|本期目录/Table of Contents|

[1]刘益珍,姜振辉.稻田水旱轮作生态效应研究进展及发展建议[J].江苏农业科学,2019,47(20):19-23.
 Liu Yizhen,et al.Research progress and developing strategies of ecological effects of paddy-upland crop rotation[J].Jiangsu Agricultural Sciences,2019,47(20):19-23.
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稻田水旱轮作生态效应研究进展及发展建议(PDF)
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第47卷
期数:
2019年第20期
页码:
19-23
栏目:
专论与综述
出版日期:
2019-11-18

文章信息/Info

Title:
Research progress and developing strategies of ecological effects of paddy-upland crop rotation
作者:
刘益珍 姜振辉
浙江大学环境与资源学院,浙江杭州 310058
Author(s):
Liu Yizhenet al
关键词:
稻田水旱轮作生态效应研究进展发展建议
Keywords:
-
分类号:
S181
DOI:
-
文献标志码:
A
摘要:
水旱轮作是克服水稻连作障碍的有效途径。本文从稻田水旱轮作对水稻增产效应、土壤理化性状、土壤生物学特性、病虫害生态调控以及温室气体减排效应5个方面综述了国内外关于水旱轮作生态效应的最新研究进展,指出了目前我国稻田水旱轮作面临的主要问题。最后,结合水旱轮作的模式特点提出,可以通过协调土壤养分,根据作物养分需求精准施肥;重视有机肥的使用,有效利用秸秆还田技术;改进农业管理措施,探索应用生物炭技术;多种农作技术综合应用,在发展高效高产栽培技术等方面加以改进,并对水旱轮作的研究方向进行展望,以期为实现我国农业生产中作物高产和环境友好的目标提供科学策略。
Abstract:
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参考文献/References:

[1]黄国勤. 南方稻田耕作制度可持续发展面临的十大问题[J]. 耕作与栽培,2009(3):1-2,5.
[2]官春云,黄璜,黄国勤,等. 中国南方稻田多熟种植存在的问题及对策[J]. 作物杂志,2016(2):1-7.
[3]Chen S,Zheng X,Wang D Y,et al.Effect of long-term paddy-upland yearly rotations on rice (Oryza Sativa) yield,soil properties,and bacteria community diversity[J]. The Scientific World Journal,2012(3):279641.
[4]Bakhshandeh S,Corneo P E,Mariotte P,et al.Effect of crop rotation on mycorrhizal colonization and wheat yield under different fertilizer treatments[J]. Agriculture Ecosystems & Environment,2017,247:130-136.
[5]杨滨娟,孙松,陈洪俊,等. 稻田水旱轮作系统的能值分析和可持续性评价[J]. 生态科学,2017,36(1):123-131.
[6]范明生,江荣风,张福锁,等. 水旱轮作系统作物养分管理策略[J]. 应用生态学报,2008,19(2):424-432.
[7]Xuan D T,Guong V T,Rosling A,et al.Different crop rotation systems as drivers of change in soil bacterial community structure and yield of rice,Oryza sativa[J]. Biology & Fertility of Soils,2012,48(2):217-225.
[8]Filizadeh Y,Rezazadeh A,Younessi Z.Effects of crop rotation and tillage depth on weed competition and yield of rice in the paddy fields of Northern Iran[J]. Journal of Agricultural Science & Technology,2010,9(2):99-105.
[9]王人民,丁元树,陈锦新. 稻田年内水旱轮作对晚稻产量及生长发育的影响[J]. 浙江大学学报(农业与生命科学版),1996,22(4):412-417.
[10]Linh T B,Sleutel S,Guong V T,et al.Deeper tillage and root growth in annual rice-upland cropping systems result in improved rice yield and economic profit relative to rice monoculture[J]. Soil & Tillage Research,2015,154:44-52.
[11]Seong-Tak Y,Young-Jung K,In-Ho J,et al.Growth and yield characteristics of foxtail millet,proso millet,sorghum and rice in paddy-upland rotation[J]. Korean Journal of Crop Science,2015,60(3):300-307.
[12]Ladha J K,Dawe D,Pathak H,et al.How extensive are yield declines in long-term rice-wheat experiments in Asia?[J]. Field Crops Research,2003,81(2/3):159-180.
[13]Liu N J,Li X Y,Waddington S R.Soil and fertilizer constraints to wheat and rice production and their alleviation in six intensive cereal-based farming systems of the Indian sub-continent and China[J]. Food Security,2014,6(5):629-643.
[14]Zhou W,Lv T F,Chen Y,et al.Soil Physicochemical and biological properties of paddy-upland rotation:a review[J]. The Scientific World Journal,2014,2014:856352.
[15]Motschenbacher J,Brye K R,Anders M M.Long-term rice-based cropping system effects on near-surface soil compaction[J]. Agricultural Sciences,2011,2(2):117-124.
[16]彭星辉. 稻田复种制对土壤理化性状的影响及其经济效益分析[J]. 安徽农业科学,2007,35(13):3921-3923.
[17]Fong J D M,Masunaga T,Sato K.Control of micronutrients availability in soil and concentration in rice grain through field water management[J]. Journal of Agricultural Science,2015,7(5):163-174.
[18]Morales L A,Vázquez E V,Paz-Ferreiro J.Spatial and temporal variability of Mehlich-1 extractable Fe,Mn and Zn over a rice field as a function of lime amendment[J]. Stochastic Environmental Research & Risk Assessment,2011,25(8):1039-1048.
[19]Timsina J,Connor D J.Productivity and management of rice-wheat cropping systems:issues and challenges[J]. Field Crops Research,2001,69(2):93-132.
[20]Nishida M.Decline in fertility of paddy soils induced by paddy rice and upland soybean rotation,and measures against the decline[J]. Japan Agricultural Research Quarterly,2016,50(2):87-94.
[21]Zheng H B,Huang H,Zhang C M,et al.National-scale paddy-upland rotation in Northern China promotes sustainable development of cultivated land[J]. Agricultural Water Management,2016,170:20-25.
[22]Do T N,Nishida K A. nitrogen cycle model in paddy fields to improve material flow analysis:the Day-Nhue River Basin case study[J]. Nutrient Cycling in Agroecosystems,2014,100(2):215-226.
[23]Kumari M,Chakraborty D,Gathala M K,et al.Soil aggregation and associated organic carbon fractions as affected by tillage in a rice-wheat rotation in North India[J]. Soil Science Society of America Journal,2011,75(2):560-567.
[24]Lu M,Yang Y H,Luo Y Q,et al.Responses of ecosystem nitrogen cycle to nitrogen addition:a meta-analysis[J]. New Phytologist,2011,189(4):1040-1050.
[25]Yuan H Z,Ge T D,Zou S Y,et al.Effect of land use on the abundance and diversity of autotrophic bacteria as measured by ribulose-1,5-biphosphate carboxylase/oxygenase(RubisCO) large subunit gene abundance in soils[J]. Biology and Fertility of Soils,2013,49(5):609-616.
[26]Acosta-Martínez V,Cruz L,Sotomayor-Ramírez D,et al.Enzyme activities as affected by soil properties and land use in a tropical watershed[J]. Applied Soil Ecology,2007,35(1):35-45.
[27]Venter Z S,Jacobs K,Hawkins H J.The impact of crop rotation on soil microbial diversity:a meta-analysis[J]. Pedobiologia,2016,59(4):215-223.
[28]Liu D Y,Ishikawa H,Nishida M,et al.Effect of paddy-upland rotation on methanogenic archaeal community structure in paddy field soil[J]. Microbial Ecology,2015,69(1):160-168.
[29]Nishida M,Sekiya H,Yoshida K.Status of paddy soils as affected by paddy rice and upland soybean rotation in northeast Japan,with special reference to nitrogen fertility[J]. Soil Science & Plant Nutrition,2013,59(2):208-217.
[30]Murugan R,Kumar S,et al.Influence of long-term fertilization and crop rotation on changes in fungal and bacterial residues in a tropical rice-field soil[J]. Biology & Fertility of Soils,2013,49(7):847-856.
[31]陈晓娟,吴小红,刘守龙,等. 不同耕地利用方式下土壤微生物活性及群落结构特性分析:基于PLFA和Micro-RespTM方法[J]. 环境科学,2013,34(6):2375-2382.
[32]董艳,鲁耀,董坤,等. 轮作模式对设施土壤微生物区系和酶活性的影响[J]. 土壤通报,2010,41(1):53-55.
[33]Roldán A,Salinas-García J R,Alguacil M M,et al.Soil enzyme activities suggest advantages of conservation tillage practices in sorghum cultivation under subtropical conditions[J]. Geoderma,2005,129(3/4):178-185.
[34]Holland J M.The environmental consequences of adopting conservation tillage in Europe:reviewing the evidence[J]. Agriculture,Ecosystems & Environment,2004,103(1):1-25.
[35]Ebihara Y,Uematsu S,Nomiya S.Control of Verticillium dahliae at a strawberry nursery by paddy-upland rotation[J]. Journal of General Plant Pathology,2010,76(1):7-20.
[36]黄国勤,黄禄星. 稻田轮作系统的减灾效应研究[J]. 气象与减灾研究,2006,29(3):25-29.
[37]Fujisaka S,Harrington L,Hobbs P.Rice-wheat in South Asia:systems and long-term priorities established through diagnostic research[J]. Agricultural Systems,2007,46(2):169-187.
[38]Hilton S,Bennett A J,Keane G,et al.Impact of shortened crop rotation of oilseed rape on soil and rhizosphere microbial diversity in relation to yield decline[J]. PLoS One,2013,8(4):e59859.
[39]Nagarajah S,Neue H U,Alberto M C R.Effect of Sesbania,Azolla and rice straw incorporation on the kinetics of NH4,K,Fe,Mn,Zn and P in some flooded rice soils[J]. Plant & Soil,1989,116(1):37-48.
[40]杨滨娟,黄国勤,徐宁,等. 长期水旱轮作条件下不同复种方式对稻田杂草群落的影响[J]. 应用生态学报,2013,24(9):2533-2538.
[41]强胜,沈俊明,张成群,等. 种植制度对江苏省棉田杂草群落影响的研究[J]. 植物生态学报,2003,27(2):278-282.
[42]谭景艾,李保同,潘晓华,等. 冬种绿肥对早稻病虫草发生及产量的影响[J]. 中国农学通报,2015,31(4):179-184.
[43]Tang L L,Wan K Y,Cheng C P,et al.Effect of fertilization patterns on the assemblage of weed communities in an upland winter wheat field[J]. Journal of Plant Ecology,2014,7(1):39-50.
[44]Linquist B,van Groenigen K J,Adviento-Borbe M A,et al.An agronomic assessment of greenhouse gas emissions from major cereal crops[J]. Global Change Biology,2015,18(1):194-209.
[45]Ma Y C,Kong X W,Yang B,et al.Net global warming potential and greenhouse gas intensity of annual rice-wheat rotations with integrated soil-crop system management[J]. Agriculture Ecosystems & Environment,2013,164:209-219.
[46]Stevens C J,Quinton J N.Policy implications of pollution swapping[J]. Physics & Chemistry of the Earth Parts A/B/C,2009,34(8/9):589-594.
[47]Kraus D,Weller S,Klatt S,et al.How well can we assess impacts of agricultural land management changes on the total greenhouse gas balance(CO2,CH4 and N2O) of tropical rice-cropping systems with a biogeochemical model?[J]. Agriculture,Ecosystems & Environment,2016,224:104-115.
[48]Weller S,Janz B,Jrg L,et al.Greenhouse gas emissions and global warming potential of traditional and diversified tropical rice rotation systems[J]. Global Change Biology,2016,22(1):432-448.
[49]Weller S,Kraus D,Ayag K R P,et al.Methane and nitrous oxide emissions from rice and maize production in diversified rice cropping systems[J]. Nutrient Cycling in Agroecosystems,2015,101(1):37-53.
[50]Zheng X H,Wang M X,Wang Y S,et al.Mitigation options for methane,nitrous oxide and nitric oxide emissions from agricultural ecosystems[J]. Advances in Atmospheric Sciences,2000,17(1):83-92.
[51]Hao Q K,Jiang C S,Chai X S,et al.Drainage,no-tillage and crop rotation decreases annual cumulative emissions of methane and nitrous oxide from a rice field in Southwest China[J]. Agriculture,Ecosystems & Environment,2016,233:270-281.
[52]Ma J,Ma E,Xu H,et al.Wheat straw management affects CH4 and N2O emissions from rice fields[J]. Soil Biology & Biochemistry,2009,41(5):1022-1028.
[53]Liu S W,Zhang L,Liu Q H,et al.Fe(Ⅲ) fertilization mitigating net global warming potential and greenhouse gas intensity in paddy rice-wheat rotation systems in China[J]. Environmental Pollution,2012,164:73-80.
[54]Yan M,Cheng K,Luo T,et al. Carbon footprint of grain crop production in China-based on farm survey data[J]. Journal of Cleaner Production,2015,104:130-138.
[55]Fan M S,Jiang R F,Liu X J,et al.Interactions between non-flooded mulching cultivation and varying nitrogen inputs in rice-wheat rotations[J]. Field Crops Research,2005,91(2/3):307-318.
[56]胡宁,袁红,蓝家程,等. 岩溶石漠化区不同植被恢复模式土壤无机磷形态特征及影响因素[J]. 生态学报,2014,34(24):7393-7402.
[57]Gupta R K,Singh Y S,Ladha J K,et al.Yield and phosphorus transformations in a rice-wheat system with crop residue and phosphorus management[J]. Soil Science Society of America Journal,2007,71(5):1500-1507.
[58]李小坤,鲁剑巍,吴礼树,等. 油菜—水稻轮作下根区与非根区红壤性水稻土钾素变化研究[J]. 土壤学报,2010,47(3):508-514.
[59]Wang S C,Zhao Y W,Wang J Z,et al.The efficiency of long-term straw return to sequester organic carbon in Northeast Chinas cropland[J]Journal of Integrative Agriculture,2018,17(2):436-448.
[60]Wang X H,Yang H S,Liu J,et al.Effects of ditch-buried straw return on soil organic carbon and rice yields in a rice-wheat rotation system[J]. Catena,2015,127:56-63.
[61]Zhu L,Hu N,Yang M,et al.Effects of different tillage and straw return on soil organic carbon in a rice-wheat rotation system[J]. PLoS One,2014,9(2):e88900.
[62]Yin H J,Zhao W Q,Li T,et al.Balancing straw returning and chemical fertilizers in China:role of straw nutrient resources[J]. Renewable & Sustainable Energy Reviews,2017,81(2):2695-2702.
[63]Meng F Q,Dungait J A J,Xu X L,et al. Coupled incorporation of maize(Zea mays L.) straw with nitrogen fertilizer increased soil organic carbon in Fluvic Cambisol[J]. Geoderma,2016,304:19-27.
[64]Kasteel R,Garnier P,Vachier P,et al.Dye tracer infiltration in the plough layer after straw incorporation[J]. Geoderma,2007,137(3/4):360-369.
[65]Zhang A,Bian R J,Pan G X,et al.Effects of biochar amendment on soil quality,crop yield and greenhouse gas emission in a Chinese rice paddy:a field study of 2 consecutive rice growing cycles[J]. Field Crops Research,2012,127:153-160.
[66]Woolf D,Amonette J E,Street-Perrott F A,et al.Sustainable biochar to mitigate global climate change[J]. Nature Communications,2010,1(5):56-65.
[67]Zheng H,Wang Z Y,Deng X,et al.Impacts of adding biochar on nitrogen retention and bioavailability in agricultural soil[J]. Geoderma,2013,206:32-39.
[68]Singh B P,Hatton B J,Balwant S,et al.Influence of biochar on nitrous oxide emission and nitrogen leaching from two contrasting soils[J]. Journal of Environmental Quality,2010,39(4):1224-1235.
[69]肖亚楠,杨士红,刘晓静,等. 生物炭施用对节水灌溉稻田甲烷排放的影响[J]. 节水灌溉,2017(10):52-55,60.
[70]裴俊敏,李金全,李兆磊,等. 生物质炭施加对水旱轮作农田土壤CO2排放及碳库的影响[J]. 亚热带资源与环境学报,2016,11(3):72-80.

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备注/Memo

备注/Memo:
收稿日期:2018-07-04
基金项目:国家重点研发计划(编号:2016YFD0300203-4)。
作者简介:刘益珍(1994—),女,四川达州人,硕士研究生,主要从事农业面源污染控制研究。E-mail:suxiangxue12345@163.com。
通信作者:姜振辉,博士研究生,主要从事水旱轮作生态效应研究。Tel:(0571)88982007;E-mail:jiangzh1990@126.com。
更新日期/Last Update: 2019-10-20