首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 312 毫秒
1.
青藏高原高寒湿地生态系统CO2通量   总被引:3,自引:0,他引:3  
依据涡度相关系统连续观测的2005年CO2通量数据,对青藏高原东北隅的高寒湿地生态系统源/汇功能及其部分环境影响因素进行了分析。结果表明,高寒湿地生态系统为明显的碳源,在植物生长季(5~9月份)吸收230.16 gCO2•m-2,非生长季(1~4月份及10~12月份)释放546.18 gCO2•m-2,其中净排放最高在5月份,为181.49 gCO2•m-2,净吸收最高在8月份,为189.69 gCO2•m-2,年释放量为316.02 gCO2•m-2。在平均日变化中,最大吸收值出现在7月份12:00,为(0.45±0.0012) mgCO2•m-2•s-1,最大排放速率出现在8月份0:00,为(0.22±0.0090) mgCO2•m-2•s-1。生长季中6~9月份表现为明显的单峰型日变化,非生长季的变化幅度较小。净生态系统交换量(NEE)和生态系统总初级生产力(GPP)与气温、空气水气饱和亏和地表反射率等环境因素呈现相似的相关性,与地上生物量和群落叶面积指数则为线性负相关,生态系统呼吸(Res)则与上述因子的相关性呈现相反的趋势。  相似文献   

2.
东北地区森林生态系统因其面积大,碳贮量高而在本地区和我国碳平衡中占有重要的地位。土壤表面CO2通量(RS)作为陆地生态系统向大气圈释放的主要CO2源,其时空变化直接影响到区域碳循环。该研究采用红外气体分析法比较测定我国东北东部次生林区6个典型的森林生态系统的RS及其相关的土壤水热因子,并深入分析土壤水热因子对RS的影响。研究结果表明:影响RS的主要环境因子是土壤温度、土壤含水量及其交互作用,但其影响程度因生态系统类型和土壤深度而异。包括这些环境因子的综合RS模型解释了 67.5%~90.6%的RS变异。在整个生长季中,不同生态系统类型的土壤温度差异不显著 ,而土壤湿度的差异显著(α= 0.05)。蒙古栎(Quercus mongolica)林、红松(Pinus koraiensis)林、 落叶松(Larix gmelinii)林、硬阔叶林、杂木林和杨桦(Populus davidiana_Betula platyphylla)林的RS变化范围依次为:1.89~5.23 µmol CO2•m-2•s-1,1.09~4.66µmol CO2•m-2•s-1,0.95~3.52µmol CO2•m-2•s-1,1. 13~5.97µmol CO2•m-2•s-1,1.05~6.58µmol CO2•m-2•s-1和1.11~5.76µmol CO2•m-2•s-1。RS的季节动态主要受土壤水热条件的驱动而呈现单峰曲线,其变化趋势大致与土壤温度的变化相吻合。Q10从小到大依次为:蒙古栎林2.32,落叶松林2 .57,红松 林2.76,硬阔叶林2.94,杨桦林3.54和杂木林3.55。Q10随土壤湿度的升高而增大;但超过 一定的阈值后,土壤湿度对Q10起抑制作用。该研究结果强调对该地区生态系统 土壤表面CO2通量的估测应同时考虑土壤水热条件的综合效应。  相似文献   

3.
中国森林生态系统土壤CO2释放分布规律及其影响因素   总被引:2,自引:0,他引:2  
联合国气候框架公约的签署提升了人们对全球变暖、碳循环变化的关注。陆地生态系统在全球变暖格局下的地位与作用,尤其是土壤碳库对全球变暖格局的响应是全球变化研究的焦点。土壤CO2释放作为土壤-大气CO2交换的主要途径之一,也就成为各国生态学家研究的重点内容。在对我国森林生态系统CO2释放通量以及相关气候、生物等因子的资料进行收集、整理和分析的基础上,探讨了我国森林生态系统土壤CO2释放的分布规律,以及这种规律性分布的气候、生物影响因素。对于我国这样一个南北跨度大的国家,不同区域的森林生态系统土壤CO2释放通量间存在较大的差异,在全国尺度上,森林生态系统土壤CO2释放通量平均值为(1.79 ± 0.86) g C m-2 d-1,而且土壤CO2释放通量随着纬度增加逐渐降低。作为一个复杂的生态过程,土壤CO2释放受到生物、非生物因子或独立、或综合的影响。通过分析指出,在全国尺度上,年均温、降雨量、群落净生产力及凋落物量显著地影响森林土壤CO2释放通量。同时,也正是这些影响因子的纬度分布,导致了我国森林生态系统土壤CO2释放通量的纬度分布规律。作为衡量土壤CO2释放对温度敏感性的重要指标,计算了我国森林生态系统土壤CO2释放温度敏感性系数-Q10值,约为1.5,该值显著低于全球平均水平,2.0。  相似文献   

4.
在深圳市内伶仃岛薇甘菊危害的不同群落生境中,设立9块样地81个小样方,用森草净(即70%嘧碘降水溶性粉剂)杀灭样地中的薇甘菊施量为0.0001~0.02 g•m-2,结果表明:各浓度的森草净杀灭效果均较好,杀灭率随着用药量的增加而提高;在坡地和溪谷生境中,森草净用药量分别为0.05~0.1 g•m-2、>0.2 g•m-2能较彻底地杀灭薇甘菊。应用HPLC法检测样地土壤中嘧磺隆残留量,溪谷土壤中嘧磺隆半衰期C=C0•e-0.083TT1/2=8.4,施药后37 d消解95.9%,坡地高浓度级半衰期C=C0•e-0.046TT1/2=15.1 d,施药后37 d消解85.0%,坡地低浓度级半衰期C=C0•e-0.090T, T1/2=7.7 d,施药后15 d消解742%。不同浓度森草净处理样地,施药后7、15、37 d均可检测到嘧磺隆,并且含量越来越小,但施药后68 d的土样,均未检测到嘧磺隆的存在。  相似文献   

5.
三江平原生长季沼泽湿地CH4、N2O排放及其影响因素   总被引:16,自引:2,他引:14       下载免费PDF全文
 2003年6~9月采用静态箱_气相色谱法,对三江平原生长季不同淹水条件下沼泽湿地CH4、N2O的排放进行了同步对比研究,并探讨了影响气体排放的主要影响因素。结果表明, 生长季沼泽湿地CH4和N2O排放具有明显的时空变化特征。长期淹水的毛果苔草(Carex lasiocarpa)和漂筏苔草(Carex pseudocuraica)植物带CH4的平均排放强度分别为259.2和273.6 mg•m-2•d-1,高于季节性淹水的小叶章(Deyeuxia angustifolia)植物带的排放强度(38.16 mg•m-2•d-1)(p<0.00 0 1);而生长季N2O的平均排放强度分别为0.969、0.932 和0.983 mg•m-2•d-1, 植物带间无显著差异(p=0.967)。相关分析表明,气温和5 cm深地温对沼泽湿地CH4生长季排放通量的影响较大,而水位则是影响长期淹水沼泽N2O排放通量的主要因素;不同类型湿地间CH4平均排放强度的差异主要受水位的控制,而强烈的还原环境可能是导致不同类型湿地具有近似的N2O排放强度的原因。  相似文献   

6.
广州市红树林和滩涂湿地生态系统与大气二氧化碳交换   总被引:8,自引:0,他引:8  
在生物量调查和土壤温室气体排放量测定基础上,对广州市红树林和滩涂湿地生态系统与大气CO2交换进行研究,分析湿地植被净生产力吸收CO2的能力和不同积水状态下(常年积水、间歇积水、无积水)湿地碳汇功能.结果表明:红树林湿地植被净生产力吸收CO2 33.74 t·hm-2·a-1,土壤排放CO2(包括CH4折算成CO2的温室效应量)12.26 t·hm-2·a-1,湿地每年净吸收大气CO2 21.48 t·hm-2,说明红树林湿地是一个强的碳汇;滩涂湿地植被净生产力吸收CO2 8.54 t·hm-2·a-1,土壤排放CO2 5.88 t·hm-2·a-1,排放CH4 0.19 t·hm-2·a-1,若按碳素折算,湿地每年吸收大气中碳素2.33 t·hm-2,土壤排放碳素1.74 t·hm-2包括(CH4中的碳),系统净固定碳0.59 t·hm-2,说明滩涂湿地是一个弱的碳汇,若将CH4的温室效应折算成CO2量,则土壤排放CO2 9.78 t·hm-2·a-1,排放比吸收多1.24 t·hm-2·a-1,对大气温室效应而言,滩涂湿地是一个弱碳源;常年积水下排放的温室气体主要是CH4,无积水下排放的温室气体主要是CO2;常年积水湿地碳汇功能最大,无积水湿地碳汇功能最小.  相似文献   

7.
森林生态系统土壤CO2释放随海拔梯度的变化及其影响因子   总被引:2,自引:0,他引:2  
联合国气候框架公约的签署提升了人们对全球变暖、碳循环的关注。土壤CO2释放作为土壤-大气CO2交换的主要途径之一,成为了各国生态学家研究的重点内容。通过对1800~2155m海拔梯度上森林生态系统土壤CO2释放进行研究,揭示了较小空间尺度上土壤CO2释放的变化规律及其控制机制。在研究区域内,随着海拔梯度的增加,森林土壤CO2释放由(1.94±006) μmol m-2 s-1逐渐增加至(2.22±0.07) μ mol m-2 s-1。土壤温度、土壤水分、土壤有机碳(SOC)、全N、全P与土壤CO2释放呈显著正相关(n=14, P<0.05);土壤容重与土壤CO2释放速率呈显著负相关(n=14,P<0.05);土壤pH对土壤CO2释放影响不显著。作为一个复杂的生态学过程,环境因子及其交互作用对土壤CO2释放产生影响,为了减少因子共线性影响,逐步降低因子维数,采用主成分分析(PCA)揭示了土壤温度、土壤水分、SOC、全N、全P、容重6个因子的联合作用,其累积贡献率达到了57%以上;进一步运用逐步回归分析方法,探讨了影响土壤CO2释放沿海拔梯度分布的主导因子,结果表明土壤水分是研究区域森林生态系统土壤CO2释放沿海拔梯度变化的主导因子。  相似文献   

8.
 亚热带杉木(Cunninghamia lanceolata)和马尾松(Pinus massoniana)在我国森林资源中占有十分重要的地位, 研究它们的土壤与表层凋落物的呼吸有助于了解它们的碳源汇时空分布格局及碳循环过程的关键驱动因子。采用Li-Cor 6400-09连接到Li-6400便携式CO2/H2O分析系统测定湖南两种针叶林群落(2007年1月至12月)的土壤呼吸及其相关根生物量和土壤水热因子。研究结果表明: 杉木和马尾松群落中土壤呼吸的季节变化显著, 在季节动态上的趋势相似, 都呈不规则曲线格局, 全年土壤呼吸速率平均值分别为186.9 mg CO2&#8226;m–2&#8226;h–1和242.4 mg CO2&#8226;m–2&#8226;h–1。从1月开始, 两种群落的土壤呼吸速率由最小值33.9 mg CO2&#8226;m–2&#8226;h–1和38.6 mg CO2&#8226;m–2&#8226;h–1随着气温的升高而升高, 杉木群落到7月底达到全年中最大值326.3 mg CO2&#8226;m–2&#8226;h–1, 而马尾松群落到8月中旬达到最大值467.3 mg CO2&#8226;m–2&#8226;h–1, 土壤呼吸的季节变化与土壤温度呈显著的指数相关, 土壤温度可以分别解释土壤呼吸变化的91.7%和78.0%, 和土壤含水量呈二次方程关系, 土壤含水量可以解释土壤呼吸变化的5.4%和8.4%。由土壤呼吸与土壤温度拟合的指数方程计算Q10值, 杉木和马尾松群落中全年土壤呼吸的Q10值分别为2.26和2.13, Q10值随着温度升高逐渐减小。两种群落土壤呼吸的差异主要受群落植被的根生物量、群落的凋落物量的影响。  相似文献   

9.
草甸湿地土壤溶解有机碳淋溶动态及其影响因素   总被引:5,自引:0,他引:5  
采用土柱淋溶试验研究了草甸湿地有机土层(2~13 cm)DOC的淋溶动态,并探讨了土壤呼吸、NH4+产生速率和淋溶液pH与DOC生成速率的关系.试验第一周,小叶章湿草甸(Ⅺ)和小叶章沼泽化草甸(Ⅻ)土壤DOC的释放速率经历了一个快速下降的过程,而后达到平稳水平,其DOC的释放动态可用一次指数衰减方程进行描述(R2>0.96,P<0.05).整个试验期间(35 d),两种草甸湿地土壤DOC的累积释放量分别为2109(Ⅺ)和506.58 μgC·g-1(Ⅻ),CO2的累积释放量为679.64(Ⅺ)和455.54 μgC·g-1(Ⅻ),表明Ⅺ的低DOC释放可能与高CO2释放所造成的微生物碳源受限有关.DOC的释放速率与NH4+的生成速率呈显著正相关(r=0.886,P<0.05;r=0.972,P<0.01),而与淋溶液pH无相关性.多元回归分析表明,草甸湿地DOC的生成主要受土壤氮矿化潜势制约(P<0.05).  相似文献   

10.
开垦对克氏针茅草地生态系统碳通量的影响   总被引:6,自引:0,他引:6       下载免费PDF全文
 植被–大气间CO2净交换及其对环境变化的响应是目前全球变化研究的热点问题。该研究通过同化箱式法, 在内蒙古农牧交错带对比研究生长季草地生态系统和耕种多年的小麦田生态系统碳通量的变化, 以探讨该地区碳通量的变化规律及影响碳通量主要因子, 并揭示农田开垦对草原碳通量的影响。结果显示: 两个生态系统的群落净气体交换(Net ecosystem exchange, NEE)有明显的季节变化。整个测定期间, 草地生态系统的净气体交换NEE的最高值为–11.26 µmol CO2&#8226;m–2&#8226;s–1, 平均群落净气体交换为–5.33 µmol CO2&#8226;m–2&#8226;s–1; 小麦田群落NEE最大值为–12.29 µmol CO2&#8226;m–2&#8226;s–1, 平均群落净气体交换为–7.66 µmol CO2&#8226;m–2&#8226;s–1。分析发现, 叶面积指数LAI是影响该地区生态系统NEE的主要因子, 相对贫瘠的土壤也是限制该地区生态系统碳固定的一个重要因子。因小麦的生长特性, 在生长中后期, 小麦田生态系统NEE随LAI的变化没有草地生态系统的敏感。此外, 较低的土壤含水量限制了小麦田群落呼吸, 使得小麦田群落呼吸对温度的敏感性降低。  相似文献   

11.
改变凋落物输入对杉木人工林土壤呼吸的短期影响   总被引:9,自引:0,他引:9       下载免费PDF全文
从2007年1月至12月, 在长沙天际岭国家森林公园, 通过改变杉木林凋落物输入, 研究杉木(Cunninghamia lanceolata)人工林群落去除凋落物、加倍凋落物土壤呼吸速率及5 cm土壤温、湿度的季节变化。结果表明: 去除和加倍凋落物对土壤温度和湿度产生的差异不显著(p>0.05), 对土壤呼吸全年产生的差异接近显著(Marginal significant)(p=0.058)。按植物生长期分别分析, 去除和加倍凋落物对土壤呼吸产生的差异, 在生长旺盛期差异显著(p=0.003), 在生长非旺盛期差异性不显著(p=0.098)。去除凋落物年均土壤呼吸速率为159.2 mg CO2·m-2·h-1, 比对照处理土壤呼吸速率(180.9 mg CO2·m-2·h-1)低15.0%, 加倍凋落物的土壤呼吸为216.8 mg CO2·m-2·h-1, 比对照处理高17.0%。去除和加倍凋落物土壤呼吸季节动态趋势与5 cm深度土壤温度相似, 它们之间呈显著指数相关, 模拟方程分别为: y=27.33e0.087 2t(R2=0.853, p<0.001), y=37.25e0.088 8t(R2=0.896, p<0.001)。去除和加倍凋落物的Q10值分别为2.39和2.43, 均比对照2.26大。去除和加倍凋落物土壤呼吸与土壤湿度之间关系不显著(p>0.05)。这一结果使我们能够在较短时间内观察到改变凋落物输入对土壤呼吸的影响, 证明凋落物是影响土壤CO2通量的重要因子之一。  相似文献   

12.
 该文利用涡度协方差法和生理生态学方法(不同分量的累积和)获得的通量观测数据,对老山落叶松(Larix gmelinii)林(45°20′N, 127°34 ′E)的碳收支进行了分析。通过对每0.5 h所测数据进行的分析表明,能量平衡达到75%,说明涡度协方差法适应于本站的研究。较阴天气情况 下,林分光照利用效率显著高于晴朗天气,可能归因于阴天较多的散射光。以单位土地面积计算发现,通过涡度协方差法计算的落叶松林生态 系统的总初级生产力在20~50 μmol•m-2•s-1之间,远高于冠层叶片的总光合速率9.8~23.4μmol•m-2•s-1 (平均值16.2μmol•m-2•s-1 ),而 当综合考虑冠层光合和林下植物光合作用时,两种方法测定结果吻合性较好,说明林下植物对落叶松林碳平衡有重要影响。在估计森林生态系 统呼吸方面,以有风夜晚净生态系统交换量(NEE)来代表生态系统呼吸总量(3~9μmol•m-2•s-1)低估了生态系统呼吸总量,粗略估计较生 理生态学方法(不同呼吸分量的累积和)低估了50%左右(14.2μmol•m-2•s-1)。结果发现两种方法在估计森林碳平衡方面存在一定的差异, 呼吸量的估计差异应是今后研究的重点。  相似文献   

13.
The respiratory effluxes of nodules and of roots of FiskebyV soyabean (Glycine max (L.) Merr.), grown in a controlled environment,were measured at intervals in air and 3% O2 from shortly afterthe onset of N2 fixation until plant senescence. The respiratoryburdens linked with nitrogenase plus ammonia metabolism, andnodule growth and maintenance, were calculated from gas exchangedata and related to the concurrent rates of N2 fixation. The specific respiration rates of nodules increased to a maximumof 21 mg CO2 g–1 h–1 at the time pods began development:the equivalent maximum for roots was c. 4.5 mg CO2 g–1h–1. Maximum nodule and root respiration rates per plantwere attained about 25 d later at the time N2 fixation peakedat 15 mg N d–1 plant–1. The relationship between nodule respiration and N2 fixationindicated an average respiratory cost of 13.2 mg CO2 mg–1N until the last few days of plant development Separation ofnodule respiration into the two components: nitrogenase (+ NH3metabolism) respiration and nodule growth and maintenance respiration,indicated that the latter efflux accounted for c. 20% of nodulerespiration while N2 fixation was increasing and new noduletissue was being formed. When nodule growth ceased and N2 fixationdeclined, this component of respiration also declined. The respiratorycost of nitrogenase activity plus the associated metabolismof NH3 varied between 11 mg CO2 mg–1 N during vegetativeand early reproductive growth, to 12.5 mg CO2 mg–1 N duringthe later stages of pod development. Key words: N2 fixation, Respiration, Nodules, Nitrogenase  相似文献   

14.
武夷山不同海拔植被土壤呼吸季节变化及对温度的敏感性   总被引:9,自引:0,他引:9  
以武夷山国家级自然保护区为实验基地,研究了4种不同海拔高度上植物群落土壤呼吸速率的季节变化及其对温度的敏感性,以及与主要环境因子的关系.结果表明:4种不同海拔植物群落的土壤呼吸速率均具有明显且一致的季节变化,其中夏季土壤呼吸速率最大,为3.10~6.57 μmol CO2·m-2·s-1,冬季最小,为0.27~1.15 μmol CO2·m-2·s-1;土壤呼吸速率与土壤温度呈显著指数相关,不同样地土壤呼吸速率与土壤含水率和凋落物输入量的关系各不相同;高海拔地区土壤呼吸的Q10值显著高于低海拔地区.在中亚热带地区,不同海拔土壤呼吸速率的季节波动主要受土壤温度的影响;在未来全球气候变暖的背景下,高海拔地区的土壤可能释放更多的CO2.  相似文献   

15.
Growth and dark respiration were measured in dense, miniatureswards of kikuyu grass grown at constant temperatures of 15,20, 25 and 30 °C. Total respiration over the first 12 hof darkness was very high and CO2 efflux per unit surface areavaried from 2.4 to 3.9 g CO2 m–2 h–1 at 15 and 30°C respectively. Such rates were consistent with the correspondinglyhigh net growth rates of 24 and 63 g d. wt m–2 d–1and the heavy yields of herbage. When plants were kept in thedark, CO2 efflux subsequently declined rapidly to a lower, constantrate which was taken to be the maintenance respiration rate.The half-life of the declining phase of respiration averaged10.9 and 6.0 h at 15 and 30 °C respectively, and was curvilinearlyrelated to the specific maintenance respiration rate (m). Therapid decline in respiration was consistent with the low concentrationsof total soluble carbohydrate and starch in the herbage. Valuesof m for lamina and top growth increased with temperature witha Q10 of 2.6 and 1.42 respectively, but m of stems alone wasnot affected by temperature. Using results from this study forkikuyu and from McCree (1974) for sorghum and white clover,it was noted that all three species have similar m when grownat temperatures which are near their respective optimums forgrowth. Kikuyu, Pennisetum clandestinum, growth, respiration, temperature  相似文献   

16.
Indirect effects of atmospheric CO2 concentration [CO2], onlongleaf pine (Pinus palustris Mill.) foliage respiration werestudied by growing trees in a factorial arrangement of low andhigh [CO2] (369 and 729µmol CO2 mol–1) and low andhigh N (40 and 400 kg ha–1 yr–1). Direct effectsof [CO2] on leaf respiration were tested by measuring respirationrates of foliage from all treatments at two CO2 levels (360and 720µmol CO2mol–1) at the time of measurement.Elevated CO2 did not directly or indirectly affect leaf respirationwhen expressed on a leaf area or mass basis, but a significantincrease in respiration per unit leaf N was observed in treesgrown in elevated [CO2] (indirect response to elevated [CO2]).The lack of a [CO2] effect on respiration, when analysed onan area or mass basis, may have resulted from combined effectsof [CO2] on factors that increase respiration (e.g. greateravailability of non-structural carbohydrates stimulating growthand carbon export from leaves) and on factors that decreaserespiration (e.g. lower N concentration leading to lower constructioncosts and maintenance requirements). Thus, [CO2] affected factorsthat influence respiration, but in opposing ways. Key words: Pinus palustris, elevated CO2, nitrogen, foliar, respiration  相似文献   

17.
REUVENI  J.; GALE  J.; ZERONI  M. 《Annals of botany》1997,79(2):191-196
Sodium chloride, at a concentration of 88 mol m-3in half strengthHoagland nutrient solution, increased dry weight per unit areaofXanthium strumarium L. leaves by 19%, and chlorophyll by 45%compared to plants grown without added NaCl at ambient (350µmol mol-1) CO2concentration. Photosynthesis, per unitleaf area, was almost unaffected. Even so, over a 4-week period,growth (dry weight increment) was reduced in the salt treatmentby 50%. This could be ascribed to a large reduction in leafarea (>60%) and to an approx. 20% increase in the rate ofdark respiration (Rd). Raising ambient [CO2] from zero to 2000 µmol mol-1decreasedRd in both control and salinized plants (by 20% at 1000, andby 50% at 2000 µmol mol-1CO2concentration) compared toRd in the absence of ambient CO2. High night-time [CO2] hadno significant effect on growth of non-salinized plants, irrespectiveof day-time ambient [CO2]. Growth reduction caused by salt wasreduced from 51% in plants grown in 350 µmol mol-1throughoutthe day, to 31% in those grown continuously in 900 µmolmol-1[CO2]. The effect of [CO2] at night on salinized plants depended onthe daytime CO2concentration. Under 350 µmol mol-1day-time[CO2], 900 µmol mol-1at night reduced growth over a 4-weekperiod by 9% (P <0.05) and 1700 µmol mol-1reduced itby 14% (P <0.01). However, under 900 µmol mol-1day-time[CO2], 900vs . 350 µmol mol-1[CO2] at night increasedgrowth by 17% (P <0.01). It is concluded that there is both a functional and an otiose(functionless) component to Rd, which is increased by salt.Under conditions of low photosynthesis (such as here, in thelow day-time [CO2] regime) the otiose component is small andhigh night-time [CO2] partly suppresses functional Rd, therebyreducing salt tolerance. In plants growing under conditionswhich stimulate photosynthesis (e.g. with increased daytime[CO2]), elevated [CO2] at night suppresses mainly the otiosecomponent of respiration, thus increasing growth. Consequently,in regions of adequate water and sunlight, the predicted furtherelevation of the world atmospheric [CO2] may increase plantsalinity tolerance. Xanthium strumarium ; respiration; photosynthesis; salt stress; sodium chloride; carbon dioxide; atmosphere  相似文献   

18.
 依托FACE(Free-air CO2 enrichment)研究平台, 利用特制分根集气生长箱, 采用静态箱-GC(Gas chromatography)法, 连续两年研究 了大气CO2浓度升高和不同氮肥水平对冬小麦拔节期、孕穗抽穗期和灌浆末期的根系呼吸及生物量的影响。两季结果表明, CO2浓度升高和高氮 肥量均不同程度地增加了3个阶段的地上部和地下部的生物量, 这有利于增加根茬的还田量; CO2浓度升高对冬小麦不同生长阶段的根系呼吸影 响不同, 在拔节期影响较小;孕穗抽穗期显著增加了根系呼吸, 2004~2005季分别增加33.8%(148.1 mg N&;#8226;kg-1 干土, HN)和43.9%(88.9 mg N&;#8226;kg-1 干土, LN), 2005~2006季分别为23.8%(HN)和28.9%(LN); 而灌浆末期显著降低了根系呼吸, 2004~2005季分别降低31.4%(HN)和23.3% (LN), 2005~2006季分别为25.1%(HN)和18.5%(LN); 高施氮量比低施氮量促进了根系呼吸; 随着作物生长根系呼吸与地下生物量呈显著线性负相 关, 高CO2环境中的R2变小,表明随着作物生长发育高CO2浓度降低了作物根系呼吸与地下部生物量积累间的相关性.  相似文献   

19.
Stands of groundnut (Arachis hypogaea L.), a C3 legume, weregrown in controlled-environment glasshouses at 28 °C (±5°C)under two levels of atmospheric CO2 (350 ppmv or 700 ppmv) andtwo levels of soil moisture (irrigated weekly or no water from35 d after sowing). Elevated CO2 increased the maximum rate of net photosynthesisby up to 40%, with an increase in conversion coefficient forintercepted radiation of 30% (from 1–66 to 2–16g MJ–1) in well-irrigated conditions, and 94% (from 0–64to 1·24 g MJ–1) on a drying soil profile. In plantswell supplied with water, elevated CO2 increased dry matteraccumulation by 16% (from 13·79 to 16·03 t –1) and pod yield by 25% (from 2·7 to 3·4t ha–1).However, the harvest index (total poddry weight/above-grounddry weight) was unaffected by CO2 treatment. The beneficial effects of elevated CO2 were enhanced under severewater stress, dry matter production increased by 112% (from4·13 to 8·87 t ha–1) and a pod yield of1·34t ha–1 was obtained in elevated CO2, whereascomparable plotsat 350 ppmv CO2 only yielded 0·22 t ha-1.There was a corresponding decrease in harvest index from 0·15to 0·05. Following the withholding of irrigation, plants growing on astored soil water profile in elevated CO2 could maintain significantlyless negative leaf water potentials (P<0·01) for theremainder of the season than comparable plants grown in ambientCO2, allowing prolonged plant activity during drought. In plants which were well supplied with water, allocation ofdry matter between leaves, stems, roots, and pods was similarin both CO2 treatments. On a drying soil profile, allocationin plants grown in 350 ppmv CO2 changed in favour of root developmentfar earlier in the season than plants grown at 700 ppmv CO2,indicating that severe waterstress was reached earlier at 350ppmv CO2. The primary effects of elevated CO2 on growth and yield of groundnutstands weremediated by an increase in the conversion coefficientfor intercepted radiation and the prolonged maintenance of higherleaf water potentials during increasing drought stress. Key words: Arachis hypogaea, elevated CO2, water stress, dry matter production  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号