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1.
ZrO2负载过渡金属氧化物催化剂对CO+NO(O2)反应的影响   总被引:6,自引:0,他引:6  
王月娟  周仁贤 《环境化学》1999,18(5):432-436
本文运用固定床微反技术考察了Cu,Fe,Mn,Cr,Co和Ni负载(ZrO2载体)氧化物对CO+NO(O2)反应的催化活性。研究了NO和CO在不同比例时,催化剂对N2O和N2生成的影响。结果表明,在NO+CO反应中,NO和CO的比例对催化剂活性和N2O,N2生成均有明显的影响,CuOx/ZrO2催化剂的活性最高;N2O是NO+CO反应的中间产物,低温或NO过量时有利于生成N2O,高温或NO不足时有  相似文献   

2.
Environmental Chemistry Letters - Carbon dioxide (CO2) emissions from fossil fuels cause air pollution and lead to adverse impact on environment. To achieve low-carbon economy, capturing CO2 in the...  相似文献   

3.
二氧化碳浓度升高对植物入侵的影响   总被引:1,自引:0,他引:1  
从入侵植物和入侵植物群落两个方面,综述了大气二氧化碳浓度升高对植物入侵的影响。二氧化碳浓度升高,可以增加C3植物的入侵性,提高入侵植物的生物量、资源利用率以及繁殖能力,直接影响植物入侵;还可以通过改变土壤水分、氮循环、干扰体系等其它环境因子间接地影响植物入侵。此外,二氧化碳浓度升高,对入侵群落的初级生产量、组成与结构以及群落动态产生重要影响,改变群落的可入侵性。今后应当着重从群落水平,结合其它全球变化因子的共同作用研究二氧化碳浓度升高对植物入侵的影响,同时深入探讨其作用机制以及不同植物类群对二氧化碳的响应,为入侵种的预防和控制提供理论指导。  相似文献   

4.
基于中国农业科学院红壤实验站红壤旱地小麦-玉米轮作长期定位试验,采用静态箱/气相色谱法,研究红壤旱地连续施肥16 a后,不同施肥条件下小麦季和玉米季土壤CO2和N2O的排放特征。结果表明,CO2和N2O排放具有明显的季节性,施肥对土壤CO2和N2O排放有明显影响,且有机肥的施用显著促进了土壤CO2和N2O排放。不施肥对照(CK)、氮磷配施(NP)、氮钾配施(NK)、氮磷钾配施(NPK)和有机无机肥配施(NPKM)处理小麦季和玉米季土壤CO2累积排放量分别为5 904、8 062、4 298、9 235、14 098和4 708、7 530、5 435、7 089、15 472 kg.hm-2,土壤N2O累积排放量分别为0.34、0.63、0.44、0.62、1.00和0.25、0.39、0.35、0.52、1.73 kg.hm-2,小麦休闲期土壤CO2和N2 O累积排放量平均占小麦生长季的63.52%和28.43%,玉米休闲季平均占玉米生长季的49.98%和32.72%,说明休闲期土壤CO2和N2O累积排放量不容忽视。除玉米季NP、NK、NPK处理外,其他各处理小麦季和玉米季土壤CO2排放通量与5 cm深处土壤温度显著相关;而土壤N2O排放通量与土壤温度间均未表现出显著相关性;除NPKM处理外,其他各处理土壤CO2或N2O排放通量与土壤水分间相关性均未达显著水平。  相似文献   

5.
植物地上部分对大气CO2浓度升高的响应   总被引:8,自引:2,他引:8  
大气CO2浓度升高对植物的影响,主要是促进了植物生长早期的光合作用,同时也增加了对其他资源的需求;植物的光合作用也存在对高CO2浓度的适应,不会一直维持较高的光合水平,而且植物的呼吸作用也可能会增加;大气CO2浓度升高和其他环境条件,如水分,温度和光照等对植物生长和产量存在相互作用,可以部分弥补条件的不足,也影响作物和杂草的竞争关系;自然植物群落由于有很高的多样性和复杂性,对其研究应该在生物群落水平上进行,用外推法回到植物水平,而不是相反,而且自然物种间的竞争是激烈的,CO2浓度升高或其他因素带来的任何改善,都会明显地改变竞争平衡。  相似文献   

6.
大气CO2体积分数升高对植物N素吸收的影响   总被引:3,自引:0,他引:3  
庞静  朱建国  谢祖彬 《生态环境》2005,14(3):429-433
从影响植物N素吸收的因素来看,大气CO2体积分数升高条件下植物净光合作用增强,碳同化产物增多,利于改善N素吸收的能量和物质基础:植物根系生长增强,生物量增多且空间分布加大,有利于N素吸收;但土壤有效N供应能力的变化存在增强和减弱两种观点。从植物N素吸收的实际情况来看,大气CO2体积分数升高条件下植物N吸收总量并末增加,植物体内N质量分数普遍降低,某些种类植物N吸收形态也发生了改变。因此要阐明大气CO2体积分数升高对植物N素吸收的影响机制,必须探明土壤有效N供应能力的变化:CO2体积分数升高条件下N矿化作用是否增强,微生物和植物间是否存在对有效N的竞争,此外,CO2体积分数升高条件下植物根系形态特征变化和N素吸收(包括主动和被动吸收)的生理机制及其与环境因素的关系也值得进一步研究。  相似文献   

7.
全球变化和森林演替可以导致森林地表凋落物数量和质量的变化,从而对森林地表 CO2通量产生影响。本实验对亚热带不同演替阶段的3种,即马尾松林(前期)、混交林(中期)和季风林(后期)进行地表凋落物去除、加倍与置换处理,利用静态箱气相色谱法测定地表CO2通量,并同步测定气温、土壤温度和湿度,分析凋落物质量和数量变化对森林地表CO2通量的影响及其调控机理。结果表明,(1)去除凋落物处理显著降低了不同演替阶段的3种森林地表CO2通量,而加倍凋落物处理可以增加森林地表CO2通量,但不同演替阶段增加的幅度不同,依次为:季风林>马尾松林>混交林。(2)置换凋落物对不同演替阶段的森林地表 CO2通量的影响不同,在演替后期的季风林中,置换混交林和马尾松林凋落物处理均增加地表CO2通量;在演替中期的混交林中,置换季风林和马尾松林凋落物均降低地表CO2通量。在演替前期的马尾松林中,置换季风林凋落物增加地表CO2通量,而置换混交林凋落物降低了地表CO2通量(3)结合测定的土壤温度和水分数据分析得出,凋落物处理引起森林地表 CO2通量的变化是通过处理凋落物质量和数量后改变森林地表水热条件来实现的。(4)3个林型的各种处理,地表 CO2通量与土壤温度均呈显著的指数相关关系,但不同处理不同地改变了森林地表土壤 CO2通量对温度的敏感性,即Q10值。  相似文献   

8.
二氧化碳(CO2)、甲烷(CH4)、氧化亚氮(N2O)是对全球气候变化影响最大的温室气体。由于土壤与大气之间的水热交换需要一定的传导平衡时间,因此土壤温室气体与温湿度之间的关系存在不同的表现形式。目前,有关温室气体研究多集中于季节性排放特征,而关于CO2、CH4、N2O的日变化研究却少见报道。以北京小麦(Triticum aestivuml)农田土壤为研究对象,对施肥和不施肥条件下CO2、CH4、N2O交换通量和气温、土壤温度进行连续观测,来探讨3种温室气体的日变化特征。采用人工静态暗箱法对小麦田土壤进行连续48 h原位观测,每2 h测定1次,每次盖箱时间为30 min。气体样品中的CO2、CH4、N2O用气相色谱仪(Agilent 6890A,FID/ECD)测定。结果表明:施肥与不施肥条件下小麦生育后期麦田土壤CO2、CH4、N2O交换通量具有明显的日变化特征。土壤表现为CH4的吸收汇、CO2和N2O的排放源。CH4的吸收通量、CO2和N2O的排放通量均表现为施肥区>对照区。CO2、CH4的交换通量的70%以上出现在白天,而施肥区和对照区的N2O白天排放通量分别达到全天的81.8%、91.1%。另外,相关性分析表明,CO2、N2O交换通量的日变化与气温和5 cm地温呈极显著(P<0.01)或显著(P<0.05)的正相关关系,且N2O交换通量日变化与10 cm地温呈现极显著的正相关关系,说明温度是影响CO2、N2O交换通量日变化的重要因素;而气温、5 cm地温、10 cm地温对CH4交换通量日变化不存在显著性影响。  相似文献   

9.
利用Li-6400光合测定系统测定拉瑞尔L.tridentata的光合生理特性及其对CO2摩尔分数升高和干旱的响应。结果表明:土壤水势在-0.884 5 MPa以上,L.tridentata的光合器没有任何损害,抵御干旱的能力很强;适当的增加CO2摩尔分数有利于提高光饱和点、光量子利用效率和最大净光合速率,且CO2摩尔分数升高的正效应要大于土壤水分胁迫的负效应,因而在一定程度上CO2摩尔分数的增加,提高了L.tridentata的抗旱能力;随着光合有效辐射的增强和CO2摩尔分数的升高,叶片净光合速率、CO2饱和点和羧化速率都有增大趋势,叶片对高摩尔分数CO2利用效率提高;不同土壤水分条件下,叶片气孔导度和蒸腾速率都随着CO2摩尔分数的升高而降低,水分利用效率随着CO2摩尔分数的升高而升高;既能饱和叶片的RubisCO,又不至于造成气孔大量关闭的CO2摩尔分数在700~800μmol.mol-1左右,说明目前的CO2摩尔分数还不足以饱和拉瑞尔的RubisCO酶。未来CO2摩尔分数升高,将对拉瑞尔的光合作用有所促进,并可能提高拉瑞尔对干旱的适应能力。  相似文献   

10.
采用静态箱-气相色谱法研究了免耕和常规耕作下玉米生长季华北平原潮土N2O和CO2的排放特征。结果表明,免耕土壤N2O累积排放量(以N2O-N计,下同)为0.31 kg.hm-2,略高于常规耕作土壤的0.27 kg.hm-2,两者没有显著差异。灌水、强烈降水或连续阴天会诱发土壤大量排放N2O,免耕处理N2O排放峰值(28.1~38.4μg.m-2.h-1)高于常规耕作处理(18.6~25.7μg.m-2.h-1)。免耕处理CO2累积排放量(以CO2-C计,下同)为1 880 kg.hm-2,显著高于常规耕作土壤的1 333 kg.hm-2。土壤N2O和CO2排放通量与土壤温度呈显著指数相关,常规耕作处理下的相关程度更高。  相似文献   

11.
In 2017 the paper ‘The Sustainable Development Oxymoron: Quantifying and Modelling the Incompatibility of Sustainable Development Goals’ was published, showing that there is a conflict between socio-economic development goals and ecological sustainability goals using cross-country time-series data. The authors looked at production-based CO2 emissions to measure and model the 13th SDG goal addressing climate change. Their models showed that production-based CO2 emissions were stalling or even decreasing in rich countries, which suggests that other countries are also likely to see stalling and decrease in their CO2 emissions once they become rich. However, this conclusion can be challenged when accounting for consumption-based CO2 emissions rather than production-based CO2 emissions. In this follow-up paper, we re-run some of the analyses performed in the original paper making use of consumption-based CO2 emissions. The analysis confirms the inherent SDG conflict between socio-economic and ecological SDGs. But, this new analysis demonstrates that from a consumption perspective the trend of stalling or decreasing CO2 emissions is reversed, with natural depletion costs being exported to poorer countries. Despite this new perspective on CO2 emissions, the conflict between SDG goals can still be avoided by making investments in public health, education and renewable energy, as suggested in the original paper.  相似文献   

12.
陆地碳平衡对大气CO_2升高的响应及其机制   总被引:1,自引:0,他引:1  
研究陆地碳平衡对大气CO2浓度升高的响应,能为揭示碳失汇之迷提供有力证据,为制定缓解全球变化的合理政策措施提供理论依据.综述了陆地碳平衡对全球大气CO2升高的响应及其町能的机制,由于陆地生态系统的复杂性,以及不同的研究在具体的对象、时间、地点、方法和角度的差异,目前有关陆地碳平衡对全球大气CO2升高的响应还存在很大的分歧.陆地碳库主要可分为植被碳库和土壤碳库,大气CO2浓度升高主要是通过影响光合作用、土壤养分、水分供应、光照条件、群落组成、光合产物分配等方式影响植被碳库;而土壤碳库的响应机理主要包括光合产物向土壤的输入量、脱落物质量、养分循环、光合产物分配、根系周转期、微生物活性等的响应.关于陆地碳平衡对全球大气CO2升高的响应今后应该主要集中在:(1)不同生态系统影响全球植被碳库变化的主导因子;(2)大气CO2浓度升高与其他环境因子的互作效应;(3)大气CO2浓度升高对植物光合作用的促进效应与光合作用适应性间的关系;(4)地上碳库与地下碳库间的相关性,及其对大气CO2浓度升高的分别响应;(5)克服目前实验方法存在的局限性.  相似文献   

13.
通过20lO-2011年的监测建立了桂林盘龙洞坡地和洼地不同深度土壤C02体积分数的季节性变化。监测土壤C02体积分数空间上变化为:坡地80cm〉50cm〉30cm;洼地80cm〉100cm〉50cm〉30cm。监测土壤C02体积分数时间上变化为2010年7月和2011年6月未C02体积分数达到最高值,2010到2011年冬季为土壤C02达到最低值。由于受到大气降水量急剧减少的影响2011年土壤C02体积分数整体比2010年低。显示大气降水量也是影响土壤C02体积分数的重要环境因素。为我国固碳减排科学的选择时间和空间提供有力的依据。  相似文献   

14.
沼液培养的普通小球藻对CO2的去除   总被引:4,自引:0,他引:4  
利用微藻固定CO2和处理污水已成为微藻应用的一个重要研究方向.利用营养丰富的沼气发酵废液培养小球藻,藻种经驯化后在不同浓度沼液中能良好生长.小球藻在高浓度的CO2中有较好的生长和较强的耐受能力,在1.5%CO2通气下生物量最高.在此基础上考察了沼液中小球藻对CO2的去除情况.结果表明,提高小球藻生长速率和CO2浓度可以增加小球藻对CO2的去除量,降低通气也可提高CO2去除率.在1.5%CO2浓度、通气量60 mL min-1条件下,CO2去除率可达30.61%;在10%CO2浓度、通气量100 mL min-1时最高去除量为279.7 mg L-1 h-1.采用六管串联通气培养小球藻去除粗沼气中的CO2,去除量为(205.80±13.20)mg L-1 h-1,去除率为60.32%±3.73%.在同样的通气量下,CO2的去除量与单管培养相近,去除率是单管培养的近6倍,因此小球藻对沼气中的CO2具有良好的去除效果.图4表2参17  相似文献   

15.
开放式空气CO2浓度升高对水稻根系形态的影响   总被引:6,自引:0,他引:6  
在FACE(free-air carbon dioxide enrichment)技术平台上,采用水培的研究方法,观测了大气CO2浓度升高和两种氮水平下水稻根系形态的变化。结果表明,在水稻各生育期,CO2浓度升高都极显著增加了根干质量,且主要增加于根粗为2.0~2.5mm/n的部位。根系形态的各项指标均对高CO2浓度有积极的响应,在抽穗期尤为明显;N处理的差异很明显,低氮条件下根系表现为根长、根尖数和根表面积增加,常氮条件下根粗和发根数增加。各生育期的根冠比在高CO2浓度下极显著增加,尤其在LN处理下。水稻从分蘖期到抽穗期,因地上部分的增幅大,根冠比表现为逐渐降低的趋势。  相似文献   

16.
A hypothesis for progressive nitrogen limitation (PNL) proposes that net primary production (NPP) will decline through time in ecosystems subjected to a step-function increase in atmospheric CO2. The primary mechanism driving this response is a rapid rate of N immobilization by plants and microbes under elevated CO2 that depletes soils of N, causing slower rates of N mineralization. Under this hypothesis, there is little long-term stimulation of NPP by elevated CO2 in the absence of exogenous inputs of N. We tested this hypothesis using data on the pools and fluxes of C and N in tree biomass, microbes, and soils from 1997 through 2002 collected at the Duke Forest free-air CO2 enrichment (FACE) experiment. Elevated CO2 stimulated NPP by 18-24% during the first six years of this experiment. Consistent with the hypothesis for PNL, significantly more N was immobilized in tree biomass and in the O horizon under elevated CO2. In contrast to the PNL hypothesis, microbial-N immobilization did not increase under elevated CO2, and although the rate of net N mineralization declined through time, the decline was not significantly more rapid under elevated CO2. Ecosystem C-to-N ratios widened more rapidly under elevated CO2 than ambient CO2 indicating a more rapid rate of C fixation per unit of N, a processes that could delay PNL in this ecosystem. Mass balance calculations demonstrated a large accrual of ecosystem N capital. Is PNL occurring in this ecosystem and will NPP decline to levels under ambient CO2? The answer depends on the relative strength of tree biomass and O-horizon N immobilization vs. widening C-to-N ratios and ecosystem-N accrual as processes that drive and delay PNL, respectively. Only direct observations through time will definitively answer this question.  相似文献   

17.
The composition and successional status of a forest affect carbon storage and net ecosystem productivity, yet it remains unclear whether elevated atmospheric carbon dioxide (CO2) will impact rates and trajectories of forest succession. We examined how CO2 enrichment (+200 microL CO2/L air differential) affects forest succession through growth and survivorship of tree seedlings, as part of the Duke Forest free-air CO2 enrichment (FACE) experiment in North Carolina, USA. We planted 2352 seedlings of 14 species in the low light forest understory and determined effects of elevated CO2 on individual plant growth, survival, and total sample biomass accumulation, an integrator of plant growth and survivorship over time, for six years. We used a hierarchical Bayes framework to accommodate the uncertainty associated with the availability of light and the variability in growth among individual plants. We found that most species did not exhibit strong responses to CO2. Ulmus alata (+21%), Quercus alba (+9.5%), and nitrogen-fixing Robinia pseudoacacia (+230%) exhibited greater mean annual relative growth rates under elevated CO2 than under ambient conditions. The effects of CO2 were small relative to variability within populations; however, some species grew better under low light conditions when exposed to elevated CO2 than they did under ambient conditions. These species include shade-intolerant Liriodendron tulipifera and Liquidambar styraciflua, intermediate-tolerant Quercus velutina, and shade-tolerant Acer barbatum, A. rubrum, Prunus serotina, Ulmus alata, and Cercis canadensis. Contrary to our expectation, shade-intolerant trees did not survive better with CO2 enrichment, and population-scale responses to CO2 were influenced by survival probabilities in low light. CO2 enrichment did not increase rates of sample biomass accumulation for most species, but it did stimulate biomass growth of shade-tolerant taxa, particularly Acer barbatum and Ulmus alata. Our data suggest a small CO2 fertilization effect on tree productivity, and the possibility of reduced carbon accumulation rates relative to today's forests due to changes in species composition.  相似文献   

18.
Plant height, biomass production, assimilatory functions and chlorophyll accumulation of Panicum maximum and Stylosanthes hamata in intercropping systems was influenced significantly under elevated CO2 (600 +/- 50 ppm) in open top chambers (OTCs). The plant height increased by 32.0 and 49.0% over the control in P. maximum and S. hamata respectively in intercropping system under elevated CO2 over open field grown crops (Ca). P. maximum and S. hamata produced 67 and 85% higher fresh and dry biomass respectively under elevated CO2. Rates of photosynthesis and stomatal conductance increased in both the crop species in intercropping systems under elevated CO2. The canopy photosynthesis (photosynthesis x leaf area index) of these crop species increased significantly under elevated CO2 over the open grown crops. The chlorophyll a and b accumulation were also higher in the leaves of both the crop species as grown in OTC with elevated CO2. The increased chlorophyll content, leaf area index and canopy photosynthesis led to higher growth and biomass production in these crop species under elevated CO2. The total carbon sequestration in crop biomass and soils during the three years was 21.53 Mg C/ha under elevated CO2. The data revealed that P. maximum and S. hamata intercropping system is the potential as a sink for the increasing level of CO2 in the atmosphere in the semi-arid tropics.  相似文献   

19.
Flux measurements of carbon dioxide and water vapor above tropical rain forests are often difficult to interpret because the terrain is usually complex. This complexity induces heterogeneity in the surface but also affects lateral movement of carbon dioxide (CO2) not readily detected by the eddy covariance systems. This study describes such variability using measurements of CO2 along vertical profiles and along a toposequence in a tropical rain forest near Manaus, Brazil. Seasonal and diurnal variation was recorded, with atmospheric CO2 concentration maxima around dawn, generally higher CO2 build-up in the dry season and stronger daytime CO2 drawdown in the wet season. This variation was reflected all along the toposequence, but the slope and valley bottom accumulated clearly more CO2 than the plateaus, depending on atmospheric stability. Particularly during stable nights, accumulation was along lines of equal altitude, suggesting that large amounts of CO2 are stored in the valleys of the landscape. Flushing of this store only occurs during mid-morning, when stored CO2 may well be partly transported back to the plateaus. It is clear that, for proper interpretation of tower fluxes in such complex and actively respiring terrain, the horizontal variability of storage needs to be taken into account not only during the night but also during the mornings.  相似文献   

20.
In contrast with recent advances on the dynamics of the flow at a forest edge, few studies have considered its role on scalar transport and, in particular, on CO2 transfer. The present study addresses the influence of the abrupt roughness change on forest atmosphere CO2 exchange and contrasts the concentration and flux fields against those of a uniform forested surface. We use an atmospheric boundary layer two-equation closure model that accounts for the flow dynamics and vertical divergence of CO2 sources/sinks within a plant canopy. This paper characterizes the spatial variation of CO2 fluxes as a function of both sources/sinks distribution and the vertical structure of the canopy. Results suggest that the ground source plays a major role in the formation of wave-like vertical CO2 flux behavior downwind of a forest edge, despite the fact that the contribution of foliage sources/sinks changes monotonously. Such a variation is caused by scalar advection in the trunk space and reveals itself as a decrease or increase in vertical fluxes over the forest relative to carbon dioxide exchange of the underlying forest. The effect was more pronounced in model forests where the leaf area is concentrated in the upper part of the canopy. These results can be useful both for interpretation of existing measurements of net ecosystem exchange of CO2 (NEE) from flux towers in limited fetch conditions and in planning future CO2 transport experiments.  相似文献   

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