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1.
灌溉量和施氮量对冬小麦产量和土壤硝态氮含量的影响   总被引:3,自引:1,他引:2  
Jiang DY  Yu ZW  Xu ZZ 《应用生态学报》2011,22(2):364-368
研究了大田条件下灌溉量和施氮量对小麦产量和土壤硝态氮含量的影响.结果表明:增加灌溉量,0~200 cm土层硝态氮含量呈先降后升又降的趋势.0~80 cm土层硝态氮含量显著低于对照,而80~200 cm土层硝态氮含量显著高于对照.随灌溉量的增加,土壤硝态氮向深层运移加剧,在成熟期,0~80 cm土层硝态氮含量降低,120~200 cm土层硝态氮含量升高,并在120~140 cm土层硝态氮含量出现高峰.灌溉量不变,施氮量由210 kg·hm-2增加到300 kg·hm-2,开花期、灌浆期、成熟期0~200 cm各土层土壤硝态氮含量显著升高.随灌溉量的增加,小麦籽粒产量先增加后降低,以全生育期灌溉量为60 mm的处理籽粒产量最高.增加施氮量,籽粒产量、蛋白质含量和蛋白质产量显著提高.本试验中,施氮量为210 kg.hm-2、两次灌溉总量为60 mm的处理籽粒产量、蛋白质含量、蛋白质产量和收获指数均较高,且土壤硝态氮损失少,是较合理的水氮运筹模式.  相似文献   

2.
施氮时期对玉米土壤硝态氮含量变化及氮盈亏的影响   总被引:23,自引:3,他引:23  
在“郑单 95 8”(9株 / m2 )组成的土 -植系统 ,研究了不施氮、基施氮 10叶展追氮、基施氮 吐丝期追氮和基施氮 乳熟期追氮共 4个处理下 0~ 2 0 0 cm的土壤 NO- 3- N含量在夏玉米生长期间的变化和土壤氮素的表观盈亏量 ,结果表明 :2 0 cm以上的土壤 NO- 3- N含量以大口期为界、2 0 cm以下的土壤 NO- 3- N含量以吐丝期为界前降后升。在 0~ 2 0 cm土层 ,与不施氮相比 ,施氮能增加土壤 NO- 3- N含量 ,而且吐丝期和乳熟至成熟阶段的 NO- 3- N含量在 10叶展期和吐丝期各自追氮后均显著增加。在 2 0~4 0 cm土层 ,乳熟期的 NO- 3- N含量施氮后明显比不施氮高。在 80 cm以下土层 ,施氮后的土壤 NO- 3- N含量明显比不施氮高 ;追氮期相比 ,后一追氮处理在乳熟期和成熟期的 NO- 3- N含量均比前一追氮处理明显增加 ,其中成熟期基施氮 乳熟期追氮处理在 16 0~ 2 0 0 cm土层的 NO- 3- N含量比基施氮 吐丝期追氮处理 (为 2 5 .3m g N/ kg(干土 ) )高 16 %。土壤氮素的表观盈余发生在吐丝期之前且 80 %以上盈余量出现在大口期前 ,表观亏损出现在吐丝期以后且其亏损量在乳熟期前后各占一半。经玉米季后 ,本试验中不施氮处理出现表观盈余 (为 5 6 .3kg N/ hm2 ) ;施氮后表观盈余量增加 ,主要是施氮减少了吐丝以后  相似文献   

3.
以郑单958为材料,在高产田和中产田两种地力水平下,利用15N标记法研究了施氮量对夏玉米氮素分配率、利用率和碳氮代谢的影响.结果表明:高产田适量施氮可以提高玉米产量,过量施氮没有表现出进一步增产效果,其氮肥利用率较低(29 04%).中产田随施氮量的增加产量提高,但氮素利用率却降低.各个器官15N积累量依次为籽粒>叶片>茎>根>叶鞘>穗轴.在高产田,当施氮量超过300kg·hm-2时,玉米籽粒和叶片中积累15N有所下降,而茎和根中积累15N的量随施N量的增加而增加;在中产田,随着施N量的增加,籽粒和穗轴积累15N量均相应增加.高产田叶片的硝酸还原酶活性、谷氨酰胺合成酶活性和蔗糖磷酸合成酶活性以及籽粒中蔗糖合成酶活性和酸性转化酶活性均是施氮300kg·hm-2时最大,施氮450 kg·hm-2则抑制了其活性的增强,而中产田的各个酶活性则随着施氮量的增加而增加.  相似文献   

4.
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   

5.
石玉  于振文 《生态学报》2006,26(11):3661-3669
研究了高产麦田中施氮量和底追比例对冬小麦籽粒产量、土壤硝态氮含量和氮素平衡的影响。田间试验在山东省龙口市中村进行,试验区小麦各生育阶段的降雨量和零度以上的积温分别为:82.9mm,649.8℃(播种~冬前)、33.3mm,578.7℃(冬前~拔节)2、8mm,359℃(拔节~开花)、84.3mm,837.6℃(开花~成熟)。试验设3个施氮量:0kg.hm-2(CK)、168kg.hm-2(A)、240kg.hm-2(B);在施氮量168kg.hm-2和240kg.hm-2条件下分别设3个底追比例:1/2∶1/2(A1和B1)、1/3∶2/3(A2和B2)、0∶1(A3和B3)。结果表明:不同施氮处理之间植株氮积累量无显著差异;与不施氮处理相比,施氮可显著提高籽粒产量和蛋白质含量,施氮量为168kg.hm-2、底追比例为1/3∶2/3的处理A2与处理B2、B3差异不显著,但处理A2显著提高了氮肥利用率,降低了土壤残留量和氮素表观损失量;施氮量相同,适当增加追施氮肥的比例可显著提高籽粒产量、蛋白质含量和氮肥利用率。试验还表明,在拔节期,底施氮量为84kg.hm-2和120kg.hm-2的处理A1、B1,在80~100cm和100~160cm土层分别出现硝态氮的累积;而底施氮量为56kg.hm-2的处理A2,在0~200cm土层硝态氮含量和累积量与不施氮处理无显著差异。在成熟期,追施氮量大于160kg.hm-2的处理B3、A3和B2,硝态氮在120~180cm土层出现累积高峰,已下移到小麦根系可吸收范围之外,易于造成淋溶损失;而追氮量为112kg.hm-2的处理A2,在100~200cm土层硝态氮累积量与对照无显著差异。试验中,施氮量为168kg.hm-2底追比例为1/3∶2/3的处理A2的籽粒产量、蛋白质含量、地上部植株氮肥吸收利用率、氮肥农学利用率和籽粒氮肥吸收利用率均较高,100~200cm土层未出现硝态氮的明显累积,氮素表观损失量最少,为最佳氮肥运筹方式。  相似文献   

6.
种植密度和施氮水平对小麦吸收利用土壤氮素的影响   总被引:9,自引:0,他引:9  
2011-2013小麦季,在大田条件下设置2个氮肥水平(180和240kgN· hm-2)和3个种植密度(135、270和405万·hm-2),并将15N-尿素分别标记在20、60和100 cm土层处,研究种植密度-施氮互作对小麦吸收、利用土壤氮素及硝态氮残留量的影响.结果表明:种植密度从135万·hm-2增加至405万·hm-2,小麦在20、60和100 cm土层的15N吸收量分别增加1.86、2.28和2.51 kg·hm-2,地上部氮素积累量和吸收效率分别提高12.6%和12.6%,氮素利用效率降低5.4%;施氮量由240 kg N·hm-2降至180 kg N·hm-2,小麦在20、60 cm土层的15N吸收量分别降低4.11和1.21 kg·hm-2,在100 cm土层的15N吸收量增加1.02 kg·hm-2,地上部氮素积累量平均降低13.5%,氮素吸收效率和利用效率分别提高9.4%和12.2%.施氮180kg N·hm-2+种植密度为405万·hm-2处理与施氮240 kg N·hm-2+种植密度为270或405万·hm-2处理相比,其籽粒产量无显著差异,深层土壤氮素的吸收量显著提高,氮素吸收效率和利用效率分别提高13.4%和11.9%,O~ 200 cm土层的硝态氮积累量及100~ 200 cm土层硝态氮分布比例降低.在适当降低氮肥用量条件下,通过增加种植密度可以促进小麦吸收深层土壤氮素,减少土壤氮素残留,并保持较高的产量水平.  相似文献   

7.
赵俊晔  于振文 《生态学报》2006,26(3):815-822
在土壤肥力不同的两块高产田上,利用15N示踪技术,研究了高产条件下施氮量对冬小麦氮肥吸收利用、籽粒产量和品质的影响,及小麦生育期间土壤硝态氮含量的变化.结果表明:1.成熟期小麦植株积累的氮素73.32%~87.27%来自土壤,4.51%~9.40%来自基施氮肥,8.22%~17.28%来自追施氮肥;随施氮量增加,植株吸收的土壤氮量减少,吸收的肥料氮量和氮肥在土壤中的残留量显著增加,小麦对肥料氮的吸收率显著降低;小麦对基施氮肥的吸收量、吸收率和基施氮肥在土壤中的残留量、残留率均显著小于追施氮肥,基施氮肥的损失量和损失率显著大于追施氮肥;较高土壤肥力条件下,植株吸收更多的土壤氮素,吸收的肥料氮量较少,土壤中残留的肥料氮量和肥料氮的损失量较高,不同地块肥料氮吸收、残留和损失的差异主要表现在基施氮肥上.2.当施氮量为105 kg/hm2时,收获后0~100cm土体内未发现硝态氮大量累积,随施氮量增加,0~100cm土体内硝态氮含量显著增加;施氮量大于195 kg/hm^2时,小麦生育期间硝态氮呈明显的下移趋势,土壤肥力较高地块,硝态氮下移较早,下移层次深.3.随施氮量增加,小麦氮素吸收效率和氮素利用效率降低,适量施氮有利于提高成熟期小麦植株氮素积累量、籽粒产量和蛋白质含量;施氮量过高籽粒产量和蛋白质含量不再显著增加,甚至降低;较高土壤肥力条件下,获得最高籽粒产量和蛋白质含量所需施氮量较低.  相似文献   

8.
施氮对高产小麦群体动态、产量和土壤氮素变化的影响   总被引:8,自引:2,他引:8  
选用多穗型小麦品种豫麦49-198和大穗型小麦品种兰考矮早八,以河南温县和兰考为试验地点,在0、90、180、270、360Nkg.hm-2水平下,通过田间试验对小麦群体动态、产量和土壤氮素变化进行了研究.结果表明:两个品种小麦都是从出苗开始群体数量不断增加,到拔节期达到最大,然后开始下降.在不同施氮水平和试验点间,豫麦49-198在越冬期和返青期群体数量没有显著差异,拔节以后不同氮水平间群体数量差异显著;而兰考矮早八在所有生育时期,不同施氮水平间群体数量都没有显著差异.随氮肥用量的增加,小麦产量增加,但过量施氮则使小麦产量下降,豫麦49-198以270Nkg.hm-2水平下产量最高,在温县和兰考点分别为9523和9867kg.hm-2,兰考矮早八以180Nkg.hm-2水平下产量最高,在温县和兰考点分别为9258和9832kg.hm-2.随着氮肥用量的增加,土壤硝态氮含量和氮素表观损失增加,豫麦49-198在温县和兰考点的氮素表观损失分别占氮肥用量的32.56%~51.84%和-16.70%~42.60%,兰考矮早八则分别占氮肥用量的18.58%~52.94%和-11.50%~45.80%.在本研究条件下,兼顾产量和环境效应,0~90cm土壤硝态氮累积量不应超过120~140kg.hm-2,小麦氮用量不能超过180kg.hm-2.  相似文献   

9.
华北地区夏玉米土壤硝态氮的时空动态与残留   总被引:43,自引:3,他引:40  
为了进一步明确华北地区冬小麦-夏玉米种植体系周年氮肥利用效率及其影响因素与机制,在试验区夏玉米生育期年均降雨量400mm左右,轻壤质底粘潮土中等土壤肥力条件下,通过设计不同施氮量(0、90、180、270kgN/hm2)处理,重点研究了夏玉米大田土壤硝态氮动态与残留积累情况。试验结果表明,夏玉米根系生物量最大值出现在吐丝期,最大根系分布深度约为1.2m。根干重密度(g/m3)随土壤深度增加而明显降低。根群主要分布在表土层,0~80cm土体根重比例达95%以上,1m以下根重比例不足1%。土壤硝态氮测定表明,从播种前到收获期,各施氮量处理(0、90、180、270kgN/hm2)2m土体土壤硝态氮平均含量均表现出“N”型曲线变化趋势。在玉米收获期,施氮处理(90~270kgN/hm2)2m土体均有明显的硝态氮残留积累,并且残留积累量随着施氮量增加而增大,施氮处理下层土壤(120~200cm)硝态氮残留积累量比不施氮处理高出50.4~95.4kgNO3-N/hm2。这说明,在玉米生育期降水影响下氮肥发生了淋溶,有部分氮肥已经向下移出玉米根区以外,积累在下层土壤中。这些残留积累在下层土壤中的硝态氮对于玉米来说很难被吸收利用,不仅降低了氮肥的利用率,也成为污染地下水的潜在隐患。分析表明,各施氮处理籽粒产量和植株吸氮量都显著大于不施氮处理,但施氮处理之间比较,籽粒产量和植株吸氮量并无显著差异。90kgN/hm2、180kgN/hm2和270kgN/hm2施氮处理下,氮肥表观利用率分别为11.52%、13.37%、9.93%。根据本研究结果,从小麦-玉米种植体系考虑,玉米根区以下残留积累氮素的回收利用是提高周年氮肥利用率的一个重要方面,值得进一步研究。  相似文献   

10.
杨荣  苏永中 《生态学报》2009,29(3):1459-1469
在黑河中游边缘绿洲沙地农田研究了不同的水氮配合对玉米产量、土壤硝态氮在剖面中的累积和氮平衡的影响.结果表明,施氮处理较不施氮处理产量增加48.22%~108.6%,施氮量超过225 kg hm-2,玉米产量不再显著增加.受土壤结构影响土壤硝态氮在土壤中呈"W"型分布,即土壤硝态氮含量在0~20 cm、140~160 cm和260~300 cm土层均出现峰值,并随施氮量增加,峰值增高.在常规高灌溉量处理硝态氮含量峰值最高值出现在260~300 cm土层,节水25%灌溉处理硝态氮含量峰值最高值出现在土壤表层0~20 cm土层.在常规高灌溉量处理0~300 cm土层中200~300土层硝态氮累积量所占比例最高,介于27.56%~51.86%之间;节水25%灌溉处理在0~300 cm土层中100~200土层硝态氮累积量所占比例最高,介于32.94%~38.07%之间;表明低灌溉处理下土壤硝态氮在土壤浅层累积较多,而高灌溉处理使更多的硝态氮淋溶至土壤深层.与2006年相比,2007年不施氮处理0~200 cm土层土壤硝态氮含量和积累量均明显减少;而施氮处理变化很小,在低灌溉处理甚至表现出硝态氮含量和积累量增加,表明施氮是土壤硝态氮累积的主要来源,而灌溉则使硝态氮向土壤深层淋溶.0~200 cm 土层土壤硝态氮累积量平均介于27.66~116.68 kg hm-2、氮素表观损失量平均介于77.35~260.96 kg hm-2,和施氮量均呈线性相关,即随施氮量增加,土壤硝态氮累积量和氮素表观损失量均增加,相关系数R2介于0.79~0.99之间,相关均显著.随施氮量增加,玉米总吸氮量和氮收获指数增加,氮的农学利用率降低,而灌溉的影响较小.施氮量超过225 kg hm-2时,地上部植株氮肥吸收利用率和籽粒氮肥吸收利用率开始有降低趋势.所以,在沙地农田,节水10%~25%的灌溉水平和225 kg hm-2的施氮水平可以在避免水肥过量投入的基础上减少土壤有机氮淋溶对地下水造成的污染威胁.  相似文献   

11.
在成都平原通过 3a的田间试验研究了水稻覆盖 (地膜和麦秸 )旱作和施氮水平对稻麦轮作体系生产力和氮素利用的影响。结果表明 :在施氮量为水稻季 15 0 kg/hm2 ,小麦季 12 0 kg/hm2 的条件下 ,覆盖旱作和传统淹水体系均能达到较高的产量水平。再增加施氮量对产量的影响不大 ,但使氮盈余急剧增加。不施氮或低量施氮会造成作物产量的显著下降和土壤氮素亏缺。水稻覆膜旱作对稻麦轮作的系统生产力 (水稻 小麦 )没有显著影响 ;但水稻覆麦秸旱作条件下系统的生产力有降低的趋势 ,主要由于水稻覆麦秸旱作条件下 ,水稻产量下降 ,而麦秸覆盖在小麦季的后效作用不足以弥补水稻产量的下降程度。水稻、小麦的氮素吸收表现出与作物产量类似的规律。水稻季土壤很难累积无机氮 ,而且与施肥和覆盖旱作与否没有关系。小麦季土壤中积累了较多的无机氮 ,而且随施氮水平的增加而明显增加  相似文献   

12.
Experiments were conducted in fields which had a history of nil to four rice (Oryza sativa L.) crops during the previous four summers. Incorporating stubble after each harvest reduced soil nitrate-N content between crops, but increased soil N mineralization potential. During the fourth successive crop, plots where stubble had been incorporated after the previous three harvests had an average 21% more soil NH4N and 22% more N uptake than plots where stubble had been burnt.Soil fertility fell rapidly with increasing numbers of crops, and the unfertilized fifth crop accumulated approximately half the N (60 kg N ha-1) found in the unfertilized first crop (116 kg). Fertilizer N alleviated the effects of annual cropping; the application of 210 kg N ha-1 to the fifth crop (uptake of 156 kg N ha-1) resulted in similar N uptake to the first crop fertilized with 50 kg N ha-1 (154 kg N ha-1).Applying N at sowing had no significant effect on soil NH4-N concentration after permanent flood (PF), while N application at PF resulted in increased NH4-N concentration and N uptake until panicle initiation (PI). N applied at PI increased soil NH4-N concentration at least until the microspore stage.Management factors such as stubble incorporation and increasing N application rate, maintained N supply and enabled successive rice crops to accumulate similar quantities of N at maturity.  相似文献   

13.
The effect of ectomycorrhizal association of Pinus pinaster with Hebeloma cylindrosporum was investigated in relation to the nitrogen source supplied as mineral (NH4+ or NO3?) or organic N (L ‐glutamate) and at 5 mol m?3. Plants were grown for 14 and 16 weeks with mineral and organic N, respectively, and samples were collected during the last 6 weeks of culture. Total fungal biomass was estimated using glucosamine amount and its viability was assessed using the glucosamine to ergosterol ratio. Non‐mycorrhizal plants grew better with NH4+ than with NO3? and grew very slowly when supplied with L ‐glutamate. The presence of the fungus decreased the growth of the host plant with mineral N whereas it increased it with L ‐glutamate. Whatever the N source, most of the living fungal biomass was associated with the roots, whereas the main part of the total biomass was assayed outside the root. The form of mineral N did not significantly affect N accumulation rates over the 42 d in control plants. In mycorrhizal plants grown on either N source, the fungal tissues developing outside of the root were always the main N sink. The ectomycorrhizal association did not change 15NH4+ uptake rate by roots, suggesting that the growth decrease of the host‐plant was related to the carbon cost for fungal growth and N assimilation rather than to a direct effect on NH4+ acquisition. In contrast, in NO3?‐grown plants, in addition to draining carbon for NO3? reduction the fungus competed with the root for NO3? uptake. With NH4+ or NO3? feeding, although mycorrhizal association improved N accumulation in shoots, we concluded that it was unlikely that the fungus had supplied the plant with N. In L ‐glutamate‐grown plants, the presence of the fungus increased the proportion of glutamine in the xylem sap and improved both N nutrition and the growth rate of the host plant.  相似文献   

14.
Høgh-Jensen  H.  Schjoerring  J.K. 《Plant and Soil》1997,197(2):187-199
Seasonal variation in N2 fixation, N transfer from clover to ryegrass, and soil N absorption in white clover–ryegrass swards were investigated under field conditions over three consecutive years. The plots were established with different seeding ratios of clover and ryegrass and contrasting fertilizer N ranging from 3 to 72 kg ha-1 year-1.An initially poor clover population needed at least one growing season to reach the same yield output as an initially well established clover population. The clover content of the sward decreased by the annual application of 72 kg N ha-1 but not by smaller N dressings.The total amount of atmospherically derived N in clover growing in mixture with ryegrass was, on average over the three years equal to 83, 71, 68 and 60 kg N ha-1 for the treatments of 3, 24, 48 and 72 kg N ha-1, respectively. The proportion of atmospherically derived N declined with increasing N application, but never became smaller than 80% of total clover N. The proportion of atmospherically derived N in a pure stand white clover amounted to 60–80% of the total N content, equivalent to 109, 110, 103 and 90 kg N ha-1 for the treatments of 3, 24, 48 and 72 kg N ha-1, respectively.Only small amounts of atmospherically derived N was transferred to the associated ryegrass during the first production year, while in each of the following years up to 21 kg ha-1 was transferred. The average amount of N transferred from clover to ryegrass was equivalent to 3, 16 and 31% of the N accumulated in ryegrass in the first, second and third production year, respectively. Expressed relative to the total amount of fixed N2 in the clover–ryegrass mixture, the transfer amounted to 3, 17 and 22% in the first, second and third production year, respectively. Thus transfer of atmospherically derived N from clover contributed significantly to the N economy of the associated ryegrass.The clover–ryegrass mixture absorbed constantly higher amount of soil derived N than the pure stands of the two species. Only 11% of the total accumulated fertilizer N and soil derived N in the mixture was contained within the clover component. Lower water use efficiencies for the plants grown in mixture compared to pure stands were mainly related to the increased N uptake in the mixture, with the subsequent increase in growth compared to the pure stands.It is concluded that positive interactions between clover and ryegrass growing in mixture ensure a more efficient fixation of atmospheric N2 and absorption of fertilizer N and soil derived N than pure stands of the same species.  相似文献   

15.
The distribution of 15N and 14N compounds in cryofixed and resin embedded sections of soybean (Glycine max L) leaves was studied by SIMS microscopy. The results indicate that, with a mass resolution MM higher than 6000, images of the nitrogen distribution can be obtained from the mapping of the two secondary cluster ions 12C14N? and 12C15N?, in samples of both control and 15N-labeled leaves. The ionic images were clearly related to the histological structure of the organ, and allow the detection of 14N and 15N at the subcellular level. Furthermore, relative measurements of the 12C14N? and 12C15N? beams made possible the quantification of the 15N atom% in the various tissues of the leaf.  相似文献   

16.
由全球变化和工农业生产引发的大气氮沉降增加已经对生态系统结构和功能产生了不可忽视的影响, 但是氮沉降的组成成分存在多种形态, 不同形态的氮对生态系统的结构与功能的影响是否有差异目前还不清楚。因此, 该研究选择内蒙古草甸草原开展不同形态和不同水平的外源氮添加试验, 每年添加5种不同形态的氮肥, 包括: 尿素、碳酸氢铵、硝酸铵、硫酸铵、缓释尿素, 添加量分别为: 0 (N0)、2 (N2)、5 (N5)、10 (N10)、20 (N20)及50 (N50) g·m -2·a -1, 均为纯氮添加量。通过野外原位取土、室内控制温度和水分(25 ℃和60%田间持水量)的培养试验测定土壤净氮矿化(mg·kg -1·h -1)潜力、土壤微生物呼吸(μg·g -1·h -1)潜力、土壤微生物生物量碳(氮)(mg·kg -1)的潜力以及土壤碳(g·kg -1)、氮(g·kg -1)、磷(g·kg -1)含量等指标, 研究添加不同形态和不同水平的氮对土壤净氮矿化潜力的影响。试验结果表明: (1)短期内不同形态、不同水平的氮添加改变了土壤中无机氮的含量、铵态氮和硝态氮的累积量, 并且表现出铵态氮肥的促进作用比硝态氮肥更加显著, 铵态氮的累积显著提高了土壤净氮矿化潜力, 短期铵态氮和硝态氮的累积可增加微生物和植物对有效氮的快速固持; (2)不同形态、不同水平氮添加导致土壤微生物活性发生改变, 包括土壤微生物生物量碳(MBC)含量、微生物生物量氮(MBN)含量及其碳氮比(MBC:MBN), 并且在低水平氮添加下显著增强土壤微生物的呼吸速率, 高水平氮添加显著降低微生物呼吸速率和呼吸熵; (3)不同形态、不同水平氮添加短期内对土壤含水量、土壤有机碳含量、土壤全磷含量、土壤全氮含量无显著影响, 但是高水平氮添加不仅提高了速效磷的含量, 而且导致土壤迅速酸化。室内培养净氮矿化潜力的结果进一步验证了内蒙古草甸草原受氮限制, 添加中低水平的氮可以通过提高土壤微生物的活性而增加该地区草原土壤的净氮矿化潜力, 从而提高草地生产力。  相似文献   

17.
Wheat (Triticum aestivum L.) was grown in nutrient solution with low or high N supply (NH4NO3 as N source). To further evaluate the influence of N form and its interaction with the nutrient solution pH, wheat plants were grown with NH 4 + or NO 3 - either in an conventional nutrient solution or in a nutrient solution in which the pH was maintained at pH 6.5 using a pH-stat system. The nutrient solution was inoculated with Pseudomonas fluorescens 2-79RLI, a genetically modified bacterium that contains lux genes activated by a ribosomal promoter. Cell numbers and physiological status of P. fluorescens 2-79RLI (length of the lag phase of bioluminescence) in the rhizosphere were determined at the root tip and in the lateral root zone. Nitrogen deficiency decreased both plant growth and root colonization by P. fluorescens 2-79RLI at the root tip while it had no effect on root colonization in the lateral root zone. The physiological status of P. fluorescens 2-79RLI was not affected by nitrogen deficiency. Ammonium nutrition increased root colonization by P. fluorescens 2-79RLI at the root tip and in the lateral root zone when the pH of the nutrient solution was allowed to change according to the N form provided. Under these conditions, the physiological status of P. fluorescens 2-79RLI was higher in the lateral root zone than at the root tip. In contrast, N source had no effect on root colonization or physiological status of P. fluorescens 2-79RLI in the nutrient solution maintained at pH 6.5. It is concluded that the stimulation of root colonization by NH 4 + in the nutrient solution, not maintained at a constant pH, may be due to increased leakage of solutes into the rhizosphere as a result of impaired exudate retention by high H+ concentration in the rhizosphere or the apoplast. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

18.
Two irrigation systems were used to compare nitrogen uptake efficiency in citrus trees and to evaluate the NO3 runoff in «Navelina» orange trees [Citrus sinensis (L.) Osbeck] on Carrizo citrange rootstock (Citrus sinensis × Poncirus trifoliata Raf.). These were fertilized with 125 g N as labelled K15NO3 and grown outdoors in containers filled with a sand-loamy soil. Two groups of 3 trees received this N dose either in five equally split applications by a flooding irrigation system or in 66 applications by drip. Trees were harvested at the end of the vegetative cycle (December) and the isotopic ratios of 15N/14N were measured in the soil-plant system. The N uptake efficiency of the whole tree was higher with drip irrigation (75 percnt;) than with flooding system (64 percnt;). In the 0-90 cm soil profile, the N immobilized in the organic fraction was similar for both irrigation methods (around 13 percnt;), whereas the N retained as NO3 was 1 percnt; of the N applied under drip and 10 percnt; under flooding. In the last case, most of NO3 remained under root system and it could be lost to leaching either by heavy rainfalls or excessive water applications. These results showed that a drip irrigation system was more efficient for improving water use and N uptake from fertilizer, in addition to potentially reduced leaching losses.  相似文献   

19.
氮磷添加对亚热带常绿阔叶林土壤氮素矿化的影响   总被引:2,自引:0,他引:2  
赵阳  张驰  赵竑绯  徐小牛 《生态学杂志》2013,32(7):1690-1697
设计了2种处理(即氮添加,100 kg N·hm-2·a-1;氮磷添加,100 kgN·hm-2·a-1+50kgP·hm-2·a-1),研究了氮磷添加对亚热带北部常绿阔叶林土壤无机氮和氮素矿化的影响.结果表明,不同处理0 ~ 10 cm和10 ~ 20 cm土层无机氮(铵态氮+硝态氮)含量年平均值分别为:对照7.27和6.80 mg·kg-1、氮添加13.94和8.92 mg·kg-1、氮磷添加11.20和7.13 mg·kg-1,其中铵态氮分别占90.66%和91.15%、65.78%和72.85%、84.64%和85.08%.不同处理0~10 cm和10 ~20 cm土层的净氨化、净硝化和净氮矿化速率具有相似的季节性变化规律,即夏季氮素净转化速率最高,冬季氮素净转化速率最低,春季和秋季氮素净转化速率有一定差异,但不显著.研究表明,养分添加使土壤年平均净氮矿化速率下降,氮添加使土壤硝化速率下降,氨化速率上升;而氮磷添加使硝化速率上升,氨化速率下降.养分添加对森林生态系统的氮动态影响效应尚需长期定位观测.  相似文献   

20.
朱锦惠  董艳  肖靖秀  郑毅  汤利 《生态学杂志》2017,28(12):3985-3993
通过田间小区试验,设N0(0 kg·hm-2)、N1(112.5 kg·hm-2)、N2( 225 kg·hm-2)、N3( 337.5 kg·hm-2) 4个施氮水平,研究不同施氮水平下小麦与蚕豆间作对小麦白粉病发生、植株氮含量和氮素累积分配的影响,探讨间作系统氮肥调控下小麦植株氮素含量、氮素累积分配与白粉病发生的关系.结果表明: 无论单作还是间作,施氮(N1、N2和N3)均增加了小麦籽粒产量,以N2水平下产量最高,单、间作分别为4146和4679 kg·hm-2;施氮加重了小麦白粉病的发生与危害,N1、N2和N3水平下病害进展曲线下的面积(AUDPC)分别平均增加39.6%~55.6%(基于发病率DI)和92.5%~217.0%(基于病情指数DSI),病情指数受氮素调控的影响较发病率大;施氮显著提高小麦植株氮含量(8.4%~51.6%)和氮素累积量(19.7%~133.7%),对氮素分配比例无显著影响.与单作相比,间作小麦产量平均增加12.0%;AUDPC(DI)和AUDPC(DSI)分别平均降低11.5%和30.7%,间作对病情指数的控制效果优于发病率.间作显著降低发病盛期小麦氮含量、阶段累积量和叶片中氮素分配比例(降幅6.6%~12.5%、1.4%~6.9%和9.0%~15.5%).在本研究条件下,兼顾控病效果和产量效应,小麦施氮量不应超过225 kg·hm-2.  相似文献   

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