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1.
青藏高原地区冻土正呈退化趋势,除气候变化、人为活动的影响外,沙漠化也被认为是冻土退化的原因之一,但仍存在较大争议。基于不饱和土渗流和热传导理论,结合CoLM和Coup-Model模型,初步构建了积沙-冻土-水热概念模型和耦合模型。并在两模型的基础上,讨论了沙层反射率、积沙体热容量、积沙体厚度和沙的传热率等参数对下伏冻土的热影响过程。结果表明,沙层的反射率、地面发射率均高于天然地表,沙层接受的热量较天然地表偏少;积沙地表下的沙层和活动层能截留更多热量,使冻结层获得的热量相对减少;沙的导热性较差,导致积沙地表下地温变化出现延迟,从而延缓冻土退化;同时,积沙无论厚薄,都将起到延缓冻土退化的作用。因而,沙漠化对青藏高原冻土退化的影响可能较小,但全面揭示沙漠化对冻土的影响仍需深入研究。  相似文献   

2.
青藏高原沙漠化与冻土相互作用的研究   总被引:29,自引:4,他引:25  
利用青藏高原地表热量平衡和长期地温观测的资料探讨高原沙漠化与冻土的相互作用,发现沙丘下或厚沙层覆盖地段下的地温较邻近天然无沙地表有所升高,而薄沙层覆盖地段下的地温反而比天然无沙地表有降低的趋势。分析造成高原冻土区沙漠化的因素有些与其它沙漠化区相似,但有些因素与高原冻土有关并具有特殊性。高原冻土层与土地沙漠化二者之间相辅相成、相互制约、相互作用、协调演化,构成了目前高原冻土区生态平衡系统。  相似文献   

3.
青藏高原风火山地区冻土变化分析   总被引:1,自引:0,他引:1  
基于对多年来风火山地区的多年冻土资料,研究了天然地区和路基下的冻土上限变化情况以及多年冻土的融化状态,并定量分析了进入多年冻土内的热状况。结果表明:风火山地区从20世纪70年代到90年代中期冻土上限下降,冻土出现退化现象,从90年代至今冻土趋于稳定;路基近地表地温明显高于对应天然地表下的地温,路基近地表经历的融化期长于对应天然地表,进入多年冻土区的热收支也呈现出吸热明显大于放热的周期性变化,进入多年冻土的热积累暂时以增高地温耗热为主,但随着冻土吸热量的逐年积累、冻土温度的不断升高,本区冻土可能发生强烈融化。  相似文献   

4.
CoLM模型在高原多年冻土区的单点模拟适用性   总被引:1,自引:0,他引:1  
使用CoLM模型,以青藏高原冰冻圈观测研究站设在唐古拉综合观测场的气象资料作为驱动资料,在青藏高原多年冻土区的唐古拉地区开展了单点模拟试验.通过和该站点同期实测资料对比发现:CoLM模型对高原多年冻土区的辐射通量各分量的模拟效果较好;对潜热通量的模拟误差较大,感热和地表热通量的模拟相对较好;模型能够很好地模拟活动层浅层土壤温度,但随着深度加深,模拟的温度较观测值有所低估.研究表明CoLM模型能较好地模拟多年冻土区地表与大气的能水交换过程,对其进行一些适应性改进后将能得到更好地应用.改进模型的土壤水热参数化过程尤其是添加未冻水参数化方案是将其应用到冻土区首先要解决的问题;再者扩展模型的模拟深度也十分必要.  相似文献   

5.
横断山地区辐射平衡各分量的计算和分布特征   总被引:1,自引:1,他引:0  
横断山区位于青藏高原东南部,约在东经96°—103°,北纬24°—34°之间,区内山川相间排列,南北纵贯,山高谷深,自然资源十分丰富。 探讨太阳辐射和地表辐射平衡对深入研究本区气候形成,地表能量转换和生态系统结构特性具有重要意义。国内许多研究工作者在对青藏高原和其它地区的辐射平衡的研究中,也有涉及到横断山区辐射平衡的若干分析,但都不甚详细。本文试图利用现有地面气象台站观测资料,考虑到山区的地形特征而选择适当的公式,对横断山地区(共40个台站)的辐射平衡各分量进行了计算,并分析了辐射平衡各分量的时空分布特征。  相似文献   

6.
准确获取青藏高原地表反照率的季节变化特征对高原地表能水循环研究具有重要意义。本文利用青藏高原多年冻土区西大滩和唐古拉2007年的气象及辐射数据,运用相关分析方法研究了太阳高度角、积雪及活动层冻融过程对地表反照率变化的影响。结果显示:冷暖季降雪过程中地表反照率的变化差异较明显;地表无积雪覆盖期间,地表反照率与气温和表层土壤含水量呈反相关关系。利用多元回归分析法构建了以积雪日数和气温为影响因子的月均地表反照率计算回归方程,经检验与观测值对比平均相对误差为7.1%,可用于青藏高原北部地表反照率的估算。  相似文献   

7.
冻土     
P642。14 2003043016青藏高原冻土及水热过程与寒区生态环境的关系=Rela-tionship between frozen 5011 together with its water一heat proeessand ecol卿eal environmentin the Tibetan Plateau/吴青柏,沈永平…//冰川冻土一2003,25(3)一250一255 研究结果表明,冻土及水热过程与寒区生态环境有着密切的关系,冻土及水热过程不仅控制着地表状态的变化,影响着植被的发育程度,同时二者之间也存在着强烈的相互作用的关系一旦地表条件被破坏,干扰了冻土过程与地表植被生长间的平衡关系,将引起生态环境的退化,出现荒漠化,甚至沙漠化.图4表4参11…  相似文献   

8.
青藏高原沙漠化研究的进展与问题   总被引:8,自引:0,他引:8  
董玉祥 《中国沙漠》1999,19(3):251-255
青藏高原土地沙漠化研究具有十分重要的理论与实践意义,近年来国内积极开展了对青藏高原土地沙漠化问题的调查与研究,并取得了一系列成果,本文对该项研究所取得的主要进展及存在问题进行了综述。首先,回顾了青藏高原沙漠化研究的发展历程,其中50年代至70年代为第一阶段,该阶段的研究主要侧重于进行沙漠考察与沙害治理,沙漠化研究还未真正开展起来;80年代为第二阶段,期间青藏高原沙漠化研究已逐步开展起来,尤其是重点对青海共和盆地的沙漠化问题进行了研究与分析;进入90年代为第三阶段,青藏高原沙漠化研究全面展开,研究区域广泛,研究内容系统、全面,研究成果丰硕,是该区沙漠化研究最为重要的时期。其次,总结了青藏高原沙漠化研究的现状与主要进展,包括经过广泛研究,基本上查清了青藏高原土地沙漠化的类型、面积、分布与危害等,填补了沙漠化研究在青藏高原地区的空白;青藏高原沙漠化研究中特别重视了其成果的应用问题,将区域土地沙漠化现状、成因、趋势、防治对策与措施及其规划作为一个有机整体进行系统研究,拓展和完善了沙漠化研究的内容;研究中首次确定了沙砾质、沙漠化土地类型,并提出了沙漠化成因的多因性和地域性,发展了沙漠化研究的基本理论;同时,还加强了沙漠化防治实用技术的研究。最后,分析了研究中存在的主要问题,如研究区域不尽平衡、基础研究较为薄弱、理论研究有待深入和防治技术亟待提高等,提出今后青藏高原沙漠化研究的主攻方向与主要研究项目。  相似文献   

9.
气候变化对中国多年冻土和寒区环境的影响   总被引:5,自引:0,他引:5  
中国的多年冻土总面积为2.15×106km2,主要分布在高海拔地区.40年来,随寒区经济的快速发展和资源、环境问题的日益突出,冻土和寒区气候变化研究获得了长足的进展.我国大部分地区的多年冻土退缩趋势明显.21世纪,受气候变暖和人为活动的共同影响,青藏高原和东北地区北部多年冻土将大幅退缩.冻土广泛退缩将对中国的寒区经济和环境产生重要影响.但是,冻土退缩及其对环境的影响还存在很大的不确定性.  相似文献   

10.
以野外勘探、室内理论分析与建模为主要研究方法,以数字高程模型(GDEM)和实测数据为基础进行统计分析,发现坡向对多年冻土分布具有重要影响。针对青藏高原温泉区域地形的复杂性,基于分区的方法将研究区分为平原区和山区两个地形区。对于平原区来说,考虑到苦海湖泊对多年冻土的影响,将苦海滩地单独划出并采用专家知识完成冻土制图,其余平原区采用建立的地温模型进行冻土制图;对于山区来说,通过定量化研究坡向对冻土地温的影响建立了基于坡向调整作用下的地温模型,应用此模型完成了山区的冻土分布图。以地温作为冻土类型划分的依据,分析了研究区域冻土的空间分布与特征,结果表明:多年冻土的分布面积为1 681.4km2,占整个区域的66.7%,其中,过渡型和亚稳定型多年冻土为主要多年冻土类型,两者占整个研究区域的50.8%,其次为不稳定型多年冻土(11.4%),稳定型和极稳定型多年冻土的面积比例相对较小(4.4%和0.2%)。从空间分布格局来看,冻土分布具有明显的垂直分带特征,随着海拔高度的升高,冻土地温逐渐降低,冻土类型依次经历季节冻土-不稳定型多年冻土-过渡型多年冻土-亚稳定型多年冻土-稳定型多年冻土-极稳定型多年冻土的变化。  相似文献   

11.
In the last several decades, the underlying surface conditions on the Qinghai-Tibet Plateau have changed dramatically, causing permafrost degradation due to climate change and human activities. This change severely influenced the cold regions environment and engineering infrastructure built above permafrost. Permafrost is a product of the interaction between the atmosphere and the ground. The formation and change of permafrost are determined by the energy exchange between earth and atmosphere system. Fieldwork was performed in order to learn how land surface change influenced the thermal regime in permafrost regions. In this article, the field data observed in the Fenghuo Mountain regions was used to analyze the thermal conditions under different underlying surfaces on the Qinghai-Tibet Plateau. Results show that underlying surface change may alter the primary energy balance and the thermal conditions of permafrost. The thermal flux in the permafrost regions is also changed, resulting in rising upper soil temperature and thickening active layer. Vegetation could prevent solar radiation from entering the ground, cooling the ground in the warm season. Also, vegetation has heat insulation and heat preservation functions related to the ground surface and may keep the permafrost stable. Plots covered with black plastic film have higher temperatures compared with plots covered by natural vegetation. The reason is that black plastic film has a low albedo, which could increase the absorbed solar radiation, and also decrease evapotranspiration. The "greenhouse effect" of transparent plastic film might effectively reduce the emission of long-wave radiation from the surface, decreasing heat loss from the earth's surface, and prominently increasing ground surface temperature.  相似文献   

12.
Permafrost in China includes high latitude permafrost in northeastern China, alpine permafrost in northwestern China and high plateau permafrost on the Tibetan Plateau. The high altitude permafrost is about 92% of the total permafrost area in China. The south boundary or lower limit of the seasonally frozen ground is defined in accordance with the 0 oC isothermal line of mean air temperature in January, which is roughly corresponding to the line extending from the Qinling Mountains to the Huaihe River in the east and to the southeast boundary of the Tibetan Plateau in the west. Seasonal frozen ground occurs in large parts of the territory in northern China, including Northeast, North, Northwest China and the Tibetan Plateau except for permafrost regions, and accounting for about 55% of the land area of China. The southern limit of short-term frozen ground generally swings south and north along the 25o northern latitude line, occurring in the wet and warm subtropic monsoon climatic zone. Its area is less than 20% of the land area of China.  相似文献   

13.
Studies on frozen ground of China   总被引:5,自引:0,他引:5  
1ThestatusoffrozengroundinChinaBased on previous studies, Zhou and Guo (1982) summarized the distribution characteristics of permafrost in China and indicated that the permafrost area in China is about 215×104 km2, in which about 163.4×104 km2 is on the Tibetan Plateau. After mapping and zonation of frozen ground in 1983, Xu and Wang suggested that the areas of permafrost, seasonally frozen ground and temporal frozen ground in China were 206.8×104 km2, 513.7×104 km2 and 229.1×104 km2 …  相似文献   

14.
中国冻土研究进展   总被引:6,自引:0,他引:6  
Permafrost in China includes high latitude permafrost in northeastern China, alpine permafrost in northwestern China and high plateau permafrost on the Tibetan Plateau. The high altitude permafrost is about 92% of the total permafrost area in China. The south boundary or lower limit of the seasonally frozen ground is defined in accordance with the 0 ℃ isothermal line of mean air temperature in January, which is roughly corresponding to the line extending from the Qinling Mountains to the Huaihe River in the east and to the southeast boundary of the Tibetan Plateau in the west. Seasonal frozen ground occurs in large parts of the territory in northern China, including Northeast, North, Northwest China and the Tibetan Plateau except for permafrost regions, and accounting for about 55% of the land area of China. The southern limit of short-term frozen ground generally swings south and north along the 25° northern latitude line, occurring in the wet and warm subtropic monsoon climatic zone. Its area is less than 20% of the land area of China.  相似文献   

15.
长江源区五道梁的土壤热状况研究   总被引:1,自引:0,他引:1       下载免费PDF全文
活动层土壤热状况是寒区陆面物理过程研究的重要内容之一。利用五道梁能量收支观测站1993年9月~2000年12月份实测辐射及土壤热通量资料结合五道梁气象站1961-2010时段的气象资料分析了近50 a来该地区活动层土壤的热状况。结果表明:五道梁地区土壤热通量有显著的年际、年代际变化;20世纪60~80年代,土壤热通量小于0.0 W/m2,活动层土壤以放热为主,自90年代以来,土壤热通量大于0.0 W/m2,活动层土壤以吸热为主。过去50 a中该地土壤热通量呈现增大趋势,平均每10 a土壤热通量增大0.31 W/m2。土壤热通量随净辐射的增大而增大。土壤热平衡系数的变化特点与土壤热通量的变化特点一致。60~80年代,活动层土壤热平衡系数<1,该地区冻土相对比较稳定,而自90年代以来此间土壤热平衡系数<1,表明该地多年冻土呈现出退化迹象。活动层土壤热平衡系数可表示为气温、地表温度及水汽压的函数。  相似文献   

16.
Due to a series of linear projects built along National Highway 214, the second "Permafrost Engineering Corridor" on the Qinghai-Tibet Plateau has formed. In this paper, by overcoming the problems of data decentralization and standard inconsistency, permafrost characteristics and changes along the engineering corridor are systematically summarized based on the survey and monitoring data. The results show that: 1) Being controlled by elevation, the permafrost is distributed in flake discontinuity with mountains as the center along the line. The total length of the road section in permafrost regions is 365 km, of which the total length of the permafrost section of National Highway 214 is 216.7 km, and the total length of the permafrost section of Gong-Yu Expressway is 197.3 km. The mean annual ground temperature (MAGT) is higher than -1.5 °C, and permafrost with MAGT lower than -1.5 °C is only distributed in the sections at Bayan Har Mountain and E'la Mountain. There are obvious differences in the distribution of ground ice in the different sections along the engineering corridor. The sections with high ice content are mainly located in Zuimatan, Duogerong Plain and the top of north and south slope of Bayan Har Mountain. The permafrost thickness is controlled by the ground temperature, and permafrost thickness increases with the decrease of the ground temperature, with the change rate of about 37 m/°C. 2) Local factors (topography, landform, vegetation and lithology) affect the degradation process of permafrost, and then affect the distribution, ground temperature, thickness and ice content of permafrost. Asphalt pavement has greatly changed the heat exchange balance of the original ground, resulting in serious degradation of the permafrost. Due to the influence of roadbed direction trend, the phenomenon of shady-sunny slope is very significant in most sections along the line. The warming range of permafrost under the roadbed is gradually smaller with the increase of depth, so the thawing settlement of the shallow section with high ice-content permafrost is more significant.  相似文献   

17.
青藏高原北部五道梁地表热量平衡方程中各分量特征   总被引:4,自引:0,他引:4  
利用青藏高原北部五道梁地区实测的太阳辐射及气象资料,计算分析了高原北部地面热量平衡方程中各分量特征,定义了一个无量纲参量土壤热平衡系数k。结果显示:五道梁地区地表净辐射及地面加热场强度表现为夏季大,冬季小,地表净辐射累年平均通量为65.5 W/m2;土壤热通量自1997年来有增大的趋势;土壤热平衡系数有增大的趋势,平均值为1.17;感热及潜热是地面热平衡方程中的大项,其中感热居首位,潜热居其次;暖季感热、潜热以相反的趋势变化,Bowen比β值有下降的趋势。  相似文献   

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