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1.
黄河小浪底人工混交林生长季能量平衡特征   总被引:4,自引:2,他引:2  
原文文  同小娟  张劲松  孟平  李俊  郑宁 《生态学报》2015,35(13):4492-4499
利用涡度相关系统和小气候梯度观测系统,对黄河小浪底人工混交林2012年生长季(5—9月)各能量通量进行了连续观测,分析了该生态系统能量平衡各项的变化特征,讨论了能量闭合状况。结果表明:潜热通量、感热通量和土壤热通量均与净辐射有类似的日变化特征。各项的绝对值大小表现为净辐射潜热通量感热通量土壤热通量。受日照时数的影响,5—9月能量平衡各项正值的日持续时间逐渐缩短。生长季,净辐射、感热通量和土壤热通量在6月份最大,最大值分别为418.5、231.4和12.5 MJ m-2month-1);潜热通量在7月份达到最大,最大值为320.8 MJ m-2month-1)。潜热通量、感热通量和土壤热通量占净辐射的比例分别在0.48—0.62、0.15—0.55、0.02—0.05之间。人工混交林生长季的能量分配主要以潜热通量和感热通量为主,且潜热通量为感热通量的2倍。波文比呈单峰曲线:6月最大,8月最小。黄河小浪底人工混交林生长季全天能量闭合度为79%。其中,白天闭合程度较高(81%),夜晚较低(41%)。本研究站点存在21%的能量不闭合。其原因可能与通量源区面积不匹配、忽略冠层热储存、湍流能的相位差等有关。  相似文献   

2.
科尔沁温带草甸能量平衡的日季变化特征   总被引:1,自引:0,他引:1  
利用2011年9月—2012年10月涡度相关数据和气象观测资料,对科尔沁温带草甸能量平衡的日季变化特征进行分析.结果表明:研究区涡度相关系统全年的能量平衡闭合度为0.77,不同时期能量平衡闭合度的大小顺序为:生长季裸土期积雪期.能量平衡各分量日变化均呈单峰曲线形式,净辐射日变化峰值出现在12:00前后,其余分量的峰值出现时间都稍有滞后.净辐射季节变化呈单峰曲线形式,年平均值为5.71 MJ·m-2·d-1.潜热通量季节变化趋势与净辐射相似,年平均值为2.84 MJ·m-2·d-1.感热通量季节变化呈双峰曲线形式,峰值分别出现在4月和9月,年平均值为1.87 MJ·m-2·d-1.土壤热通量的最大值(3.47 MJ·m-2·d-1)出现在4月,9月以后开始转为负值.全年能量平衡各分量收支比例的大小顺序为:潜热通量感热通量土壤热通量,潜热通量、感热通量和土壤热通量分别占净辐射的49.8%、35.8%和3.1%.全年波文比的季节变化近似"U"型,平均值为1.61;生长季数值较小且较为平稳,平均值为0.18;非生长季数值较大且波动较大,平均值为2.39.  相似文献   

3.
为探讨我国亚热带毛竹林(Phyllostachys edulis)生长季的能量平衡关系,利用开路涡度相关法,对2011年毛竹林生长季的能量通量的变化特征进行了研究,并应用能量平衡比率法和线性回归2种方法,分析了能量闭合的特点。结果表明,我国亚热带毛竹林生长季的净辐射总量为1738.2 MJ m–2,显热通量为354.3 MJ m–2,潜热通量为1146.0 MJ m–2,土壤热通量为58.9 MJ m–2,土壤为热汇,显热通量占净辐射的20.4%,潜热通量占65.9%,土壤热通量占3.4%。毛竹林生长季的能量闭合度为0.89,月平均闭合度为0.91,但仍有11%的能量不闭合。可见,毛竹林生长季以潜热能量散失形式为主,各能量分量均以净辐射变化为基础,且日变化基本呈单峰型曲线。  相似文献   

4.
东北阔叶红松林能量平衡特征   总被引:13,自引:4,他引:9  
采用涡度相关法,结合小气候观测,对东北阔叶红松林的能量平衡特征进行了研究。结果表明,森林全年获得的辐射能量为2.3×109J/m2,平均净辐射(Rn)强度为72.1 W/m2,12月最小,平均为5.8W/m2,6月最大,平均为127 W/m2。除了受太阳高度角的支配,Rn对中小尺度天气变化响应显著。非生长季,森林主要能量支出项为感热通量(H),约占Rn的72%,H最大值出现在5月份;生长季,主要能量支出项为潜热通量(LE),约占Rn的60%,LE最大值出现在7月份。全年因蒸散消耗的能量为1.2×109J/m2,占净辐射的52%,森林蒸散的水量为493mm,占降水量的88%。波文比β近似呈U字型变化,其值受森林物候变化影响显著,在非生长季平均值约为3.0,生长季为0.5左右。土壤热通量(G)在非生长季表现为能量平衡方程的收入项,约占有效能量的5.0%;生长季表现为支出项,约占有效能量的4.0%,其变化过程与土壤温度梯度及叶面积指数密切相关。长白山通量观测站能量平衡收支闭合度为86%,不闭合的原因有待于进一步的研究。  相似文献   

5.
基于2011-2012年黄土高原农牧交错带稀疏自然植被生态系统的地表能量通量以及气象数据,对该地区能量平衡各分量(净辐射、感热、潜热和土壤热通量)以及波文比进行日、季节动态的特征分析,研究了潜热通量和感热通量对不同强度降雨事件响应程度的差异,并分析了潜热通量和感热通量的主控因子.结果表明:该地区净辐射、感热、潜热和土壤热通量的日、季节动态曲线均为单峰型曲线,净辐射、感热通量、潜热通量和土壤热通量的年平均值分别为78.19、33.32、24.91和2.65 W·m-2.在全年能量收支平衡中,感热通量占净辐射的43%,潜热通量占32%,土壤热通量占3%,表明对于黄土高原农牧交错带自然稀疏灌木生态系统,全年能量主要以感热的形式交换.生长季感热和潜热占净辐射的比例相同(36%);而在非生长季,感热占主导,占净辐射的比例高达54%.潜热通量在强、弱降雨事件发生后明显升高,感热通量则明显下降.潜热通量与净辐射、水汽压差及植被参数均显著相关,感热通量与净辐射及空气温度梯度显著相关.  相似文献   

6.
黄土高原半干旱草地地表能量通量及闭合率   总被引:6,自引:0,他引:6  
利用兰州大学半干旱气候与环境观测站(简称SACOL站)2008年的湍流、辐射、土壤温度和通量梯度观测资料,分析了地表能量通量的日变化、季节变化及能量分配特征,讨论了典型黄土高原沟壑区土壤热量储存对地表能量闭合率的影响.结果表明:黄土高原半干旱草地全年获得的净辐射约为2.269×103 MJ/m2,感热、潜热和土壤热通量年总量分别为1.210×103 MJ/m2、1.117×103 MJ/m2和0.069×103 MJ/m2;能量平衡各分量季节变化明显,日变化呈单峰型.从各能量分量占净辐射的比例来看,黄土高原半干旱草地净辐射主要以感热形式加热大气.草原生长期的能量闭合率为86.8%,非生长期的能量闭合率为76.5%.与未考虑0-5cm深度的土壤热量储存相比,草原生长期能量闭合率提高了11.3%,非生长期能量闭合率提高了12.0%.  相似文献   

7.
孙成  江洪  陈健  刘玉莉  牛晓栋  陈晓峰  方成圆 《生态学报》2015,35(12):4128-4136
利用开路涡度相关系统和常规气象观测仪器,对亚热带(浙江省)毛竹林生态系统2011年的净辐射、显热通量、潜热通量、土壤热通量以及气温、地温、降雨量等气象要素进行了连续观测,定量分析了毛竹林生态系统能量通量的变化和各能量分量的分配特征,并计算了能量闭合度以及波文比。结果表明:毛竹林全年净辐射为2628.00 MJ/m2,显热通量为576.80 MJ/m2,潜热通量为1666.77 MJ/m2,土壤热通量为-7.52 MJ/m2,土壤为热源,各能量分量季节变化明显,日变化基本呈单峰型曲线变化。显热通量占净辐射的22.0%,潜热通量占63.4%,毛竹林生态系统潜热通量为能量散失的主要形式。波文比逐月变化规律不明显,波动较大,在0.07—1.77之间变化,能量平衡比率法得出毛竹林年能量闭合度为0.85,月平均闭合度为0.84,能量闭合度高于线性回归法计算结果,但仍有15%的能量不闭合。  相似文献   

8.
高效经营雷竹林生态系统能量通量过程及闭合度   总被引:2,自引:0,他引:2  
利用开路涡度相关系统和常规气象仪,对高效经营的雷竹林生态系统2011年的显热通量、潜热通量、净辐射、土壤热通量以及气温、地温、降雨量进行了观测,分析该生态系统能量通量的变化,以及各能量分量的分配特征,并计算了波文比及能量闭合.结果表明:雷竹林全年净辐射为2928.92 MJ·m-2,潜热通量、显热通量和土壤热通量分别为1384.90、92754和-28.27 MJ·m-2,各能量分量的日变化和月变化基本呈单峰曲线.潜热通量为能量散失主要形式,占净辐射的47.3%,显热通量占31.7%,波文比呈“U”型曲线,在0.285~2.062之间变化,土壤为热源.雷竹林年能量闭合度为0.782,月平均闭合度为0.808.
  相似文献   

9.
王力  卫三平  吴发启 《生态学报》2009,29(12):6578-6588
利用CoupModel模型模拟了黄土丘陵沟壑区燕沟流域刺槐(Robinia pseudoacacia)林地、辽东栎(Quercus liaotungensis)林地、荒草地、农地等7种土地类型的土壤热量状况,分析了不同植被类型的潜热通量、感热通量、土壤热通量以及植被生长对土壤热量的响应.结果表明,农地潜热通量较小,林地和荒草地潜热通量较大,各地类潜热通量季节变化规律基本一致.潜热通量是黄土丘陵区土壤-植被-大气系统能量的主要支出项,占总净辐射的72.1%~81.4%以上;感热通量变化振幅相对较小,占总净辐射的16.4%~26.4%;土壤热通量仅占总净辐射的1.4%~2.4%,但直接影响土壤温度的变化速度和变化时间.试验地各地类地表温度随季节的变化趋势均呈单峰曲线型.2~7月份0~20cm平均土壤温度随累积土壤热通量的增大而升高,9月到翌年1月份0~20cm平均土壤温度随累积土壤热通量的减小而降低,但累积土壤热通量的变化滞后于土壤温度变化.同一植被类型条件下,阳坡土壤温度年变幅显著高于阴坡.在阴坡,0cm、10cm、20cm深土壤温度年变幅农地>阴坡荒草地>阴坡辽东栎林地>阴坡刺槐林地;在阳坡,阳坡荒草地>阳坡刺槐林地>阳坡辽东栎林地.阴坡刺槐林地、阴坡荒草地和农地0~20cm土壤温度达到5℃以上的时间比阳坡刺槐林和阳坡荒草地推迟1周左右,根系开始生长活动的时间也推迟1周左右;而阴坡辽东栎林地则晚于阳坡辽东栎林地5d左右,根系开始生长活动的时间也较阳坡辽东栎林晚5d左右.出叶时间阳坡刺槐林和阳坡荒草地植物比阴坡刺槐林、阴坡荒草地和阳坡辽东栎林的早1周左右,比阴坡辽东栎林早12d左右.  相似文献   

10.
长白山阔叶红松林能量平衡和蒸散   总被引:1,自引:0,他引:1  
利用开路涡动相关系统的连续观测结果,分析了长白山阔叶红松林2008年能量平衡各分量和蒸散量的特征,并对生长季和非生长季能量各分量和蒸散量的差异进行了比较.结果表明:该观测系统能量闭合度为72%,处于国际同类观测的中等水平;能量各分量日、季差异显著,生长季森林生态系统最主要的能量支出项为潜热通量,约占可用能量的66%,非生长季最主要的能量支出项为感热通量,约占可用能量的63%.长白山阔叶红松林2008年蒸散量为484.7 mm,占同期降水量(558.9 mm)的87%,证实森林蒸散耗水是我国北方温带森林最主要的水分支出项.  相似文献   

11.
杨帆  邵全琴  李愈哲  樊江文  包玉海 《生态学报》2016,36(17):5440-5451
以北方典型农牧交错带草原和农田生态系统的涡度相关数据为基础,对比分析了生长季两种不同土地利用类型的辐射和水热通量之异同,揭示了草地开垦影响地表辐射收支与水热平衡的机制。结果表明:在植被生长季(5月—9月),草地开垦引起太阳总辐射增加了10.74%,短波反射辐射减少了14.20%,净辐射增加了35.16%;在水热通量方面,草地开垦引起潜热通量日积分平均值增加了0.20MJ/m~2,同时显热通量减少了0.09 MJ/m~2;生长季内地表反照率减小,表征地表吸收太阳辐射增加,有升高气温的趋势;非生长季内地表反照率增加,有降低气温趋势,此外地表反照率与土壤湿度存在负指数关系;波文比在植被生长早期和末期增加,生长旺期减小,说明草地开垦与影响着近地表大气状态,从而改变了区域气候。  相似文献   

12.
Long-term and direct measurements of CO2 and water vapour exchange are needed over forested ecosystems to determine their net annual fluxes of carbon dioxide and water. Such measurements are also needed to parameterize and test biogeochemical, ecological and hydrological assessment models. Responding to this need, eddy covariance measurements of CO2 and water vapour were made ever a deciduous forest growing near Oak Ridge, TN, between April 1993 and April 1994. Periodic measurements were made of leaf area index, stomatal resistance, soil moisture and pre-dawn leaf water potential to characterize the gas exchange capacity of the canopy. Four factors had a disproportionate influence on the seasonal variation of CO2 flux densities. These factors were photon flux densities (during the growing season), temperature (during the dormant season), leaf area index and the occurrence of drought The drought period occurred during the peak of the growing season and caused a significant decline in daily and hourly CO2 flux densities, relative to observations over the stand when soil moisture was plentiful. The annual net uptake of carbon was calculated by integrating flux measurements and filling missing and spurious data with the relations obtained between measured CO2 fluxes and environmental forcing variables. The net flux of carbon for the period between April 1993 and April 1994 was -525 g C m?2 y?1. This value represents a net flux of carbon from the atmosphere and into the forest. The net annual carbon exchange of this southern temperate broadleaved forest exceeded values measured over a northern temperate forest (which experiences a shorter growing season and has less leaf area) by 200 g C m?2 y?1 (cf. Wofsy et al 1993). The seasonal variation of canopy evaporation (latent heat flux) was controlled mostly by changes in leaf area and net radiation. A strong depression in evaporation rates was not observed during the drought Over a broadleaved forest large vapour pressure deficits promote evaporation and trees in a mixed stand are able to tap a variety of deep and shallow water sources.  相似文献   

13.
The values and variation characteristics of energy components, their relationship with net radiation and the characteristics of water balance in the forest were analyzed, based on the observation data of energy fluxes, meteorological parameters and biomass in a tropical seasonal rain forest in Xishuangbanna from January 2003 to December 2004. The results show that annual net radiation was 3516.4 MJ/(m2 · a) and 3516.6 MJ/(m2 · a) in 2003 and 2004, respectively, of which 46% and 44% were used in latent heat flux, and 12% and 11% were lost as sensible heat flux. Annual mean canopy surface conductance was 10.3 mm/s and 10.0 mm/s in 2003 and 2004, respectively. Moreover, canopy surface conductance was lower in dry-hot seasons than in fog-cool and rainy seasons. Canopy surface conductance correlated significantly and positively with leaf area index, but negatively with water vapor pressure deficit. In general, canopy surface conductance was not affected directly by soil water content, but highly depended on soil moisture status when soil water content was below 0.15 m3/m3. Annual total evapotranspiration of this forest ecosystem in dry seasons was lower than that in rainy seasons, which was considered as one of the most important reasons that tropical seasonal rain forest could survive and flourish in Xishuangbanna at limit of water and heat.  相似文献   

14.
Dou J X  Zhang Y P  Yu G R  Zhao S J  Song Q H 《农业工程》2007,27(8):3099-3109
The values and variation characteristics of energy components, their relationship with net radiation and the characteristics of water balance in the forest were analyzed, based on the observation data of energy fluxes, meteorological parameters and biomass in a tropical seasonal rain forest in Xishuangbanna from January 2003 to December 2004. The results show that annual net radiation was 3516.4 MJ/(m2 · a) and 3516.6 MJ/(m2 · a) in 2003 and 2004, respectively, of which 46% and 44% were used in latent heat flux, and 12% and 11% were lost as sensible heat flux. Annual mean canopy surface conductance was 10.3 mm/s and 10.0 mm/s in 2003 and 2004, respectively. Moreover, canopy surface conductance was lower in dry-hot seasons than in fog-cool and rainy seasons. Canopy surface conductance correlated significantly and positively with leaf area index, but negatively with water vapor pressure deficit. In general, canopy surface conductance was not affected directly by soil water content, but highly depended on soil moisture status when soil water content was below 0.15 m3/m3. Annual total evapotranspiration of this forest ecosystem in dry seasons was lower than that in rainy seasons, which was considered as one of the most important reasons that tropical seasonal rain forest could survive and flourish in Xishuangbanna at limit of water and heat.  相似文献   

15.
Temporal trends in photosynthetic capacity are a critical factorin determining the seasonality and magnitude of ecosystem carbonfluxes. At a mixed deciduous forest in the south‐eastern United States (Walker Branch Watershed, Oak Ridge, TN, USA), we independently measured seasonal trends in photosynthetic capacity (using single‐leaf gas exchange techniques) and the whole‐canopycarbon flux (using the eddy covariance method). Soil respiration was also measured using chambers and an eddy covariance system beneath the canopy. These independent chamber and eddy covariance measurements, along with a biophysical model (CANOAK), areused to examine how leaf age affects the seasonal pattern of carbon uptake during the growing season. When the measured seasonality in photosynthetic capacity is representedin the CANOAK simulations, there is good agreement with the eddy covariance data on the seasonal trends in carbon uptake. Removing the temporal trends in the simulations by using the early season maximum value of photosynthetic capacity over the entire growing season over estimates the annual carbon uptake by about 300 g C m?2 year?1– halfthe total estimated annual net ecosystem exchange. Alternatively, use of the mean value of photosynthetic capacity incorrectly simulates the seasonality in carbon uptake by the forest. In addition to changes related to leaf development and senescence, photosynthetic capacitydecreased in the middle and late summer, even when leaf nitrogenwas essentially constant. When only these middle and late summer reductions were neglected in the model simulations, CANOAK still overestimated the carbon uptake by an amount comparable to 25% ofthe total annual net ecosystem exchange.  相似文献   

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