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1.
选择黄河口北部滨岸高潮滩的碱蓬湿地为研究对象,基于野外原位氮(N)输入模拟试验,研究了不同氮输入梯度下(N0,无氮输入;N1,低氮输入,9.0 gN m~(-2)a~(-1);N2,中氮输入,12.0 gN m~(-2)a~(-1);N3,高氮输入,18.0 gN m~(-2)a~(-1))碱蓬湿地植物-土壤系统全硫(TS)分布特征的差异。结果表明,外源N输入明显改变了湿地土壤TS含量的分布状况。随着N输入量的增加,除表层TS含量变化不明显外,其他土层均呈增加趋势。不同氮输入处理下植物各器官的TS含量整体均表现为叶茎根,叶是硫的主要累积器官。尽管氮输入处理并未改变植被的硫分配格局以及其地上与地下之间的硫养分供给关系,但其为适应不同养分环境可进行自身生长特性及养分分配的调整,且这种调整在N2处理下表现的尤为明显。随氮输入量的增加,不同氮处理下植物-土壤系统的S储量整体呈增加趋势,但土壤S储量的增幅远低于植物亚系统S储量的增幅以及N供给的增幅,说明N、S之间的养分供给存在不同步性。研究发现,未来黄河口N养分负荷增加情况下,碱蓬湿地植物-土壤系统的S生物循环速率不但可能会加速,而且N、S养分之间也可能形成一个正反馈机制,并将有利于维持新生湿地的稳定与健康。  相似文献   

2.
胡星云  孙志高  张党玉  孙文广  祝贺  任鹏 《生态学报》2017,37(24):8499-8510
2014年4-11月,选择黄河入海口北部滨岸高潮滩的碱蓬湿地为研究对象,基于野外原位氮负荷增强模拟试验(N0,无额外氮输入;N1,低氮输入;N2,中氮输入;N3,高氮输入),获取相应的不同氮基质种子(S0,S1,S2和S3),以研究其发芽率以及幼苗生长状况对不同盐分胁迫和氮浓度交互作用的响应。结果表明,不同氮负荷影响下碱蓬成熟种子中的氮含量整体表现为S2S0S1S3,中氮输入更利于种子中氮养分的累积。盐分和氮交互作用下4种氮基质种子的发芽率总体表现为S2S1S0S3(P0.05),S2在不同盐分胁迫下的发芽率最高,幼苗的生长状况也最好。随着盐分的增加,4种氮基质种子的发芽率及幼苗生长状况均受到一定程度的抑制,但较低的盐分有助于其幼苗长度的增长,且随着氮输入量的增加这种抑制作用可得到一定程度缓解。盐分胁迫、氮浓度和种子类型作为单独因素出现时对碱蓬的发芽率、幼苗长度、鲜重和干重均产生显著影响,除幼苗长度受氮浓度和盐分胁迫交互作用的影响达到显著水平外(P0.05),其他因子交互作用对诸生态指标的影响并不明显。研究发现,不同氮输入处理不仅改变了原生环境碱蓬种子的氮含量,而且也使这些具备不同氮基质的种子对不同盐分胁迫与氮浓度环境具有不同的生态适应对策,中氮输入下的碱蓬种子(S2)无论在萌发率还是在幼苗生长状况上均优于其他氮基质的种子。未来,随着黄河口新生湿地氮养分供给的不断增加,当湿地氮养分达到中氮水平时,将更有利于碱蓬种子的萌发以及幼苗的生长,当氮养分达到更高水平时,碱蓬种子的萌发以及幼苗生长可能会受到一定程度的抑制。  相似文献   

3.
以黄河口北部滨岸高潮滩的碱蓬残体为研究对象,将第一年度野外原位氮输入试验(N0:无额外氮处理;N1:低氮处理;N2:中氮处理;N3:高氮处理)获得的不同基质质量残体(NL0,NL1,NL2和NL3),原位投放至来源样区,并通过第二年度的持续输氮,探讨外源氮持续输入条件下残体基质质量改变对其分解速率和硫养分释放的影响。结果表明,随着氮输入量的增加,不同基质质量残体的分解速率整体表现为NL1NL3NL2NL0,说明外源氮持续输入条件下基质质量改变促进了残体的分解,且该促进作用在低氮处理下表现的最为明显,原因主要与其在残体分解过程中C/N比的改变程度最为明显有关。不同基质质量残体中的TS含量均呈不同程度波动变化特征,且其与相应的C/S比均呈相反规律变化,说明C/S比是调控不同氮持续输入条件下残体分解过程中硫含量变化的主控因素。不同基质质量残体的硫养分在分解期间均发生不同程度的净释放,且释放强度整体表现为NL3NL1NL2NL0,说明外源氮持续输入条件下残体基质质量改变促进了其硫养分释放,且该促进作用在高氮处理下表现的最为明显。研究发现,未来黄河口氮养分负荷增加的情况下,碱蓬残体的基质质量(C/N和C/S)将发生改变,而持续增强的氮负荷又会促进不同基质质量残体的硫养分归还,从而加速硫的生物循环速率。  相似文献   

4.
黄河口碱蓬湿地土壤氮矿化特征对温度及氮输入的响应   总被引:2,自引:0,他引:2  
胡星云  孙志高 《生态学报》2020,40(24):8882-8891
氮矿化是湿地生态系统养分循环的重要组成部分,氮输入及温度变化对土壤氮矿化的影响具有复杂性。为了探究湿地土壤氮矿化特征对温度及氮输入的响应,选择黄河入海口北部滨岸高潮滩的碱蓬湿地为研究对象,基于野外原位氮负荷增强模拟试验(N0:0 g N m-2 a-1;N1:9.0 g N m-2 a-1;N2:12.0 g N m-2 a-1;N3:18.0 g N m-2 a-1),于生长季末获取不同氮处理下的土壤(S-N0、S-N1、S-N2和S-N3)开展室内培养实验。结果表明,不同氮处理土壤的氮累积矿化量均呈现出培养初期(0-14 d)增加迅速,培养中期(14-42 d)骤然降低,而培养后期(42-84 d)趋于稳定的变化特征,其值整体表现为S-N3 > S-N0 > S-N2 > S-N1(P > 0.05)。培养后期,不同氮处理土壤的累积矿化量在20℃和25℃下的差异均达到极显著或显著水平(P < 0.01或P < 0.05),且S-N2在此间的矿化能力最强。氮输入整体降低了土壤氮矿化对温度的敏感性(Q10),其中S-N2土壤的温度敏感性最低,更利于持续供氮。不同氮处理土壤的氮矿化速率和累积矿化量与培养温度、土壤基质质量密切相关,且在一定范围内较高的温度和较低的C/N有利于氮矿化的进行。研究发现,未来黄河口氮负荷增强以及温度持续上升背景下,碱蓬湿地土壤氮养分及温度条件改变将会影响其供氮能力,适量氮输入(N2)将有利于土壤保持持续稳定的供氮能力。  相似文献   

5.
张林海  曾从盛  仝川 《生态学报》2018,38(14):4932-4941
外源氮输入显著改变河口湿地植物生长和固碳能力,进而影响河口湿地生态系统碳、氮循环过程。以闽江口湿地土著种短叶茳芏(Cyperus malaccensis)为研究对象,通过15个月的中型生态系实验,分析不同氮输入水平(CK,0 g N m~(-2)a~(-1);N8,8 g N m~(-2)a~(-1);N16,16 g N m~(-2)a~(-1))和2种水淹(T1,每天水淹时长2—3 h;T2,每天水淹时长11—12 h)处理对短叶茳芏生长、养分和固碳的影响,探讨短叶茳芏在环境变化下的生长、固碳特征。结果表明:T2处理株高极显著高于T1处理,N8、N16处理的植物株高显著高于CK处理,植物成熟季节的株高也极显著最高(P0.001)。水淹状况和植物生长期对短叶茳芏的密度有显著影响:T1处理密度极显著高于T2处理,植物成熟季节的密度也极显著最高(P0.001),但是氮输入没有显著提高植物密度。植物碳含量较为稳定,T2处理地上碳含量显著高于T1处理(P0.05),但是氮输入和植物生长期对地上碳含量影响不显著。氮输入水平、水淹状况和植物生长期则对植物地上氮含量都有显著影响(P0.05)。N8处理的植物地上生物量和固碳量极显著最高,CK处理极显著最低,植物成熟期的地上生物量和固碳量也极显著最大(P0.001),但是不同水淹处理植物生物量和固碳量无显著差异。闽江口湿地短叶茳芏具有较强的环境适应能力,在持续氮输入环境下,闽江口湿地的短叶茳芏可能向高潮滩拓展。  相似文献   

6.
氮沉降的增加显著改变了生态系统功能和过程。大量研究表明,氮添加会提高生态系统生产力,然而,大部分研究集中在地上生物量,对地下生物量以及根冠比的研究较少。我们在内蒙古典型草原进行了7年的氮添加实验,设置6个氮添加水平,分别是N0(0)、N1(5.6 g N·m-2)、N2(11.2 g N·m-2)、N3(22.4 g N·m-2)、N4(39.2 g N·m-2)、N5(56 g N·m-2),测定植物地上和不同土层(0~10、10~30、30~50和50~100 cm)地下生物量并计算根冠比,研究不同氮添加水平对植物地上、地下生物量和根冠比的影响。结果表明:(1)与对照相比,低氮添加水平(N1和N2)未显著增加地上生物量,高氮添加水平(N3~N5)显著增加了地上生物量(96%~117%),且各高氮添加水平间差异不显著;(2)不同氮添加水平下,植物地上生物量的氮响应效率(NRE)均大于0且呈下降趋势,相邻氮添加水平的NRE差值(ΔNRE)仅在N3水平下显著增加,说明地上生物量在N3水平下达到饱和;(3)氮添加未显著改变不同土层以及整个土壤剖面上的地下生物量,且对各土层地下生物量的占比情况无显著影响;(4)与对照相比,N1和N2未显著改变植物的根冠比,N3~N5显著降低了植物根冠比。综上所述,氮沉降增加会提高植物地上生物量,对不同土层根系的影响比较复杂,需要更多的研究来明确地下生产力对氮沉降增加的响应规律。  相似文献   

7.
选取黄河三角洲滨海湿地盐地碱蓬(Suaeda salsa)、芦苇(Phragmites australis)和柽柳(Tamarix chinensis)3种典型植物群落为研究对象,研究了土壤-植物N、P元素的空间分布格局及N/P化学计量学特征。结果表明:盐地碱蓬地上部分N含量,地下部分N、P含量均小于芦苇和柽柳群落,柽柳地上部分P含量、N/P值均大于芦苇和盐地碱蓬群落。3种典型湿地群落N含量均呈现出地上部分大于地下部分的规律,说明植物会将有限的氮资源优先分配给地上部分光合器官;盐地碱蓬与柽柳地上和地下部分磷含量变化趋势相反,这种差异说明处在不同群落演替阶段的植物生活史策略不同。与木本植物柽柳不同,草本植物芦苇和盐地碱蓬N/P均表现出地上部分大于地下部分的特征,这与草本植物地上部分相对生长速率较大有关。土壤中N含量、N/P垂直变化趋势一致,均随着土层深度的增加而显著降低,但土壤磷的垂直变化特征不明显。相关分析显示,土壤(源)-植物(库)之间N、P相关性较弱,说明除了土壤条件,滨海湿地氮磷化学计量格局还与植物自身的生理调节有关。  相似文献   

8.
2008年5-11月, 对黄河口滨岸潮滩不同生境下翅碱蓬(Suaeda salsa)硫(S)的季节变化特征进行了研究。研究表明: 中潮滩翅碱蓬(JP1)和低潮滩翅碱蓬(JP2)各器官生物量均具有明显的季节变化特征, 总体表现为JP1 > JP2; JP1和JP2地上与地下部分比值的变化较为一致, 整体表现为JP2 > JP1; 二者枯落物量呈递增变化; JP1和JP2叶、茎和枯落物中的全硫(TS)含量在生长季波动变化明显, 整体呈先增后减变化, 而根中的TS含量在生长季呈递减变化, 符合指数衰减模型; 二者不同器官及枯落物的TS累积量和S累积速率(VS)季节变化明显, JP1地上部分的TS累积量和VS明显高于JP2, 且二者地上部分的TS累积量和VS均明显高于地下; JP1和JP2不同部分的S分配比差异明显, 其中叶的分配比最高, 分别为(38.34 ± 16.19)%和(66.27 ± 12.09)%, 说明叶是翅碱蓬重要的S累积器官。结果显示, 翅碱蓬的生态学特性和其所处生境的水盐状况对JP1和JP2生物量、TS含量、累积量、累积速率、分配比均具有重要影响。  相似文献   

9.
在青藏高原高寒草甸区设置模拟增温和氮添加处理,研究长期增温与外源氮输入对高寒草甸群落生产及其分配的影响.结果表明:开顶箱增温装置造成小环境暖干化,即显著提高地表空气温度1.6℃,提高表层土壤温度1.4℃,降低土壤含水量4.7%.2012、2013和2014年不施氮处理下增温分别降低地上生物量61.5%、108.8%和77.1%,在高氮(40和80kg N·hm-2·a-1)处理下增温对群落地上生物量无显著影响,这说明增温的影响依赖于氮添加水平,且施氮补偿了增温导致的土壤氮损失.增温导致根冠比增加,2012、2013和2014年不施氮处理下增温分别增加根冠比98.6%、60.7%和97.8%.在不增温处理下,植物群落地上、地下生物量的变化率均表现出低氮(10、20 kg N·hm-2·a-1)促进、高氮抑制的趋势,达到饱和阈值时的氮添加剂量分别为56.0和55.5 kg N·hm-2·a-1;而在增温处理下,地上、地下生物量随施氮量增加呈线性增加趋势.这说明增温改变了高寒草甸生物量分配对外源氮输入的响应模式,增温导致的土壤无机氮含量变化是生物量分配模式改变的主要原因.由氮添加试验估算的高寒草甸氮饱和阈值表明,高寒草甸对氮输入的敏感性高于其他类型草地.  相似文献   

10.
黄河口碱蓬湿地土壤硫矿化特征对外源氮输入的响应   总被引:1,自引:0,他引:1  
陈冰冰  孙志高 《生态学报》2021,41(3):1032-1041
基于开放培养系统,在25℃的淹水和非淹水条件下研究了黄河口碱蓬湿地野外原位氮输入试验(N0:对照处理;N1:低氮处理;N2:中氮处理;N3:高氮处理)末期获取的相应氮梯度下表层土壤(记为NS0、NS1、NS2和NS3)的硫矿化特征。结果表明,不同氮处理土壤的硫矿化量在非淹水条件下整体表现为NS3 > NS1 > NS2 > NS0,在淹水条件下其硫矿化量较为接近,且均在培养的第3天取得最大值。不同水分条件下,不同氮处理土壤的硫矿化特征可能与培养过程中pH和EC的变化有关。连续培养119 d后,NS0、NS1、NS2和NS3的硫累积矿化量在非淹水条件下分别为233.03、419.99、401.16 mg/kg和526.51 mg/kg,在非淹水条件下分别为263.52、313.58、251.53 mg/kg和322.05 mg/kg。不同氮处理土壤硫累积矿化量主要来自0-14 d的矿化贡献,其值在非淹水条件和淹水条件下分别为41.01%-54.53%和79.49%-86.82%。除NS0外,其他3种土壤硫累积矿化量均表现为非淹水条件大于淹水条件,说明外源氮输入影响下非淹水土壤具有更大的供硫潜势。不同氮处理土壤硫累积矿化量及矿化势(S0)在非淹水条件下表现为NS3>NS1≈NS2>NS0,在淹水条件下则表现为NS3≈NS1 > NS0 > NS2,说明高氮处理下湿地土壤具有最高的供硫潜势。研究发现,未来黄河口氮负荷增强条件下,土壤氮基质状况的改变将会促进土壤硫的矿化,而这可在一定程度上提高土壤的潜在供硫能力;但当受到强降水、大潮或风暴潮影响使得土壤处于短期滞水状态时,湿地土壤的潜在供硫能力将明显降低,特别是中氮输入条件下土壤供硫潜势的降幅最为明显。  相似文献   

11.
碱蓬浮床对海水养殖尾水中氮磷修复效果研究   总被引:1,自引:0,他引:1  
海水养殖尾水中总氮、总磷超标是引起沿海水体富营养化的主要原因,为研究碱蓬浮床对海水养殖尾水中氮磷的去除效果,该研究设计加入碱蓬(Suaeda salsa)浮床和不加浮床的两组对比实验,通过比较修复前后碱蓬株高、生物量、含水率、根长以及各部位氮、磷的含量变化,以及水体中总氮(TN)和总磷(TP)的去除效果,探究浮床中碱蓬对总氮和总磷的吸收及其生长特性,验证碱蓬浮床对海水养殖废水中氮、磷等的去除能力。结果表明:浮床中碱蓬株高、鲜重、干重、含水率、根长较修复前均有显著增加,说明浮床中盐生植物碱蓬能够适应含海水养殖尾水水培环境;经碱蓬浮床修复,水体中总氮、总磷均明显下降,其中碱蓬对海水养殖尾水中的总氮总磷去除贡献率分别为16.10%和78.15%,浮床中碱蓬会在叶片和根系中积累氮磷。  相似文献   

12.
鄱阳湖湿地灰化苔草生长季氮磷含量与储量的变化   总被引:1,自引:0,他引:1  
白秀玲  周云凯  王杰华  李文丽 《生态学报》2018,38(13):4752-4760
湿地植物在营养元素生物地球化学循环过程中起着重要作用,研究植物氮磷元素的吸收、分配和积累特征对于正确理解氮磷循环关键过程及其生态作用具有重要意义。基于野外实地观测和室内实验分析,研究了鄱阳湖淡水湿地灰化苔草春草生长季内不同部位生物量、氮磷含量及氮磷储量的动态变化。结果表明:在生长季内,灰化苔草各部位生物量随时间推移而增加,地上部分生物量在各生长期均高于地下部分,地下部分生物量积累速率相对稳定,而地上部分和总体平均积累速率表现为生长前期高于生长后期;各部位氮磷含量经历了先减少再增加的变化过程,其中地上部分氮元素在灰化苔草生长的中后期显著高于地下部分,而磷元素在中前期两者差异更为显著;生物量与氮磷储量均呈显著正相关,是灰化苔草氮磷储量动态变化的主导因子,氮磷元素主要储存在灰化苔草的地上部分;研究期间灰化苔草平均氮磷比介于3.32—3.83之间,按营养限制理论进行判断,氮元素可能是灰化苔草生长的限制性营养因子。  相似文献   

13.
Pan Q  Bai Y  Wu J  Han X 《PloS one》2011,6(5):e20078

Background

Numerous studies have shown that nitrogen (N) deposition decreases biodiversity in terrestrial ecosystems. To explain the N-induced species loss, three functionally based hypotheses have been proposed: the aboveground competition hypothesis, the belowground competition hypothesis, and the total competition hypothesis. However, none of them is supported sufficiently by field experiments. A main challenge to testing these hypotheses is to ascertain the role of shoot and root competition in controlling plant responses to N enrichment. Simultaneously examining both aboveground and belowground responses in natural ecosystems is logistically complex, and has rarely been done.

Methodology/Principal Findings

In a two-year N addition experiment conducted in a natural grassland ecosystem, we investigated both above- and belowground responses of plants at the individual, species, and community levels. Plants differed significantly in their responses to N addition across the different organizational levels. The community-level species loss was mainly due to the loss of perennial grasses and forbs, while the relative abundance of plant species was dependent mainly on individual-level responses. Plasticity in biomass allocation was much smaller within a species than between species, providing a biological basis for explaining the functionally based species loss. All species increased biomass allocation to aboveground parts, but species with high belowground allocations were replaced by those with high aboveground allocations, indicating that the increased aboveground competition was the key process responsible for the observed diversity loss after N addition in this grassland ecosystem.

Conclusions/Significance

Our findings shed new light on the validity of the three competing hypotheses concerning species loss in response to N enrichment. They also have important implications for predicting the future impacts of N deposition on the structure and functioning of terrestrial ecosystems. In addition, we have developed a new technique for ascertaining the roles of aboveground and belowground competition in determining plant responses to N fertilization.  相似文献   

14.
The distribution of tree biomass and the allocation of organic matter production were measured in an 11-yr-old Pinus caribaea plantation and a paired broadleaf secondary forest growing under the same climatic conditions. The pine plantation had significantly more mass aboveground than the secondary forest (94.9 vs 35.6 t ha-1 for biomass and 10.5 vs 5.0 t ha-1 for litter), whereas the secondary forest had significantly more fine roots (⩽2 mm diameter) than the pine plantation (10.5 and 1.0 t ha-1, respectively). Standing stock of dead fine roots was higher than aboveground litter in the secondary forest. In contrast, aboveground litter in pine was more than ten times higher than the dead root fraction. Both pine and secondary forests had similar total organic matter productions (19.2 and 19.4 t ha-1 yr-1, respectively) but structural allocation of that production was significantly different between the two forests; 44% of total production was allocated belowground in the secondary forest, whereas 94% was allocated aboveground in pine. The growth strategies represented by fast growth and large structural allocation aboveground, as for pine, and almost half the production allocated belowground, as for the secondary forest, illustrate equally successful, but contrasting growth strategies under the same climate, regardless of soil characteristics. The patterns of accumulation of organic matter in the soil profile indicated contrasting nutrient immobilization and mineralization sites and sources for soil organic matter formation.  相似文献   

15.

Many recent studies have analysed plant species responses to environmental change, but interactive effects of global change drivers and how they are modulated by biotic interactions are still poorly understood. In a mesocosm experiment, we studied the interactive effects of nitrogen (N) fertilization and drought events on plant growth and how these effects are shaped by competitive interactions, using a segetal plant community typical of the lowlands of central Europe (composed of Lilium bulbiferum (segetal species) and Secale cereale (crop species)). We expected that N fertilization increases the drought sensitivity of Lilium (negative interaction effect), and that these effects are shaped by interspecific competition with Secale. Secale and Lilium showed opposing responses to N fertilization (second year of the experiment): Whilst Secale aboveground and belowground biomass almost doubled with N fertilization, Lilium aboveground and belowground biomass showed no response or decreased, respectively, providing Secale with a competitive advantage. Lilium aboveground tissue dieback (as a proxy for growth vigour) was 22% in N and 35% in drought treatments (control: 6%), but reached 91% when combining these treatments. Increasing Lilium tissue dieback was strongly related to decreasing belowground (root) biomass, caused by both negative direct effects of combined treatments (N fertilization?+?drought), and negative indirect effects acting via treatment-induced increase in Secale biomass. Our results demonstrate that competitive interactions can shape the effects of global change drivers on plant growth. This knowledge in turn could be important for plant species conservation, particularly in the face of ongoing shifts in environmental conditions.

  相似文献   

16.
E. Dyck  M. Liebman 《Plant and Soil》1994,167(2):227-237
Previous experiments have shown that crimson clover (Trifolium incarnatum L.) used as a green manure may supply weed control benefits as well as nitrogen (N) to a subsequent crop of corn (Zea mays L.). In contrast to use of synthetic N fertilizer, use of fresh, incorporated crimson clover residue as an N source has been found to suppress lambsquarters (Chenopodium album L.) aboveground drymatter accumulation but to only temporarily reduce that of sweet corn. One possible cause of the clover's suppressive effect is the initial low availability of N that may occur after residue incorporation in the soil. A factorial treatment combination of +/– crimson clover residue and four rates of N fertilizer was used in two field experiments to further document the clover's influence on early plant growth and development and to test the hypothesis that low initial N availability is responsible for the clover's previously observed suppressive effects. The presence of crimson clover residue was found to reduce total emergence of lambsquarters by 27%, while application of N fertilizer increased lambsquarters emergence by almost 75%. Lambsquarters emergence was also delayed by the residue treatment. Addition of N did not alleviate the clover's suppressive effect on total emergence or emergence rate of lambsquarters. Sweet corn emergence and emergence rate differed by less than 5% in 0 N/+residue and 0 N/–residue treatments. Applications of N to residue plots suppressed rather than enanced sweet corn emergence. Lambsquarters aboveground biomass accumulation was 46% tower in the residue than nonresidue treatments at 23 days after planting (DAP) and remained 26% lower at 53 DAP. Addition of N did not alleviate the suppressive effect of the clover residue on lambsquarters aboveground drymatter accumulation. Sweet corn aboveground biomass accumulation was not affected by the presence of the clover residue. The results of the experiments indicate that the suppressive effect of crimson clover residue on lambsquarters emergence and growth is not attributable to initial low availability of N. However, given the stimulatory effect of N fertilizer on lambsquarters development, use of crimson clover as an N source would appear to provide weed control benefits both as a direct suppressant of weed emergence and growth and as a substitute for fertilizer N.  相似文献   

17.
 CO2浓度升高与氮沉降增加对陆地生态系统的耦合作用已成为全球变化的研究热点。应用大型开顶箱(OTC)人工控制手段研究了人工生态系统在1)高CO2(700±20 μmol·mol–1)+高氮沉降(100 kg N·hm–2·a–1)(CN); 2)高CO2(700±20 μmol·mol–1)+背景氮沉降(C+); 3)高氮沉降(100 kg N· hm–2·a–1)+背景CO2(N+); 4)背景CO2+背景氮沉降处理(CK) 4种处理条件下荷木 (Schima superba)、红锥(Castanopsis hystrix)、海南红豆(Ormosia pinnata)、肖蒲桃(Acmena acuminatissima)、红鳞蒲桃(Syzygium hancei)等主要南亚热带森林植物的生物量积累模式及其分配格局。连续近3年的实验结果表明: 不同处理条件下, 各参试植物生物量积累具有不同的响应特征, N+处理显著促进荷木、肖蒲桃及红鳞蒲桃生物量的积累; C+处理显著促进肖蒲桃、海南红豆生物量的积累; CN处理显著促进除红锥外其他物种生物量的积累, 并且具有两者单独处理的叠加效应。不同处理改变物种生物量的分配模式, N+处理降低植物的根冠比, 促进地上部分生物量的积累; C+处理增加红锥和红鳞蒲桃地下部分生物量的分配, 却促进荷木和海南红豆地上部分的积累; CN处理仅促进红磷蒲桃地下部分的积累。群落生物量的积累与分配格局取决于优势物种的生物量及其分配格局在群落中所占的权重。  相似文献   

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