
膜下滴灌水稻优化毛管配置模式及适宜灌溉强度的研究
收稿日期: 2015-04-02
修回日期: 2015-07-02
网络出版日期: 2016-01-10
基金资助
国家高技术研究发展计划资助项目(2011AA100508);安徽省科技计划资助项目(1501031088);安徽农业大学引进与稳定人才项目科研资助项目(yj2015-03)
Optimal Capillary Configuration Modes and Irrigation Intensities for Drip Irrigation with Plastic Film Mulching in Rice
Received date: 2015-04-02
Revised date: 2015-07-02
Online published: 2016-01-10
膜下滴灌水稻在干旱/半旱区(新疆、宁夏)表现出较高的生产潜力,而优化毛管配置模式和灌溉强度是其实现高产的前提。为此,本研究于石河子地区通过设置毛管配置模式和灌溉强度双因素多水平处理,开展为期一年的小区试验,旨在为膜下滴灌水稻获得高产高效的毛管配置模式和灌溉强度提供理论依据。研究结果表明,综合品种和灌溉强度因素,群体整齐度以1膜4管8行配置(R1)最优,其次是1膜2管8行配置(R2),1膜1管8行配置(R3)最差。 R2模式通过促进近滴灌带行位株穴的生长发育来弥补远滴灌带行位株穴生长发育,最终R2模式的产量、水分利用效率及经济效益与R1差异不显著;由于R3模式下距滴灌带第3行位和第4行位的株穴生长严重受限,进而导致R3模式的产量、水分利用效率及经济效益显著低于R1和 R2模式;总体而言,增加灌溉强度有利于膜下滴灌水稻生长发育。在砂壤土质条件下,膜下滴灌水稻为获得较高的谷物产量,毛管间距以40~80 cm为宜。关键生育期灌溉强度为抽穗前11 mm /d,抽穗后需维持更高的灌量,可以考虑维持在20~25 mm /d。
何海兵, 杨茹, 武立权, 马富裕 . 膜下滴灌水稻优化毛管配置模式及适宜灌溉强度的研究[J]. 中国水稻科学, 2016 , 30(1) : 75 -84 . DOI: 10.16819/j.1001-7216.2016.5058
Rice under drip irrigation with plastic film mulching performances a potential and high productivity in arid and semiarid regions. Capillary configuration mode and irrigation intensity are key factors for high grain yield. To determine optimum capillary configuration mode and irrigation intensity in key growth stages, plot experiments were conducted with two cultivars in 2011 in Shihezi City of northern Xinjiang under various capillary configuration modes and irrigation intensities. The population showed the most uniform growth under one sheet of plastic film mulching (1.6 m wide) with four drip tapes and eight rows of rice (R1), followed by one sheet of plastic film mulching with two drip tapes and eight rows of rice (R2) and one sheet of plastic film mulching with one drip tape and eight rows rice (R3). In the R2 treatment, the rapid growth of rice plants in the row near to the drip tape made up for the slower growth of rice plants in the second row from the drip tape. There were no significant differences in grain yield, water use efficiency, and economic return between the R1 and R2 treatments. However, in the R3 treatment, rice growth and development was seriously reduced throughout the growing season in the two rows farthest from the drip tape (i.e., the third and fourth rows). As a result, grain yield, water use efficiency, and economic return were significantly lower in the R3 treatment than the R1 and R2 treatments across two cultivars and four irrigation intensities. Generally speaking, rice growth and development were significantly improved as irrigation intensity increased under drip irrigation with plastic film mulching. In conclusion, the distance between drip tapes should be in the range of 40-80 cm to obtain high grain yield under drip irrigation in silty loam soil. In addition, the irrigation regime of 11 mm /d was beneficial to growth and development of rice plants before heading, and 20-25 mm /d after heading.
| [1] | Yang J C, Zhang J H, Wang Z Q, et al.Hormonal changes in the grains of rice subjected to water stress during grain filling.Plant Physiol, 2001, 127(1): 315-323. |
| [2] | Bouman B A M, Tuong T P. Field water management to save water and increase its productivity in irrigated lowland rice.Agric Water Manag, 2001, 49(1): 11-30. |
| [3] | Bouman B A M, Peng S B, Castaneda A R, et al. Yield and water use of irrigated tropical aerobic rice systems.Agric Water Manag, 2005, 74(2): 87-105. |
| [4] | Bouman B A M, Yang X G, Wang H Q, et al. Aerobic rice (Han Dao): A new way of growing rice in water-short areas// Proceedings of the 12th international soil conservation organization conference, China: Beijing, 2002. |
| [5] | Tao H B, Brueck H, Dittert K, et al.Growth and yield formation of rice (Oryza sativa L.) in the water-saving ground cover rice production system (GCRPS).Field Crops Res, 2006, 95(1): 1-12. |
| [6] | Zhang L M, Lin S, Bouman B A M, et al. Response of aerobic rice growth and grain yield to N fertilizer at two contrasting sites near Beijing, China.Field Crops Res, 2009, 114: 45-53. |
| [7] | Peng S B, Bouman B A M, Visperas R M, et al. Comparison between aerobic and flooded rice in the tropics: Agronomic performance in an eight-season experiment.Field Crops Res, 2006, 96(2): 252-259. |
| [8] | 陈林, 郭庆人. 膜下滴灌水稻栽培技术的形成与发展. 作物研究,2012,26(5):587-588. |
| [8] | Chen L, Guo Q R.The formation and development of rice cultivation technology in plastic mulch with drip irrigation.Crop Res, 2012, 26(5): 587-588. (in Chinese with English abstract) |
| [9] | 郭庆人, 陈林. 水稻膜下滴灌栽培技术在我国发展的优势及前景分析. 中国稻米, 2012, 18(4): 36-39. |
| [9] | Guo Q R, Chen L.The advantages and prospects of development of rice planted under plastic mulch with drip irrigation in China.China Rice, 2012, 18(4): 36-39. (in Chinese with English abstract) |
| [10] | Peacock W L, Rolston D E, Aljibury F K, et al.Evaluating drip, flood, and sprinkler irrigation of wine grapes.Amer J Enol Viticul, 1977, 28(4): 193-195. |
| [11] | Hodgson A S, Constable G A, Duddy G R, et al.A comparison of drip and furrow irrigated cotton on a cracking clay soil.Irrig Sci, 1990, 11(3), 143-148. |
| [12] | Aujla M S, Thind H S, Buttar G S.Cotton yield and water use efficiency at various levels of water and N through drip irrigation under two methods of planting.Agric Water Manag, 2005, 71(2): 167-179. |
| [13] | Daĝdelen N, Başal H, Yılmaz E, et al.Different drip irrigation regimes affect cotton yield, water use efficiency and fiber quality in western Turkey.Agric Water Manag, 2009, 96(1): 111-120. |
| [14] | Wanjura D F, Upchurch D R, Mahan J R, et al.Cotton yield and applied water relationships under drip irrigation.Agric Water Manag, 2002, 55(3): 217-237. |
| [15] | Hanson B, May D.Effect of subsurface drip irrigation on processing tomato yield, water table depth, soil salinity, and profitability.Agric Water Manag, 2004, 68(1): 1-17. |
| [16] | Vázquez N, Pardo A, Suso M L, et al.Drainage and nitrate leaching under processing tomato growth with drip irrigation and plastic mulching.Agric Ecosy Environ, 2006, 112(4): 313-323. |
| [17] | 胡安焱, 董新光, 魏光辉,等.滴灌条件下水肥耦合对干旱区红枣产量的影响. 灌溉排水学报, 2010, 29(6): 60-63. |
| [17] | Hu A Y, Dong X G, Wei G H, et al.Coupling effects of water and fertilizer on yield of Chinese jujube under drip irrigation in the arid area.J Irrig Drain, 2010, 29(6): 60-63. (in Chinese with English abstract) |
| [18] | 姚宝林, 孙三民, 孙建,等.节水控盐滴灌对土壤盐分、红枣光合及产量的影响.干旱地区农业研究, 2011, 29(4): 148-152. |
| [18] | Yao B L, Sun S M, Sun J, et al.Influence of water-saving and salt-controlling drip irrigation on soil salt content, photosynthesis rate and red jujube yield.Agric Res Arid Areas, 2011, 29(4): 148-152 (in Chinese with English abstract). |
| [19] | Phene C J, Davis K R, Hutmacher R B, et al.Effect of high frequency surface and subsurface drip irrigation on root distribution of sweet corn.Irrig Sci, 1991, 12(3): 135-140. |
| [20] | Oktem A, Simsek M, Oktem A G.Deficit irrigation effects on sweet corn (Zea mays saccharata Sturt) with drip irrigation system in a semi-arid region: I. Water-yield relationship.Agric Water Manag, 2003, 61(1): 63-74. |
| [21] | Liao L J, Zhang L, Bengtsson L.Soil moisture variation and water consumption of spring wheat and their effects on crop yield under drip irrigation.Irrig Drain Sys, 2008, 22(3/4), 253-270. |
| [22] | 杨茹, 何海兵, 廖江,等.滴灌春小麦的籽粒灌浆特性. 麦类作物学报, 2012, 32(4): 743-746. |
| [22] | Yang Y, He H B, Liao J, et al.Study on grain-filling properties of spring wheat under drip irrigation.J Triti Crops, 2012, 32(4): 743-746. (in Chinese with English abstract) |
| [23] | 程裕伟, 冯治磊, 王谊,等. 滴灌条件下春小麦耗水规律研究.干旱地区农业研究, 2012, 30(2): 112-117. |
| [23] | Chen Y W, Feng Z L, Wang Y, et al.Study on water consumption rules in spring wheat under drip irrigation.Agric Res Arid Areas, 2012, 30(2): 112-117. (in Chinese with English abstract) |
| [24] | 何庆祥, 张想平, 钱永康,等.甘肃河西灌区啤酒大麦滴灌栽培技术.大麦与谷类科学, 2010, (3): 26-27. |
| [24] | He Q X, Zhang X P, Qian Y K, et al.Cultivation techniques of malting barley under drip irrigation in Hexi corridor oasis irrigation area of Gansu Province.Barl Cereal Sci, 2010, 3: 26-27. (in Chinese with English abstract) |
| [25] | Isla R, Royo A, Aragüés R.Field screening of barley cultivars to soil salinity using a sprinkler and a drip irrigation system.Plant Soil, 1997, 197(1): 105-117. |
| [26] | Li Y, Wallach R, Cohen Y.The role of soil hydraulic conductivity on the spatial and temporal variation of root water uptake in drip-irrigated corn.Plant Soil, 2002, 243(2): 131-142. |
| [27] | Du T S, Kang S Z, Zhang J H.Water use and yield responses of cotton to alternate partial root-zone drip irrigation in the arid area of north-west China.Irrig Sci, 2008, 26: 147-159. |
| [28] | Patel N, Rajput T B S. Dynamics and modeling of soil water under subsurface drip irrigated onion.Agric Water Manag, 2008, 95(12): 1335-1349. |
| [29] | 蔡焕杰, 邵光成, 张振华. 棉花膜下滴灌毛管布置方式的试验研究. 农业工程学报, 2002, 18(1): 45-49. |
| [29] | Cai H J, Shao G C, Zhang Z H.The study of capillary configuration modes of cotton in drip irrigation with plastic mulching.Trans CSAE, 2002, 18(1): 45-49. (in Chinese with English abstract) |
| [30] | 廖江. 毛管配置模式与灌溉定额对滴灌春小麦土壤水分分布及产量的影响. 石河子: 石河子大学, 2012. |
| [30] | Liao J.Effects of different lateral placements and irrigation quotas on soil moisture distribution and grain yield of drip irrigated spring wheat. Shihezi: Shihezi university, 2012. (in Chinese with English abstract) |
| [31] | 杨茹. 水分调控下滴灌春小麦穗发育特性及其空间分异性研究. 石河子: 石河子大学, 2012. |
| [31] | Yang Y.Study on the characteristics of spikelet differentiation and the differentiation in the space of spring wheat of drip irrigation under water regulation. Shihezi: Shihezi university, 2012. (in Chinese with English abstract) |
| [32] | He H B, Yang R, Ma F Y.Rice root system spatial distribution characteristics at flowering stage and grain yield under plastic mulching drip irrigation (PMDI).J Anim Plant Sci, 2014, 24(1): 290-301. |
| [33] | O’Toole J C, Garrity D P. Upland rice soil-plant-water relation-ships. An overview of upland rice research. Los Baños, the Philippines:IRRI, 1984: 394-411. |
| [34] | Ekanayake I J, de Datta S K, Steponkus P L. Spikelet sterility and flowering response of rice to water stress at anthesis.Ann Bot, 1989, 63(2): 257-264. |
| [35] | Bresler E.Trickle-drip irrigation: Principles and application to soil-Water Management.Adv Agron, 1977, 29(3): 343-393. |
| [36] | Ben-Asher J, Yano T, Shainberg I.Dripper discharge rates and the hydraulic properties of the soil.Irrig Drain Sys, 2003, 17(4): 325-340. |
| [37] | Badr M A, Taalab A S.Effect of drip irrigation and discharge rate on water and solute dynamics in sandy soil and tomato yield.Austr J Bas Appl Sci, 2007, 1(4): 545-552. |
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