作物学报 ›› 2015, Vol. 41 ›› Issue (01): 80-88.doi: 10.3724/SP.J.1006.2015.00080
邹芳刚1,2,张国伟1,王友华1,赵文青1,周治国1,*
ZOU Fang-Gang1,2,ZHANG Guo-Wei1,WANG You-Hua1,ZHAO Wen-Qing1,ZHOU Zhi-Guo1,*
摘要:
以长江流域大面积种植的转基因棉湘杂棉8号为材料,在江苏省大丰市稻麦原种场(33.2°N,120.5°E)滨海改良盐土上研究施氮量(0、150、300、375、450、600 kg N hm–2)对棉株钾素吸收、利用和分配的影响。结果表明,增施氮肥提高不同生育阶段棉株钾的吸收量,以盛花到见絮期的钾积累增量最大,并改变生育期间的钾吸收比例,使出苗到盛花期的钾吸收比例降低,盛花到吐絮期的钾吸收比例升高;同时,增加施氮还降低生育后期中上部果枝钾浓度的下降速率,但对下部果枝影响较小。随施氮量增加,各部位果枝氮对钾吸收的边际效应(每增施1 kg氮促进钾的吸收量)呈先升高后降低趋势,且果枝部位越高,基于最大边际效应的施氮量越高。在300~375 kg hm–2施氮量范围内,干物质和钾在经济器官中的分配比例提高,钾浓度和钾累积量动态特征参数比较协调,中部和上部果枝氮素对钾吸收的边际效应和钾的皮棉生产效率较高,利于高产形成。高于375 kg hm–2的施氮量导致皮棉产量增幅下降,氮素对钾吸收的边际效应和钾的皮棉生产效率较低;低于375 kg hm–2的施氮量降低干物质和钾经济系数,不利于高产形成。
| [1]黄增荣, 隆小华, 李洪燕, 辛本荣, 李青, 刘玲, 刘兆普. 江苏北部滨海盐土盐肥耦合对菊芋生长和产量的影响. 土壤学报, 2010, 47: 709–714Huang Z R, Long X H, Li H Y, Xin B R, Li Q, Liu L, Liu Z P. Coupling effect of salt and fertilizer application on Helianthus tuberosus in soils of North Jiangsu coastal mudflat different in salt concentration. Acta Pedol Sin, 2010, 47: 709–714 (in Chinese with English abstract)[2]Zhang F S, Niu J F, Zhang W F, Chen X P, Li C J, Yuan L X, Xie J C. Potassium nutrition of crops under varied regimes of nitrogen supply. Plant Soil, 2010, 335: 21–34[3]陈波浪, 吴海华, 曹公利, 郝丽娜, 盛建东. 不同肥力水平下立架栽培甜瓜干物质累积和氮、磷、钾养分吸收特性. 植物营养与肥料学报, 2013, 19: 142–149Chen B L, Wu H H, Cao G L, Hao L N, Sheng J D. Characteristics of dry matter accumulation and N,P and K assimilations of trellis–cultivated melon under different fertility rates. Plant Nutr Fert Sci, 2013, 19: 142–149 (in Chinese with English abstract)[4]Jin S H, Huang J Q, Li X Q, Zheng B S, Wu J S, Wang Z J, Liu G H, Chen M. Effects of potassium supply on limitations of photosynthesis by mesophyll diffusion conductance in Caryacathayensis. Tree Physiol, 2011, 31: 1142–1151[5]Zhao D L, Oosterhuis D M, Bednarz C W. Influence of potassium deficiency on photosynthesis, chorophyll content, and chloroplast ultrastructure of cotton plant. Photosynthetica, 2001, 39: 103–109[6]王旭东, 于振文, 王东. 钾对小麦旗叶蔗糖和籽粒淀粉积累的影响. 植物生态学报, 2003, 27: 196–201Wang X D, Yu Z W, Wang D. Effect of potassium on sucrose content of flag leaves and starch accumulation of kernels in wheat. Acta Phytoecol Sin, 2003, 27: 196–201 (in Chinese with English abstract) [7]Pettigrew W T. Potassium deficiency increase specific leaf weight and leaf glucose levels of field–grown cotton. Agron J, 1999, 91: 962–968[8]Yang G Z, Tang H Y, Nie Y C, Zhang X L. Responses of cotton growth, yield, and biomass to nitrogen split application ratio. Eur J Agron, 2011, 35: 164–170[9]Wiedenfeld B, Wallace B W, Hons F. Foliar application of urea and triazone nitrogen to cotton. J Plant Nutr, 2009, 32: 274–286[10]娄善伟, 高云光, 郭松仁, 赵强, 张巨松. 不同栽培密度对棉花植株养分特征及产量的影响. 植物营养与肥料学报, 2010, 16: 953–958Lou S W, Gao Y G, Guo R S, Zhao Q, Zhang J S. Effects of planting density on nutrition characteristics and yield of cotton, Plant Nutr Fert Sci, 2010, 16: 953–958 (in Chinese with English abstract) [11]Dong H Z, Kong W, li W, Tang W, Zhang D M. Effects of plant density and nitrogen and potassium fertilization on cotton yield and uptake of major nutrients in two field with varying fertility. Field Crops Res, 2010, 119:106–113[12]Zheng Y H, Wang Z L, Sun X Z, Jia A J, Jiang G M, Li Z J. Higher salinity tolerance cultivars of winter wheat relieved senescence at reproductive stage. Environ Exp Bot, 2008, 62: 129–138[13]李伶俐, 房卫平, 谢德意, 马宗斌, 杜远仿, 张东林. 施氮量对杂交棉干物质积累、分配和氮磷钾吸收、分配与利用的影响. 棉花学报, 2010, 22: 347–353LI L L, Fang W P, Xie D Y, Ma Z B, Du Y F, Zhang D L. Effects of nitrogen application rate on dry matter accumulation and N, P, K uptake and distribution in different organs and utilization of hybrid cotton under high–yield cultivated condition. Cotton Sci, 2010, 22: 347–353 (in Chinese with English abstract) [14]徐娇, 孟亚利, 睢宁, 宋为超, 周治国. 种植密度对转基因棉氮、磷、钾吸收和利用的影响. 植物营养和肥料学报, 2013, 19: 174–181Xu J, Meng Y L, Sui N, Song W C, Zhou Z G. Effects of planting density on uptake and utilization of N, P and K of transgenic cotton. Plant Nutr Fert Sci, 2013, 19: 174–181 (in Chinese with English abstract) [15]薛晓萍, 王建国, 郭文琦, 陈兵林, 尤军, 周治国. 氮素水平对初花后棉株生物量、氮素累积特征及氮素利率动态变化的影响. 生态学报, 2006, 26: 3631–3640Xue X P, Wang J G, Guo W Q, Chen B L, You J, Zhou Z G. Effect of nitrogen applied levels on the dynamics of biomass, nitrogen accumulation and nitrogen fertilization recovery rate of cotton after initial flowering. Acta Ecol Sin, 2006, 26: 3631–3640 (in Chinese with English abstract) [16]薛晓萍, 陈兵林, 郭文琦, 周治国, 张丽娟, 王以琳. 棉花临界需氮量动态定量模型. 应用生态学报, 2006, 17: 2363–2370Xue X P, Chen B L, Guo W Q, Zhou Z G, Zhang L J, Wang Y L. Dynamic quantitative model of critical nitrogen demand of cotton. Chin J Appl Ecol, 2006, 17: 2363–2370 (in Chinese with English abstract) [17]鲁雪林, 王秀萍, 张国新, 刘雅辉. 施氮对滨海盐碱地棉花生长发育及产量的影响. 安徽农业科学, 2012, 40: 12408–12409Lu X L, Wang X P, Zhang G X, Liu Y H. Study on the effects of different nitrogen amount on the growth and development and yield of cotton (Gossypium hirsutum L.) in saline fields. J Anhui Agric Sci, 2012, 40:12408–12409 (in Chinese with English abstract)[18]刘连涛, 李村东, 孙红春, 路文静, 冯丽肖. 氮素营养水平对棉花不同部位叶片衰老的生理效应. 植物营养与肥料学报, 2007, 13: 910–914Liu L T, Li C D, Sun H C, Lu W J, Feng L X. Physiological effects of nitrogen nutrition on the senescence of cotton leaves at different positions. Plant Nutr Fert Sci, 2007, 13: 910–914 (in Chinese with English abstract) [19]杨志彬, 陈兵林, 周治国. 施氮量对花铃期棉花果枝生物量累积时空变异特征的影响. 应用生态学报, 2008, 19: 2215–2220Yang Z B, Chen B L, Zhou Z G. Effects of nitrogen application rate on spatiotemporal variability of biomass accumulation of cotton’s fruiting branch at flower and boll stage. Chin J Appl Ecol, 2008, 19: 2215–2220 (in Chinese with English abstract) [20]Bednarz C W, Oosterhuis D M, Evans R D. Leaf photosynthesis and carbon isotope discrimination of cotton in response to potassium deficiency. Environ Exp Bot, 1998, 39: 131–139[21]夏颖, 姜存仓, 陈防, 陈防, 鲁剑巍, 李小坤, 郝艳淑. 棉花钾营养与钾肥施用的研究进展. 华中农业大学学报, 2010, 29: 658–663Xia Y, Jiang C C, Chen F, Lu J W, Li X K, Hao Y S. Review on potassium nutrient and potassium fertilizer application of cotton. J Huazhong Agric Univ, 2010, 29: 658–663 (in Chinese with English abstract) [22]Szczerba M W, Britto D T, Kronzucker H J. K+ transport in plants: physiology and molecular biology. J Plant Physiol, 2009, 166: 447–466 |
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