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1.
巴颜喀拉山是较典型的高海拔多年冻土区。南、北坡迥异的气候、土壤及地表景观控制和影响其多年冻土空间分布。2008~2012年冻土调查及测温资料表明,该山以高温冻土(>-1℃)为主。海拔是冻土主要影响因素。年均地温随海拔升高而降低的高程递减率在北坡6℃/km,南坡4℃/km。北坡查拉坪及巴颜喀拉山口一带,活动层厚度约1 m,活动层随海拔降低而增厚;南坡活动层厚度受局地因素影响较大,与海拔无明显相关。  相似文献   

2.
长江黄河源区多年冻土变化及其生态环境效应   总被引:29,自引:1,他引:29  
应用江河源区五站1980-1998年0cm、5cm、10cm、15cm、20cm、40cm浅层地温资料、钻孔深层地温资料以及勘探资料,详细分析了两大源区的冻土变化,结果表明:近20年来,受气候变暖影响,江河源区多年冻土总体上保存条件不利,区域上呈退化趋势。岛状多年冻土和季节冻土区年均地温升高约0 3~0 7℃,大片连续多年冻土区升幅较小,为0 1~0 4℃。多年冻土上限以2~10cm/a的速度加深。在黄河源多年冻土的边缘地带,垂向上形成不衔接冻土和融化夹层,多年冻土分布下界上升50~70m。冻土退化已对江河源寒区经济和生态环境产生了一系列重要影响。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   

3.
黄河源区冻土分布制图及其热稳定性特征模拟   总被引:5,自引:0,他引:5  
以黄河源区多年冻土分布现状和热力特征为研究目标,通过野外调查及实测数据,分析了黄河源区不同地形地貌、不同地表覆盖条件下的冻土形成、分布特征和以地温为基础的热学特征,探讨了不同尺度因素对多年冻土分布的影响。结果表明,在高程低于4 300 m的平原区,多年冻土多不发育;在高于4 350 m的山区,局地地形对多年冻土的形成与分布作用显著。除阳坡地形外,多年冻土均比较发育;介于4 300~4 350 m的低山丘陵和平原区,局地地形、地表植被、土壤湿度等因素共同决定着多年冻土的形成和分布格局。以年均地温指标为基础,构建了以纬度、经度和高程为自变量的回归模型,并对阳坡地形进行微调和校正。结果表明,以0oC作为划分季节冻土和多年冻土的标准和界限,多年冻土面积2.5×104km2,约占整个源区面积的85.1%;季节冻土面积0.3×104km2,约占整个源区面积的9.7%。进一步以0.5oC或1.0oC为分类间隔绘制了黄河源区多年冻土热稳定性空间分布图。  相似文献   

4.
未来气候变暖情形下青藏高原多年冻土分布初探   总被引:4,自引:0,他引:4  
基于未来温室气体中等排放情景下气候模式给出的气候预测结果的高分辨率降尺度分析结果,运用两种方法(年均温法和高程模型法)模拟了1980-1999,2030-2049和2080-2099年3个时段青藏高原多年冻土分布.结果表明,以年均地温-1℃作为多年冻土划分依据的年均温法模拟的目前(1980-1999年)高原多年冻土面积为127.99万km2,与世界数据中心给出的青藏高原现代多年冻土面积为129.12万km2的估算接近(误差率仅为0.86%);到本世纪中期(2030-2049年),高原多年冻土面积减少为87.26万km2,退化率达到31.82%;而到本世纪末(2080-2099年),高原多年冻土面积只有69.25万km2,较目前将退化45.89%.不同高度带的对比分析还发现,与高原及其邻近地区年均气温的升高一般随海拔高度而增加的趋势相反,未来高原多年冻土的退化率将随着海拔高度增加而降低.在全球变暖过程中的冻土退化,特别是高原东南部冻土向西北部的逐步退缩,对高原冻土区工程稳定性的影响应引起我们的足够重视.  相似文献   

5.
疏勒河源区的多年冻土   总被引:11,自引:0,他引:11  
疏勒河流域地处祁连山西段,气候极端干旱.2008年6月在疏勒河源区海拔3729-3890 m的不同地面、地形条件下在5个点上布设了10眼钻孔进行钻探勘察,并布设测温管定期监测地温.根据勘察和测温资料,确定了疏勒河流域内多年冻土下界高程在3750 m左右,查明河谷中松散地层以冲积层为主,多为粗颗粒土,多年冻土含冰量普遍较低.局地因素对多年冻土状态影响明显.其中坡度差异可以使地温相差0.5℃.坡向的差异可以使地温相差达1.0℃;地层水分含量对浅层地温的影响甚至超过坡向的影响;地面状态的差异,造成地温、活动层厚度等方面的显著差异.与祁连山中东部地区相比,疏勒河源区多年冻土几乎没有生态过程的影响,多年冻土形成和保存受气候驱动,基本上代表了一类干旱气候条件下的多年冻土特征.  相似文献   

6.
利用实测的念青唐古拉山脉南坡海拔4800 m和5333 m,以及北坡5400 m的土壤温、湿度和地表气温一年的数据,对该地区水热特征作了初步分析,结果表明:地、气温差冬季大夏季小,且相对邻近地区偏大。同时地温与气温有良好相关,但随深度增加,相关系数减小。土壤热力梯度的方向低海拔由下而上,高海拔则相反。土壤湿度高海拔略大于低海拔,干季和湿季分别受冻融过程和印度洋季风降水影响。高海拔冻结期比低海拔长3~4个月,其下层土壤湿度在冻融交替期表现一个剧烈的跃变现象。念青唐古拉山南、北坡海拔相近区域相同层位土壤温度差异在0~8℃之间。南坡土壤温度年平均高于北坡3~4℃。南坡冻结比北坡晚而融化比北坡早,上层土壤湿度南坡小于北坡,而下层土壤湿度南坡大于北坡,南北坡水热过程存在明显差异。  相似文献   

7.
黄河源区多年冻土空间分布变化特征数值模拟   总被引:3,自引:1,他引:2  
马帅  盛煜  曹伟  吴吉春  胡晓莹  王生廷 《地理学报》2017,72(9):1621-1633
基于IPCC第五次评估报告预估的气温变化情景,采用数值模拟的方法对黄河源区典型冻土类型开展模拟,推算过去及预测未来黄河源区冻土分布空间变化过程和发展趋势。结果表明:1972-2012年源区多年冻土只有少部分发生退化,退化的冻土面积为833 km2,季节冻土主要集中在源区东南部的热曲谷地、小野马岭以及两湖流域南部的汤岔玛地带;RCP 2.6、RCP 6.0、RCP 8.5情景下,2050年多年冻土退化为季节冻土的面积差别不大,分别为2224 km2、2347 km2、2559 km2,占源区面积的7.5%、7.9%、8.6%;勒那曲、多曲、白马曲零星出现季节冻土,野牛沟、野马滩以及鄂陵湖东部的玛多四湖所在黄河低谷大片为季节冻土;2100年多年冻土退化为季节冻土的面积分别为5636 km2、9769 km2、15548 km2,占源区面积的19%、32.9%、52.3%;星宿海、尕玛勒滩、多格茸的多年冻土发生退化,低温冻土变为高温冻土,各类年平均地温出现了不同程度的升高。到2100年,RCP 2.6情景下源区多年冻土全部退化为季节冻土主要发生在目前年平均地温高于-0.15 oC的区域,而-0.15~-0.44 oC的区域部分发生退化;RCP 6.0、RCP 8.5情景下目前年平均地温分别为高于-0.21 oC以及-0.38o C的区域多年冻土全部发生退化,而-0.21~-0.69 oC以及-0.38~-0.88 oC的区域部分发生退化。  相似文献   

8.
近数十年来青藏公路沿线多年冻土变化   总被引:34,自引:1,他引:34  
青藏高原70年代比60年代的平均气温升高0.2~0.4℃,气候转暖导致目前公路沿线浅层多年冻土多呈退化趋势。在南、北界附近的岛状冻土区内,年平均地温升高0.2~0.3℃,多年冻土层减薄3~5m或完全消失;在连续冻土区内,年平均地温升高0.1~0.2℃。多年冻土层温度和厚度变化要滞后于气候变化,滞后时间和影响深度与冻土层的岩性、含水量有关。近数十年的气候变化对20m深范围内多年冻土温度和厚度产生较明显的影响。  相似文献   

9.
念青唐古拉山南坡气温分布及其垂直梯度   总被引:4,自引:0,他引:4  
利用架设在念青唐古拉山南坡9个海拔高度(4 300~5 500 m)的自动气象站1 a(2006年8月1日至2007年7月31日)的实测数据,对山坡1.5 m高度的近地面气温随海拔梯度和时间的分布进行了分析。表明念青南坡4 300~4 950 m冷季(10~4月)存在逆温。利用高山各观测高度的温度与当雄气象站气温具有良好相关,推算出多年平均情况下念青唐古拉山南坡各观测高度的年平均气温和各月平均气温。并由此推测念青唐古拉山南坡海拔5 100 m以上存在高山多年冻土,此多年冻土下界高度比《中国冻土》指出的高度高约200 m。  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.
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   

12.
In high mountainous areas, the development and distribution of alpine permafrost is greatly affected by macro- and micro-topographic factors. The effects of latitude, altitude, slope, and aspect on the distribution of permafrost were studied to understand the distribution patterns of permafrost in Wenquan on the Qinghai-Tibet Plateau. Cluster and correlation analysis were performed based on 30 m Global Digital Elevation Model (GDEM) data and field data obtained using geophysical exploration and borehole drilling methods. A Multivariate Adaptive Regression Spline model (MARS) was developed to simulate permafrost spatial distribution over the studied area. A validation was followed by comparing to 201 geophysical exploration sites, as well as by comparing to two other models, i.e., a binary logistic regression model and the Mean Annual Ground Temperature model (MAGT). The MARS model provides a better simulation than the other two models. Besides the control effect of elevation on permafrost distribution, the MARS model also takes into account the impact of direct solar radiation on permafrost distribution.  相似文献   

13.
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   

14.
大小兴安岭多年冻土的主导成因及分布模式   总被引:6,自引:0,他引:6  
大小兴安岭海拔高度由北向南增高对纬度偏低带来的温升具有相对补偿功能,从而使冻土分区界线大大南凸。大兴安岭山地为一个连续的整体,不宜仅将南部视为山地多年冻土,而将中、北部划为高纬多年冻土。多年冻土南界应在黄岗梁山南麓通过。小兴安岭的多年冻土南界应在呼兰河源中山的南麓通过。大兴安岭北端断续多年冻土区应将伊勒呼里山平均海拔1000 m的中山部分包括在内;岛状融区多年冻土区南伸至阿尔山附近终结;小兴安岭南端汤旺河与呼兰河的河源区存在岛状融区多年冻土闭合圈。  相似文献   

15.
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   

16.
基于MODIS的秦巴山地气温估算与山体效应分析   总被引:1,自引:0,他引:1  
秦巴山地作为横亘在中国南北过渡带的巨大山脉,其山体效应对中国中部植被和气候的非地带性分布产生了重要的影响,山体内外同海拔的温差是表征山体效应大小较为理想的指标。本研究结合MODIS地表温度(LST)数据、STRM-1 DEM数据和秦巴山地的118个气象站点的观测数据,分别采用普通线性回归(OLS)和地理加权回归(GWR)两种分析方法对秦巴山地的气温进行估算,在此基础上将秦巴山地各月气温转换为同海拔(1500 m,秦巴山地平均海拔)气温,对比分析秦巴山地的山体效应。结果表明:① 相比OLS分析,GWR分析方法的精度更高,各月回归模型的R 2均在0.89以上,均方根误差(RMSE)在0.68~0.98 ℃之间。② 利用GWR估算得到的同海拔气温,从东向西随海拔升高呈现了明显的升高的趋势,秦岭西部山地比东段升高约6 ℃和4.5 ℃;大巴山西部山地年均和7月份同海拔的气温较东段升高约8 ℃和5 ℃。③ 从南向北,以汉江为分界,秦岭与大巴山的同海拔的气温均呈现出由山体边缘向内部升高的趋势。④ 秦巴山地西部大起伏高山,秦岭大起伏高中山和大巴山大起伏中山,相比豫西汉中中山谷地,各月均同海拔气温分别升高了约3.85~9.28 ℃、1.49~3.34 ℃和0.43~3.05 ℃,平均温差约为3.50 ℃,说明秦巴山地大起伏中高山的山体效应十分明显。  相似文献   

17.
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   

18.
近30年来青藏高原西大滩多年冻土变化   总被引:32,自引:1,他引:31  
结合1975年已有勘探资料,对青藏高原多年冻土北界西大滩进行了雷达勘探。勘探发现,近30年来青藏高原多年冻土北界发生较大规模的多年冻土退化,多年冻土面积从1975年的160.5 km2退化成现在的141.0 km2,缩小约12%;开始出现多年冻土的最低高程为4 385 m,比1975年升高了25 m。近30年来研究区的气候变化是造成北界多年冻土退化的主要原因。相同气候背景下,多年冻土腹部地温有升高,但在30年尺度上不会发生明显的退化。本次冻土区域调查的结果可为检验冻土-气候关系模型的可靠与否提供依据。  相似文献   

19.

The Kozia Dolinka valley lies at an altitude above 1900 m a.s.l. on the northern slope of the main ridge of the High Tatra Mountains. Mountain permafrost occurrences were studied with the use of BTS, infrared imaging, water and ground temperature measurements and DC resistivity soundings. The data suggest the existence of isolated patches of permafrost. The lowest observed bottom temperature of winter snow values was in the order of-10C. DC soundings revealed the existence of a high resistivity layer of limited extent. Permafrost seasonal monitoring was conducted with resistivity soundings. Measurements were carried out in spring-autumn 1999, when a distinct change in permafrost thickness was observed.  相似文献   

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