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1.
本文利用淮南森林观测站2018年7月1日至2019年6月30日冠层辐射观测,分析了淮南栎树森林下垫面冠层内外辐射变化特征。结果表明:(1)从春季到夏季,栎树冠层之上向下的太阳短波辐射增加,到冬季逐渐减少。从早春开始,由于叶片生长增多,冠层中间和冠层之下向下的太阳短波辐射下降,从秋季到冬季树叶凋落,其向下的太阳辐射增加,与冠层之上的变化趋势相反;对于向上的短波辐射,无论冠层之上、冠层中间还是冠层之下,随季节的变化都与向下的短波辐射相似,只是数值小很多。(2)冠层之上、冠层中间和冠层之下向下的长波辐射,随时间的变化从春季逐渐开始增大至夏季达到最大,随后逐渐减小并在冬季达到最小;就空间变化而言,冠层中间和冠层之下向下的长波辐射值比冠层之上的辐射值高,使得冠层对长波辐射的振幅增大,晴空条件最高可达1.3倍。(3)淮南森林区冠层之上(距地面25 m)年平均反照率为0.14,比中国北方地区(35°N)温带季风气候区(混交林为主)反照率的整体水平低0.01,表明淮南的森林茂密、灌丛更多些。(4)冠层上部分和整层的短波辐射透射率主要受叶片的影响。夏季,冠层的短波透射率平均为0.1。到了冬天,叶子凋落,透射率增加并趋于一个平稳的波动。冠层的短波辐射吸收率在夏季最高,秋季逐渐降低,随着叶子凋落在冬季迅速减小,趋于一常值。  相似文献   

2.
青藏高原地区NCEP新再分析地面通量资料的检验   总被引:27,自引:9,他引:18  
魏丽  李栋梁 《高原气象》2003,22(5):478-487
利用1979—1998年地面气象站温度观测资料和1982年8月-1983年7月高原热源观测资料,检验了NCEP/DOE新再分析地面气温和地面辐射收支在青藏高原地区的偏差。比较表明,气温和地面辐射量新再分析值能反映实际年变化特征,但其温度值系统性偏低,偏低幅度随地区和季节而变化。由于其气温和地表温度偏低造成地表长波辐射和大气逆辐射系统性偏低;冬季积雪地区的地表吸收太阳辐射和净辐射新再分析值偏小;地面净长波、净短波和总的净辐射与实测的偏差比较小。分析发现,同化模式地形高度与地面气象站海拔高度的差异是造成气温新再分析与实测偏差的主要原因,冬季积雪区地表反照率新再分析值偏大是造成冬季地面净辐射偏小的因素,并加剧了冬季气温新再分析的偏差。其研究对改进气候模拟结果分析有一定的启发。  相似文献   

3.
东莞市典型天气的辐射特征及影响因子分析   总被引:1,自引:0,他引:1  
通过对东莞观测站进行太阳辐射观测,得到2011年1—12月数据,来统计分析地面太阳短波辐射和地面、大气长波辐射的变化特征。分析典型天气的辐射特征及影响这些辐射变化的因子。结果表明:晴天向下短波辐射、反射辐射、地面长波辐射日总量最大,阴天次之,雨天最小。阴天和雨天的大气长波辐射均大于晴天。有云、雨的天气,净辐射的量值及其日变化特征都受到不同程度的影响。  相似文献   

4.
东莞观测站采用地面辐射基准站网(BSRN)通用的荷兰Kipp & Zonen设备,进行太阳短波辐射和地面、大气长波辐射观测。利用2010年8月—2011年7月的观测数据,用统计分析的方法,得到地面太阳短波辐射和地面、大气长波辐射强度的变化特征,并初步分析了影响辐射强度变化的因子。结果表明,东莞市各月的太阳总辐射平均值呈现单峰值变化,且夏季>秋季>春季>冬季,短波辐射各分量的日变化也呈明显单峰型变化特征;长波辐射的日、月变化趋势较平缓;东莞市全年各月净辐射通量平均值均为正值。云是影响太阳辐射强度变化的显著因子,对直接辐射的衰减更明显,多云天气的总辐射、直接辐射全年平均衰减率分别为11%、34%,阴天总辐射、直接辐射全年平均衰减率分别达到47%、83%。大气透明度对短波辐射和长波辐射强度变化均产生影响,无霾日总辐射、直接辐射、反射辐射强度均比灰霾日强,而散射辐射则较弱,灰霾日的天空长波辐射及地面长波辐射强度稍强于无霾日。还探讨了总辐射观测值与理论值的差异,推测水汽对短波辐射的衰减是造成太阳短波辐射平衡存在差异的原因之一。   相似文献   

5.
日食过程中的太阳辐射观测及其各分量的变化   总被引:2,自引:0,他引:2  
本文就1981年7月31日日食过程中在漠河(最大食分为97%)得到的太阳辐射各个分量的资料进行了分析。分析表明:1.太阳短波辐射随太阳被遮面积的增加而迅速减弱,太阳紫外辐射则随太阳直接辐射的减弱呈线性减弱;长波辐射在日食过程中减弱较缓慢,而且长波辐射的最低值不在食甚时出现,而是稍有落后(约10分钟左右);地表面辐射平衡在日食过程中两次通过零点,出现了与日变化完全相仿的过程。气温在整个日食过程中的最大降温约为2.5℃,亦是在食甚以后出现。2.在历时160分钟的整个日食过程中,到达地面的净能量损失达59.2卡/厘米~2。若按东经60°至160°,北纬50°以北地区考虑,总能量损失可达4.8×10~(18)卡。 文中还简要地讨论了日食过程中太阳辐射各分量减弱的物理机制。  相似文献   

6.
西藏羊八井辐射观测初步分析   总被引:1,自引:0,他引:1  
利用西藏羊八井2009年5月至2010年4月的辐射观测数据,统计了总辐射、紫外辐射、长波辐射、净辐射的日变化、月变化和季节变化,并分析了地表辐射超过太阳常数的发生频率及原因。结果表明,羊八井地区总辐射、紫外辐射、长波辐射、净辐射均表现出明显的日变化、月变化和季节变化特征;总辐射与地表短波反射辐射、总辐射与紫外辐射均表现出明显的正相关关系;大气逆辐射和地表长波辐射之间呈现出一定的的正相关关系。  相似文献   

7.
长序列卫星辐射资料的缺乏一直是制约青藏高原(以下简称高原)辐射长期变化研究的重要原因之一。对国际上最新提供的1984—2017年ISCCP-FH(以下简称FH)长序列卫星辐射资料中的大气顶逸出长波辐射(OLR)、到达地面短波辐射(SWD)、地面向上长波辐射(LWU)、到达地面长波辐射(LWD)进行分析,评估了FH辐射资料在全天气条件下的青藏高原地区的适用性。结果表明:与观测相比,FH资料的4种辐射通量气候平均值误差均小于5%,其中OLR和SWD的偏差较小,LWU的偏差最大。FH资料能正确反映高原各辐射通量的冬季增强趋势,OLR和LWD在各季节的长期变化趋势均与观测一致,LWU则呈现虚假的减弱趋势。总体来说,在高原地区,FH资料的地面短波辐射通量比长波辐射通量适用性好。进一步对长波辐射偏差原因分析显示,气温偏差会增强LWD的气候态和长期趋势,而地温偏差对LWU的作用与之相反。辐射模型、云和水汽的差异导致最终FH资料中的LWD气候态和长期趋势较观测略偏弱,FH资料的计算方案在一定程度上修正了地温偏差造成的LWU偏弱。研究结果将为使用FH辐射资料提供参考依据。  相似文献   

8.
该文利用2018年1月—12月成都东北部地区的太阳辐射观测资料,分析了辐射能量的收支状况和特征。结果表明:成都东北部地区各辐射分量(除净长波辐射)均是夏季最强,冬季最弱,最大值出现在8月。净长波辐射春季最强,秋季最弱,与空气相对湿度、气温日较差分别成负相关、正相关。净全辐射白天为正值,晚上为负值。成都东北部地区全年有10.7%的太阳短波辐射被地表反射,接收的太阳短波辐射有29.36%被地表以长波辐射的方式释放到大气,对地气系统能量收支的贡献为61.18%。  相似文献   

9.
珠穆朗玛峰北坡特殊地形下太阳辐射特征的初步研究   总被引:1,自引:0,他引:1  
2006年5月27日~6月30日,对珠穆朗玛峰北坡的太阳辐射和气象参数进行了综合测量,主要包括总辐射、反射辐射、大气辐射、地面长波辐射、净辐射、温湿度和风速等。珠峰北坡的各个辐射量和气象参数都表现出明显的、非对称的日变化规律。珠峰北坡的太阳辐射远高于我国的平原地区,总辐射大于太阳常数的现象经常被观测到。研究发现,各个辐射量在9时都表现了一日最大的增长率,并因此导致了此时段及以后时段气温的增加和风速的快速增长,因而珠峰北坡特殊的地形对于地面接收到的辐射特征以及通过辐射过程对气温、大气运动等都产生了非常显著的作用。研究特殊地形条件下的辐射特征、辐射-地表-大气之间的相互作用以及地表和大气对于辐射作用的响应是非常重要的,它将有助于对局地物质与能量交换过程深入、全面的了解。  相似文献   

10.
高国栋  陆渝蓉 《气象》1980,6(3):6-7
到达地面的太阳辐射量,并不是全为地面所获得。地面吸收一部份,同时反射一部份。被地面吸收的部份称为吸收辐射,被地面反射的部份称为反射辐射。另外,地面在吸收太阳短波辐射后,本身要放出长波辐射;同样,大气和云层接受了辐射能量后也要放出长波辐射,大气长波辐射回到地面的部份,称为大气逆辐射。地面长波辐射与大气逆辐射之差,表示地面散失的长波辐射,称为有效辐射。反射辐射和有效辐射都是地面辐射的支出部份。 某地获得太阳辐射能量的多少,不单要看它收入多少太阳辐射能量,还必须了解它支出的太阳辐射能量有多少。现在,我们就着重分析一下青藏高原地区太阳辐射能量的支出状况。  相似文献   

11.
A physically-based multi-layer snow model Snow-Atmosphere-Soil-Transfer scheme(SAST)and a land surface model Biosphere-Atmosphere Transfer Scheme(BATS)were employed to investigate how boreal forests influence snow accumulation and ablation under the canopy.Mass balance and energetics of snow beneath a Scots pine canopy in Finland at different stages of the 2003-2004 and 2004 2005 snow seasons are analyzed.For the fairly dense Scots pine forest,drop-off of the canopy-intercepted snow contributes,in some cases,twice as much to the underlying snowpack as the direct throughfall of snow.During early winter snow melting,downward turbulent sensible and condensation heat fluxes play a dominant role together with downward net longwave radiation.In the final stage of snow ablation in middle spring,downward net all- wave radiation dominates the snow melting.Although the downward sensible heat flux is comparable to the net solar radiation during this period,evaporative cooling of the melting snow surface makes the turbulent heat flux weaker than net radiation.Sensitivities of snow processes to leaf area index(LAI)indicate that a denser canopy speeds up early winter snowmelt,but also suppresses melting later in the snow season. Higher LAI increases the interception of snowfall,therefore reduces snow accumulation under the canopy during the snow season;this effect and the enhancement of downward longwave radiation by denser foliage outweighs the increased attenuation of solar radiation,resulting in earlier snow ablation under a denser canopy.The difference in sensitivities to LAI in two snow seasons implies that the impact of canopy density on the underlying snowpack is modulated by interannual variations of climate regimes.  相似文献   

12.
The 2009 ArcticNet expedition was a field campaign in the Amundsen Gulf–eastern Beaufort Sea region from mid-July to the beginning of November aboard the CCGS Amundsen that provided an opportunity to describe the all-sky surface radiation and the clear-sky surface energy budgets from summer to freeze-up in the data sparse western maritime Arctic. Because the fractional area of open water was generally larger than the fractional area of ice floes, the net radiation at the water surface controlled the radiation budget. Because the water albedo is much less than the albedo of the ice floes, the extent and duration of open water in summer is an important albedo feedback mechanism. From summer to freeze-up, the net all-sky shortwave radiation declined steadily as the solar angle lowered, while coincidently the net all-sky longwave radiation became increasingly negative. The all-sky net surface radiation switched from positive in summer to negative during the freeze-up period. From summer to freeze-up, both upward and downward turbulent heat fluxes occurred. In summer, a positive surface energy budget residual contributed to the melting of ice floes and/or to the warming of the Arctic Ocean's mixed layer. During the freeze-up period, with temperatures below approximately ?5°C, the residuals were mainly negative suggesting that heat loss from the ocean's mixed layer and heat released by the phase change of water were significant components of the energy budget's residual.  相似文献   

13.
Ground-based measurements are essential for understanding alpine glacier dynamics, especially in remote regions where in-situ measurements are extremely limited. From 1 May to 22 July 2005 (the spring-summer period), and from 2 October 2007 to 20 January 2008 (the autumn-winter period), surface radiation as well as meteorological variables were measured over the accumulation zone on the East Rongbuk Glacier of Mt. Qomolangma/Everest at an elevation of 6560 m a.s.l. by using an automatic weather station (AWS). The results show that surface meteorological and radiative characteristics were controlled by two major synoptic circulation regimes: the southwesterly Indian monsoon regime in summer and the westerlies in winter. At the AWS site on the East Rongbuk Glacier, north or northwest winds prevailed with high wind speed (up to 35 m s-1 in January) in winter while south or southeast winds predominated after the onset of the southwesterly Indian monsoon with relatively low wind speed in summer. Intensity of incoming shortwave radiation was extremely high due to the high elevation, multiple reflections between the snow/ice surface and clouds, and the high reflective surrounding surface. These factors also caused the observed 10-min mean solar radiation fluxes around local noon to be frequently higher than the solar constant from May to July 2005. The mean surface albedo ranged from 0.72 during the spring-summer period to 0.69 during the autumn-winter period. The atmospheric incoming longwave radiation was greatly affected by the cloud condition and atmospheric moisture content. The overall impact of clouds on the net all-wave radiation balance was negative in the Mt. Qomolangma region. The daily mean net all-wave radiation was positive during the entire spring-summer period and mostly positive during the autumn-winter period except for a few overcast days. On monthly basis, the net all-wave radiation was always positive.  相似文献   

14.
Snow albedo is an important factor influencing the snow surface energy budget and snow melting, yet uncertainties remain in the calculation of spectrally resolved snow surface albedo because the spectral composition (visible versus near infrared) of the incident solar radiation is seldom available. The influence of the spectral composition of the incoming solar radiation on the snow surface albedo, snow surface energy budget, and final snow ablation is investigated through sensitivity experiments of four snow seasons at two open sites in the Alps by using a multi-layer Snow-Atmosphere-Soil-Transfer scheme (SAST). Since the snow albedo in the near infrared (NIR) spectral band is significantly lower than that in the visible (VIS) band, and almost the entire NIR part of the solar radiation is absorbed in the top layer of the snow pack, given a fixed amount of incoming solar radiation, a lower VIS/NIR ratio implies that more NIR radiation is reaching the ground surface and more is absorbed by the top layer of the snow pack, therefore, speeding up the snow melting and increasing the surface runoff, although a lesser part of the solar radiation in the visible band is transmitted into and trapped by the sub-layer of the snow pack. The above VIS/NIR ratio effect of the incoming solar radiation can result in a couple of days difference in the timing of snow ablation and it becomes more significant in late spring when the total solar radiation is intensified with seasonal evolution. Snow aging also slightly intensifies this VIS/NIR ratio effect.  相似文献   

15.
The Influence Of Urban Canopy Configuration On Urban Albedo   总被引:6,自引:0,他引:6  
We propose a calculation method for shortwave radiation flux and longwave radiation flux within the urban canopy and investigate the influence of urban canopy configuration on net radiation flux. In the assumed urban configuration, buildings of equal size are arranged in a regular lattice within the urban canopy. The net shortwave radiation flux and longwave radiation flux within the urban canopy were calculated by the photon tracking method based on the Monte Carlo method. The albedo value obtained by this method shows close agreement with experimental data, and the average sky view factor shows almost perfect agreement with the theoretical value. Moreover, we calculated the urban albedo for the urban canopy configuration including roads and building height distribution.%Moreover, we calculated net radiation within the urban canopy in %consideration of roads and building height distribution.We found that the sky view factor of the ground surface is high when building coverage is low, building height is low, open space by roads exists, and building height is non-uniform. Moreover, we found that the albedo value is high when building height is small, open space by roads is wide, and building height is uniform. The albedo value was found to vary in a complicated manner with change in building coverage.  相似文献   

16.
Summary Measurements of the surface heat budget were conducted on an ice cap in the Andes of Southern Peru at 5645 m during an expedition in July 1977. Because of the high surface albedo, net software radiative gain is nearly offset by the longwave loss in the average over the diurnal cycle. The diurnal temperature wave has at the surface an amplitude of about 5°C, and by 50 cm depth this is nearly dampened out. During the day, the shortwave radiative gain is in part used to balance the longwave loss, some heat is stored in the top snow layer and lost by sensible heat transfer to the overlying atmosphere, and the greater part fuels the sublimation. At night, the longwave radiative loss is not completely compensated by heat depletion and downward directed sensible heat transfer. This deficit is made up by the downward transfer of latent heat, resulting in heat release at the surface and deposition. Regarding the mass balance, the nighttime deposition approximately cancels the daytime sublimation. At lower elevations of the ice cap, albedo is much less, allowing larger absorption of solar radiation. As a consequence, more energy is available for ablation. Melting occurs during the day, so that re-freezing and concurrent latent heat release can help to compensate the longwave radiative loss at night.With 4 Figures  相似文献   

17.
Summary Strong stable layers are a common occurrence during western Colorado's winter. Analysis of radiosonde observations indicate wintertime boundary layer heights are near 500 m. The terrain in this region consists of mountains that rise approximately 1500–2000 m above the ground to the east, providing an effective blocking barrier. An experiment is described to observe upwelling and downwelling, longwave and shortwave radiative fluxes at two sites in western Colorado during January and February 1992, for combinations of clear, cloudy, snow covered, and bare ground periods. Analysis of the observations and the surface energy budget for typical Bowen ratios provides a better understanding of the role of radiation in maintaining and destroying stable layers.During the day, the surface received a net gain of energy from radiation, while at night there was a net loss. Over snow, the 24-hour net radiative flux was small and either positive or negative. Over bare soil, the 24-hour net radiative flux was positive but still small. There is little difference in the net radiative flux between clear and cloudy days; the reduction of the incident solar flux by clouds is nearly compensated by the hindering of the longwave cooling. The cumulative effects of the 24-hour net radiative flux were negative over snow early in the experiment. The 24-hour values shifted to near zero as the snow albedo decreased and were positive for bare ground.If the daytime net radiative flux is partitioned into sensible and latent heat flux using typical Bowen ratios, the daytime sensible heat available for destroying boundary layers is small for the low solar angles of the winter season. With a Bowen ratio of 0.5, the daytime sensible heat flux available is only 0.3 to 1.2 MJ m–2 over a snow surface and 1.4 to 2.3 MJ m–2 over soil. These heat fluxes will not build a deep enough boundary layer to break a typical wintertime inversion. The 24-hour sensible heat flux was negative at both sites for the entire experiment with this Bowen ratio.The radiation observations and the use of typical Bowen ratios lead to the conclusion that the net radiation will sustain or strengthen a stable atmosphere in the winter season in western Colorado. Analysis of the radiosonde observations confirm this result as the boundary layer depths were less than 500 m early in the experiment and grew to only 700 m later in the experiment.With 12 Figures  相似文献   

18.
五道梁地区的辐射特征   总被引:10,自引:3,他引:10  
本文分析了1986年中美联合考察期间五道梁站的地面辐射平衡的气候学特征。五道梁地区夏季直接太阳辐射强,空气洁净,大气透明度好。太阳辐射在大气中的削弱以分子散射和臭氧吸收为主。总辐射中以散射为主。光谱反射率中太阳短波反射率为0.13,太阳红外反射率为0.25,雪面上二者接近;反射率受土壤湿度影响明显,在太阳高度角较小时,各波段反射率有不同的变化趋势。地表比辐射率约为0.90。地表净辐射和地面热源强度大。太阳紫外辐射大,占总辐射的比例也大。  相似文献   

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