





中国农业科学 ›› 2022, Vol. 55 ›› Issue (11): 2121-2134.doi: 10.3864/j.issn.0578-1752.2022.11.004
孟轶1(
),翁文安1,陈乐1,胡群1,邢志鹏1,魏海燕1,高辉1,黄山2,廖萍1(
),张洪程1(
)
收稿日期:2021-08-23
接受日期:2021-11-04
出版日期:2022-06-01
发布日期:2022-06-16
联系方式:
孟轶,E-mail: 1813662383@qq.com。
基金资助:
MENG Yi1(
),WENG WenAn1,CHEN Le1,HU Qun1,XING ZhiPeng1,WEI HaiYan1,GAO Hui1,HUANG Shan2,LIAO Ping1(
),ZHANG HongCheng1(
)
Received:2021-08-23
Accepted:2021-11-04
Published:2022-06-01
Online:2022-06-16
摘要:
【目的】 与持续淹水灌溉相比,节水灌溉能够提高水分利用率。但是,节水灌溉对水稻产量和品质的影响尚不清楚。本研究采用Meta分析以探明节水灌溉对水稻产量和品质影响的综合效应。【方法】 在本研究中,以持续淹水灌溉为对照,节水灌溉为处理,筛选出了34篇文献,建立了包含263对观测值的数据库。利用Meta分析方法,针对不同试验类型、节水灌溉类型、种植制度、水稻类型、节水灌溉时期、土壤全氮、土壤质地、氮肥施用量及施用次数,探究了节水灌溉对水稻产量和品质的影响。【结果】 从总效应来看,与持续淹水灌溉相比,节水灌溉对水稻产量和品质均无显著影响。从不同的节水灌溉类型来看,与持续淹水灌溉相比,轻度节水灌溉显著提高了稻米糙米率(+0.9%)、精米率(+1.5%)和整精米率(+2.3%),对水稻产量、垩白粒率、垩白度、长宽比、直链淀粉、胶稠度和蛋白质含量无显著影响;但是,重度节水灌溉显著降低了水稻产量(-22.1%)、糙米率(-2.7%)、精米率(-2.7%)和整精米率(-3.6%),同时显著增加了稻米垩白粒率(+28.0%)和垩白度(+46.7%),对稻米长宽比、直链淀粉、胶稠度和蛋白质含量影响不显著。此外,从不同的种植制度来看,与持续淹水灌溉相比,在我国双季晚稻区进行节水灌溉显著降低了稻米蛋白质含量(-9.8%);而在双季早稻区、中稻区和单季稻区进行节水灌溉对稻米蛋白质含量影响不显著。【结论】 与持续淹水灌溉相比,轻度节水灌溉显著提高了稻米加工品质,对水稻产量、外观品质、蒸煮食味品质和营养品质影响不显著;重度节水灌溉显著降低了水稻产量、加工品质和外观品质,对蒸煮食味品质和营养品质影响不显著。本研究结果为评估节水灌溉对水稻产量和品质的影响提供了数据支撑。
孟轶,翁文安,陈乐,胡群,邢志鹏,魏海燕,高辉,黄山,廖萍,张洪程. 节水灌溉对水稻产量和品质影响的荟萃分析[J]. 中国农业科学, 2022, 55(11): 2121-2134.
MENG Yi,WENG WenAn,CHEN Le,HU Qun,XING ZhiPeng,WEI HaiYan,GAO Hui,HUANG Shan,LIAO Ping,ZHANG HongCheng. Effects of Water-Saving Irrigation on Grain Yield and Quality: A Meta-Analysis[J]. Scientia Agricultura Sinica, 2022, 55(11): 2121-2134.
表1
本研究中的文献概况"
| 参考文献1) Reference | 试验类型2) Experimental type | 节水灌溉类型3) Water-saving irrigation type | 水稻类型4) Rice type | 土壤质地5) Soil texture | 种植制度6) Cropping system | 产量 Grain yield | 加工品质 Milling quality | 外观品质 Appearance quality | 蒸煮食味品质 Cooking and eating quality | 营养品质 Nutrition quality | |||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 糙米率 Brown rice rate | 精米率 Milled rice rate | 整精米率 Head milled rice rate | 垩白粒率 Chalkiness percentage | 垩白度 Chalkiness degree | 长宽比 Length/width ratio | 直链淀粉 Amylose content | 胶稠度 Gel consistency | 蛋白质 Protein content | |||||||
| P | M/S | I | L | ● | ● | ● | ● | NA | ● | NA | ● | NA | ● | ||
| F | M | J | L | ● | ● | ● | ● | ● | ● | NA | ● | NA | ● | ||
| F | M/S | I/J | L | 单季稻 Single | NA | NA | ● | ● | NA | ● | NA | NA | NA | ● | |
| F | M/S | I | H | ● | ● | ● | NA | NA | NA | ● | ● | NA | ● | ||
| F | M/S | I | H | NA | ● | NA | ● | NA | NA | ● | NA | NA | NA | ||
| F | M | J | L | 中稻 Middle | ● | NA | NA | NA | NA | NA | NA | NA | NA | ● | |
| F | M | I | L | 早稻 Early | ● | ● | ● | ● | ● | ● | NA | ● | NA | ● | |
| F | M | I | L/H | ● | NA | NA | ● | NA | NA | NA | NA | NA | NA | ||
| F | M/S | J | L | NA | NA | NA | NA | NA | NA | ● | ● | NA | ● | ||
| F | M | I | L | 中稻 Middle | ● | ● | ● | ● | ● | ● | NA | ● | ● | ● | |
| P | NA | I/J | NA | ● | NA | NA | NA | NA | NA | NA | ● | ● | ● | ||
| P | M | I | NA | ● | ● | ● | ● | ● | ● | NA | ● | NA | ● | ||
| F | M | I/J | L | 中稻 Middle | ● | ● | ● | ● | ● | ● | ● | ● | ● | ● | |
| F | M/S | I/J | L | 中稻 Middle | ● | ● | ● | ● | ● | ● | ● | ● | ● | NA | |
| F | M | J | L | 中稻 Middle | ● | NA | NA | ● | ● | ● | ● | ● | NA | ● | |
| F | M/S | J | L/H | 中稻 Middle | ● | ● | ● | ● | ● | ● | NA | ● | ● | ● | |
| F | M | I | H | 晚稻 Late | ● | ● | ● | ● | ● | ● | NA | ● | ● | ● | |
| P | M/S | I | H | ● | ● | ● | ● | ● | ● | NA | NA | NA | NA | ||
| P | M/S | I | L | ● | ● | ● | ● | ● | ● | ● | ● | ● | NA | ||
| F | M/S | I | L | 晚稻 Late | ● | ● | ● | ● | ● | ● | ● | ● | ● | NA | |
| F | M | I | L | 晚稻 Late | ● | ● | ● | ● | ● | ● | NA | ● | ● | ● | |
| P | M/S | I/J | L | ● | ● | ● | ● | NA | ● | NA | ● | ● | NA | ||
| P/F | M/S | I/J | L | 中稻 Middle | ● | ● | ● | ● | NA | ● | NA | NA | NA | NA | |
| F | M/S | J | H | 中稻 Middle | ● | ● | ● | ● | ● | ● | ● | ● | ● | ● | |
| 参考文献1) Reference | 试验类型2) Experimental type | 节水灌溉类型3) Water-saving irrigation type | 水稻类型4) Rice type | 土壤质地5) Soil texture | 种植制度6) Cropping system | 产量 Grain yield | 加工品质 Milling quality | 外观品质 Appearance quality | 蒸煮食味品质 Cooking and eating quality | 营养品质 Nutrition quality | |||||
| 糙米率 Brown rice rate | 精米率 Milled rice rate | 整精米率 Head milled rice rate | 垩白粒率 Chalkiness percentage | 垩白度 Chalkiness degree | 长宽比 Length/width ratio | 直链淀粉 Amylose content | 胶稠度 Gel consistency | 蛋白质 Protein content | |||||||
| P | M/S | J | H | NA | ● | ● | ● | ● | ● | ● | ● | ● | ● | ||
| F | M/S | I | L | 中稻 Middle | ● | ● | NA | ● | ● | ● | ● | NA | NA | NA | |
| F | M/S | I | L | 中稻 Middle | NA | ● | NA | ● | ● | ● | ● | NA | NA | NA | |
| F | NA | I | H | 早、晚稻 Double | ● | ● | ● | ● | ● | ● | NA | NA | NA | NA | |
| F | M/S | I | L | 晚稻 Late | ● | ● | ● | ● | ● | ● | ● | ● | ● | NA | |
| F | M | I | NA | 晚稻 Late | NA | ● | ● | ● | ● | ● | NA | ● | ● | ● | |
| F | NA | J | H | 单季稻 Single | ● | ● | ● | ● | NA | NA | NA | ● | NA | ● | |
| P | M/S | I | L | ● | ● | ● | ● | ● | ● | NA | ● | ● | ● | ||
表2
不同条件下节水灌溉对水稻产量、稻米加工品质、外观品质、蒸煮食味品质和营养品质的影响(P值)"
| 分类变量 Categorical variable | 产量 Grain yield | 加工品质 Milling quality | 外观品质 Appearance quality | 蒸煮食味品质 Cooking and eating quality | 营养品质 Nutrition quality | |||||
|---|---|---|---|---|---|---|---|---|---|---|
| 糙米率 Brown rice rate | 精米率 Milled rice rate | 整精米率 Head milled rice rate | 垩白粒率 Chalkiness percentage | 垩白度 Chalkiness degree | 长宽比 Length/width ratio | 直链淀粉 Amylose content | 胶稠度 Gel consistency | 蛋白质 Protein content | ||
| 节水灌溉类型 Water-saving irrigation type | < 0.001 | < 0.001 | < 0.001 | < 0.001 | < 0.001 | < 0.001 | 0.751 | 0.058 | < 0.001 | 0.658 |
| 种植制度 Cropping system | 0.470 | 0.811 | 0.672 | 0.889 | 0.483 | 0.284 | 0.433 | 0.929 | 0.180 | < 0.05 |
| 水稻类型 Rice type | 0.370 | 0.640 | 0.328 | 0.143 | 0.963 | 0.276 | 0.857 | 0.439 | < 0.05 | 0.756 |
| 节水灌溉时期 Water-saving irrigation period | 0.801 | 0.660 | 0.274 | 0.332 | 0.381 | 0.994 | 0.103 | 0.996 | 0.577 | 0.392 |
| 土壤全氮 Soil TN | 0.852 | 0.504 | 0.947 | 0.237 | 0.078 | 0.083 | 0.717 | 0.090 | 0.766 | 0.371 |
| 土壤质地 Soil texture | 0.258 | 0.122 | < 0.05 | 0.819 | 0.117 | 0.223 | 0.550 | 0.835 | < 0.01 | 0.858 |
| 氮肥施用量 N rate | 0.837 | 0.261 | 0.842 | 0.633 | 0.338 | 0.938 | 0.542 | 0.405 | 0.819 | 0.828 |
| 氮肥施用次数 N application number | 0.777 | 0.686 | 0.564 | 0.922 | 0.510 | 0.538 | 0.095 | 0.254 | 0.489 | 0.714 |
| 试验类型 Experimental type | < 0.05 | 0.542 | 0.210 | 0.317 | 0.614 | 0.808 | 0.877 | 0.895 | 0.076 | < 0.001 |
| [1] | ALEXANDRATOS N, BRUINSMA J. World agriculture towards 2030/2050: The 2012 revision. FAO: ESA working paper, Rome. |
| [2] | 熊若愚, 解嘉鑫, 谭雪明, 杨陶陶, 潘晓华, 曾勇军, 石庆华, 张俊, 才硕, 曾研华. 不同灌溉方式对南方优质食味晚籼稻产量及品质的影响. 中国农业科学, 2021, 54(7): 1512-1524. |
| XIONG R Y, XIE J X, TAN X M, YANG T T, PAN X H, ZENG Y J, SHI Q H, ZHANG J, CAI S, ZENG Y H. Effects of irrigation management on grain yield and quality of high-quality eating late-season indica rice in South China. Scientia Agricultura Sinica, 2021, 54(7): 1512-1524. (in Chinese) | |
| [3] | 何海兵, 杨茹, 廖江, 武立权, 孔令聪, 黄义德. 水分和氮肥管理对灌溉水稻优质高产高效调控机制的研究进展. 中国农业科学, 2016, 49(2): 305-318. |
| HE H B, YANG R, LIAO J, WU L Q, KONG L C, HUANG Y D. Research advance of high-yielding and high efficiency in resource use and improving grain quality of rice plants under water and nitrogen managements in an irrigated region. Scientia Agricultura Sinica, 2016, 49(2): 305-318. (in Chinese) | |
| [4] | IRRI. How to manage water[EB/OL]. (2020-11-03) [2021-08-01]. http://www.knowledgebank.irri.org/step-by-step-production/growth/water-management. |
| [5] |
PIMENTEL D, BERGER B, FILIBERTO D, NEWTON M, WOLFE B, KARABINAKIS E, CLARK S, POON E, ABBETT E, NANDAGOPAL S. Water resources: Agricultural and environmental issues. BioScience, 2004, 54(10): 909-918.
doi: 10.1641/0006-3568(2004)054[0909:WRAAEI]2.0.CO;2 |
| [6] |
LIU X Y, ZHOU T, LIU Y, ZHANG X H, LI L Q, PAN G X. Effect of mid-season drainage on CH4 and N2O emission and grain yield in rice ecosystem: A meta-analysis. Agricultural Water Management, 2019, 213: 1028-1035.
doi: 10.1016/j.agwat.2018.12.025 |
| [7] |
JIANG Y, CARRIJO D, HUANG S, CHEN J, BALAINE N, ZHANG W J, VAN GROENIGEN K J, LINQUIST B. Water management to mitigate the global warming potential of rice systems: A global meta-analysis. Field Crops Research, 2019, 234: 47-54.
doi: 10.1016/j.fcr.2019.02.010 |
| [8] |
WANG Z Y, SHAO G C, LU J S, ZHANG K, GAO Y, DING J H. Effects of controlled drainage on crop yield, drainage water quantity and quality: A meta-analysis. Agricultural Water Management, 2020, 239: 106253.
doi: 10.1016/j.agwat.2020.106253 |
| [9] |
褚光, 展明飞, 朱宽宇, 王志琴, 杨建昌. 干湿交替灌溉对水稻产量与水分利用效率的影响. 作物学报, 2016, 42(7): 1026-1036.
doi: 10.3724/SP.J.1006.2016.01026 |
|
CHU G, ZHAN M F, ZHU K Y, WANG Z Q, YANG J C. Effects of alternate wetting and drying irrigation on yield and water use efficiency of rice. Acta Agronomica Sinica, 2016, 42(7): 1026-1036. (in Chinese)
doi: 10.3724/SP.J.1006.2016.01026 |
|
| [10] | DEVKOTA K P, HOOGENBOOM G, BOOTE K J, SINGH U, LAMERS J P A, DEVKOTA M, VLEK P L G. Simulating the impact of water saving irrigation and conservation agriculture practices for rice-wheat systems in the irrigated semi-arid drylands of Central Asia. Agricultural and Forest Meteorology, 2015, 214: 266-280. |
| [11] |
BELDER P, BOUMAN B A M, CABANGON R, GUOAN L, QUILANG E J P, YUANHUA L, SPIERTZ J H J, TUONG T P. Effect of water-saving irrigation on rice yield and water use in typical lowland conditions in Asia. Agricultural Water Management, 2004, 65(3): 193-210.
doi: 10.1016/j.agwat.2003.09.002 |
| [12] |
WON J G, CHOI J S, LEE S P, SON S H, CHUNG S O. Water saving by shallow intermittent irrigation and growth of rice. Plant Production Science, 2005, 8(4): 487-492.
doi: 10.1626/pps.8.487 |
| [13] | 刘立军, 李鸿伟, 赵步洪, 王志琴, 杨建昌. 结实期干湿交替处理对稻米品质的影响及其生理机制. 中国水稻科学, 2012, 26(1): 77-84. |
| LIU L J, LI H W, ZHAO B H, WANG Z Q, YANG J C. Effects of alternate drying-wetting irrigation during grain filling on grain quality and its physiological mechanisms in rice. Chinese Journal of Rice Science, 2012, 26(1): 77-84. (in Chinese) | |
| [14] | 张耗, 马丙菊, 张春梅, 赵步洪, 许京菊, 邵士梅, 顾骏飞, 刘立军, 王志琴, 杨建昌. 全生育期干湿交替灌溉对稻米品质及淀粉特性的影响. 扬州大学学报(农业与生命科学版), 2020, 41(6): 1-8. |
| ZHANG H, MA B J, ZHANG C M, ZHAO B H, XU J J, SHAO S M, GU J F, LIU L J, WANG Z Q, YANG J C. Effects of alternate wetting and drying irrigation during whole growing season on quality and starch properties of rice. Journal of Yangzhou University (Agricultural and Life Science Edition), 2020, 41(6): 1-8. (in Chinese) | |
| [15] |
ZHANG H, ZHANG S F, YANG J C, ZHANG J H, WANG Z Q. Postanthesis moderate wetting drying improves both quality and quantity of rice yield. Agronomy Journal, 2008, 100(3): 726-734.
doi: 10.2134/agronj2007.0169 |
| [16] |
ZHAO C, CHEN M Y, LI X F, DAI Q G, XU K, GUO B W, HU Y J, WANG W L, HUO Z Y. Effects of soil types and irrigation modes on rice root morphophysiological traits and grain quality. Agronomy, 2021, 11(1): 120.
doi: 10.3390/agronomy11010120 |
| [17] |
XU Y J, GU D J, LI K, ZHANG W Y, WANG Z Q, YANG J C. Response of grain quality to alternate wetting and moderate soil drying irrigation in rice. Crop Science, 2019, 59(3): 1261-1272.
doi: 10.2135/cropsci2018.11.0700 |
| [18] | 马立晓, 李婧, 邹智超, 蔡岸冬, 张爱平, 李贵春, 杜章留. 免耕和秸秆还田对我国土壤碳循环酶活性影响的荟萃分析. 中国农业科学, 2021, 54(9): 1913-1925. |
| MA L X, LI J, ZOU Z C, CAI A D, ZHANG A P, LI G C, DU Z L. Effect of no-tillage and straw returning on soil C-cycling enzyme activities in China: Meta-analysis. Scientia Agricultura Sinica, 2021, 54(9): 1913-1925. (in Chinese) | |
| [19] | 苑俊丽, 梁新强, 李亮, 叶玉适, 傅朝栋, 宋清川. 中国水稻产量和氮素吸收量对高效氮肥响应的整合分析. 中国农业科学, 2014, 47(17): 3414-3423. |
| YUAN J L, LIANG X Q, LI L, YE Y S, FU C D, SONG Q C. Response of rice yield and nitrogen uptake to enhanced efficiency nitrogen fertilizer in China: A meta-analysis. Scientia Agricultura Sinica, 2014, 47(17): 3414-3423. (in Chinese) | |
| [20] |
LIAO P, HUANG S, ZENG Y J, SHAO H, ZHANG J, VAN GROENIGEN K J. Liming increases yield and reduces grain cadmium concentration in rice paddies: A meta-analysis. Plant and Soil, 2021, 465: 157-169.
doi: 10.1007/s11104-021-05004-w |
| [21] | 张桂莲, 张顺堂, 王力, 肖应辉, 唐文帮, 陈光辉, 陈立云. 抽穗结实期不同时段高温对稻米品质的影响. 中国农业科学, 2013, 46(14): 2869-2879. |
| ZHANG G L, ZHANG S T, WANG L, XIAO Y H, TANG W B, CHEN G H, CHEN L Y. Effects of high temperature at different times during the heading and filling periods on rice quality. Scientia Agricultura Sinica, 2013, 46(14): 2869-2879. (in Chinese) | |
| [22] |
ISHFAQ M, FAROOQ M, ZULFIQAR U, HUSSAIN S, AKBAR N, NAWAZ A, ANJUM S A. Alternate wetting and drying: A water- saving and ecofriendly rice production system. Agricultural Water Management, 2020, 241: 106363.
doi: 10.1016/j.agwat.2020.106363 |
| [23] |
CHEN C Q, VAN GROENIGEN K J, YANG H Y, HUNGATE B A, YANG B, TIAN Y L, CHEN J, DONG W J, HUANG S, DENG A X, JAING Y, ZHANG W J. Global warming and shifts in cropping systems together reduce China’s rice production. Global Food Security, 2020, 24: 100359.
doi: 10.1016/j.gfs.2020.100359 |
| [24] | Soil Survey Staff. Keys to Soil Taxonomy. 12th Edition. Washington DC: United States Department of Agriculture, 2014. |
| [25] |
LIAO P, SUN Y N, ZHU X C, WANG H Y, CHEN J, ZHANG J, ZENG Y H, ZENG Y J, HUANG S. Identifying agronomic practices with higher yield and lower global warming potential in rice paddies: A global meta-analysis. Agriculture, Ecosystems and Environment, 2021, 322: 107663.
doi: 10.1016/j.agee.2021.107663 |
| [26] |
DE GRAAFF M A, VAN GROENIGEN K J A N, SIX J, HUNGATE B, VAN KESSEL C. Interactions between plant growth and soil nutrient cycling under elevated CO2: A meta-analysis. Global Change Biology, 2006, 12(11): 2077-2091.
doi: 10.1111/j.1365-2486.2006.01240.x |
| [27] |
HEDGES L V, GUREVITCH J, CURTIS P S. The meta-analysis of response ratios in experimental ecology. Ecology, 1999, 80(4): 1150-1156.
doi: 10.1890/0012-9658(1999)080[1150:TMAORR]2.0.CO;2 |
| [28] |
VAN GROENIGEN K J, OSENBERG C W, TERRER C, CARRILLO Y, DIJKSTRA F A, HEATH J, NIE M, PENDALL E, PHILLIPS R P, HUNGATE B A. Faster turnover of new soil carbon inputs under increased atmospheric CO2. Global Change Biology, 2017, 23(10): 4420-4429.
doi: 10.1111/gcb.13752 |
| [29] | 张立成, 姚帮松, 肖卫华, 张文萍. 盆栽与大田栽培水稻的生长及产量的比较研究. 天津农业科学, 2016, 22(3): 102-106. |
| ZHANG L C, YAO B S, XIAO W H, ZHANG W P. Study on the growth and yield of rice in pot and field cultivation. Tianjin Agricultural Sciences, 2016, 22(3): 102-106. (in Chinese) | |
| [30] | 张玉屏, 李金才, 黄义德, 黄文江. 水分胁迫对水稻根系生长和部分生理特性的影响. 安徽农业科学, 2001, 29(1): 58-59. |
| ZHANG Y P, LI J C, HUANG Y D, HUANG W J. Effect of water stress on the growth and some physiological characteristics of root system in rice. Journal of Anhui Agricultural Sciences, 2001, 29(1): 58-59. (in Chinese) | |
| [31] |
刘凯, 张耗, 张慎凤, 王志琴, 杨建昌. 结实期土壤水分和灌溉方式对水稻产量与品质的影响及其生理原因. 作物学报, 2008, 34(2): 268-276.
doi: 10.3724/SP.J.1006.2008.00268 |
|
LIU K, ZHANG H, ZHANG S F, WANG Z Q, YANG J C. Effects of soil moisture and irrigation patterns during grain filling on grain yield and quality of rice and their physiological mechanism. Acta Agronomica Sinica, 2008, 34(2): 268-276. (in Chinese)
doi: 10.3724/SP.J.1006.2008.00268 |
|
| [32] | 陈婷婷, 许更文, 钱希旸, 王志琴, 张耗, 杨建昌. 花后轻干-湿交替灌溉提高水稻籽粒淀粉合成相关基因的表达. 中国农业科学, 2015, 48(7): 1288-1299. |
| CHEN T T, XU G W, QIAN X Y, WANG Z Q, ZHANG H, YANG J C. Post-anthesis alternate wetting and moderate soil drying irrigation enhance gene expressions of enzymes involved in starch synthesis in rice grains. Scientia Agricultura Sinica, 2015, 48(7): 1288-1299. (in Chinese) | |
| [33] | 陆大克, 段骅, 王维维, 刘明爽, 魏艳秋, 徐国伟. 不同干湿交替灌溉与氮肥形态耦合下水稻根系生长及功能差异. 植物营养与肥料学报, 2019, 25(8): 1362-1372. |
| LU D K, DUAN H, WANG W W, LIU M S, WEI Y Q, XU G W. Comparison of rice root development and function among different degrees of dry-wet alternative irrigation coupled with nitrogen forms. Journal of Plant Nutrition and Fertilizers, 2019, 25(8): 1362-1372. (in Chinese) | |
| [34] | 刘立军, 王康君, 卞金龙, 熊溢伟, 王志琴, 杨建昌. 结实期干湿交替灌溉对籽粒蛋白质含量不同的转基因水稻的生理特性及产量的影响. 中国水稻科学, 2014, 28(4): 384-390. |
| LIU L J, WANG K J, BIAN J L, XIONG Y W, WANG Z Q, YANG J C. Effect of alternate wetting and soil drying irrigation during grain filling on the physiological traits and yield of transgenic rice with different protein content in grains. Chinese Journal of Rice Science, 2014, 28(4): 384-390. (in Chinese) | |
| [35] | 徐国伟, 陆大克, 王贺正, 贾付俊, 陈明灿. 施氮和干湿灌溉对水稻抽穗期根系分泌有机酸的影响. 中国生态农业学报, 2018, 26(4): 516-525. |
| XU G W, LU D K, WANG H Z, JIA F J, CHEN M C. Coupling effect of alternate wetting and drying irrigation and nitrogen rate on organic acid in rice root secretion at heading stage. Chinese Journal of Eco-Agriculture, 2018, 26(4): 516-525. (in Chinese) | |
| [36] | 杨建昌, 彭少兵, 顾世梁, VISPERAS R M, 朱庆森. 水稻结实期籽粒和根系中玉米素与玉米素核苷含量的变化及其与籽粒充实的关系. 作物学报, 2001, 27(1): 35-42. |
| YANG J C, PENG S B, GU S L, VISPERAS R M, ZHU Q S. Changes in zeatin and zeatin riboside content in rice grains and roots during grain filling and the relationship to grain plumpness. Acta Agronomica Sinica, 2001, 27(1): 35-42. (in Chinese) | |
| [37] |
杨建昌, 刘凯, 张慎凤, 王学明, 王志琴, 刘立军. 水稻减数分裂期颖花中激素对水分胁迫的响应. 作物学报, 2008, 34(1): 111-118.
doi: 10.1016/S1875-2780(08)60005-X |
|
YANG J C, LIU K, ZHANG S F, WANG X M, WANG Z Q, LIU L J. Hormones in rice spikelets in responses to water stress during meiosis. Acta Agronomica Sinica, 2008, 34(1): 111-118. (in Chinese)
doi: 10.1016/S1875-2780(08)60005-X |
|
| [38] |
张自常, 李鸿伟, 曹转勤, 王志琴, 杨建昌. 施氮量和灌溉方式的交互作用对水稻产量和品质影响. 作物学报, 2013, 39(1): 84-92.
doi: 10.3724/SP.J.1006.2013.00084 |
|
ZHANG Z C, LI H W, CAO Z Q, WANG Z Q, YANG J C. Effect of interaction between nitrogen rate and irrigation regime on grain yield and quality of rice. Acta Agronomica Sinica, 2013, 39(1): 84-92. (in Chinese)
doi: 10.3724/SP.J.1006.2013.00084 |
|
| [39] |
熊淑萍, 张娟娟, 杨阳, 刘娟, 王晓航, 吴延鹏, 马新明. 不同冬小麦品种在3种质地土壤中氮代谢特征及利用效率分析. 植物生态学报, 2013, 37(7): 601-610.
doi: 10.3724/SP.J.1258.2013.00062 |
|
XIONG S P, ZHANG J J, YANG Y, LIU J, WANG X H, WU Y P, MA X M. Research on nitrogen metabolism characteristics and use efficiency in different winter wheat cultivars grown on three soil textures. Chinese Journal of Plant Ecology, 2013, 37(7): 601-610. (in Chinese)
doi: 10.3724/SP.J.1258.2013.00062 |
|
| [40] |
GRAHAM-ACQUAAH S, SIEBENMORGEN T J, REBA M L, MASSEY J H, MAUROMOUSTAKOS A, ADVIENTO-BORBE A, JANUARY R, BURGOS R, BALTZ-GRAY J. Impact of alternative irrigation practices on rice quality. Cereal Chemistry, 2019, 96(5): 815-823.
doi: 10.1002/cche.10182 |
| [41] | NEVAME A Y M, EMON R M, MALEK M A, HASAN M M, ALAM M A, MUHARAM F M, ASLANI F, RAFII M Y, ISMAIL M R. Relationship between high temperature and formation of chalkiness and their effects on quality of rice. BioMed Research International, 2018, 2018: 1-18. |
| [42] |
ISHFAQ M, AKBAR N, ANJUM S A, ANWAR-IJL-HAQ M. Growth, yield and water productivity of dry direct seeded rice and transplanted aromatic rice under different irrigation management regimes. Journal of Integrative Agriculture, 2020, 19(11): 2656-2673.
doi: 10.1016/S2095-3119(19)62876-5 |
| [43] |
XIONG R Y, XIE J X, CHEN L M, YANG T T, TAN X M, ZHOU Y J, PAN X H, ZENG Y J, SHI Q H, ZHANG J, ZENG Y H. Water irrigation management affects starch structure and physicochemical properties of indica rice with different grain quality. Food Chemistry, 2021, 347: 129045.
doi: 10.1016/j.foodchem.2021.129045 |
| [44] | 龚金龙, 邢志鹏, 胡雅杰, 张洪程, 戴其根, 霍中洋, 许轲, 魏海燕, 高辉. 籼、粳超级稻主要品质性状和淀粉RVA谱特征的差异研究. 核农学报, 2015, 29(7): 1374-1385. |
| GONG J L, XING Z P, HU Y J, ZHANG H C, DAI Q G, HUO Z Y, XU K, WEI H Y, GAO H. Difference of main quality traits and RVA profile characteristics of starch between indica and japonica super rice. Journal of Nuclear Agricultural Sciences, 2015, 29(7): 1374-1385. (in Chinese) | |
| [45] |
XIONG D L, LING X X, HUANG J L, PENG S B. Meta-analysis and dose-response analysis of high temperature effects on rice yield and quality. Environmental and Experimental Botany, 2017, 141: 1-9.
doi: 10.1016/j.envexpbot.2017.06.007 |
| [46] |
CHEN Y, WANG M, OUWERKERK P B F. Molecular and environmental factors determining grain quality in rice. Food and Energy Security, 2012, 1(2): 111-132.
doi: 10.1002/fes3.11 |
| [47] |
LIU J, OUYANG X Q, SHEN J L, LI Y, SUN W R, JIANG W Q, WU J S. Nitrogen and phosphorus runoff losses were influenced by chemical fertilization but not by pesticide application in a double rice-cropping system in the subtropical hilly region of China. Science of the Total Environment, 2020, 715: 136852.
doi: 10.1016/j.scitotenv.2020.136852 |
| [48] | 金正勋, 秋太权, 孙艳丽, 赵久明, 金学泳. 氮肥对稻米垩白及蒸煮食味品质特性的影响. 植物营养与肥料学报, 2001, 7(1): 31-35. |
| JIN Z X, QIU T Q, SUN Y L, ZHAO J M, JIN X Y. Effects of nitrogen fertilizer on chalkiness ratio and cooking and eating quality properties of rice grain. Plant Nutrition and Fertilizer Science, 2001, 7(1): 31-35. (in Chinese) | |
| [49] | 沈鹏, 罗秋香, 金正勋. 稻米蛋白质与蒸煮食味品质关系研究. 东北农业大学学报, 2003, 34(4): 378-381. |
| SHEN P, LUO Q X, JIN Z X. Relationship between protein content and the cooking and eating quality properties of rice grain. Journal of Northeast Agricultural University, 2003, 34(4): 378-381. (in Chinese) |
| [1] | 彭廷燊, 陆久焱, 吴美林, 严雨欣, 刘宏周, 南文斌, 秦小健, 李明, 龚俊义, 梁永书. 多年生水稻黄糯2号和长白7号产量相关性状的QTL分析[J]. 中国农业科学, 2026, 59(7): 1361-1379. |
| [2] | 王玉萍, 符质, 孙佳莹, 穆晓萌, 刘慧淋, 郭进云, 宋文菁, 侯雷平, 赵海亮. 苗期施用褪黑素对番茄短期低温胁迫的缓解作用与应用效果评价[J]. 中国农业科学, 2026, 59(7): 1523-1535. |
| [3] | 王佳诺, 陈桂平, 李盼, 王丽萍, 南运有, 何蔚, 樊志龙, 胡发龙, 柴强, 殷文, 赵连豪. 免耕地膜两年覆盖提高绿洲灌区玉米产量的灌浆期光合生理机制[J]. 中国农业科学, 2026, 59(6): 1189-1202. |
| [4] | 周新杰, 任昊, 陈应龙, 张吉旺, 赵斌, 任佰朝, 刘鹏, 王洪章. 过氧化钙对渍涝农田夏玉米根系形态及产量形成的影响[J]. 中国农业科学, 2026, 59(6): 1203-1216. |
| [5] | 何继航, 张擎, 吕相月, 薛吉全, 徐淑兔, 刘建超. 不同保绿型玉米杂交种氮效率评价[J]. 中国农业科学, 2026, 59(6): 1217-1230. |
| [6] | 郝琨, 陈洪德, 张威, 钟韵, 党美荣, 朱士江, 黄志坤, 金英. 基于柑橘产量、品质及水氮利用的涌泉根灌水氮综合评价[J]. 中国农业科学, 2026, 59(4): 862-873. |
| [7] | 郭富城, 唐海江, 郝馨怡, 马国林, 杨九菊, 黄霖锋, 田蕾, 王彬, 罗成科. 不同灌溉方式对宁夏盐渍化土壤水盐运移、水稻产量及水分利用效率的影响[J]. 中国农业科学, 2026, 59(4): 750-764. |
| [8] | 延廷霖, 杜娅丹, 胡笑涛, 王贺, 李晓雁, 王玉明, 牛文全, 谷晓博. 加气滴灌下氮肥有机替代对亏缺灌溉棉花产量和水分利用效率的影响[J]. 中国农业科学, 2026, 59(3): 602-618. |
| [9] | 蔡廷阳, 朱玉鹏, 李瑞东, 吴宗声, 徐一帆, 宋雯雯, 徐彩龙, 吴存祥. 苗期叶损伤对黄淮海夏大豆光合特性、荚果分布及产量形成的影响[J]. 中国农业科学, 2026, 59(2): 292-304. |
| [10] | 张志勇, 谭世超, 熊淑萍, 马新明, 韦一昊, 王小纯. 水氮周年优化对豫北灌区小麦玉米轮作系统产量和氮迁移的影响[J]. 中国农业科学, 2026, 59(2): 336-353. |
| [11] | 吕旭东, 孙世媛, 李亚楠, 刘玉龙, 王艳群, 付鑫, 张佳英, 宁鹏, 彭正萍. 智能机械化分层施肥对麦田根-土养分分布和小麦产量的影响[J]. 中国农业科学, 2026, 59(1): 129-146. |
| [12] | 陆浩, 张明龙, 韩梅, 严清彪, 李正鹏, 殷文, 樊志龙, 胡发龙, 柴强. 绿肥过腹还田协同氮肥减施提高小麦产量和土壤质量[J]. 中国农业科学, 2026, 59(1): 147-160. |
| [13] | 叶美金, 陈家婷, 周界光, 尹丽, 胡欣荣, 兰雨昕, 陈斌, 苏龙兴, 刘家君, 刘天超, 李小雨, 马建. 小麦穗密度主效QTL的鉴定、验证及其遗传效应分析[J]. 中国农业科学, 2026, 59(1): 17-28. |
| [14] | 董桂春, 王子涵, 王树深, 李杰, 霍晓晴, 杨瑞, 周娟, 舒小伟, 李妍, 曹靓婧, 王子瑞, 姚友礼, 黄建晔. 硫包衣缓释肥提升水稻产量及氮肥利用率的技术途径[J]. 中国农业科学, 2026, 59(1): 57-77. |
| [15] | 蒲丽霞, 张佳芮, 叶建萍, 黄秀兰, 樊高琼, 杨洪坤. 二氢赤霉素与秸秆覆盖对旱地小麦分蘖成穗与产量的影响[J]. 中国农业科学, 2025, 58(9): 1735-1748. |
|
||