and solar energy utilization from jointing to maturity, while grain filling rate and production efficiency of temperature of the critical period from sowing to heading and the whole growth stages, and dry matter accumulation and solar energy utilization from sowing to jointing followed an opposite tendency accordingly. Correlation analysis showed that, grain yield of rice was found to be significantly positively associated with growth duration, grain yield per day and grain filling stage, while significantly negatively related to grain filling rate. Moreover, biological yield was highly significantly correlated with effective accumulated temperature, photosynthetically active radiation and solar energy utilization of the whole growth duration. However there was a insignificantly negative correlation between biological yield and production efficiency of temperature of the whole growth duration. Therefore, based on stabilizing and raising the utilization of temperature and solar radiation, grain yield per day and grain filling rate, the increment of effective accumulated temperature and photosynthetically active radiation through lengthening growth duration, especially for grain filling, could increase periodic dry matter accumulation and biological yield, which was one of important approaches and characteristics of high productivity of japonica rice.
\[1\]Peng S B, Khush G S, Virk P, et al. Progress in ideotype breeding to increase rice yield potential. Field Crops Res, 2008, 108(1): 3238.
\[2\]Cheng S H, Cao L Y, Zhuang J Y, et al. Super hybrid rice breeding in China: Achievements and prospects. J Integr Plant Biol, 2007, 49(6): 805810.
\[3\]Zhang Q F. Strategies for developing green super rice. Pro Nat Acad Sci USA, 2007, 104(42): 1640216409.
\[4\]龚金龙, 胡雅杰, 葛梦婕, 等. 南方粳型超级稻氮肥群体最高生产力及其形成特征的研究. 核农学报, 2012, 26(3): 05580572.
\[5\]龚金龙, 张洪程, 李杰, 等. 超级稻生态育种及超高产栽培特征与途径的研究进展. 中国农业科技导报, 2011, 13(1): 2533.
\[6\]凌启鸿, 张洪程, 丁艳锋. 关于亚洲栽培稻(Oryza sativa L.)两个亚种命名的商榷. 中国农业科学, 2013, 46(2): 250256.
\[7\]张洪程, 张军, 龚金龙, 等. “籼改粳”的生产优势及其形成机理. 中国农业科学, 2013, 46(4): 686704.
\[8\]李旭毅, 池忠志, 姜心禄, 等. 成都平原两熟区籼粳稻品种籽粒灌浆特性. 中国农业科学, 2012, 45(16): 32563264.
\[9\]卜祥. 粳稻潜力待挖. 农经杂志, 2011,(2): 4244.
\[10\]杨海生. 江苏水稻安全生育与产量形成的温光生态特性及其应用的研究. 扬州: 扬州大学, 2003.
\[11\]杨文钰, 屠乃美. 作物栽培学各论(南方本). 北京: 中国农业出版社, 2003.
\[12\]付雪丽, 张惠, 贾继增, 等. 冬小麦夏玉米“双晚”种植模式的产量形成及资源效率研究. 作物学报, 2009, 35(9): 17081714.
\[13\]Allen R G, Pereira L S, Raes D, et al. Crop Evapotranspirationguidelines for Computing Crop Water RequirementsFAO Irrigation and Drainage Paper 56. Rome: Food and Agriculture Organization of the United Nations, 1998.
\[14\]朱元刚, 董树亭, 张吉旺, 等. 种植方式对夏玉米光合生产特征和光温资源利用的影响. 应用生态学报, 2010, 21(6): 14171424.
\[15\]周晋, 吴业正, 晏刚. 中国太阳总辐射的日照类估算模型. 哈尔滨工业大学学报, 2006, 38(6): 925927.
\[16\]Duffle J A, Beckman W A. Solar Engineering of Thermal Processes. New York: Wiley, 1991.
\[17\]萧文俊. 利用日照百分率计算总辐射的经验公式. 北京大学学报, 1962, (4): 409415.
\[18\]戴明宏, 陶洪斌, Binder J, 等. 春、夏玉米物质生产及其对温光资源利用比较. 玉米科学, 2008, 16(4): 8285, 90.
\[19\]杨泽峰, 徐辰武, 顾世梁. SPSS农业试验数据分析实用教程. 南京: 南京大学出版社, 2009.
\[20\]龚金龙, 邢志鹏, 胡雅杰, 等. 籼、粳超级稻光合物质生产特征的差异研究. 作物学报, 2014,40(3):497510.
\[21\]张洪程, 戴其根, 霍中洋, 等. 偏迟熟水稻北移及配套高产栽培技术的研究. 江苏农学院学报, 1996, 17(3): 5156.
\[22\]李杰, 张洪程, 董洋阳, 等. 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): 26612672.
\[23\]姚义, 霍中洋, 张洪程, 等. 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): 633647.
\[24\]郎有忠, 窦永秀, 王美娥, 等. 水稻生育期对籽粒产量及品质的影响. 作物学报, 2012, 38(3): 528534.
\[25\]叶全宝. 不同水稻基因型对氮肥反应的差异及氮素利用效率的研究. 扬州: 扬州大学, 2005.
\[26\]魏海燕. 水稻氮素利用的基因型差异与生理机理研究. 扬州: 扬州大学, 2008.
\[27\]殷春渊, 张庆, 魏海燕, 等. 不同产量类型水稻基因型氮素吸收、利用效率的差异. 中国农业科学, 2010, 43(1): 3950.
\[28\]殷春渊, 魏海燕, 张庆, 等. 不同氮肥水平下中熟籼稻和粳稻产量、氮素吸收利用差异及相互关系. 作物学报, 2009, 35(2): 348355.
\[29\]张祖建, 张洪熙, 杨建昌, 等. 江苏近50年粳稻安全齐穗期的变化. 作物学报, 2011, 37(1): 146151.
\[30\]龚金龙, 张洪程, 常勇, 等. 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): 629638.
\[31\]Katsura K, Maeda S, Lubis I, et al. The high yield of irrigated rice in Yunnan, China ‘a crosslocation analysis’. Field Crops Res, 2008, 107(1): 111.
\[32\]李迪秦, 唐启源, 秦建权, 等. 施氮量与氮管理模式对超级稻产量和辐射利用率影响. 核农学报, 2010, 24(4): 809814.
\[33\]Yang W, Peng S B, DionisioSese M L, et al. Grain filling duration, a crucial determinant of genotypic variation of grain yield in fieldgrown tropical irrigated rice. Field Crops Res, 2008, 105(3): 221227.
\[34\]童平, 杨世民, 马均, 等. 不同水稻品种在不同光照条件下的光合特性及干物质积累. 应用生态学报, 2008, 19(3): 505511.