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1.
短期施氮肥降低杉木幼林土壤的根系和微生物呼吸   总被引:1,自引:0,他引:1       下载免费PDF全文
土壤呼吸是陆地生态系统碳循环的重要过程。在人工林生态系统中, 施肥不仅能提高人工林的生产力和固碳能力, 而且还会对土壤呼吸产生影响。为阐明施氮肥对人工林土壤总呼吸、根系和微生物呼吸的影响, 在中亚热带地区的湖南会同, 以5年生杉木(Cunninghamia lanceolata)幼林为研究对象, 施氮肥1年后, 利用LI-8100对土壤呼吸进行为期12个月的野外原位定点观测。结果发现: 施氮肥使土壤总呼吸、根系呼吸和微生物呼吸分别降低了22.7%、19.6%和23.5%; 土壤呼吸的温度敏感性(Q10)为1.81-2.04, 施肥使土壤微生物呼吸的Q10值从对照的2.04降低为1.84, 但土壤总呼吸的Q10值没有发生显著变化; 施肥没有改变土壤呼吸的季节变化, 在双因素模型中, 土壤温度和含水量可以解释土壤呼吸季节变化的69.9%-79.7%。研究表明施氮肥能降低中亚热带地区杉木人工林土壤有机碳分解对温度升高的响应, 在全球变暖背景下有利于增加土壤有机碳储量。  相似文献   

2.
Aims Soil respiration from terrestrial ecosystems is an important component of terrestrial carbon budgets. Compared to forests, natural or semi-natural shrublands are mostly distributed in nutrient-poor sites, and usually considered to be relatively vulnerable to environmental changes. Increased nitrogen (N) input to ecosystems may remarkably influence soil respiration in shrublands. So far the effects of N deposition on shrubland soil respiration are poorly understood. The aim of this study is to investigate the soil respiration of Vitex negundo var. heterophylla and Spiraea salicifolia shrublands and their response to N deposition. Methods We carried out a N enrichment experiment in V. negundo var. heterophylla and S. salicifolia shrublands in Mt. Dongling, Beijing, with four N addition levels (N0, control, 0; N1, low N, 20 kg N·hm-2·a-1; N2, medium N, 50 kg N·hm-2·a-1 and N3, high N, 100 kg N·hm-2·a-1). Respiration was measured from 2012-2013 within all treatments.Important findings Under natural conditions, annual total and heterotrophic respiration were 5.91 and 4.23, 5.76 and 3.53 t C·hm-2·a-1 for the V. negundo var. heterophylla and S. salicifolia shrublands, respectively and both were not affected by short-term N addition. In both shrubland types, soil respiration rate exhibited significant exponential relationships with soil temperature. Temperature sensitivity (Q10) of total soil respiration in V. negundo var. heterophylla and S. salicifolia shrublands ranged from 1.44 to 1.58 and 1.43 to 1.98, and Q10 of heterotrophic soil respiration ranged from 1.38 to 2.11 and 1.49 to 1.88, respectively. Short-term N addition decreased only autotrophic respiration rate during the growing season, but had no significant effects on total and heterotrophic soil respiration in V. negundo var. heterophylla shrubland. In contrast, N addition enhanced the heterotrophic soil respiration rate and did not influence autotrophic and total soil respiration in S. salicifolia shrubland.  相似文献   

3.
模拟氮沉降对华西雨屏区撑绿杂交竹林土壤呼吸的影响   总被引:7,自引:1,他引:6  
2008年1月至2009年2月,对华西雨屏区撑绿杂交竹(Bambusa pervariabilis × Dendrocala mopsi)人工林进行模拟氮沉降试验,氮沉降水平分别为对照(CK, 0 g N·m-2·a-1)、低氮(5 g N·m-2·a-1)、中氮(15 g N·m-2·a-1)和高氮(30 g N·m-2·a-1),采用红外CO2分析法测定土壤呼吸速率.结果表明: 杂交竹林土壤呼吸呈明显的季节变化,7月最高,1月最低.对照样方土壤呼吸年累积量为(389±34) g C·m-2·a-1.土壤呼吸速率与10 cm土壤温度和气温呈极显著正指数关系,与微生物生物量碳、氮呈极显著正线性关系.模拟氮沉降显著促进了土壤呼吸,低氮、中氮处理与对照之间差异达显著水平,但高氮处理与对照之间差异不显著.自然状态下,杂交竹林土壤表层微生物生物量碳和氮分别为0.460和0.020 mg·g-1,而所有氮处理中土壤微生物生物量碳和氮均显著增加.杂交竹林土壤表层(0~20 cm)细根密度为388 g·m-2,模拟氮沉降对杂交竹林细根密度的影响不显著.基于土壤10 cm深度温度和空气温度计算的杂交竹林土壤呼吸Q10值分别为2.66和1.87,短期模拟氮沉降并未显著影响土壤呼吸温度敏感性.杂交竹林土壤呼吸变异主要受温度和微生物生物量的控制,模拟氮沉降可能通过增加土壤微生物生物量促进了该系统土壤CO2排放.  相似文献   

4.
《植物生态学报》1958,44(6):687
土壤呼吸的温度敏感性(Q10)是陆地碳循环与气候系统间相互作用的关键参数。尽管已有大量关于不同类型森林Q10季节和年际变化规律的研究, 但是对Q10在区域尺度的空间变异特征及其影响因素仍认识不足, 已有结果缺乏一致结论。该研究通过整合已发表论文, 构建了中国森林生态系统年尺度Q10数据集, 共包含399条记录、5种森林类型(落叶阔叶林(DBF)、落叶针叶林(DNF)、常绿阔叶林(EBF)、常绿针叶林(ENF)、混交林(MF))。分析了不同森林类型Q10的空间变异特征及其与地理、气候和土壤因素的关系。结果显示, 1) Q10介于1.09到6.24之间, 平均值(±标准误差)为2.37 (± 0.04), 且在不同森林类型之间无显著差异; 2)当考虑所有森林类型时, Q10随纬度、海拔、土壤有机碳含量(SOC)和土壤全氮含量(TN)的增加而增大, 随经度、年平均气温(MAT)、平均年降水量(MAP)的增加而减小。气候(MATMAP)和土壤(SOCTN)因素间存在相互作用, 共同解释了33%的Q10空间变异, 其中MATSOCQ10空间变异的主要驱动因素; 3)不同类型森林Q10对气候和土壤因素的响应存在差异。在DNF中Q10MAP的增加而减小, 而其他类型森林中Q10MAP无显著相关性; 在EBF、DBF、ENF中Q10TN的增加而增大, 但Q10TN的敏感性在EBF中最高, 在ENF中最低。这些结果表明, 尽管Q10有一定的集中分布趋势, 但仍有较大范围的空间变异, 在进行碳收支估算时应注意尺度问题。Q10的主要驱动因素和Q10对环境因素的响应随森林类型而变化, 在气候变化情景下, 不同森林类型间Q10可能发生分异。因此, 未来的碳循环-气候模型还应考虑不同类型森林碳循环关键参数对气候变化的响应差异。  相似文献   

5.
Aims As the second largest C flux between the atmosphere and terrestrial ecosystems, soil respiration plays a vital role in regulating atmosphere CO2 concentration. Therefore, understanding the response of soil respiration to the increasing nitrogen deposition is urgently needed for prediction of future climate change. However, it is still unclear how nitrogen deposition influences soil respiration of shrubland in subtropical China. Our objectives were to explore the effects of different levels of nitrogen fertilization on soil respiration, root biomass increment, and litter biomass, and to analyze the relationships between soil respiration and soil temperature and moisture.
Methods From January 2013 to September 2014, we conducted a short-term simulated nitrogen deposition experiment in the Rhododendron simsii shrubland of Dawei Mountain, located in Hunan Province, southern China. Four levels of nitrogen addition treatments (each level with three replicates) were established: control (CK, no nitrogen addition), low nitrogen addition (LN, 2 g·m-2·a-1), medium nitrogen addition (MN, 5 g·m-2·a-1) and high nitrogen addition (HN, 10 g·m-2·a-1). Soil respiration was measured by LI-8100 soil CO2 efflux system. At the same time, we measured root biomass increment and litter biomass in each plot.
Important findings Soil respiration exhibited a strong seasonal pattern, with the highest rates found in summer and the lowest rates in winter. Annual accumulative soil respiration rate in the CK, LN, MN and HN was (2.37 ± 0.39), (2.79 ± 0.42), (2.26 ± 0.38) and (2.30 ± 0.36) kg CO2·m-2, respectively. Annual mean soil respiration rate in the CK, LN, MN and HN was (1.71 ± 0.28), (2.01 ± 0.30), (1.63 ± 0.27) and (1.66 ± 0.26) μmol CO2·m-2·s-1, respectively, and it was 17.25% higher in the LN treatment compared with CK (p = 0.06). The root biomass increment was increased by LN, MN, and HN treatments by 18.36%, 36.49% and 61.63%, respectively, compared to CK. The litter biomass was increased by LN, MN, and HN treatments by 35.87%, 22.17% and 15.35%, respectively, compared with CK. Soil respiration exhibited a significant exponential relationship with soil temperature (p < 0.01, R2 is 0.77 to 0.82) and a significant linear relationship with soil moisture at the depth of 5 cm (p < 0.05, R2 is 0.10 to 0.15). The temperature sensitivity (Q10) value of CK, LN, MN and HN plots was 3.96, 3.60, 3.71 and 3.51, respectively. These results suggested that nitrogen addition promoted plant growth and decreased the temperature sensitivity of soil respiration. The increase of root biomass under N addition may be an important reason for the change of soil respiration in the study area.  相似文献   

6.
土壤呼吸是生态系统碳循环的重要组成部分, 同时也是评价生态系统健康状况的重要指标, 对于评估退化草地恢复过程中生态系统功能具有重要意义。该研究在内蒙古四子王旗短花针茅(Stipa breviflora)荒漠草原长期放牧实验平台上进行, 该平台设置对照(CK)、轻度(LG)、中度(MG)和重度(HG) 4个放牧强度。通过在4个放牧处理区设置氮、水添加实验处理, 探讨不同放牧强度背景下, 氮、水补充对荒漠草原土壤呼吸过程的影响。结果表明: (1)历史放牧强度除2015年对土壤呼吸无显著影响, 2016和2017年都有显著影响, 放牧区3年平均土壤呼吸速率基本都高于对照区。此外, 氮和水分添加显著增加了MG区土壤呼吸速率, HG区氮、水同时添加对土壤呼吸速率有显著增加作用; (2)无论是历史放牧强度, 还是氮、水添加处理, 都没有改变荒漠草原生长季土壤呼吸速率的季节动态变化趋势, 土壤呼吸速率基本表现为单峰曲线模式, 峰值出现在水热同期的7月份; (3)不同年份生长季土壤呼吸速率对氮、水处理的响应并不相同, 氮添加至第3年产生显著影响。水分添加在平水年份(2015和2017年)对土壤呼吸产生显著影响, 但在丰水年份(2016年)无显著影响。氮、水共同添加分别在CK、LG和HG区3年平均土壤呼吸速率显著高于单独加水处理, 说明氮添加的有效性依赖于水分条件, 两者表现为协同作用; (4)不同处理下荒漠草原土壤呼吸的温度敏感性(Q10)值介于1.13-2.41之间, 平均值为1.71。在无氮、水添加时, 放牧区的Q10值都小于CK区, 总体表现为CK 大于 MG 大于 LG 大于 HG; 加水和氮水共同添加处理后, Q10值都有明显增加, 其中NW处理下Q10值都增加到2.0以上。上述结果说明在过去受不同放牧强度影响的荒漠草原在停止放牧后的恢复过程中, 土壤水分仍是影响土壤呼吸的主导环境因子, 外源氮添加只有在满足一定水分供给的基础上才起作用, 尤其是过去的重度放牧区土壤呼吸速率对氮、水补充的响应最为强烈。该研究结果可以为评估荒漠草原恢复过程中土壤呼吸速率受养分和水分影响提供基础资料和依据。  相似文献   

7.
为探明中亚热带地区常绿阔叶林演替序列土壤呼吸(Rs)的变化趋势及其影响机制, 在福建省建瓯市万木林自然保护区选取演替时间分别为15年(演替初期)、47年(演替中期)和110年(演替后期)三个不同演替阶段, 进行了为期1年的野外原位观测。结果发现: 演替初期、中期和后期的Rs分别为2.38、3.32和3.91 µmol·m -2·s -1, 温度敏感性(Q10值)分别为2.64、1.97和1.79; 与演替初期相比, 演替后期的Rs显著增加64.29%, Q10值显著降低32.30%; 不同演替阶段Rs的季节变化模式相似, 温度和含水量可分别解释季节变化的69.5% (初期)、81.9% (中期)和61.3% (后期); 回归分析发现, Rs与凋落物年归还量、细根生物量和土壤全氮和土壤有机质碳含量显著正相关。表明本研究区内植被演替促进了土壤碳排放, 降低了土壤呼吸的温度敏感性; 土壤碳输入增加、养分含量的提高和细根生物量增大是中亚热带常绿阔叶林Rs随演替进程逐渐增大的主要原因。  相似文献   

8.
《植物生态学报》2016,40(4):416
Aims
This study aims to evaluate the impacts of future climate change on vegetation and soil carbon accumulation rate in China’s forests.
Methods
The vegetation and soil carbon storage were predicted by the atmosphere-vegetation interaction model (AVIM2) based on B2 climate change scenario during the period of 1981-2040. This study focused on mature forests in China and the forested area maintained constant over the study period. The carbon accumulation rate in year t is defined as the carbon storage of year t minus that of year t-1.
Important findings
Under B2 climate change scenario, mean air temperature in China’s forested area was projected to rise from 7.8 °C in 1981 to 9.0 °C in 2040. The total vegetation carbon storage was then estimated to increase from 8.56 Pg C in 1981 to 9.79 Pg C in 2040, meanwhile total vegetation carbon accumulation rate was estimated to fluctuate between -0.054-0.076 Pg C·a-1, with the average of 0.022 Pg C·a-1. The total soil carbon storage was estimated to increase from 30.2 Pg C in 1981 to 30.72 Pg C in 2040, and total soil carbon accumulation rate was estimated to vary in the range of -0.035-0.072 Pg C·a-1, with the mean of 0.010 Pg C·a-1. The response of vegetation and soil carbon accumulation rate to climate change had significant spatial difference in China although the two time series did not show significant trend over the study period. Our results also showed warming was not in favor of forest carbon accumulation, so in the northeastern and southeastern forested area, especially in the Changbai Mountain, with highest temperature increase in the future, the vegetation and soil carbon accumulation rate were estimated to decrease greatly. However, in the southern of southwestern forested area and other forested area, with relatively less temperature increase, the vegetation and soil carbon accumulation rate was estimated to increase in the future.  相似文献   

9.
《植物生态学报》2016,40(11):1111
Aims Winter soil respiration plays a crucial role in terrestrial carbon cycle, which could lose carbon gained in the growing season. With global warming, the average near-surface air temperatures will rise by 0.3 to 4.8 °C. Winter is expected to be warmer obviously than other seasons. Thus, the elevated temperature can significantly affect soil respiration. The coastal wetland has shallow underground water level and is affected by the fresh water and salt water. Elevated temperature can cause the increase of soil salinity, and as a result high salinity can limit soil respiration. Our objectives were to determine the diurnal and seasonal dynamics of soil respiration in a coastal wetland during the non-growing season, and to explore the responses of soil respiration to environmental factors, especially soil temperature and salinity.
Methods A manipulative warming experiment was conducted in a costal wetland in the Yellow River Delta using the infrared heaters. A complete random block design with two treatments, including control and warming, and each treatment was replicated each treatment four times. Soil respiration was measured twice a month during the non-growing season by a LI-8100 soil CO2 efflux system. The measurements were taken every 2 h for 24 h at clear days. During each soil respiration measurement, soil environmental parameters were determined simultaneously, including soil temperature, moisture and salinity.
Important findings The diurnal variation of soil respiration in the warming plots was closely coupled with that in the control plots, and both exhibited single-peak curves. The daily soil respiration in the warming was higher than that in the control from November 2014 to January 2015. Contrarily, from March to April 2015. During the non-growing seasons, there were no significant differences in the daily mean soil respiration between the two treatments. However, soil temperature and soil salt content in the warming plots were significantly higher than those in the control plots. The non-growing season was divided into the no salt restriction period (November 2014 to middle February 2015) and salt restriction period (middle February 2015 to April 2015). During non-growing season, soil respiration in the warming had no significant difference compared with that in control. During the no salt restriction period, soil respiration in the warming was 22.9% (p < 0.01) greater than the control when soil temperature at 10 cm depth in warming was elevated by 4.0 °C compared with that in control. However, experimental warming decreased temperature sensitivity of soil respiration (Q10). During salt restriction period, soil warming decreased soil respiration by 20.7% compared with the control although with higher temperature (3.3 °C), which may be attributed to the increased soil salt content (Soil electric conductivity increased from 4.4 ds·m-1 to 5.3 ds·m-1). The high water content can limit soil respiration in some extent. In addition, the Q10 value in the warming had no significant difference compared with that in control during this period. Therefore, soil warming can not only increase soil respiration by elevating soil temperature, but also decrease soil respiration by increasing soil salt content due to evaporation, which consequently regulating the soil carbon balance of coastal wetlands.  相似文献   

10.
研究农作物生育期对根系呼吸(RA)及其温度敏感性(Q10)的影响对丰富农田生态系统的碳循环理论具有重要理论和现实意义.在黄土高原雨养农田生态系统,于2009—2014年生长季,利用土壤碳通量系统测量相邻裸地土壤微生物呼吸(RH)和不施肥小麦地的土壤呼吸(RS=RA+RH),研究生育期对冬小麦RAQ10的影响.结果表明:冬小麦净光合速率在苗期、拔节期、灌浆期和成熟期分别为5.9、14.4、12.0和4.4 μmol·m-2·s-1,根系活力依次为51.0、100.8、84.4和31.8 μg·g-1·h-1.冬小麦不同生育期的RA差异显著,分别为0.26、0.67、0.91和0.56 μmol·m-2·s-1,且RA的变异特征与冬小麦各生育期内土壤水分含量、土壤温度、净光合速率和根系活力密切相关,分别呈抛物线、指数、线性和线性关系模型.Q10在苗期、拔节期、灌浆期和成熟期分别为2.61、4.88、2.26和6.93,且Q10的变异特征与冬小麦各生育期内的净光合速率、根系活力和土壤水分含量有关,这一变化的根系呼吸贡献率在各生育期分别为29%、53%、46%和31%.除了环境因素外,冬小麦生育期也是影响RAQ10的重要因素.  相似文献   

11.
《植物生态学报》2016,40(7):643
Aims Subtropical forest ecosystem has great carbon sequestration capacity. Net primary productivity (NPP) plays a critical role in forest carbon cycle and is affected by a number of factors, including climate change, atmospheric composition, forest disturbance intensity and frequency, and forest age, etc. However, the contribution of these factors to the temporal-spatial dynamics of NPP is still not clear. Quantifying the main driving forces on the temporal-spatial dynamics of NPP for subtropical forest ecosystems is a critical foundation for understanding their carbon cycle.
Methods We utilized multi-sources dataset, including observed meteorological data, inversed annual maximum leaf area index (LAI), referenced NPP (simulated by Boreal Ecosystem Productivity Simulator (BEPS) model), forest age and forest types, land cover, digital elevation model (DEM), soil texture, CO2 concentration and nitrogen deposition. We used the InTEC (integrated terrestrial ecosystem carbon-budget) model to simulate the NPP dynamics for forest ecosystems in Jiangxi Province during the period of 1901-2010. The effects of climate change, forest age, CO2 concentration and nitrogen (N) deposition on forest NPP from 1970 to 2010 were discussed through designed scenarios.
Important findings (1) Validations by flux measurements and forest inventory data indicated that the InTEC model was able to capture the interannual and spatial variations of forest NPP. (2) The average forest NPP was 47.7 Tg C·a-1 (± 4.2 Tg C·a-1) during 1901-2010. The NPP in the 1970s, 1980s, 1990s and 2000s was 50.7, 48.8, 45.4, and 55.2 Tg C·a-1, respectively. As forest regrows, NPP significantly increased for forests in Jiangxi Province in the 2000s, and exceed that in the 1970s for more than 60% of the forest area. (3) During 1970-2010, under the scenarios of disturbance and non-disturbance, the forest NPP were underestimated by 7.3 Tg C·a-1 (14.5%) and overestimated by 3.6 Tg C·a-1 (7.1%) compared to the scenarios of all disturbance and non-disturbance factors, respectively. Compared to the average NPP during 1970-2010, climate change decreased NPP by -2.0 Tg C·a-1 (-4.7%), N deposition increased NPP by 4.5 Tg C·a-1 (10.4%), CO2 concentration change, and the integrated fertilization of CO2 and N deposition increased NPP by 4.4 Tg C·a-1 (10.3%) and 9.4 Tg C·a-1 (21.8%), respectively.  相似文献   

12.
北京山区不同植被类型的土壤呼吸特征及其温度敏感性   总被引:1,自引:0,他引:1  
土壤呼吸作为陆地生态系统碳循环的重要组成部分,是生态系统碳循环研究中的热点问题.土壤呼吸温度敏感性(Q10)是估算土壤呼吸对全球变暖的反馈参数,研究不同植被类型的Q10对评估森林生态系统碳收支具有重要意义.本研究以北京山区典型植被类型侧柏、油松和栓皮栎为研究对象,通过测定生长季内3种植被类型的土壤理化性质、土壤水热因素以及土壤呼吸速率(Rs)的变化,探究不同植被类型下的土壤呼吸特征及温度敏感性.结果表明:3种主要植被类型的Rs在生长季内与土壤温度、湿度的变化趋势相似,均呈现先升高后降低的单峰变化,Rs在4月初最低(0.45 μmol·m-2·s-1),随后逐渐增大,在7月初达到峰值(3.95 μmol·m-2·s-1),然后逐渐降低,3种植被类型的RsQ10值均存在显著差异.土壤温度和湿度是土壤呼吸的重要影响因素,两者与Rs拟合的回归模型可以解析土壤呼吸速率48.1%~56.7%的变化.北京山区的Q10值在2.05~3.19,在同一植被类型下,Q10值与土壤有机碳含量呈显著负相关(R2>0.9),植被类型、海拔和土壤有机碳含量是造成不同植被类型Q10值差异的重要原因.  相似文献   

13.
《植物生态学报》2013,37(11):988
青藏高原具有独特的海拔、气候和生态系统类型, 弄清其土壤有机质分解及其温度敏感性对于揭示青藏高原土壤碳储量变化及其碳汇功能具有重要意义。该文利用青藏高原西北部草地的11个封育-自由放牧成对草地, 通过测定不同温度(5、10、15、20和25 ℃)培养下的土壤碳矿化速率, 探讨了土地利用方式对该地区土壤碳矿化及其温度敏感性的影响。实验结果表明: 温度对青藏高原高寒草地的土壤碳矿化具有显著影响, 温度越高土壤碳矿化量越大。从东至西, 土壤碳矿化量逐渐降低。草地土壤碳矿化量与土壤有机碳和土壤全氮含量显著正相关; 即土壤有机碳和土壤全氮含量越高, 土壤碳矿化量就越高。土地利用方式对土壤碳矿化的温度敏感性(Q10)无显著影响, Q10值变化范围为1.4-2.4; 其中, 放牧草地Q10的平均值为1.83, 封育草地Q10的平均值为1.86。此外, Q10与土壤有机碳和土壤全氮含量无显著的相关关系, 也无明显的空间格局。放牧和封育对青藏高原高寒草地土壤碳矿化的温度敏感性无显著影响, 为深入分析青藏高原土壤碳汇功能及其对未来气温升高的响应提供了重要的理论依据。  相似文献   

14.
氮添加对沙质草地微生物呼吸与根系呼吸的影响   总被引:1,自引:1,他引:0  
土壤呼吸可以细化为根系呼吸和微生物呼吸,二者对氮添加的响应有所不同.本文以科尔沁沙质草地为研究对象,探讨氮添加对土壤CO2排放的影响,并细化为微生物呼吸和根系呼吸的响应特征.结果表明: 在观测期(5—10月),土壤呼吸、微生物呼吸月动态均呈先升高后降低的趋势;微生物呼吸是土壤呼吸的主要贡献者,占82.6%;观测期内根系呼吸贡献率随月份而变化,根系呼吸贡献率两个峰值分别出现在5月(占49.4%)和8月(占41.9%),6个月的平均贡献率为17.4%;在10 ℃条件下,根系呼吸较微生物呼吸对氮添加的响应更为敏感,微生物呼吸速率在氮添加后降低了3.9%,而根系呼吸降低了17.7%;氮添加提高了土壤呼吸、微生物呼吸温度敏感性Q10值,也提高了二者对土壤水分变化的敏感程度.  相似文献   

15.
土壤呼吸的温度敏感性(Q10)是陆地碳循环与气候系统间相互作用的关键参数。尽管已有大量关于不同类型森林Q10季节和年际变化规律的研究, 但是对Q10在区域尺度的空间变异特征及其影响因素仍认识不足, 已有结果缺乏一致结论。该研究通过整合已发表论文, 构建了中国森林生态系统年尺度Q10数据集, 共包含399条记录、5种森林类型(落叶阔叶林(DBF)、落叶针叶林(DNF)、常绿阔叶林(EBF)、常绿针叶林(ENF)、混交林(MF))。分析了不同森林类型Q10的空间变异特征及其与地理、气候和土壤因素的关系。结果显示, 1) Q10介于1.09到6.24之间, 平均值(±标准误差)为2.37 (± 0.04), 且在不同森林类型之间无显著差异; 2)当考虑所有森林类型时, Q10随纬度、海拔、土壤有机碳含量(SOC)和土壤全氮含量(TN)的增加而增大, 随经度、年平均气温(MAT)、平均年降水量(MAP)的增加而减小。气候(MATMAP)和土壤(SOCTN)因素间存在相互作用, 共同解释了33%的Q10空间变异, 其中MATSOCQ10空间变异的主要驱动因素; 3)不同类型森林Q10对气候和土壤因素的响应存在差异。在DNF中Q10MAP的增加而减小, 而其他类型森林中Q10MAP无显著相关性; 在EBF、DBF、ENF中Q10TN的增加而增大, 但Q10TN的敏感性在EBF中最高, 在ENF中最低。这些结果表明, 尽管Q10有一定的集中分布趋势, 但仍有较大范围的空间变异, 在进行碳收支估算时应注意尺度问题。Q10的主要驱动因素和Q10对环境因素的响应随森林类型而变化, 在气候变化情景下, 不同森林类型间Q10可能发生分异。因此, 未来的碳循环-气候模型还应考虑不同类型森林碳循环关键参数对气候变化的响应差异。  相似文献   

16.
施肥对落叶松和水曲柳人工林土壤呼吸的影响   总被引:13,自引:0,他引:13       下载免费PDF全文
 以落叶松(Larix gmelinii)和水曲柳(Fraxinus mandshurica)人工林为研究对象,采用动态气室法(LI-6400-09叶室连接到LI-6400便携式CO2/H2O分析系统)对两种林分的土壤呼吸速率进行了观测,探讨了细根生物量、根中氮含量与土壤呼吸速率的关系,以及施肥对细根生物量、根中氮含量和土壤呼吸速率的影响。结果表明:1)施肥导致落叶松和水曲柳林分的活细根生物量降低18.4%和27.4%, 死细根生物量分别降低了34.8%和127.4 %;2)施肥使落叶松和水曲柳林地土壤呼吸速率与对照相比分别减少了34.9%和25.8%;3 )施肥对根中氮含量没有显著影响;4)落叶松和水曲柳林地的土壤呼吸与土壤温度表现出相同的季节变化,两种林分的土壤呼吸速率与地下5和10 cm处的温度表现出明显的指数关系 ,其相关性R2=0.93~0.98。土壤呼吸温度系数Q10的范围在2.45~3.29。 施肥处理对Q10没有产生影响,施肥处理导致细根生物量减少可能是引起林地土壤呼吸速率下降的主要原因。  相似文献   

17.
城市森林是生态系统重要碳库,其土壤呼吸是构成陆地土壤碳循环的重要环节。为了研究全球氮沉降增加背景下城市森林土壤呼吸动态变化及影响因素,本研究选取安徽省合肥市蜀山森林公园典型城市森林为研究对象,通过添加0(CK)、50(LN)、100(HN) kg N·m-2·a-1硝酸铵试验,对其土壤呼吸速率、温湿度及理化性质进行动态观测。结果表明: 城市森林土壤呼吸具有明显的季节差异,氮添加没有改变土壤呼吸季节动态特征;土壤呼吸与土壤温度存在显著相关性,土壤温度与土壤湿度的交互作用能更好地解释土壤呼吸的变异;氮添加在一定程度上改变了土壤呼吸的温度敏感性,其指数Q10值表现为LN(2.12)>CK(2.10)>HN(2.05);不同氮添加条件下,土壤呼吸与土壤硝态氮、溶解性有机碳、pH、碳氮比存在显著相关关系;氮添加对土壤呼吸的促进作用主要表现在生长季,对非生长季土壤呼吸则表现出轻微的抑制作用。  相似文献   

18.
土壤酶是有机质降解的催化剂,其动力学特征是表征酶催化性能的重要指标,对评价土壤健康质量有重要作用。本研究选择黄土高原3种植被带下人工刺槐林土壤为对象,探讨了土壤酶动力学参数对温度变化的响应及其温度敏感性(Q10)的变化特征。结果表明: 随着培养温度的升高,土壤丙氨酸转氨酶、亮氨酸氨基肽酶和碱性磷酸酶的潜在最大反应速率(Vmax)和半饱和常数(Km)均呈线性增加,且Vmax呈现出森林带>森林草原带>草原带的地带性规律。Vmax的温度敏感性(Q10(Vmax))为1.14~1.62,Km的温度敏感性(Q10(Km))为1.05~1.47,且两者在森林草原带的值均低于其他植被带。在低、高温区,不同土壤酶的Q10在各植被带间的变化也不尽相同。冗余分析显示,Q10与环境变量尤其是土壤养分有显著的相关关系,这表明Q10可能还受到除温度以外其他环境因子的影响。  相似文献   

19.
《植物生态学报》2015,39(8):797
Aims Soil respiration (Rs) is the largest fraction of carbon flux in forest ecosystems, but the effects of forest understory removal on Rs in Chinese fir (Cunninghamia lanceolate) plantations is poorly understood. In order to quantify the effects of forest understory removal on Rs and microbial community composition, a field experiment was conducted in a subtropical Chinese fir plantation. Methods Forest understory was removed manually in June 2012. Rs was measured monthly using a LI-COR 8100 infrared gas analyzer from July 2012 through July 2014. Soil temperature and moisture were also measured at 5 cm depth at the time of Rs measurements. Surface soil (0-10 cm) samples were collected in July 2013 and 2014, respectively, and the soil microbial community structures were determined by phospholipid fatty acids (PLFAs) analysis. Important findings Rs decreased by 32.8% over a two-year period following understory removal (UR), with a greater rate of decrease in the first year (42.9%) than in the second year (22.2%). The temperature sensitivity of Rs was affected by UR, and was 2.10 and 1.87 in the control and UR plots, respectively. UR significantly reduced the concentration of fungal PLFAs by 18.3%, but did not affect the concentration of bacterial PLFAs, resulting in an increase in the fungal:bacterial ratio; it significantly increased the concentration of gram-positive bacterial PLFAs by 24.5%, and the ratio of gram-positive to gram-negative bacterial PLFAs after one year of treatment, but decreased the concentration of gram-positive bacterial PLFAs by 9.4% and the ratio of gram-positive to gram-negative bacterial PLFAs after two years of treatment. The results suggested that Rs and microbial community composition were both affected by UR in Chinese fir plantation, and the effects were dependent of the duration following the UR treatment.  相似文献   

20.
《植物生态学报》2017,41(6):610
Aims Understanding the responses of root exudative carbon (C) to increasing nitrogen deposition is important for predicting carbon cycling in terrestrial ecosystems. However, fewer studies have investigated the dynamics of root exudation in shrubbery ecosystems compared to forests and grassland ecosystems. This objective of this study was to determine the effects of nitrogen fertilization on the rate and C flux of root exudates.Methods Three levels of nitrogen addition treatments were applied to a Sibiraea angustata shrubbery ecosystem situated at the eastern fringe of Qinghai-Xizang Plateau, including N0 (without nitrogen application), N5 (nitrogen addition rate of 5 g·m-2·a-1), and N10 (nitrogen addition rate of 10 g·m-2·a-1), respectively, in 5 m ´ 5 m plots. Root exudates were collected in June, August and October of 2015, using a modified culture-based cuvette system. Root biomass in each plot was measured with root core method.Important findings The rates of root exudates on biomass, length, and surface area basis all displayed apparent seasonal variations during the experimental period, with the magnitude ranked in the order of: August > June > October, consistent with changes in soil temperature at 5 cm depth. With increases in the nitrogen addition rate, the rate of root exudates on biomass, length, and area basis all trended lower. Compared with the control (N0), the N5 and N10 treatments significantly reduced fine root biomass in the Sibiraea angustata shrubbery, by 23.36% and 33.84%, respectively. The decreasing root exudation and fine root biomass in response to nitrogen addition significantly decreased C flux of root exudates. Our results provide additional evidences toward a robust theoretical foundation for better understanding soil C-nutrient cycling process mediated by root exudation inputs in Alpine shrubbery ecosystems under various environmental changes.  相似文献   

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