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1.
水氮处理对冬小麦生长、产量和水氮利用效率的影响   总被引:5,自引:0,他引:5  
采用完全随机裂区设计,研究不同灌水(0、900、1200、1500 m3·hm-2)和施氮(0、90、150、210、270 kg·hm-2)处理对田间冬小麦生长、产量和水氮利用效率的影响.结果表明:冬小麦籽粒产量、氮素吸收量、氮肥利用效率和氮肥生产效率均随灌水量的增加而增加;氮肥利用效率和生产效率均随施氮量的增加而降低;施氮量在0~150 kg·hm-2时,冬小麦籽粒产量、氮吸收量和氮收获指数随施氮量增加而增加,超过150 kg·hm-2时不再显著增加;随灌水量的增加,冬小麦耗水量和整体水分利用效率增加,降水和土壤供水量占耗水量的比例及灌溉水利用效率降低;随施氮量的增加,降水和灌水量占耗水量的比例降低,土壤供水占耗水量的比例增加,整体水分利用效率和灌溉水利用效率先增加后降低,且均在施氮150、210和270 kg·hm-2处理间无显著差异.综合考虑各因素,本试验条件下,生育期灌水1500 m3·hm-2、施氮150 kg·hm-2的处理为产量和效益兼优的最佳水氮组合.  相似文献   

2.
旱砂田补灌水氮互作对西瓜产量、品质及水氮利用的影响   总被引:2,自引:1,他引:1  
杜少平  马忠明  薛亮 《生态学杂志》2015,26(12):3715-3722
为了探明旱砂田西瓜在有限补灌条件下的最佳水氮耦合形式,采用完全随机裂区设计,研究不同补灌量(W: 0、35、70、105 m3·hm-2)和施氮量(N: 0、120、200 kg·hm-2)处理对旱砂田西瓜生长、产量、品质以及水氮利用率的影响.结果表明: 西瓜叶片的光合速率、水分利用效率、产量和氮肥利用率均随着补灌量的增加而增加;西瓜氮肥偏生产力和氮肥利用率均随施氮量的增加而降低;施氮量在0~120 kg·hm-2时,西瓜叶片的光合速率和品质指标随施氮量的增加而增加,超过120 kg·hm-2时不再显著增加,甚至有下降趋势;水氮耦合对西瓜产量和水氮利用效率的互作效应显著,其中灌水的增产效应大于氮肥,以W70N200和W105N120处理的西瓜产量最高,较对照分别增产42.4%和40.4%,水分利用效率随水氮组合水平的提高而增加,W70和W105水平下的所有施氮处理均在26 kg·m-3以上, W105N120处理的西瓜氮肥偏生产力和氮肥利用率最高.综合考虑各因素,在本试验条件下,砂田西瓜生育期补灌量105 m3·hm-2、施氮量120 kg·hm-2处理为产量和效益兼优的最佳水氮组合.  相似文献   

3.
水氮耦合对冬小麦氮肥吸收及土壤硝态氮残留淋溶的影响   总被引:22,自引:0,他引:22  
在高肥力条件下,大田试验采用裂区设计,主区为不同灌水频次(0~3次),裂区为不同施氮量(0~240 kg/hm2),结合15N微区示踪技术,研究了水氮耦合对冬小麦氮肥的吸收利用及生育后期土壤硝态氮累积迁移的影响.结果表明,在一定氮肥水平下,不灌水处理的氮肥利用率高于各灌水处理,各灌水处理的氮肥利用率随灌水次数增加呈上升趋势;增加灌水次数,氮肥耕层残留量和残留率显著降低,氮肥损失量和损失率则明显增加.在一定的灌溉水平上,随施氮量(0~240 kg/hm2)增加,植株总吸氮量、氮肥吸收量、氮肥耕层残留量、氮肥损失量以及损失率均呈上升趋势,而氮肥利用率和耕层残留率呈下降趋势.氮肥水平一定时,在灌0至灌2水范围内,籽粒产量随灌水次数增加呈上升趋势,灌3水处理中施氮处理(N168、N240)的籽粒产量较灌2水处理显著降低;灌水生产效率随灌水次数增加显著下降.在一定灌溉水平上,施氮量由168 kg/hm2增至240 kg/hm2,氮素收获指数和氮肥生产效率显著降低,各灌水处理的生物产量、籽粒产量和籽粒蛋白质含量均无显著变化,不灌水处理的生物产量、籽粒产量显著降低.灌水促进了施氮处理(N168,N240)中土壤硝态氮向下迁移,从开花到收获0~100 cm土层中部分硝态氮迁移到了100~200 cm土层.灌水次数是导致收获期0~100 cm土层残留NO-3-N累积量变化的主导因素;水氮互作效应是决定收获期100~200 cm土层残留NO-3-N累积量变化的主导因素,且灌水效应大于施氮效应.  相似文献   

4.
为了确定陕西关中小麦-玉米轮作区兼顾作物产量和环境效应的农田适宜氮肥用量,通过玉米-小麦-玉米连续3季田间试验研究了作物产量、氮肥利用效率、氮肥表观损失和土壤氮素平衡等对施氮量的响应。结果表明,随着氮肥用量的增加,不同年份作物产量和3季作物累计产量均表现为先增加后降低的趋势,而累计氮肥农学效率、氮肥表观利用率、氮肥吸收效率和氮肥偏生产力均表现为显著的降低趋势。土壤氮素平衡结果表明,随着施氮量的增加,低量施氮时(小麦施N150 kg/hm2,玉米施N180 kg/hm2),氮肥残留显著增加,表观损失和损失率变化不明显,而高量施氮时(小麦施N150 kg/hm2,玉米施N180 kg/hm2),氮肥残留变化不明显,表观损失和损失率却显著增加。回归和相关分析显示,矿质氮在土壤较深层次(100—200cm土层)大量累积是氮肥表观损失的重要途径之一。小麦施N 150 kg/hm2、玉米施N 180 kg/hm2时,作物即可获得相对较高的产量和氮肥利用率,且能保持作物收获前后土壤无机氮库的基本稳定,同时也可将氮肥表观损失降至较低水平。  相似文献   

5.
施氮量对夏季玉米产量及土壤水氮动态的影响   总被引:40,自引:0,他引:40  
在黄土高原南部旱地有大量氮素残留背景的田块上,研究了不同氮肥用量对夏玉米生长及对土壤水分、硝态氮、铵态氮累积及其剖面分布的影响。结果表明:适量施氮可以提高作物产量;过量施氮没有表现出增产效果,其氮肥利用率只有3.9%,残留率则高达87.2%。施氮240kghm^-2时,0~200cm土层土壤水分达到593mm,且可以下渗到200cm土层;不施氮和施氮120kghm^-2以小区土壤的蓄水量分别为561和553mm,可下渗到180cm。对矿质态氮而言,施氮量可以显著影响土壤中硝态氮的累积和分布,但对铵态氮的影响较小;施氮0,120,240kghm^-2时.收获期土壤硝态氮累积量分别为78,148,290kghm^-2,硝态氮的下移前沿分别到达60,60,140cm。可见,适量施氮会促进作物对土壤水氮的利用。提高作物生物量和产量;过量施氮导致硝态氮在土壤中大量累积,提高硝态氮随水分淋溶危险;但硝态氮向下层土壤的移动显著滞后于水分。  相似文献   

6.
郭丙玉  高慧  唐诚  刘涛  褚贵新 《生态学杂志》2015,26(12):3679-3686
优化水、氮供应是实现作物高产与水肥资源高效利用的有效途径.本文研究了田间试验条件下,水(4500、6750、9000 m3·hm-2)、氮(0、225、330、435、540 kg·hm-2)互作对高密度(≥105000 株·hm-2)滴灌玉米干物质积累、氮素吸收及产量的影响.结果表明: 玉米干物质积累与吸氮量均随灌溉和施氮水平的增加明显升高,当施氮量大于435 kg·hm-2和灌溉量大于9000 m3·hm-2时则呈减少趋势.完熟期玉米干物质积累对灌水的响应表现为W6750(36359 kg·hm-2)>W9000(35077 kg·hm-2)>W4500(33451 kg·hm-2),施氮对玉米吸氮量的变化表现为N435(459.9 kg·hm-2)>N540(458.1 kg·hm-2)>N330(416.3 kg·hm-2)>N225(351.3 kg·hm-2),N435比N330、N220分别升高9.1%、32.7%,N540比N435降低0.6%.在施氮量0~435 kg·hm-2范围内,玉米最大氮素吸收速率随施氮量增加而升高,在施氮量为435 kg·hm-2时达最大(6.57 kg·hm-2·d-1).灌水与施氮均可显著增加玉米产量、穗粒数和穗粒质量,二者有明显的正交互作用,且以氮为主效应.在施氮0~435 kg·hm-2范围内,氮肥利用率随施氮量的增加而升高,此后反而降低;灌溉水分生产率随施氮量升高而增加,随灌水量增加而明显下降,灌溉定额为4500~6750 m3·hm-2时,灌溉水分生产率可达2.57~3.80 kg·m-3.玉米最高产量18072 kg·hm-2的施氮量为567.0 kg·hm-2.最佳经济施氮量为427.9~467.7 kg N·hm-2时,玉米产量在17109~17138 kg·hm-2,氮素偏生产力和氮肥利用率分别达122 kg N·hm-2和45.0%.水氮一体化施肥可实现滴灌玉米高产协同水、氮利用效率的共同提高.  相似文献   

7.
水氮供应对夏棉产量、水氮利用及土壤硝态氮累积的影响   总被引:6,自引:0,他引:6  
通过田间试验,研究了黄淮地区水氮供应对夏棉生长、产量及水氮利用效率的影响,探索在保证产量的同时提高水氮利用效率、减少农田水氮排放的管理模式.试验设置5个氮素水平(0、60、120、180、240 kg·hm-2,分别记为N0、N1、N2、N3、N4)和3个灌水水平(滴灌,灌水定额30、22.5、15 mm,分别记为I1、I2、I3),使用裂区设计,主区为氮用量,裂区为灌水水平,共15个处理,3次重复.结果表明: 氮素和水分施用对夏棉生长和产量都有明显促进作用,但氮素影响更显著,是该地区调控夏棉生长和籽棉产量的主要因素.随着施氮量和灌水量的增加,花铃期生殖器官积累量、地上部干物质积累量和籽棉产量在开始阶段都逐步增加,当施氮量超过180 kg·hm-2时,进一步增施氮肥会导致生殖器官积累量、地上部干物质积累量和籽棉产量减小.籽棉产量在N3I1处理达到最大,为4016 kg·hm-2.增加施氮量能显著提高地上部总吸氮量和茎叶含氮量,但会降低氮肥偏生产力.灌溉水利用效率和田间水分利用效率分别在N3I3和N3I1处理最大,分别为5.40和1.24 kg·m-3.随着施氮量的增加,土壤硝态氮含量明显增加,且硝态氮累积区域有下移趋势.综合考虑对地上部干物质积累、产量、水氮吸收利用及土壤硝态氮累积等的影响,N3I1处理可作为试验区夏季棉花生产的最优水氮管理方案.  相似文献   

8.
限水灌溉冬小麦冠层氮分布与转运特征及其对供氮的响应   总被引:2,自引:0,他引:2  
以高产冬小麦品种周麦18为材料,在大田春灌1水条件下,设置不同供氮水平和氮肥运筹处理试验,研究并探讨了在华北地区限水灌溉条件下氮肥施用对冬小麦冠层叶片氮素时空分布与转运及氮肥利用的影响。结果表明,冬小麦适量施氮可显著增产,2008-2009年以施氮量180 kg/hm2时(N21)产量最高,为8749 kg/hm2;2009-2010年以施氮量270 kg/hm2时(N32)产量最高,但施氮量210 kg/hm2(N22)处理与N32处理产量无显著差异,分别为8340 kg/hm2和8558 kg/hm2。氮肥利用效率和氮肥偏生产力均随施氮量增加而降低;氮肥利用率与氮肥农学效率均随施氮量的增加呈先升后降的趋势,分别在N21和N22处理时最高。冠层叶片氮素含量和积累量随叶层层次自上而下降低而下降,垂直梯度分明,各时期冠层叶片氮素垂直梯度随施氮量的增加总体呈先增大后减小的趋势。冠层叶片氮素转运量、转运率和对籽粒的贡献率均呈现为:第1层>第2层>第3层>第4层。相关分析表明,冠层叶片氮素梯度与叶片氮素转运率呈显著正相关关系(R2=0.722*),与贡献率呈极显著正相关关系(R2=0.975**)。适量施氮(120-210 kg/hm2)增大了叶层间氮素垂直分布梯度,促进了氮素在植株内的运移分配,有利于叶片氮素向外转运,提高了叶片氮素转运量和对籽粒贡献率,保持了较高的氮素利用率。施氮过多(330 kg/hm2)减小了叶层间氮素垂直分布梯度,减弱了氮素在植株内的再利用,叶片氮素转运不畅,导致叶片氮素转运量和对籽粒贡献率下降,氮素利用率显著降低。连续两年试验结果显示,通过适量氮肥调控可以增大冠层叶片氮素垂直梯度,有利于叶片中的氮素输出,促进氮素的再分配、再利用,从而提高氮素利用率,并可获得较高的籽粒产量和蛋白质含量。  相似文献   

9.
旱地小麦施氮和地膜栽培的氮素效应与淋溶   总被引:6,自引:0,他引:6  
在陕西长武旱塬进行的试验表明,小麦施用氮肥增产显著。在小麦生育前期持续干旱条件下,地膜覆盖并没有使小麦表现出较好的增产效果。施用氮肥或氮肥与有机肥配施都可能引起NO3^-向深层淋溶,而且氮肥用量越大,淋溶量及深度愈大;施用有机肥NO3^-累积现象减弱。小麦对硝态氮主要吸收深度范围为0~80cm;不同施肥处理对土壤剖面NH4^ 的影响不大。施用氮肥会明显增加小麦吸氮量,但氮肥利用率随其用量增加而降低。试验条件下,低(施氮量为100kg/hm^2)、高(施氮量为150kg/hm^2)两种氮肥用量时的氮肥利用率分别为52%和27%,有机肥氮的利用率为12%。  相似文献   

10.
水氮互作对小麦土壤水分利用和茎中果聚糖含量的影响   总被引:4,自引:2,他引:2  
通过田间试验,以强筋小麦济麦20为材料,设置3个施氮水平:0 kg·hm-2(N0)、180 kg·hm-2(N1)、240 kg·hm-2(N2);4个灌水处理:不灌水(W0)、底墒水+拔节水+开花水(W1)、底墒水+冬水+拔节水+开花水(W2)、底墒水+冬水+拔节水+开花水+灌浆水(W3),每次灌水量为60 mm,研究水氮互作对土壤水分含量、旗叶光合速率、倒二茎中果聚糖含量及氮肥和水分利用效率的影响.结果表明:施氮水平为180 kg·hm-2处理的旗叶光合速率和倒二茎中果聚糖含量较高,籽粒产量、氮肥表观利用效率、氮肥农学利用率和水分利用效率最高;施氮水平为240 kg·hm-2处理的茎中果聚糖含量较高;不施氮(N0)或施氮过多(N2)均不利于小麦籽粒产量、氮肥和水分利用效率的提高.W1水分处理促进了倒二茎中果聚糖的积累和向籽粒的转运,有利于产量的提高.180 kg·hm-2施氮水平配合灌溉底墒水+拔节水+开花水的水氮交互处理(N1W1)具有较高的籽粒产量及较高的氮肥和水分利用效率,在此基础上增加施氮量或灌水量,小麦旗叶光合速率和倒二茎中果聚糖含量升高,籽粒产量无显著变化或降低,氮肥和水分利用效率降低.  相似文献   

11.
Nitrogen (N) loss from agricultural systems raises concerns about the potential impact of farming practices on environmental quality. N is a critical input to agricultural production. However, there is little understanding of the interactions among crop water use, N application rates, and soil types. This study was designed to quantify these interactions in corn ( Zea mays L.) grown in production-size fields in central Iowa on the Clarion-Nicollet-Webster soil association. Seasonal water use varied by soil type and N application rate. Yield varied with N application rate, with the highest average yield obtained at 100 kg ha(-1). N use efficiency (NUE) decreased with increasing N application rates, having values around 50%. Water use efficiency (WUE) decreased as N fertilizer rates increased. Analysis of plant growth patterns showed that in the low organic matter soils (lower water-holding capacities), potential yield was not achieved because of water deficits during the grain-filling period. Using precipitation data coupled with daily water use throughout the season, lower organic matter soils showed these soils began to drain earlier in the spring and continued to drain more water throughout the season. The low NUE in these soils together with increased drainage lead to greater N loss from these soils. Improved management decisions have shown that it is possible to couple water use patterns with N application to increase both WUE and NUE.  相似文献   

12.
Crop yield and water use efficiency (WUE) in a wheat-maize double cropping system are influenced by short and uneven rainfalls in the North China Plain (NCP), A 2-year experiment was conducted to investigate the effects of irrigation on soil water balance, crop yield and WUE to improve irrigation use efficiency in the cropping system, Soil water depletion (~SWS) by crop generally decreased with the increase of irrigation and rainfall, while ASWS for the whole rotation was relatively stable among these irrigation treatments, High irrigations in wheat season increased initial soil moisture and ASWS for subsequent maize especially in the drought season, Initial soil water influenced mainly by the irrigation and rainfall in the previous crop season, is essential to high yield in such cropping systems, Grain yield decreased prior to evapotranspiraUon (ET) when ET reached about 300mm for wheat, while maize showed various WUEs with similar seasonal ET, For whole rotation, WUE declined when ET exceeded about 650 mm, These results indicate great potential for improving irrigation use efficiency in such wheat-maize cropping system in the NCP, Based on the present results, reasonable irrigation schedules according to different annual rainfall conditions are presented for such a cropping system.  相似文献   

13.
以我国北方12个冬小麦(Triticum aestivum)品种(系)和美国德克萨斯州3个冬小麦品种(系)为供试材料, 在甘肃陇东黄土高原旱作和拔节期有限补灌条件下, 比较研究了不同基因型冬小麦之间产量、水分利用效率(WUE)和灌浆期旗叶稳定碳同位素比值(δ13C)的差异, 以及δ13C值与产量和WUE的关系。旨在通过分析δ13C值与产量和WUE的关系, 明确δ13C值在评价植物WUE方面的可靠性, 为抗旱节水品种的筛选提供理论依据。结果表明: 不论旱作还是有限补灌, 不同基因型冬小麦之间产量、WUE、旗叶δ13C值存在显著差异, 随着灌浆过程的进行, 旗叶δ13C值呈缓慢增大的趋势, 而且旗叶δ13C值旱作高于有限补灌。不论旱作还是补灌条件, 旗叶δ13C值在4个测定时期的平均值与籽粒产量、WUE呈显著正相关关系(R2= 0.527 3-0.691 3)。小麦拔节期补灌100 mm水分后, 不同基因型小麦表现出明显的水分超补偿效应。说明冬小麦灌浆期旗叶δ13C值在旱作条件下和在补灌条件下均可较好地评价WUE, 可将冬小麦灌浆期旗叶δ13C值作为筛选高效用水品种的参考指标之一。  相似文献   

14.
Alternate partial root-zone irrigation (APRI) is a new water-saving technique and may improve crop water use efficiency without much yield reduction. We investigated if the benefits of APRI on biomass accumulation, water and nitrogen use efficiencies could be modified by different soil fertilization and watering levels in pot-grown maize (Zea mays L. cv. super-sweet No 28, a local variety). Three irrigation methods, i.e. conventional irrigation (CI), alternate partial root-zone irrigation (APRI, alternate watering on both sides of the pot) and fixed partial root-zone irrigation (FPRI, fixed watering on one side of the pot), two watering levels, i.e. water deficit (W1, 45–55% of field capacity) and well-watered (W2, 70–80% of field capacity), and two N fertilization levels, i.e. no fertilization and fertilization, were designed. Results showed that APRI and FPRI methods led to more reduction in transpiration than in photosynthesis, and thus increased leaf water use efficiency (leaf WUE, i.e. the ratio of leaf net photosynthetic rate to transpiration rate). Compared to the CI treatment, APRI and FPRI increased leaf WUE by 7.7% and 8.1% before the jointing stage and 3.6% and 4.2% during the jointing stage, respectively. Under the fertilization and well-watered conditions, APRI treatment saved irrigation water by 38.4% and reduced shoot and total dry masses by 5.9% and 6.7%, respectively if compared to the CI treatment. APRI also enhanced canopy WUE (defined as the amount of total biomass per unit water used) and nitrogen (N) apparent recovery fraction (Nr, defined as the ratio of the increased N uptake to N applied) by 24.3% and 16.4%, respectively, indicating that effect of APRI can be better materialized under appropriate fertilization and water supply. Responsible Editor: Rana E. Munns  相似文献   

15.
At a global scale, cereal yields and fertilizer N consumption have increased in a near-linear fashion during the past 40 years and are highly correlated with one another. However,large differences exist in historical trends of N fertilizer usage and nitrogen use efficiency (NUE)among regions, countries, and crops. The reasons for these differences must be understood to estimate future N fertilizer requirements. Global nitrogen needs will depend on: (i) changes in cropped cereal area and the associated yield increases required to meet increasing cereal demand from population and income growth, and (ii) changes in NUE at the farm level. Our analysis indicates that the anticipated 38% increase in global cereal demand by 2025 can be met by a 30% increase in N use on cereals, provided that the steady decline in cereal harvest area is halted and the yield response to applied N can be increased by 20%. If losses of cereal cropping area continue at the rate of the past 20 years (-0.33% per year) and NUE cannot be increased substantially, a 60% increase in global N use on cereals would be required to meet cereal demand. Interventions to increase NUE and reduce N losses to the environment must be accomplished at the farm- or field-scale through a combination of improved technologies and carefully crafted local policies that contribute to the adoption of improved N management; uniform regional or national directives are unlikey to be effective at both sustaining yield increases and improving NUE. Examples from several countries show that increases in NUE at rates of 1% per year or more can be achieved if adequate investments are made in research and extension. Failure to arrest the decrease in cereal crop area and to improve NUE in the world's most important agricultural systems will likely cause severe damage to environmental services at local, regional, and global scales due to a large increase in reactive N load in the environment.  相似文献   

16.
At a global scale, cereal yields and fertilizer N consumption have increased in a near-linear fashion during the past 40 years and are highly correlated with one another. However, large differences exist in historical trends of N fertilizer usage and nitrogen use efficiency (NUE) among regions, countries, and crops. The reasons for these differences must be understood to estimate future N fertilizer requirements. Global nitrogen needs will depend on: (i) changes in cropped cereal area and the associated yield increases required to meet increasing cereal demand from population and income growth, and (ii) changes in NUE at the farm level. Our analysis indicates that the anticipated 38% increase in global cereal demand by 2025 can be met by a 30% increase in N use on cereals, provided that the steady decline in cereal harvest area is halted and the yield response to applied N can be increased by 20%. If losses of cereal cropping area continue at the rate of the past 20 years (-0.33% per year) and NUE cannot be increased substantially, a 60% increase in global N use on cereals would be required to meet cereal demand. Interventions to increase NUE and reduce N losses to the environment must be accomplished at the farm- or field-scale through a combination of improved technologies and carefully crafted local policies that contribute to the adoption of improved N management; uniform regional or national directives are unlikey to be effective at both sustaining yield increases and improving NUE. Examples from several countries show that increases in NUE at rates of 1% per year or more can be achieved if adequate investments are made in research and extension. Failure to arrest the decrease in cereal crop area and to improve NUE in the world's most important agricultural systems will likely cause severe damage to environmental services at local, regional, and global scales due to a large increase in reactive N load in the environment.  相似文献   

17.
姬强  孙汉印  Taraqqi AK  王旭东   《生态学杂志》2014,25(4):1029-1035
在连续8年田间定位试验的基础上,分析了关中平原冬小麦 夏玉米复种连作系统2008—2009年连续两个生长季期间不同耕作措施(结合秸秆还田和不还田)对土壤有机碳和水分利用率的影响.结果表明: 相对于传统耕作,保护性耕作有利于土壤有机碳、水分利用效率和作物产量的提高,其中在“深松+秸秆还田”耕作模式下的增幅最高,土壤有机碳含量在0~30 cm土层增幅达到19.5%,水分利用效率和作物产量提高了16.9%和20.5%,而免耕模式则有效提高了0~10 cm土层有机碳含量.在该地区土壤和气候条件下,深松结合秸秆粉碎还田是最理想的耕作模式,最有利于土壤有机碳累积,并提高水分利用效率和作物产量.  相似文献   

18.
Soil moisture and nitrogen (N) are two of the most important factors affecting the production of medicinal plants. So, the management strategy of these factors is critical and to be identified. In order to study the application of zeolite (Z) (0 and 10 ton ha?1) in S. officinalis culture medium under different irrigation regimes (30 % depletion of available soil water (ASW)) and 60 % depletion of ASW) and N (0, 75 and 150 kg N ha?1) a split-factorial experiment was carried out with three replicates in 2018. The highest fresh and dry weight were achieved at irrigation after 30 % depletion of ASW while using 150 kg N ha?1 and 10 ton Z ha?1. Maximum water use efficiency (WUE) (22.10 g.L-1) was obtained after 60 % depletion of ASW and 150 kg N ha?1 and 10 ton Z ha?1. Besides, the maximum nitrogen use efficiency (NUE) was obtained after 60 % depletion of ASW and 75 kg N ha?1 and 10 ton Z ha?1 (14.25 kg.kg-1N). Maximum essential oil (EO) content (1.06%) and cis-Thujone were obtained from plants subjected to 60 % depletion of ASW and, application of 75 kg N ha?1 and 10 ton Z ha?1. Applying Z with N, in different irrigation regimes did improve soil conditions for achieving higher, WUE and NUE, increased the EO content and yield while decreasing the negative effects from water-deficit stress and has provided a direction towards a stable system.  相似文献   

19.
为比较不同苜蓿品种的水分利用效率(WUE)并筛选出节水品种,在宁夏中部半干旱地区选择试验地,采用灌溉和品种2因素裂区试验,主裂区为灌溉量,副裂区为苜蓿品种。对3种灌溉量下10个苜蓿品种(包括5个国外引进品种和5个国内育成品种)的产量、水分利用效率以及农艺性状进行研究。结果表明,水分处理、刈割茬次、品种对苜蓿产量、水分利用效率、株高、茎叶比有显著影响。2012年第1茬各苜蓿品种产量最高,其次为2012年第2茬,2012年第3茬最低;2011年产量略高于2012年第3茬产量。在控水条件下,固原紫花和宁苜1号水分利用效率较高,而CW400和柏拉图在充分灌水条件下水分利用效率较高。在3种灌溉量下,中苜1号和宁苜1号的耗水量较低,属于节水品种,三得利和宁苜2号耗水量较高,属于耗水品种。因此,中苜1号和宁苜1号可以作为节水抗旱品种,用于宁夏中部干旱带苜蓿人工草地的建植。  相似文献   

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