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1.
施氮量对稻麦干物质转运与氮肥利用的影响   总被引:18,自引:0,他引:18  
为探讨太湖地区稻麦轮作农田适宜施氮量及氮素对干物质转运与氮肥利用的影响,于2007—2009年间在中国科学院常熟农业生态实验站建立田间定位试验。设置4个氮肥处理水平,分别用N0、N1、N2和N3表示。水稻各处理的施氮量分别为0、125、225和325kghm-2;小麦相应处理施氮量分别为0、94、169和244kghm-2(为稻季相应处理施氮量的75%)。结果表明,水稻施氮量超过225kghm-2,小麦施氮量超过169kghm-2后,产量增加不显著。水稻、小麦开花期干物质积累量均随施氮量的增加而增加,但花前营养器官干物质转运对籽粒贡献率均随氮肥用量增加而降低;氮肥农学效率与氮肥生理效率均随氮肥用量增加而降低,且N2与N3处理之间差异不显著;边际产量均随施氮量增加而下降,N3处理边际效益水稻平均低于3.1kgkg-1,小麦平均低于2.4kgkg-1。综上所述,无论水稻还是小麦,N2处理既能保证较高物质转运率,又能保证较高的氮肥利用效率与经济效益。  相似文献   

2.
氮肥用量及钾肥施用对稻麦周年产量及效益的影响   总被引:9,自引:0,他引:9  
为探明优化施氮量与高施氮量下不同钾肥施用处理对稻麦周年产量及效益的影响。本试验于2010年5月–2011年7月在江苏省如皋市农业科学研究所试验基地的田间稻麦轮作条件下,对常规粳稻品种镇稻11和春性中筋品种扬麦16设置了两个氮肥用量下不同钾肥用量及施用方法处理,测定稻麦周年的产量和组成因子,成熟期不同器官的氮、钾浓度和累积量,氮、钾利用效率及经济效益。试验结果表明,钾肥的施用显著提高了周年稻麦的产量,同时提高了稻麦的有效穗数、穗粒数和结实率,钾肥的利用效率和经济效益。稻麦周年钾肥(K2O)的偏生产力(PFP)、农学效率(AE)、回收利用率(RE)和经济效益均以周年钾肥(K2O)土壤施用150 kg hm-2 + 叶面喷施16.2 kg hm-2 (KS150 + KF16.2)处理最高。氮肥用量的结果表明,相对于优化施氮量,高施氮量有利于提高水稻的氮素营养而增产,但对稻麦周年产量的影响不显著,且优化施氮量的氮肥利用效率及经济效益均高于高施氮量。因此,综合考虑土壤环境因素、经济效益和肥料资源管理,本地区最佳氮肥(N)用量为水稻200 kg hm-2,小麦180 kg hm-2;最佳钾肥(K2O)用量及方法为水稻土壤施用90 kg hm-2 + 叶面喷施9.7 kg hm-2 (KS90 + KF9.7),小麦土壤施用60 kg hm-2 + 叶面喷施6.5 kg hm-2 (KS60 + KF6.5)。  相似文献   

3.
氮磷钾对红花草固氮根瘤菌生长及种植后土壤肥力的影响   总被引:2,自引:0,他引:2  
为了发展有机水稻,以红花草-有机水稻轮作培肥水田土壤肥力,研究氮、磷、钾对红花草固氮根瘤菌生长及种植后土壤肥力的影响,为红花草的合理种植、培肥地力提供依据。2012—2013 2年稻后茬种植红花草,过冬前分别单独施用不同用量的氮肥、磷肥、钾肥,以不施肥为对照,探讨不同肥料不同用量对红花草产草量、固氮根瘤菌数量、固氮根瘤菌重量的影响及种植后的土壤肥力变化状况。研究结果表明:红花草前期补施氮、磷、钾,氮素对红花草的影响较大,在施氮75 kg/hm2(N 46%)时,产草量最高,固氮根瘤菌数量最多,固氮根瘤菌重量大;种植后土壤全氮变化表现为不同施氮量增幅随肥料用量增加而增加,施磷、施钾各处理增幅随肥料用量增加而先降后升;土壤速效磷变化为施氮、施磷各处理增幅随肥料用量增加而增加,施钾各处理增幅趋势表现不明显;土壤速效钾变化表现为施氮、施磷各处理增幅变化趋势是随肥料用量增加先升后降,在施氮150 kg/hm2(N 46%)、施磷300 kg/hm2(P2O5 12%)时,土壤速效钾增幅达最大;土壤有机质变化表现为增幅随肥料用量增加而增加。所以,种植红花草,前期适当补施氮、磷、钾,可以提高红花草产草量,有效提高土壤肥力。  相似文献   

4.
公顷产10000kg小麦氮素和干物质积累与分配特性   总被引:17,自引:0,他引:17  
以泰山23和济麦22为试验品种,通过连续2年的田间试验,对单产高达10 000 kg hm-2的小麦进行了施氮量和氮素吸收转运和分配特性的研究。在2006-2007年生长季,随着施氮量的增加,小麦籽粒产量先增加后降低,施纯氮240 kg hm-2 (N240)和270 kg hm-2(N270)处理的产量分别达9 954.73 kg hm-2和10 647.02 kg hm-2,比不施氮肥处理(N0)分别增加11.20%和18.93%。与N0处理相比,施氮处理显著增加了小麦植株氮素积累量、籽粒氮素积累量和开花后营养器官氮素向籽粒的转运量;随着施氮量的增加,成熟期小麦植株氮素积累量呈先增后降趋势,以N270处理最高;开花后营养器官氮素向小麦籽粒转运量和转运率先升后降,转运量以N270处理最大,为213.78 kg hm-2;而转运率以N240处理最高,为67.98%。随施氮量的增加,小麦成熟期各器官干物质积累量、花后营养器官干物质再分配量和再分配率先增后降,均以N270处理最高;开花后干物质积累对籽粒的贡献率亦呈先增后降的趋势,以N240处理最高。2005-2006年的试验结果呈相同变化趋势。在本试验条件下,小麦产量水平达10 000 kg hm-2时的适宜施氮量为240~270 kg hm-2,可供生产中参考。  相似文献   

5.
公顷产10000kg小麦氮素和干物质积累与分配特性   总被引:4,自引:0,他引:4  
以泰山23和济麦22为试验品种,通过连续2年的田间试验,对单产高达10 000 kg hm-2的小麦进行了施氮量和氮素吸收转运和分配特性的研究。在2006—2007年生长季,随着施氮量的增加,小麦籽粒产量先增加后降低,施纯氮240 kg hm-2 (N240)和270 kg hm-2(N270)处理的产量分别达9 954.73 kg hm-2和10 647.02 kg hm-2,比不施氮肥处理(N0)分别增加11.20%和18.93%。与N0处理相比,施氮处理显著增加了小麦植株氮素积累量、籽粒氮素积累量和开花后营养器官氮素向籽粒的转运量;随着施氮量的增加,成熟期小麦植株氮素积累量呈先增后降趋势,以N270处理最高;开花后营养器官氮素向小麦籽粒转运量和转运率先升后降,转运量以N270处理最大,为213.78 kg hm-2;而转运率以N240处理最高,为67.98%。随施氮量的增加,小麦成熟期各器官干物质积累量、花后营养器官干物质再分配量和再分配率先增后降,均以N270处理最高;开花后干物质积累对籽粒的贡献率亦呈先增后降的趋势,以N240处理最高。2005—2006年的试验结果呈相同变化趋势。在本试验条件下,小麦产量水平达10 000 kg hm-2时的适宜施氮量为240~270 kg hm-2,可供生产中参考。  相似文献   

6.
A new fertilization method with deep placement of slow‐release N fertilizers, such as coated urea and lime nitrogen (LN) (calcium cyanamide) at 20 cm depth was found to promote soy bean seed yield. In the present study, the effect of deep placement of LN was investigated on different parameters such as growth, N accumulation, N2 fixation activity and yield of soy bean by applying LN at different rates in the rotated paddy field of Niigata, Japan. In addition to the basal fertilizer, ammonium sulphate (16 kg N ha?1), deep placement of LN was conducted by applying various amounts such as 50 kg N ha?1 (A50), 100 kg N ha?1 (A100) and 200 kg N ha?1 (A200) at 20 cm depth in separate plots. A 15N‐labelled LN fertilizer was also employed for each of the above treatments to calculate N utilization from LN in separate plots. Soya bean plant growth and N2 fixation activity were periodically analysed. Both plant growth and N accumulation were found to increase with LN treatment compared with control plants. An increase in N2 fixation activity was found in the A100 plots. The total seed yield was the highest in the deep placement of LN with A100 (73 g per plant) compared with other treatments. The visual quality of harvested seeds also showed that A100 enhanced the quality of seeds compared with other treatments. Thus, it is suggested that N fertilization management with particular reference to optimum amount of fertilizers is important for maximum growth, N2 fixation and enhancement of seed yield of soy bean.  相似文献   

7.
A field study was conducted to investigate the influence of variable rates of application of N and P fertilizers in splits at various times on the growth and the seed and oil yields of canola (Brassica napus L.) during 1995–97. Rates of fertilizer application were 0 and 0 (F0), 60 and 0 (F1), 0 and 30 (F2), 60 and 30 (F3), 90 and 60 (F4) and 120 and 90 (F5) kg N ha?1 and kg P2O5 ha?1. All the P was applied at sowing while N was applied in splits, i.e. all at sowing, half at sowing and half with first irrigation, or half at sowing and half at flowering. The responses of growth, seed yield and components of yield were consistent in both years. Increasing the rate of fertilizer application from F4 (90/60 kg N/P2O5 ha?1) to F5 (120/90 kg N/P2O5 ha?1) increased the leaf area index (LAI) relative to the control and to lower rates of fertilizer application. For both crops, application of 90/60 kg N/P2O5 ha?1 significantly enhanced total dry matter (TDM) and seed yield. Seed yield increased mainly due to a greater number of pods per plant and seeds per seed‐pod. The time of fertilizer application did not significantly affect seed yield or components of yield in either season. Oil yield generally followed seed yield, increasing with increasing rate of fertilizer application up to 90/60 kg N/P2O5 ha?1. The maximum oil contents were obtained from the control. The results show that seed and oil yields of canola were maximized at the F4 (90/60 kg N/P2O5 ha?1) rate of application under the agro‐ecological conditions of Faisalabad, Pakistan.  相似文献   

8.
控释肥对夏玉米产量和氮素积累与分配的影响   总被引:35,自引:1,他引:35  
赵斌  董树亭  张吉旺  刘鹏 《作物学报》2010,3(10):1760-1768
在大田条件下研究树脂包膜控释肥(CRF)和硫包膜控释肥(SCF)对夏玉米花后光合产物和氮素积累与分配及产量的影响。结果表明,花后控释肥处理的光合速率始终较高,在相同施肥量(N、P、K量相同)情况下,控释肥CRF(1428kghm-2)和SCF(1668kghm-2)及其减量25%处理的单株干物质和氮素积累量都显著高于等量普通复合肥(CCF,1260kghm-2)处理;控释肥减量25%时,干物质向籽粒中的分配比例显著高于CCF处理;成熟期籽粒的氮素积累,控释肥处理都显著高于CCF处理,并随着控释肥比例的增加而增加,全量与减量25%的处理无显著差异。控释肥能显著提高玉米产量,等量控释肥增产13.15%和14.15%;控释肥减量25%时,分别比CCF增产9.69%和10.04%;其氮肥利用率和农学效率也均显著高于普通肥处理。  相似文献   

9.
提高氮肥利用效率是当前小麦生产中重要的研究方向之一。本研究以光明麦1号为试验品种,利用两年的田间试验结果,采用二次正交旋转组合设计建立回归模型,分析稻茬小麦的氮肥当季表观利用率(utilization rate of nitrogen fertilizer,NUR)受播期、密度、施氮量组合的调控效应。结果表明,对小麦NUR效应表现为氮肥播期密度。在试验条件下,实现高产和高NUR目标,三因素有多种组合模式,其中播期10月28日至11月2日+密度160~180万株hm–2+施氮量200 kg hm–2的组合,其产量为6800~7200 kg hm–2,NUR大于42.0%(最大值为44.8%),可靠度达到95%;播期10月21日至27日+密度120~150万株hm–2+施氮量190~225 kg hm–2组合,其产量为6200~7000 kg hm–2,NUR达41.0%以上;播期11月3日至11日+密度210~240万株hm–2+施氮量190~210 kg hm–2组合,其产量为5900~7250 kg hm–2,NUR达39.0%以上。  相似文献   

10.
Increased application of nitrogen (N) fertilizer top-dressing during growth is an effective option for enhancing N supply to soybean plants. SS2-2 was characterized by the superior ability of symbiotic N2 fixation at the level of 30 kg N ha−1. But, the response of nitrogen fixation ability of supernodulating soybean mutant, SS2-2, to N fertilizer application rate remains unclear. The objective of this experiment was to compare the response of N fertilizer top-dressing on N accumulation and N2 fixation between supernodulating mutant, SS2-2, and wild-type, Sinpaldalkong 2. The effect of N fertilizer top-dressing (0.6 g N pot−1 top-dressing) on the nitrogen accumulation and redistribution were compared between SS2-2 and Sinpaldalkong 2. N fertilizer top-dressing at R1 stage increase in plant dry weight, relative growth rate (RGR), net assimilation rate (NAR), nitrogen harvest index (NHI), and N redistribution (NR). SS2-2 showed highest N concentration, 65.0 mg N g DW−1, followed by Sinpaldalkong 2 and En1282, and the N content per plant did not show a significant difference between SS2-2 and Sinpaldalkong 2. The N2 fixation rate was significantly reduced by N top-dressing, but the amount of N2 fixation was not changed due to an improved dry weight without changes of N concentration. In addition, SS2-2 showed higher NHI, NR and NRE than Sinpaldalkong 2. These results suggested that supernodulating soybean mutants, SS2-2, could be characterized by high N concentration and N2 fixation regardless of N fertilizer top-dressing due to a higher nitrate tolerance of supernodulating mutants than that of wild-type.  相似文献   

11.
以杂交中稻组合II优498为材料,在三角形强化栽培(TSRI)条件下,研究3种晒田强度(0~20 cm土壤相对含水量为80%±5%、60%±5%和40%±5%,分别记为W1、W2和W3)和3种穗肥运筹(晒田复水后第1、8和15天施用第1次氮素穗肥,分别记为S1、S2和S3)对灌浆结实期水稻光合生产和氮素利用的影响。结果表明,晒田程度和穗肥运筹对水稻光合生产、干物质积累、氮素积累、转运和利用和产量的影响存在显著互作效应,且晒田影响最为显著,氮素穗肥运筹次之。轻度晒田(W1)复水后第1天施用第1次氮素穗肥会降低抽穗后15 d和30 d的群体光合和有效穗数,推迟至复水后第8天或第15天施用第1次氮素穗肥可以提高抽穗后15 d和30 d的群体光合、收获指数和氮素稻谷生产效率;中度和重度晒田(W2和W3)复水后第1天和第8天施用第1次氮素穗肥可以提高孕穗期和齐穗期剑叶Pn和抽穗后15 d和30 d的群体光合、干物质积累、籽粒产量及构成指标、稻株氮素积累与利用。经过分析比较得出,TSRI模式下W2S1为晒田强度和穗肥运筹的最优组合,产量达到10.96 t ha-1。  相似文献   

12.
N2O Emissions from True Meadows Dependent on Location and N Fertilization Agricultural production is thought to be a main anthropogenic emitter of nitrous oxide (N2O), which contributes to global warming and the destruction of the ozone layer. There is still considerable uncertainty about the amount of N2O emission, and the site‐specific parameters that affect N2O emission. From October 1995 until March 1998 experiments were conducted at established field plots (true meadows) at three different sites, i.e. low mountain range (Eifel), lowland (Niederrhein), and moist meadows (Münsterland). Plots were fertilized with calcium ammonium nitrate (CAN) at nitrogen equivalents ranging from 0 to 360 kg N ha–1. N2O fluxes were measured throughout the whole year using the closed‐chamber method. In addition, data on temperature, water‐filled pore space and precipitation were collected. N2O emission rates (mg N2O‐N ha–1 h–1) were highest either after fertilizer application or in winter during frost, depending on the experimental site and N dosage. The annual amount of N losses due to N2O emission was dependent on the experimental site and the type and dosage of fertilizer. Disregarding the 360 kg N ha–1 level of the CAN treatments, the N losses in this experiment were less than 1.5 kg N2O‐N ha–1 yr–1. At low fertilizer dosage there was no reliable correlation between the amount of N that was applied and the amount of N2O that was emitted. However, with high fertilizer levels the N2O emissions increased gradually. Finally, N2O emissions were more influenced by the amount of CAN than by the site.  相似文献   

13.
In a crop rotation trial, conducted from 1985 to 1988 at TU-Munich's research station in Roggenstein, the transfer of grain legume nitrogen was evaluated in crop rotations containing fababeans and dry peas as well as oats (reference crop) and winter wheat and winter barley as following crops. The results obtained can be summarized as follows: Dinitrogen fixation by fababeans ranged from 165 to 240 kg N ha1, whereas N2-fixation by peas amounted from 215 to 246 kg N ha?1. In all seasons the calculated N-balance where only grain was removed was positive, with a net gain being on average 106 (peas) and 84 (fababeans) kg N ha?1. After the harvest of peas 202 kg N ha?1 remained on the field on average over seasons (158 kg N ha?1 in the above ground biomass and 44 kg N ha?1 as NO3-N in 0–90 cm depth). As compared to peas, fababeans left 41 kg N ha?1 less due to smaller amounts of nitrogen in the straw. After oats very small amounts of residual nitrogen (33 kg N ha?1) were detected. After the harvest of grain legumes always a very high nitrogen mineralization was observed during autumn especially after peas due to a close C/N-relationship and higher amounts of nitrogen in the straw as compared to fababeans. In comparison with fababeans, N-mineralization after the cultivation of oats remained lower by more than 50%. During winter, seepage water regularly led to a considerable decrease of soil NO3-N content. The N-leaching losses were especially high after cultivation of peas (80 kg N ha ?1) and considerably lower after fababeans (50 kg N ha?1) and oats (20 kg N ha?1). As compared to oats, a higher NO3-N content in soil was determined at the beginning of the growing period after preceding grain legumes. Therefore, winter wheat yielded highest after preceding peas (68 dt ha?1) and fababeans (60 dt ha?1) and lowest after preceding oats (42 dt ha?1). The cultivation of grain legumes had no measurable effect on yield formation of the third crop winter barley in either of the growing seasons.  相似文献   

14.
Recovery of fertilizer nitrogen (N) applied to winter wheat crops at tillering in spring is lower than that of N applied at later growth stages because of higher losses and immobilization of N. Two strategies to reduce early N losses and N immobilization and to increase N availability for winter wheat, which should result in an improved N use efficiency (= higher N uptake and/or increased yield per unit fertilizer N), were evaluated. First, 16 winter wheat trials (eight sites in each of 1996 and 1997) were conducted to investigate the effects of reduced and increased N application rates at tillering and stem elongation, respectively, on yield and N uptake of grain. In treatment 90‐70‐60 (90 kg N ha?1 at tillering, 70 kg N ha?1 at stem elongation and 60 kg N ha?1 at ear emergence), the average values for grain yield and grain N removal were up to 3.1 and 5.0 % higher than in treatment 120‐40‐60, reflecting conventional fertilizer practice. Higher grain N removal for the treatment with reduced N rates at tillering, 90‐70‐60, was attributed to lower N immobilization (and N losses), which increased fertilizer N availability. Secondly, as microorganisms prefer NH4+ to NO3? for N immobilization, higher net N immobilization would be expected after application of the ammonium‐N form. In a pot experiment, net N immobilization was higher and dry matter yields and crop N contents at harvest were lower with ammonium (ammonium sulphate + nitrification inhibitor Dicyandiamide) than with nitrate (calcium nitrate) nutrition. Five field trials were then conducted to compare calcium nitrate (CN) and calcium ammonium nitrate (CAN) nutrition at tillering, followed by two CAN applications for both treatments. At harvest, crop N and grain yield were higher in the CN than in the CAN treatment at each N supply level. In conclusion, fertilizer N use efficiency in winter wheat can be improved if N availability to the crops is increased as a result of reduced N immobilization (and N losses) early in the growth period. N application systems could be modified towards strategies with lower N applications at tillering compensated by higher N dressing applications later. An additional advantage is expected to result from use of nitrate‐N fertilizers at tillering.  相似文献   

15.
秸秆还田条件下适量施氮对冬小麦氮素利用及产量的影响   总被引:15,自引:0,他引:15  
2011—2012和2012—2013年生长季,通过田间定位试验,研究了秸秆还田配施氮肥对冬小麦干物质积累、氮效率、土壤硝态氮积累及产量的影响。与单施氮肥(对照)相比,秸秆还田显著提高冬小麦全生育期干物质积累总量,降低开花前干物质积累量及其占全生育期比例;秸秆还田配施纯氮225 kg hm–2处理的氮肥偏生产力、氮素利用效率、氮素收获指数分别提高7.5%、6.4%和5.2%。秸秆还田显著降低了不同土层硝态氮积累量,尤其是0~30 cm和30~60 cm土层。秸秆还田配施纯氮225 kg hm–2的产量最高,且显著高于其他处理,增产幅度最大,因此可作为当地秸秆还田模式下适宜推荐的施氮量。  相似文献   

16.
不同覆盖方式和施氮量对糜子光合特性及产量性状的影响   总被引:1,自引:0,他引:1  
周瑜  苏旺  王舰  屈洋  高小丽  杨璞  冯佰利 《作物学报》2016,42(6):873-885
于2011-2013年以榆糜2号为试验材料, 采用双因素裂区设计, 以覆盖栽培方式为主因素, 氮肥应用水平为副因素,调查分析不同栽培方式和施氮量下糜子光合指标及产量性状的变化。结果表明, 与传统不覆盖和不施肥相比, 覆盖和施氮均显著提高糜子开花至成熟阶段旗叶的叶绿素含量、净光合速率(Pn)、气孔导度(Gs)和蒸腾速率(Tr), 同时显著降低胞间CO2浓度(Ci), 光合改善效果以“W”垄覆地膜+垄间覆秸秆和180 kg·hm–2氮肥施用量最为显著。覆盖和氮肥均显著提高糜子开花期和成熟期干物质积累量、干物质在各器官中的分配量, 降低糜子花前营养器官贮藏同化物转运量及其对籽粒的贡献率, 而提高了糜子花后同化物在籽粒中的分配量及其对籽粒的贡献率。覆盖显著提高糜子产量、千粒重、穗粒数和穗长, 其调控效应以“W”垄覆地膜+垄间覆秸秆较好;随施氮量的提高, 糜子产量和千粒重先升后降, 而穗粒数和穗长持续增加, 适宜的氮肥施用量为135~145 kghm–2。因此, 建议黄土高原糜子最佳栽培措施为“W”垄覆地膜+垄间覆秸秆的二元覆盖集水保水系统结合135~145 kghm–2氮肥用量。  相似文献   

17.
低氮密植栽培对超级稻产量和氮素利用率的影响   总被引:8,自引:0,他引:8  
为了研究低氮密植栽培对水稻分蘖发生及成穗率、干物质积累及其转化、氮素利用率和产量的影响,2012—2013年以超级稻Y两优1号为材料,在湖南长沙和海南澄迈进行了施氮量(75、150、225 kg N hm–2)与栽插密度(68、40、27、19穴m–2),每穴苗数(单、双、三本穴–1)与栽插密度(40、27、19、14穴m–2)的大田栽培试验。结果表明,在基本苗数相同或相近的条件下,减苗增密在齐穗期和成熟期的干物质量及产量分别比增苗减密高10.5%、5.2%和2.9%,有效穗数对产量的贡献最大,达到显著水平;在低氮密植条件下,有效分蘖期缩短6 d左右,分蘖成穗率、表观转化率、氮肥偏生产力和氮素籽粒生产效率分别提高10.9%、21.0%、150.6%和19.6%。在施氮量为75 kg N hm–2的密植(40~68穴m–2)条件下,齐穗期和成熟期的干物质量及长沙点产量分别比中、高氮(150~225 kg N hm–2)常规密度(19~27穴m–2)低3.2%、7.5%和1.2%,但差异不显著,而澄迈点产量在2012年和2013年分别比之低5.2%和高9.1%,且差异均达显著水平。在施氮量为150 kg N hm–2的密植条件下,成熟期干物质量比高氮常规密度低1.7%,但齐穗期干物质量和产量比高氮常规密度高10.3%和3.3%。因此,超级稻采用低氮密植栽培,在100~150 kg N hm–2和40穴m–2条件下提早了够苗期,增加了有效穗数,提高了分蘖成穗率和结实率,加之齐穗期适宜的干物质积累和较高的表观转化率,有利于高产的形成和氮肥利用率的提高。  相似文献   

18.
Little is known about the effect of combined phosphorus and nitrogen (P‐N) fertilization on the N requirement of sunflower (Helianthus annus L.). This study was carried out to evaluate the effects of varying levels of P and N, as well as the interaction P × N, on the N uptake, yield and N apparent utilization efficiency under field conditions. Split‐plot design experiments were conducted in the mid‐western Pampas in Argentina. Four levels of N (0, 46, 92 and 138 kg N ha?1) and three levels of P (0, 12 and 40 kg P ha?1) were applied to two Typic Hapludolls over two growing seasons (1997–98 and 1998–99). N uptake and soil N‐NO3 contents were determined at the V7, R5 and R9 growth stages. The sunflower yield ranged from 2.5 to 5.0 Mg ha?1. The total N requirement was around 45 kg N Mg?1 grain, and this result suggests that it is not necessary to use different N requirements (parameter b) for fertilized crops when a yield response is expected. To achieve a 100 % yield maximum a N supply (soil plus fertilizer) of 181 kg N ha?1 at P40 was needed. However, at P0, the highest yield was about 80 % of the maximum yield with a N supply (soil plus fertilizer) of 164 kg N ha?1. P application increased the apparent use efficiency of the supplied N.  相似文献   

19.
Field experiments with silage maize were conducted in 1987 and 1988 on a loess-derived Luvisol in southwest Germany. Four nitrogen fertilizer treatments were compared: application of preplanting NH4 N (plus a nitrification inhibitor, dicyandiamide as Didin) and preplanting NO3-N, split application of NO3-N (preplanting and side dressed 45 days after planting) and a control without nitrogen fertilizer in 1987 and with 64 kg N ha?1 as calcium ammonium nitrate in 1988. The total amounts of soil mineral nitrogen (Nmin+ fertilizer N) were 200 kg N ha?1 in 1987 and 240 kg N ha?1 in 1988. Suction cups and tensiometer were installed at five depths and samples were taken in regular intervals. Nitrate concentrations in the suction solution steeply increased at 15 cm and 45 cm soil depth 3-4 weeks after fertilizer application (1987 up to 160mgNl?1; 1988 up to 170mgN l?1) and steeply decreased up to 75 cm depth with the onset of intensive N uptake at shooting. Ammonium concentrations in the suction solution were very low (0-0.16 mg N l?1). Compared to preplanting NCyN application, preplanting NH4-N and split NO3-N application decreased nitrate concentrations in the suction solution in spring 1987. In 1988, however, nitrate concentrations in the suction solution of preplanting NH4-N and split NO3-N application plots did not fall below 50mgNl?1 at 15 cm depth during the growing season. Nitrate concentrations of split NO3-N application increased again in autumn 1988 and hence doubled the calculated N losses by leaching during the winter months compared to preplanting N applications. At shooting, plants of the preplanting NH4-N treatment had lower nitrate concentrations in leaf sheaths compared to plants of preplanting NO3-N application. Total N uptake of maize between shooting and early grain filling of preplanting NH4-N and split NO3 -N application tended to be higher compared to preplanting NO3-N application, reflecting the higher N availability in the soil later in the season. However, final dry matter yields and N uptake were not significantly affected by N form or time of N application. Since N losses by nitrate leaching between N application and onset of N uptake by plants were negligible on the experimental site, preplanting NH4-N application and split NO3-N application showed no agronomic advantages. High amounts of side dressed NO3-N may increase nitrate leaching during the winter months, especially in years with delayed rainfall after application.  相似文献   

20.
光、氮及其互作对玉米氮素吸收利用和物质生产的影响   总被引:4,自引:0,他引:4  
以玉米单交种豫玉22为材料,设置2个光照处理和3个氮肥水平,研究光、氮及其互作下玉米酶活性、干物质生产和产量变化特征及其对玉米氮素吸收利用和物质生产的影响。结果表明,弱光胁迫下玉米叶片硝酸还原酶和谷氨酰胺合成酶活性降低,植株和籽粒氮积累量下降;干物质积累量显著降低;果穗穗长、行粒数和穗粒数减少,导致产量显著降低。但弱光胁迫下增施氮肥可以提高叶片硝酸还原酶和谷氨酰胺合成酶活性,增加干物质积累量,穗长、行粒数和穗粒数增加,产量显著提高,并且随施氮量的增多,产量增加效果也越显著。可见,光、氮及其互作对玉米氮素吸收利用及物质生产具有显著影响,弱光胁迫条件下增施氮肥可以部分缓解其致害效应,减少玉米产量损失。  相似文献   

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