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1.
Abstract

Limited information is available regarding the utilization and loss of fertilizer nitrogen (N) applied to intensively managed upland rice. Effects of N fertilization on upland rice were conducted as N0 (no N applied), N225 (225 kg N · ha?1), N300 (300 kg N · ha?1), and N375 (375 kg N · ha?1) in pot experiments. 15N‐labeled techniques were used in basal and topdressing N fertilizations. Results showed with the increase of N quantity applied, tiller, panicle numbers per pot, and spikelet number per panicle increased significantly (P<0.05). Chlorophyll b content of N225 and N300 were significantly higher than N0 (P<0.05), and net photosynthetic rate (Pn) of N300 increased significantly compared with N0 and N225. Under basal fertilization, N use efficiency (NUE) of root, stem, leaf, and grain in N300 was the highest. The NUE and loss rate ranged from 23.3% to 30.3% and 62.4% to 73.8%, respectively, under basal fertilization. They varied from 16.5% to 27.5% and 70.7% to 80.4%, respectively, under topdressing fertilization. The highest NUE was observed in N300 under basal fertilization. As increased quantities of N were applied, Pn and biological characteristics improved, thus crop yield of upland rice increased. Grain yield of N300 and N375 were significantly higher than that of N0 and N225 (P<0.01); however, there was no significant difference between them. Therefore, N fertilization with medium applied quantity under basal fertilization will facilitate growing, photosynthesis, and grain yield increase of upland rice.  相似文献   

2.
为了探索稻鱼模式下水稻氮肥高效施用技术,实现减肥增效的生产目标,以杂交籼稻隆两优1206为试验材料,在稻鱼共作模式下设置了4个水稻施氮处理,分别为:N0不施氮肥处理、CK当地常规施氮处理(纯氮用量为 180 kg/hm2,按分蘖肥∶促花肥∶保花肥=5∶2.5∶2.5施用)、N1氮肥减量处理(纯氮用量为 120 kg/hm2,按分蘖肥∶促花肥∶保花肥=5∶2.5∶2.5施用)、N2氮肥减量后移处理(纯氮用量为 120 kg/hm2,按分蘖肥∶促花肥∶保花肥=0∶5∶5施用),研究了不同处理下水稻生长特性、产量和氮肥利用率的变化规律。结果表明:与CK处理相比,N2处理显著降低了有效分蘖叶龄期水稻的分蘖数和倒4叶期水稻的干物质积累量,但在有效分蘖叶龄期的分蘖数达到了CK处理有效穗数的88.54%,已经够苗。施穗肥后N2处理增加了水稻的干物质积累量、有效穗数和穗粒数,同时显著降低了水稻的高峰苗,提高了成穗率,两年的水稻产量比CK处理分别增加了6.39% 和8.57%。同时,N2处理降低了水稻成熟期土壤水解氮的残留,水稻氮素收获指数、氮素干物质生产效率、氮素谷物生产效率、氮肥偏生产力和氮肥农学利用率分别比CK处理提高了5.63%、12.99 kg/kg、12.91 kg/kg、28.45 kg/kg和7.79 kg/kg,增幅分别达9.33%、15.56%、29.14%、59.57% 和120.77%,差异均达到显著水平。可见,水稻氮肥减量后移施用,能够显著降低水稻高峰苗,提高水稻成穗率、后期干物质含量、有效穗数、穗粒数和氮肥农学利用效率,从而提高产量。在西南地区烟后稻田养鱼模式下,茬口土壤全氮和水解氮分别在1.79 g/kg和160.02 mg/kg以上,水稻采用总施氮为 120 kg/hm2,按分蘖肥∶促花肥∶保花肥=0∶5∶5比例的施用,可以实现水稻减氮33.3%、增产6.39% 以上的目标。  相似文献   

3.
High N fertilizer and flooding irrigation applied to rice in anthropogenic‐alluvial soil often result in N leaching and low use efficiency of applied fertilizer N from the rice field in Ningxia irrigation region in the upper reaches of the Yellow River. Sound N management practices need to be established to improve N use efficiency while sustaining high grain yield levels and minimize fertilizer N loss to the environment. We investigated the effects of Nursery Box Total Fertilization technology (NBTF) on N leaching at different rice growing stages, N use efficiency and rice yield in 2010 and 2011. The four fertilizer N treatments were 300 kg N ha−1 (CU, Conventional treatment of urea at 300 kg N ha−1), 120 kg N ha−1 (NBTF120, NBTF treatment of controlled‐release N fertilizer at 120 kg N ha−1), 80 kgN ha−1 (NBTF80, NBTF treatment of controlled‐release N fertilizer at 80 kg N ha−1) and no N fertilizer application treatment (CK). The results showed that the NBTF120 treatment increased N use efficiency, maintained crop yields and substantially reduced N losses to the environment. Under the CU treatment, the rice yield was 9634 and 7098 kg ha−1, the N use efficiency was 31·6% and 34·8% and the leaching losses of TN were 44·51 and 39·89 kg ha−1; NH4+‐N was 5·26 and 5·49 kg ha−1, and NO3‐N was 27·94 and 26·22 kg ha−1 during the rice whole growing period in 2010 and 2011, respectively. Compared with CU, NBTF120 significantly increased the N use efficiency and decreased the N losses from the paddy field. Under NBTF120, the N use efficiency was 56·3% and 51·4%, which was 24·7% and 16·6% higher than that of CU, and the conventional fertilizer application rate could be reduced by 60% without lowering the rice yield while decreasing the leaching losses of TN by 16·27 and 14·36 kg ha−1, NH4+‐N by 0·90 and 1·84 kg ha−1, NO3‐N by 110·6 and 10·14 kg ha−1 in 2010 and 2011, respectively. Our results indicate that the CU treatment resulted in relatively high N leaching losses, and that alternative practice of NBTF which synchronized fertilizer application with crop demand substantially reduced these losses. We therefore suggest the NBTF120 be a fertilizer application alternative which leads to high food production but low environmental impact. Copyright © 2014 John Wiley & Sons, Ltd.  相似文献   

4.
Winter wheat (Triticum aestivum L.) production in northwestern China as a monoculture is hampered by unfertile soil and drought. With the fast-developing Chinese chemical fertilizer industry, many farmers now use more nitrogen (N) fertilizer as topdressing for winter wheat in early spring, in addition to a basal dose of N fertilizer applied in the previous autumn at seeding time. The objective of this study was to evaluate the increase in grain yield of dryland winter wheat by early spring N fertilizer topdressing, and its relationship to soil moisture, available N, phosphorus (P) and potassium (K). Field experiments with no N fertilizer topdressing (Fb) and N fertilizer topdressing (Fb+t) treatments were carried out over two growing seasons at 54 site-years to assess the relationship between increase in winter wheat grain yield by early spring N fertilizer topdressing and soil moisture, available N, P and K in Changwu county, Shaanxi province, China. Compared to Fb treatment, the Fb+t treatment produced grain yields lower at 10 site-years, and increased by <10% at 21 site-years and by >10% at 23 site-years. The results indicated that topdressing N fertilizer could increase wheat grain yield when soil nitrate-N accumulation in the 0–20, 20–40 and 40–60 cm depths was less than 121.7, 36.4 and 24.1 kg N ha?1, and soil moisture content in the 40–60, 60–80 and 80–100 cm depths was more than 15.7%, 16.7% and 16.9%, respectively. The findings also suggested that it is not necessary to analyze soil for ammonium-N, available P and K before topdressing N fertilizer. It is necessary to analyze 0–60 cm soil profile for nitrate-N and 40–100 cm depth for soil moisture before topdressing N fertilizer for winter wheat in dryland areas of northwestern China.  相似文献   

5.
前氮后移对水稻产量形成和田面水氮素动态变化的影响   总被引:3,自引:0,他引:3  
通过田间小区试验,在施氮量180 kg/hm~2水平下,设置4个氮肥运筹比例,基肥∶分蘖肥∶穗肥的比例分别为10∶0∶0(T1),4∶3∶3(T2),2∶3∶5(T3),0∶3∶7(T4),研究氮肥后移对水稻产量形成和稻田田面水氮素动态变化的影响。结果表明:与氮肥全部作为基肥施用的处理相比,将前期氮肥的30%甚至50%后移到穗肥施用,对水稻产量没有明显影响,而氮肥后移70%至穗肥会使水稻产量显著下降。田面水中总氮(TN)和可溶性总氮(DTN)浓度在每次施肥后1天达到峰值,铵态氮(NH_4~+-N)浓度在基肥和分蘖肥后1天达到峰值,穗肥后3天达到峰值,随后逐渐降低至与不施氮肥处理相当。整个基肥期、分蘖肥后20天内和穗肥后9天内是防止稻田氮素流失的关键期。施尿素后,DTN是田面水氮素的主要部分,DTN以无机氮(IN)为主,而NH_4~+-N在IN中所占比例达64.0%以上。比较水稻生育过程中氮素流失风险期内的TN、DTN和NH_4~+-N三氮浓度,相比T1,T2的三氮浓度分别降低了2.9%,1.6%,3.1%,T3的三氮浓度分别降低了15.5%,14.7%,22.3%,T4的三氮浓度分别降低了16.1%,22.9%,34.1%,结合产量,确定基肥∶分蘖肥∶穗肥比例为2∶3∶5的氮肥后移措施能够在保证水稻产量不下降的同时,有效降低稻田氮素的流失风险。  相似文献   

6.
为了探究双季稻田典型自然降雨径流过程中氮(N)的输出特点,采用田间径流池法,通过长期田间定位试验,比较普通尿素(U)和控释尿素(CRU)减施稻田径流水中总氮(TN)、铵态氮(NH_4~+-N)和硝态氮(NO_3~--N)的动态变化及N素径流流失量和流失率。结果表明:稻田施肥初期出现N素径流峰值,是防控N素径流损失的关键时期。早、晚稻季生育期间施N处理径流水中以NH_4~+-N为主要形态,分别占TN径流损失量的64.5%~66.3%,61.0%~68.6%。早、晚稻季U处理径流水TN流失量(率)分别为5.6(2.2%),5.0(1.7%)kg/hm~2;CRU处理较U处理径流水TN流失量分别降低17.4%~34.1%,17.3%~37.7%;且随着N肥用量的减少,TN流失量(率)逐渐降低。受降雨强度的影响,早稻季N素径流损失较晚稻季高,且晚稻季CRU处理N素径流损失减排效果优于早稻季。早、晚稻季及连作周期CRU处理TN径流累计损失量和籽粒产量与施N量呈显著线性关系,随着N用量的增加而增加。总之,U处理显著提高径流水中N素浓度以及NH_4~+-N占TN的比例。CRU处理有效减缓N素释放速度,降低施肥初期N素径流损失量,实现增产;而CRU减施有利于进一步防控稻田N素流失风险,促进农业面源污染减排,且以减N 10%效果较好。  相似文献   

7.
The scarcity of non-renewable fertilizers resources and the consequences of climate change can dramatically influence the food security of future generation. Introduction of high yielding varieties, intensive cropping sequence and increasing demand of food grains day-by-day, application of recommended dose of fertilizers could not fulfill our targets due to outdated fertilizers recommendations are yet in practice. It not only alters soil quality, nutrient balance, microbial and enzymatic ecology but also affected productivity and sustainability of rice in Gangetic alluvial soils of India. The effect of fertilizers application based on “fertilizing the soil versus fertilizing the crop” which insure real balance between the applied and available soil nutrient is urgently needed. Hence, the present study was conducted during three consecutive crop seasons (2010, 2011, and 2012) to assess the effect of imbalance and balance fertilization based on initial soil test values and targeted yields, and to determine the effect of farmyard manure (FYM) when superimposed with balanced fertilizers on identification of minimum data set for the development soil quality, nutrient acquisition, and grain yield of rice. The six fertilizer treatments were laid out in a randomized block design with three replications. The treatments were: T1-control (no fertilization), T2-farmyard manure @ 5 t ha?1, T3-farmers practice (60:30:30 kg N:P2O5:K2O ha?1), T4-precise application of mineral fertilizers based on initial soil test values (77:24:46 kg N:P2O5:K2O ha?1) for targeted grain yield of 4.0 t ha?1, T5-precise application of mineral fertilizers based on initial soil test values (74:23:43 kg N:P2O5:K2O ha?1) plus FYM (5 t ha?1) for targeted grain yield of 4.0 t ha?1 and T6-precise application of mineral fertilizers based on initial soil test values (135:34:65 kg N:P2O5:K2O ha?1) for targeted rice grain yield of 5.0 t ha?1. Result revealed that the targeted rice grain yield of 4.0 and 5.0 t ha?1 was achieved in T4 and T6 treatments with 1.59% (4.06 t ha?1) and –3.40% (4.83 t ha?1) deviations, respectively. T4, T5, and T6 significantly increased crop growth, nutrient uptake, available P (Pa) and K (Ka) and augmented rice grain yield by 10.6, 20.2 and 31.6%, respectively, over T3. Microbial biomass carbon, soil respiration and enzymatic activity were enhanced significantly in T5 as compared to T6. Highest soil quality index was found in T5 (0.95) followed by T6 (0.90) and, lowest was in T1 (0.63). The contribution of minimum data set (MDS) toward the SQI was in the descending order of ALP (30.6%) > SOC (21.5%) > Ka (11.3%) > PSM (9.68%) > Na (8.51%). Overall, rice yield and soil quality was improved by using balance fertilization based on fertilizing the crop Vs fertilizing the soil in alluvial soils of India.  相似文献   

8.
氮肥用量及其分施比例对棉花氮利用和土壤氮平衡的影响   总被引:1,自引:0,他引:1  
The Yellow River valley is one of the three largest cotton production areas in China.An experiment was performed in cotton fields of Anyang,China from 2013 to 2014 to investigate the effects of nitrogen(N) application rate and the ratio between basal and topdressing N fertilizer on N balance in a soil-plant system,N use efficiency,and cotton yield.Five N application rates as treatments were applied with the same split application ratio.Half of the N(50% basal fertilizer) was applied at pre-planting and the other half(50% topdressing fertilizer) at the initial flowering stage.These treatments were:zero N(N0,control),90 kg N ha~(-1)(N90(5/5)),180 kg N ha~(-1)(N180(5/5)),270 kg N ha~(-1)(N270(5/5),a reduced N rate),and 360 kg N ha~(-1)(N360(5/5),a conventional N rate).Additional 2 split application ratios as treatments were applied with the same N rate of 270 kg N ha~(-1).The split application ratios between basal N and topdressing N were 30%:70%(N270(3/7)) and 70%:30%(N270(7/3)).Results demonstrated that soil NH_4-N content in the 0–60 cm layer and NO3-N content in the 0–20 cm layer increased with increased N rate at the squaring and boll-opening stages and then decreased to lower levels at the initial flowering and harvest stages.Soil NO_3-N content in the 20–60 cm layer after the initial flowering stage increased with the increase of topdressing N rate.Soil apparent N surplus varied at different growth stages,while the soil apparent N surplus over the entire growth period exhibited a positive relationship at N rates over 180 kg ha~(-1).Seed cotton yield of N270(3/7) was the highest of all treatments.Plant N uptake,N agronomic efficiency,and apparent N recovery efficiency of N270(3/7) were significantly higher than those of N270(5/5) and N270(7/3) in both growing seasons.These suggest both economic and ecological benefits in cotton production in the Yellow River valley could be created,by appropriately reducing total N application rate and increasing the ratio of topdressing to basal N fertilizer at the initial flowering stage.  相似文献   

9.
以中筋小麦济麦22为试材,在小麦拔节期和开花期0—40cm土层土壤相对含水量均补灌至70%和总施氮量为240kg/hm~2条件下,设置5个氮肥基追比例处理:0∶10(N1)、3∶7(N2)、5∶5(N3)、7∶3(N4)、10∶0(N5),研究测墒补灌节水栽培条件下氮肥基追比例对小麦植株氮素利用和土壤氮素表观盈亏的影响。结果表明:N3处理的植株氮素积累量、籽粒氮素积累量显著高于其他基追比例处理;营养器官氮素积累量、土壤矿质氮损失量、氮肥表观残留率和氮肥表观损失率显著低于其他处理。与N1、N2、N4、N5处理相比,N3处理的氮素生理利用率分别高33.22%,12.60%,11.54%,98.14%,籽粒氮素利用率高148.65%,56.48%,59.63%,229.29%,氮肥农学效率高96.52%,34.86%,37.64%,204.98%,氮素表观盈亏量分别低35.04%,13.82%,30.36%,29.30%。根据不同氮肥基追比例下各指标的相关系数分析表明,植株氮素积累量、籽粒氮素积累量、氮素生理利用率、籽粒氮肥利用率、氮肥农学效率与土壤硝态氮积累量、成熟期0—200cm土层土壤矿质氮残留总量均呈显著负相关。综上,氮肥基追比例为5∶5的N3处理为试验条件下的最优处理。  相似文献   

10.
A long-term field experiment was conducted at the research farm of the All-India Coordinated Research Project for Dryland Agriculture, Phulbani, Orissa, India, from 2001 to 2006 to identify the best integrated nutrient-use treatments for ensuring greater productivity, profitability, sustainability, and improved soil quality in pigeon pea + rice (two rows of pigeon pea followed by five rows of rice alternately) intercropping system. In all, nine treatments, eight comprising integrated nutrient-use practices, chemical fertilizer (CF), farmyard manure (FYM), and green leaf manure (GLM) to supply nitrogen (N) at 45 kg N ha–1 and one farmer's practice equivalent to 25 kg N ha–1 (FYM 5 t ha–1), were tested on a long-term basis. Results of the study revealed that 20 kg N ha–1 (FYM) + 25 kg N (CF) gave maximum mean rice grain yield of 1.52 t ha–1, followed by 20 kg N (GLM) + 25 kg N (urea) with grain yield of 1.51 t ha–1. In the case of pigeon pea, 30 kg N (FYM) +15 kg N (urea) gave maximum pigeon pea grain yield of 0.94 t ha–1, which was 34% greater than the sole application of chemical fertilizer. Pigeon pea grain yield tended to increase with increasing proportion of organic N in FYM + CF or GLM + CF combinations. Application of 20 kg N (FYM) + 25 kg N (urea) recorded maximum mean rice equivalent yield of 3.59 t ha–1 and sustainability yield index of 59%. While studying profitability, application of 20 kg N (FYM) + 25 kg N (CF) gave maximum net returns of US$168.94 ha–1. Impact of treatments on soil quality as assessed in terms of relative soil quality indices (RSQI) increased with increasing proportion of organic sources of N. Using an innovative and new approach, an index of integrated productivity–sustainability–profitability–soil quality performance index (I P,S,Pr,SQ) was computed to make a precise evaluation of the treatments. Based on this index, the order of performance of the treatments was T6 [20 N (FYM) + 25 N (CF)] (7.7) > T7 [30 N (FYM) + 15 N (CF) (6.9)] > T3 [20 N (GL) + 25 N (CF)] (6.8) > T5 [10 N (FYM) + 35 N (CF) (6.6)] > T9 [GL] (6.5) > T8 [CF] (6.2) > T4 [30 N (GL) + 15 N (CF)] (6.0) > T2 [10 N (GL) + 35 N (CF)] (5.7) > T1 [FYM at 5 t ha–1] (4.1). Thus, the results and the methodology adopted in this study using long-term data would be very useful to researchers, farmers, land managers, and other stakeholders not only in India but also across the world under similar climatic and edaphic situations.  相似文献   

11.
为解决水稻生产过度依赖化肥及其环境和高效利用问题,探讨贵州黄壤稻田科学施用生物炭。在贵州省思南县典型黄壤稻田开展氮肥不减量(T0)和氮肥减10%施2.5 t/hm2(T1),氮肥减20%施5.0 t/hm2(T2),氮肥减30%施7.5 t/hm2(T3),氮肥减40%施10.0 t/hm2生物炭(T4)和不施肥对照(CK)共6个处理3次重复田间小区随机区组试验,研究了氮肥减量施生物炭对水稻产量、产量构成和氮磷钾养分吸收利用的影响。结果表明,氮肥减量施生物炭显著影响贵州黄壤稻田水稻产量、产量构成、地上部氮磷钾积累量和利用效率。水稻产量和氮磷钾积累量随氮肥减量和生物炭用量增加先增大后减小。2019年、2020年和2021年水稻实际产量和理论产量均分别以T2、T3和T2最高,较T0分别显著增产16.04%,17.94%和14.73%以及55.72%,64.08%和118.91%,水稻籽粒N、P2O5和K2O积累量、偏生产力、农学效率、表观利用率和收获指数均较高,是较好的氮肥减量施生物炭处理。产量—施生物炭量回归方程和极值分析表明,2019年、2020年和2021年氮肥分别减量21.76%,24.60%和19.00%(即32.64,36.90,28.50 kg/hm2)施生物炭量5.44,6.15,4.75 t/hm2时水稻产量最高(分别为7.80,8.57,8.03 t/hm2),较T0分别增产22.52%,18.78%和13.74%。氮肥减量施生物炭显著提高氮磷钾化肥利用率,但导致化肥+生物炭磷和钾利用率降低,因此,贵州黄壤稻田施生物炭时应氮磷钾化肥同步减量,降低比例以氮磷钾减量19.00%~24.60%,施生物炭5.00~6.25 t/hm2为宜。研究结果对指导贵州黄壤稻田氮磷钾化肥减量和施生物炭具有重要指导意义。  相似文献   

12.
Two field experiments were conducted to optimize the days for decomposition of dhaincha (Sesbania aculeata) with different nitrogen (N) levels and scheduling in transplanted rice in calcareous soil in a split-plot design with three replications. Incorporation of dhaincha one day before transplanting (1-DBT) obviated the need for allowing N gap. Nitrogen scheduling as 50% at active tillering + 40% at panicle initiation + 10% at flowering recorded the maximum grain yield (59.05 q ha?1) and N–?phosphorus (P)–?potassium (K) uptake. The different N fractions in post-harvest soil were in the order of total N> total hydrolyzable N> non-hydrolyzable N> exchangeable ammonium (NH4+)–?N and nitrate (NO3?)–?N. Thus, in calcareous soil, rice may be transplanted immediately after burying the dhaincha without any time gap along with 80 kg N ha?1. Also, application of nitrogenous fertilizer in three splits, delaying N application until active tillering stage, is beneficial for improving rice productivity.  相似文献   

13.
Applying slow-release fertilizers is possible means for reducing nitrogen(N) loss in rice production. Matrix-based fertilizers represent novel slow-release fertilizers. To date, there is little consensus about the effect of combined addition of organic and inorganic matrix materials on rice production. We developed a slow-release urea fertilizer with selected organic and inorganic matrix materials. The study aimed to: i) determine the effect of the slow-release urea on rice yield, profit, and agronomic efficiency and ii) elucidate its possible mechanisms. A two-year field experiment was conducted during 2015–2016. Besides,laboratory experiments were conducted to determine the potential N loss risk. Three treatments were set up: control without N application(CK), regular urea treatment(RU, 150 kg N ha~(-1)), and slow-release urea treatment(SU, 150 kg N ha~(-1)). The results showed that rice biomass and grain yield were significantly higher in SU than in RU(P 0.05). The higher panicle density in SU was largely responsible for the greater grain yield. Net profit in SU was US$450 ha~(-1), higher than in RU. Agronomic efficiency was significantly greater in SU than in RU(P 0.05). Rice height, root area, leaf chlorophyll, leaf nitrate reductase activity, and leaf glutamine synthetase activity were larger in SU than in RU. Less N loss and greater soil N availability were partly responsible for the improvements in rice growth traits and physiological parameters in SU. Overall, the slow-release urea is a promising fertilizer for rice production.  相似文献   

14.
氮肥配施增效剂实现寒地水稻增产、提质与增效   总被引:1,自引:1,他引:0  
研究氮肥增效剂对寒地水稻产量、品质及氮素利用的影响,旨在为制定合理的稻田氮素管理措施及增产、提质和增效策略提供科学依据。2017年和2018年在黑龙江省方正县设置田间试验,研究氮肥配施硝化抑制剂和脲酶抑制剂对水稻产量、品质、氮素利用和转化及经济收益的影响。结果表明:尿素配施硝化抑制剂CP和脲酶抑制剂NBPT(N+NI+UI)显著提高水稻产量,2017年较氮肥处理(N)水稻籽粒、秸秆和总生物量分别增产6.4%,4.9%和5.8%,2018年分别增产8.8%,7.2%和8.2%。施用氮肥增效剂可以提高寒地水稻碾磨品质、外观品质和营养品质,并促进水稻氮素吸收,提高氮肥利用效率。与N处理相比,N+NI+UI处理水稻氮肥表观利用率、氮肥农学效率和氮肥偏生产力分别提高15.6%,19.1%和7.6%。CP和NBPT配施对氮素转化表现出明显的协同抑制效果,延迟和降低土壤NH4^+—N含量峰值,保持水稻生育期较高的NH4^+—N含量,延长了氮素供应时间。施用氮肥增效剂可使寒地水稻增收2499.08元/hm^2。可见,寒地水稻氮肥配施硝化抑制剂CP与脲酶抑制剂NBPT能够延长氮素释放周期,促进水稻氮素吸收,增加水稻产量,改善水稻品质,提高氮肥利用效率,增加经济效益。  相似文献   

15.
施用包膜尿素对水稻生长和氮磷流失的影响   总被引:8,自引:3,他引:5  
施用新型肥料是减少养分径流损失的重要途径。采用田间试验研究了施用包膜尿素对水稻生长和径流氮磷损失的影响,试验设置CK(习惯施肥)、PU1(减磷41%、减氮20%、施普通尿素)、PU2(PU1基础上减氮13%)、UR1(PU2基础上施包膜尿素)和UR2(UR1基础上减氮13%)5个处理。结果表明:PU1和UR1处理水稻氮磷含量与CK处理相近,PU1成熟期氮、磷总积累量比CK增加11.21,2.69kg/hm~2。PU1和UR1处理成熟期地上部生物量和籽粒产量高于CK处理,籽粒产量分别提高7.68%,5.77%。PU1、PU2、UR1和UR2处理径流总磷含量和累积流失量比CK处理低,减少13.18%~21.51%。施用包膜尿素(PU1、PU2)处理径流总氮、铵氮和硝氮含量低于施用普通尿素(CK、UR1、UR2)处理;稻田径流总氮、铵氮和硝氮累积流失量分别减少12.90%~26.91%,54.52%~49.38%和4.03%~15.95%,其中包膜尿素处理铵氮累积流失量显著(P0.05)小于普通尿素处理。施用包膜尿素和优化施肥能促进水稻对氮磷养分的吸收,提高水稻籽粒产量,显著减少稻田氮磷流失量,值得在水稻生产中推广应用。  相似文献   

16.
The aim of the study was to evaluate changes in the yield and nutritional characteristics of aromatic rice as influenced by organic versus mineral fertilization. Aromatic rice was grown on four levels of cattle manure (CM; 5, 10, 15, and 20 Mg ha?1). Other treatments were equivalent amounts of nitrogen (N), phosphorus (P), and potassium (K) in different levels of manure fertilizer and mineral fertilizer. After 6 years of cropping, organically managed plots were superior to mineral-fertilized plots in terms of grain yields of rice at 5, 10, and 15 Mg ha?1. Cattle manure at 20 Mg ha?1 and its equivalent NPK through mineral-fertilizer treatment provided 41.1% and 37.9% increases in average grain yield (5.2 and 5.1 Mg ha?1) over the unamended control. Protein content was greater in mineral-fertilized rice grains at all levels of CM. Soil dehydrogenase, β-glucosidae, urease, and acid phosphatase activities were greater in soil treated with CM than soil treated with the corresponding mineral fertilizer at all levels. There was buildup of soil-available N, K, and iron (Fe) in soils treated with CM. Grain hardness increased with increasing rates of nutrient application for both mineral-fertilized and organically grown rice; in contrast, amylose content was lower in treatments receiving more nutrients, irrespective of nutrient sources. In terms of functional property, phenol content in rice grain increased with increasing nutrient supply. Potassium and Fe contents were more in CM-treated rice than in mineral-fertilized treatments at greater rates of application. Results suggest that after building up the soil nutrient status, comparable yield and better nutritional and functional qualities of rice can be achieved in organically managed soils than in mineral-fertilized soils.  相似文献   

17.
  【目的】  研究不同氮肥基追比例对小麦籽粒蛋白组分、氮素利用效率和产量的影响,为黑龙港流域小麦高效施用氮肥提供理论依据。  【方法】  以济麦22和藁优2018为供试品种进行了2年小麦田间试验。以不施氮肥(N0)为对照,在等氮肥用量条件下设氮肥基追比3∶7 (N3:7)、4∶6 (N4:6)、5∶5 (N5:5)和6∶4 (N6:4) 4个处理,氮肥追施在拔节期随灌溉一起进行。分析小麦生长关键时期的植株干物质和氮素积累量、籽粒总蛋白质含量及蛋白组分含量、氮肥效率和籽粒产量。  【结果】  随氮肥基追比例的提升,两小麦品种的植株干物质和氮素积累量均呈先增后减的趋势。随生育期的推进,两小麦品种的植株干物质积累速率呈先升后降的趋势,而氮素积累速率呈“升―降―升”的趋势。拔节至挑旗期是小麦干物质和氮素积累的主要阶段,至成熟期藁优2018和济麦22分别以N4:6和N5:5处理的干物质和氮素积累量最高。N4:6处理的藁优2018具有最高的籽粒清蛋白、球蛋白、谷蛋白含量,籽粒总蛋白质含量较其他处理显著增加3.66%~10.76%,籽粒产量是其他处理的1.07~1.13倍,氮肥偏生产力、氮肥回收率和氮肥农学效率均显著提升。N5:5处理的济麦22籽粒清蛋白、球蛋白、醇溶蛋白、谷蛋白和总蛋白质含量分别较其他处理高2.55%~4.78%、4.11%~16.92%、3.42%~10.39%、1.35%~10.32%和2.95%~10.06%,籽粒产量是其他氮肥处理的1.03~1.08倍,氮肥回收率显著增加。在挑旗—成熟期,藁优2018的氮素积累速率与济麦22相比较高,籽粒蛋白组分含量较济麦22高出1.17%~5.72%;而济麦22各氮肥处理的籽粒产量比藁优2018增加5.4%~15.21%。  【结论】  满足小麦氮素积累特性的氮肥基追比有利于小麦的高产优质。中筋小麦 (济麦22) 品种在挑旗至成熟期氮素积累速率变小,氮肥基追比为5∶5较为适宜,而强筋小麦 (藁优2018) 品种氮素积累速率大,氮肥基追比提高到4∶6,可以促进小麦高产和增加蛋白含量。  相似文献   

18.
ABSTRACT

Field experiments were conducted in the major rice growing area of Chile to evaluate the effects of nitrogen (N) fertilization and site on grain yield and some yield components, dry matter production, N uptake, and N use efficiency in rice cultivar ‘Diamante’. Two sites (indicated as sites 1 and 2) and six N rates (0, 50, 100, 150, 200, and 300 kg N ha?1) were compared. Nitrogen fertilization increased yield, panicle density, spikelet sterility, dry matter production, and N uptake at maturity. 90% of maximum yield was obtained with 200 kg N ha?1 in site 1 (12,810 kg ha?1) and with 100 kg N ha?1 in site 2 (8,000 kg ha?1). These differences were explained by lower panicle density, and the resulting lower dry matter production and N uptake in site 2. Nitrogen use efficiency for biomass and grain production, and grain yield per unit of grain N decreased with N fertilization. While, agronomic N use efficiency and N harvest index were not affected. All N use efficiency indices were significantly higher in site 1, except grain yield per unit of grain N. The observed variation in N use efficiency indices between sites would reflect site-specific differences in temperature and solar radiation, which in turn, determined yield potentials of each site. On the basis of these results, cultivar ‘Diamante’ would correspond to a high-N use efficiency genotype for grain yield.  相似文献   

19.
This study investigates the effect of rice nitrogen (N) management on the dynamics of plant nitrogen accumulation (PNA) during internodal elongation (IE) in relation to grain yield. Four field experiments were conducted in two soils with six preflood N treatments. The PNA was monitored for 3 weeks, starting at the beginning of IE (BIE). The PNA explained 54–72% of yield variability. The effect of midseason N application on yield varied with fields, indicating a need for assessing midseason N requirement for each field. One week after BIE was a better time to assess the N requirement of rice crop. The greatest grain yields in Cocodrie and Wells cultivars corresponded to PNA of 10.9 and 11.1 g m?2 at BIE. A midseason application of 50 kg N ha?1 as urea at 7–10 days after BIE increased the rice yield in the Glossaqualfs field when the PNA at BIE was less than 8.3 g m?2.  相似文献   

20.
为探索强筋小麦施用氮肥的合理基追比模式,在山西中部麦区水地小麦田,研究了氮肥基施、拔节期追施和孕穗期追施的不同比例(10∶0∶0,7∶3∶0,7∶2∶1,6∶4∶0,6∶2∶2,5∶5∶0,5∶3∶2)对强筋小麦CA0547氮素积累转运及籽粒产量与品质的影响。结果表明:(1)适当追氮对强筋小麦CA0547氮素与干物质积累转运及产量品质有显著的调节效应。(2)追氮能显著提高小麦拔节期后的含氮量,提高花前氮素转运量和花后氮素积累量,促进氮素向籽粒中的累积,同时增加花前干物质转运量和花后干物质积累量,为产量提高提供了物质基础。(3)籽粒氮素中约有68.38%~75.18%是来自花前氮素转运,籽粒产量中约有55.12%~70.04%是来自花后干物质积累。追氮通过显著增加穗数和穗粒数来提高产量,并提高氮素吸收效率和氮素生产效率。(4)追氮可提高籽粒醇溶蛋白、谷蛋白、总蛋白质和湿面筋含量,提高面筋指数和淀粉含量,改善谷醇比和直/支比,进而改善籽粒品质。相关分析亦表明,提高干物质花后积累量与花前氮素转运量可以改善小麦品质。(5)拔节期和孕穗期2次施氮效果不如拔节期1次追施。综合分析得出,在本试验条件下,施氮量150kg/hm~2时,基肥、拔节肥、孕穗肥比例为6∶4∶0能较好的协调产量品质之间的关系。  相似文献   

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