
优质稻云恢290精确定量栽培技术研究
收稿日期: 2021-11-06
网络出版日期: 2022-05-24
基金资助
云南省科技厅、凌启鸿专家工作站(2018IC144);国家公益性行业(农业)专项(201303102)
Study on Precise and Quantitative Cultivation Technology of High-quality Rice Yunhui 290
Received date: 2021-11-06
Online published: 2022-05-24
以大面积推广的优质常规稻品种云恢290为材料,以当地栽培技术(T1)为基础,在当地技术上实行精确定量施肥(T2),在T2基础上实行精确定量灌溉(T3),并通过定量基本苗、扩大行距、精确定量施肥和灌溉,实现精确定量栽培(T4),分析不同栽培技术对云恢290生育期、叶龄、产量及其构成和经济效益的影响。结果表明,相比T1处理, T2、T3和T4处理均能显著提高云恢290产量和经济效益,2019年产量增幅为21.0%~41.0%、经济效益增幅为20.6%~41.3%,2020年产量增幅为16.7%~65.4%、经济效益增幅为17.0%~63.8%,其中,T4处理增产增效最显著,产量极显著高于其他3个处理。可见,精准定量栽培技术是一种高产高效的栽培方式。
罗萍, 凌启鸿, 刘曜榕, 王怀义, 杨从党, 李刚华 . 优质稻云恢290精确定量栽培技术研究[J]. 中国稻米, 2022 , 28(3) : 99 -103 . DOI: 10.3969/j.issn.1006-8082.2022.03.020
The effects of different cultivation techniques such as local cultivation technology (T1), implement accurate quantitative fertilization(T2), accurate quantitative irrigation (T3), and integrative precise and quantitative cultivation technology(T4), on the growth period, leaf age, yield, yield composition and economic benefits of rice Yunhui 290, a large-scale popularized high-quality conventional rice variety were studied in Gejiu, Yunnan, China. The results showed that compared with T1 treatment, T2, T3 and T4 treatments significantly increased the yield by 21.0%~41.0% in 2019 and by 16.7%~65.4% in 2020, and increased the economic benefits by 20.6%~41.3% in 2019 and by 17.0%~63.8% in 2020. Among them, the T4 treatment had the most significant increase in yield and economic benefits, and the yield was extremely significantly higher than the other three treatments. The precise and quantitative cultivation technology is a high-yield and efficient cultivation method. The precise and quantitative cultivation method is a suitable cultivation method for high-quality conventional rice with high yield and efficiency.
| [1] | 戴廷江, 杨贵兰, 杨华, 等. 不同类型水稻品种叶龄模式及生育进程观测[J]. 贵州农业科学, 2007, 35(4):105-107. |
| [2] | 冯阳春, 魏广彬, 李刚华, 等. 水稻主茎出叶动态模拟研究[J]. 中国农业科学, 2009, 42(4): 1172-1180. |
| [3] | 李贵勇, 宁波, 刘玉文, 等. 再生稻精确定量栽培技术研究[J]. 西南农业学报, 2012, 25(6):1977-1981. |
| [4] | 李杰, 冯跃华, 王旭, 等. 水稻叶片SPAD值分布特征及其与施氮量的关系[J]. 南方农业学报, 2017, 48(1):38-45. |
| [5] | 邱新法, 曾燕, 杜海东. 水稻总叶龄模拟研究[J]. 南京气象学院学报, 1999, 22(4):658-662. |
| [6] | 杨从党, 李刚华, 李贵勇, 等. 云南省立体生态稻区水稻叶龄模式建立[J]. 西南农业学报, 2013, 26(4): 1372-1377. |
| [7] | 凌启鸿, 张洪程, 丁艳锋. 水稻精确定量栽培理论与技术[M]. 北京: 中国农业出版社, 2007:1-137. |
| [8] | 凌启鸿. 水稻精确定量轻简栽培是作物生产现代化的发展方向[J]. 中国稻米, 2010, 16(4):1-6. |
| [9] | 凌启鸿.水稻超高产栽培的精确定量化-云南亩产1287 kg是如何实现的[C]. //《凌启鸿论文选编》编委会. 凌启鸿论文选集. 北京: 中国农业出版社, 2013:218-223. |
| [10] | 杨从党, 李刚华, 李贵勇, 等. 立体生态区水稻定量促控栽培技术的增产机理[J]. 中国农业科学, 2012, 45 (10):1 904-1 913. |
| [11] | 李刚华, 杨从党. 水稻超高产精确定量栽培技术设计与实践[M]. 北京: 中国农业出版社, 2019:2-11. |
| [12] | 凌启鸿, 苏祖芳, 张洪程, 等. 水稻品种不同生育类型的叶龄模式[J]. 中国农业科学, 1983, 16(1):9-18. |
| [13] | 凌启鸿, 张红程, 戴其根, 等. 水稻精确定量施氮研究[J]. 中国农业科学, 2005, 38(12): 2457-2467. |
| [14] | 凌启鸿, 张洪程, 黄丕生, 等. 水稻高产氮肥合理施用的运筹新探索[J]. 土壤学报, 2002, 6(suppl1):26-39. |
| [15] | 凌启鸿, 过益先, 费槐林, 等. 水稻栽培理论与技术兼及作物栽培科学的发展述评(下)[J]. 中国稻米, 1999, 5(2):3-8. |
| [16] | 李常英, 吕兰, 张明辉, 等. 水稻精确定量栽培技术在东川的实践应用初报[J]. 中国农技推广, 2011, 27(4):24-25. |
| [17] | 戈芹英, 张朝钟, 陈均, 等. 水稻精确定量栽培技术在云南坝区应用前景展望[J]. 中国稻米, 2008, 14(3):74-75. |
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