[1]杨海云,艾雪莹,Maria B,等. 油菜响应水分胁迫的生理机制及栽培调控措施研究进展[J]. 华中农业大学学报,2021,40(2):6-16.
[2]范成明,田建华,胡赞民,等. 油菜育种行业创新动态与发展趋势[J]. 植物遗传资源学报,2018,19(3):447-454.
[3]王汉中. 我国油菜产需形势分析及产业发展对策[J]. 中国油料作物学报,2007,29(1):101-105.
[4]陈晓艺,岳伟,王晓东. 安徽省油菜主要发育期预报业务化模型研究[J]. 中国农学通报,2012,28(3):75-80.
[5]刘凯文,苏荣瑞,潘建成,等. 春季湿渍害对油菜产量结构的影响与减产效应[J]. 江苏农业科学,2018,46(5):63-66.
[6]丁玎,周浩,周凌云,等. 桑植县茶产业现状及发展对策[J]. 茶叶通讯,2017,44(3):58-61.
[7]徐明月. 甘蓝型油菜发芽期耐渍相关基因的筛选[D]. 北京:中国农业科学院,2014:1-3.
[8]Food and Agriculture Organization of the United Nations. FAO statistical databases in 2023[DB/OL]. (2023-04-25)[2023-06-01]. http://www.fao.org.
[9]朱建强,乔文军,黄智敏. 江汉平原农业水土环境利用与保护[J]. 长江大学学报(自科版),2005,2(11):1-4.
[10]张兴. 洞庭湖区低洼稻田避灾种植模式筛选及其关键技术研究[D]. 长沙:湖南农业大学,2014:1-18.
[11]Huong H T L,Pathirana A. Urbanization and climate change impacts on future urban flooding in Can Tho city,Vietnam[J]. Hydrology and Earth System Sciences,2013,17(1):379-394.
[12]刘章勇. 江汉平原涝渍地生态恢复与开发利用技术研究[D]. 北京:中国农业大学,2004:1-13.
[13]胡承伟. 甘蓝型油菜不同时期的耐渍性评价和连锁图谱的构建[D]. 北京:中国农业科学院,2013:1-2.
[14]Langevin C D,Zygnerski M. Effect of sea-level rise on salt water intrusion near a coastal well field in southeastern Florida[J]. Ground Water,2013,51(5):781-803.
[15]郭一鸣,王同华,刘新红,等. 甘蓝型油菜亲本和杂交种苗期渍害胁迫与产量因子的相关性分析[J]. 湖南农业科学,2020(7):9-12.
[16]袁小康. 湖南省油菜开花结荚期湿渍害指标研究[J]. 广东农业科学,2021,48(6):1-6.
[17]刘瑞娜,杨太明,王晓东,等. 近50年安徽省油菜涝渍灾害时空变化分析[J]. 农学学报,2016,6(1):110-116.
[18]马海清,刘清云,高立兵,等. 油菜初花期淹水胁迫对产量及构成因子的影响[J]. 中国农业文摘-农业工程,2020,32(6):77-80.
[19]王彬. 不同涝渍条件几种种植制度综合效益比较[D]. 荆州:长江大学,2014:13-30.
[20]谢幽兰. 湖北省油菜花角期渍害指标及时空分布规律研究[D]. 武汉:华中农业大学,2018:4-10.
[21]俄有浩,马玉平. 农田涝渍灾害研究进展[J]. 自然灾害学报,2022,31(4):12-30.
[22]葛均筑,展茗,赵明,等. 渍涝胁迫对玉米生理生化的影响研究进展[J]. 中国农学通报,2012,28(21):7-11.
[23]张岁岐,周小平,慕自新,等. 不同灌溉制度对玉米根系生长及水分利用效率的影响[J]. 农业工程学报,2009,25(10):1-6.
[24]何激光. 渍害对油菜生理特性及农艺性状的影响[D]. 长沙:湖南农业大学,2011:1-3.
[25]任佰朝,张吉旺,李霞,等. 大田淹水对高产夏玉米抗倒伏性能的影响[J]. 中国农业科学,2013,46(12):2440-2448.
[26]宗梅,穆丹,范志强. 渍害胁迫及其恢复对油菜幼苗叶片PSⅡ光化学特性的影响[J]. 嘉应学院学报,2012,30(11):60-65.
[27]何激光,官春云. 油菜耐渍的生理研究[J]. 作物研究,2009,23(5):323-327.
[28]王慜,刘登望,曾红远,等. 作物涝害及耐性机理研究进展[J]. 作物研究,2013,27(3):284-287.
[29]邓艳. 旱涝急转对双季超级杂交稻产量形成及其生理特性的影响[D]. 南昌:江西农业大学,2015:1-5,33-35.
[30]赵婷,李琴,潘学军,等. 陆生植物对淹水胁迫的适应机制[J]. 植物生理学报,2021,57(11):2091-2103.
[31]李文静,朱进,彭玉全,等. 淹水胁迫对油麦菜生长、生理和解剖结构的影响[J]. 植物生理学报,2020,56(10):2233-2240.
[32]王琼,张春雷,李光明,等. 渍水胁迫对油菜根系形态与生理活性的影响[J]. 中国油料作物学报,2012,34(2):157-162.
[33]Yu C B,Xie Y Y,Hou J J,et al. Response of nitrate metabolism in seedlings of oilseed rape (Brassica napus L.) to low oxygen stress[J]. Journal of Integrative Agriculture,2014,13(11):2416-2423.
[34]张晓平,薛召东,郝冬梅,等. 亚麻耐渍的生理机制研究初探[J]. 中国麻业科学,2007,29(3):169-172.
[35]Gu C M,Zhang S J,Han P P,et al. Soil enzyme activity in soils subjected to flooding and the effect on nitrogen and phosphorus uptake by oilseed rape[J]. Frontiers in Plant Science,2019,10:368.
[36]Grattan S R,Grieve C M. Mineral element acquisition and growth response of plants grown in saline environments[J]. Agriculture,Ecosystems & Environment,1992,38(4):275-300.
[37]康云艳. 外源24-表油菜素内酯对低氧胁迫下黄瓜幼苗活性氧及碳代谢的影响[D]. 南京:南京农业大学,2008:7-9.
[38]禹桃兵,石琪晗,年海,等. 涝害对不同大豆品种根际微生物群落结构特征的影响[J]. 作物学报,2021,47(9):1690-1702.
[39]Li Z X,Waadt R,Schroeder J I. Release of GTP exchange factor mediated down-regulation of abscisic acid signal transduction through ABA-induced rapid degradation of RopGEFs[J]. PLoS Biology,2016,14(5):e1002461.
[40]Zhao M K,Li Q L,Chen Z H,et al. Regulatory mechanism of ABA and ABI3 on vegetative development in the moss Physcomitrella patens[J]. International Journal of Molecular Sciences,2018,19(9):2728.
[41]Fujii H,Chinnusamy V,Rodrigues A,et al. In vitro reconstitution of an abscisic acid signalling pathway[J]. Nature,2009,462:660-664.
[42]Umezawa T,Sugiyama N,Mizoguchi M,et al. Type 2C protein phosphatases directly regulate abscisic acid-activated protein kinases in Arabidopsis[J]. Proceedings of the National Academy of Sciences of the United States of America,2009,106(41):17588-17593.
[43]Huang Y,Guo Y M,Liu Y T,et al. 9- cis-epoxycarotenoid dioxygenase 3 regulates plant growth and enhances multi-abiotic stress tolerance in rice[J]. Frontiers in Plant Science,2018,9:162.
[44]Kashyap A S,Manzar N,Nebapure S M,et al. Unraveling microbial volatile elicitors using a transparent methodology for induction of systemic resistance and regulation of antioxidant genes at expression levels in chili against bacterial wilt disease[J]. Antioxidants,2022,11(2):404.
[45]Guo Z H,Hua H,Xu J,et al. Cloning and functional analysis of lignin biosynthesis genes Cf4CL and CfCCoAOMT in Cryptomeria fortunei[J]. Genes,2019,10(8):619.
[46]Lee Y,Rubio M C,Alassimone J,et al. A mechanism for localized lignin deposition in the endodermis[J]. Cell,2013,153(2):402-412.
[47]许晶,曾柳,徐明月,等. 油菜耐渍性种质资源筛选与评价[J]. 中国油料作物学报,2014,36(6):748-754.
[48]雷利琴,李小芳,李倩,等. 冬油菜渍害发生特点与防治措施浅析[J]. 南方农业,2020,14(6):15,17.
[49]苏玉龙. 灾年油菜夺丰收的技术经验[J]. 中国油料,1988,10(3):78-79.
[50]Parwada C,van Tol J. Effects of litter quality on macroaggregates reformation and soil stability in different soil horizons[J]. Environment,Development and Sustainability,2019,21(3):1321-1339.
[51]敖礼林,宋孝才. 油菜的湿(渍)害及综合防控[J]. 科学种养,2017(1):18-19.
[52]王琼. 几种植物生长调节剂对油菜渍害的缓解作用及机理研究[D]. 北京:中国农业科学院,2012:29-34.
[53]秦巧燕,朱建强,贾陈忠,等. 脱落酸对花荚期油菜渍害的修复效应[J]. 江苏农业科学,2018,46(9):73-76.
[54]杨亚珍,董社琴,王运生,等. 不同生育期追施印度梨形孢菌对油菜渍害预防效果的影响[J]. 湖北农业科学,2015,54(4):790-794.
[55]王晓东,岳伟,陈金华,等. 安徽沿江江南地区渍害胁迫条件下油菜AquaCrop模型验证[J]. 灌溉排水学报,2020,39(12):103-110.
[56]曹宏鑫,杨太明,蒋跃林,等. 花期渍害胁迫下冬油菜生长及产量模拟研究[J]. 中国农业科技导报,2015,17(1):137-145.
[57]尤慧,刘凯文,李鑫川,等. 渍害胁迫对油菜叶片光谱的影响及识别指标研究[J]. 江苏农业科学,2019,47(16):71-77.
[1]陈嘉烨,周力.长江流域养殖业气象指数保险的购买意愿分析[J].江苏农业科学,2014,42(10):430.
Chen Jiaye,et al.Livestock farmers purchase intention for weather index insurance in Yangtze River Basin[J].Jiangsu Agricultural Sciences,2014,42(10):430.
[2]严燕,孙子杰,李震宇,等.农村生态保护中的肥料减施问题与落实——以太湖流域磷肥减施工作为例[J].江苏农业科学,2021,49(13):207.
Yan Yan,et al.Fertilizer reduction in rural ecological protection and its implementation—Taking construction of phosphate fertilizer reduction in Taihu Lake Basin as an example[J].Jiangsu Agricultural Sciences,2021,49(10):207.