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21.
在高寒缺氧的青藏高原如何对生活污水进行有效的处理,目前仍无好的解决方案。实验采用的生态大棚系统可在青藏高原的恶劣环境下提供适宜的人工小环境,保证生物处理正常运行所必需的热平衡、O2-CO2的循环平衡和水循环的平衡。采用的好氧生物-土地处理工艺不仅能保证污水处理达到国家一级排放标准,同时还解决了长期以来高原蔬菜种植的难题。  相似文献   
22.
The Yellow River is the second longest river in China and the cradle of the Chinese civilization. The source region of the Yellow River is the most important water holding area for the Yellow River, about 49.2% of the whole runoff comes from this region. However, for the special location, it is a region with most fragile eco-environment in China as well. Eco-environmental degradation in the source region of the Yellow River has been a very serious ecological and socially economic problem. According to census data, historical documents and climatic information, during the last half century, especially the last 30 years, great changes have taken place in the eco-environment of this region. Such changes are mainly manifested in the temporal-spatial changes of water environment, deglaciation, permafrost reduction, vegetation degeneracy and desertification extent, which led to land capacity decreasing and river disconnecting. At present, desertification of the region is showing an accelerating tendency. This paper analyzes the present status of eco-environment degradation in this region supported by GIS and RS, as well as field investigation and indoor analysis, based on knowledge, multi-source data is gathered and the classification is worked out, deals with their natural and anthropogenic causes, and points out that in the last half century the desertification and environmental degradation of this region are mainly attributed to human activities under the background of regional climate changes. To halt further degradation of the environment of this region, great efforts should be made to use land resources rationally, develop advantages animal agriculture and protect the natural grassland.  相似文献   
23.
Check-dams are the most common structures for controlling soil erosion in the Loess Plateau. However, the effect of check-dams on carbon sequestration, along with sediment transport and deposition, has not been assessed over large areas. In this study, we evaluated the carbon sequestration function of check-dams in the Loess Plateau. The results indicate that there were approximately 11 000 check-dams distributed in the Loess Plateau, with an estimate of the amount of sediment of 21 × 109 m3 and a soil organic carbon storage amount of 0.945 Pg. Our study reveals that check-dams in the Loess Plateau not only conserve soil and water but also sequester carbon.  相似文献   
24.
The methane concentration profile from -1.5m depth in soil to 32m height in air was measured in alpine steppe located in the permafrost area. Methane concentrations showed widely variations both in air and in soil during the study period. The mean concentrations in atmosphere were all higher than those in soil, and the highest methane concentration was found in air at the height of 16m with the lowest concentration occurring at the depth of 1.5m in soil. The variations of atmospheric methane concentrations did not show any clear pattern both temporally and spatially, although they exhibited a more steadystable state than those in soil. During the seasonal variations, the methane concentrations at different depths in soil were significantly correlated (R^2〉0.6) with each other comparing to the weak correlations (R^2〈0.2) between the atmospheric concentra- tions at different heights. Mean methane concentrations in soil significantly decreased with depth. This was the compositive influence of the decreasing production rates and the increasing methane oxidation rates, which was caused by the descent soil moisture with depth. Although the methane concentrations at all depths varied widely during the growing season, they showed very distinct temporal variations in the non-growing season. It was indicated from the literatures that methane oxidation rates were positively correlated with soil temperature. The higher methane concentrations in soil during the winter were determined by the lower methane oxidation rates with decreasing soil temperatures, whereas methane production rates had no reaction to the lower temperature. Relations between methane contribution and other environmental factors were not discussed in this paper for lacking of data, which impulse us to carry out further and more detailed studies in this unique area.  相似文献   
25.
生态用地在维持区域生态平衡和保障区域生态安全具有重要意义。以云南星云湖流域为研究区,运用层次分析法和GIS技术,从水土保持、地质灾害规避与防护、生物多样性保护和水资源安全4个方面,构建了流域重要生态用地识别指标及其识别方法,并识别出流域重要生态用地空间分布。结果表明:(1)加权叠加模型更适用于高原湖泊流域重要生态用地识别;(2)根据生态用地重要性分为核心型、辅助型、过渡型和非重要生态用地,面积分别为75.98 km~2、105.05 km~2、89.47 km~2和65.11 km~2,分别占流域生态用地总面积的22.64%、31.30%、26.66%和19.40%。识别结果能较好地反映重要生态用地维护流域的生态安全。以星云湖流域作为高原湖泊流域的典型,为高原湖泊生态保护提供科学方向,以期协调流域经济发展与生态保护的矛盾,促进可持续发展。  相似文献   
26.
沙尘不同的垂直分布对大气的加热作用不同,通过卫星观测结合数值模拟,可以更清楚地了解沙尘辐射加热作用,有利于理解沙尘对该地区大气热结构的影响机制.因此,本研究利用CALIPSO气溶胶产品和SBDART模式,分析了2007—2020年塔克拉玛干沙漠和青藏高原沙尘气溶胶及其短波加热率的时空分布特征.结果表明,塔克拉玛干沙漠和青藏高原的年平均沙尘气溶胶光学厚度(DAOD,532 nm)分别为0.300~0.350和0.086~0.108,平均值分别为0.328和0.097.塔克拉玛干沙漠季节平均DAOD的最大、最小值分别出现在春季和冬季,而青藏高原的最大、最小值分别出现在夏季和秋季.塔克拉玛干沙漠和青藏高原的沙尘消光系数(σD)最大值分别出现在春季和夏季.2007—2020年,两地的σD在春季均呈增加趋势,而在秋季则呈减小趋势.春季和夏季的短波沙尘加热率(SW DHR)均大于其它两个季节,其中春季最大,塔克拉玛干沙漠上空冬季最弱,青藏高原上空秋季最弱.春夏季,青藏高原北坡存在较强沙尘加热层,其顶部高于5 km,其强度及高值区从春季到冬季逐渐减小.从年变化来看,春季短波加热率呈加强趋势,秋季呈减...  相似文献   
27.
TheNorthTibetanPlateau ,ortheQiangtangPlateau ,asthemainbodyoftheQing hai TibetanPlateauwhichisoneofthethreemajordistributionareasofdesertificationinChi na ,hasawell preservednaturalecosystemcharacterizedbyhigh altitudegrassland ,isanim portantareaforstudyi…  相似文献   
28.
This paper aims to present an assessment of the environmental radiological exposure at a Brazilian area of high natural radiation and discusses the indoor radon exposure risk. A survey of inhabitant exposures arising from the inhalation of radon progeny and external gamma exposure was conducted in urban and rural areas of the Po?os de Caldas Plateau, which is recognized worldwide as a high natural radiation region. The results of this survey indicated that highest radiation exposure was restricted to the rural area of Po?os de Caldas. The radiation exposure in urban locations was quite similar to the values observed in normal background areas in some Brazilian counties. By the application of a constant relative risk model, an additional 20% in the lifetime risk of lung cancer mortality due to the exposure to radon progeny was estimated at Po?os de Caldas. It was also estimated that 16% of all lung cancer deaths at Po?os de Caldas county could be attributable to radon exposure.  相似文献   
29.
青藏高原湖泊细菌种群结构的研究综述   总被引:1,自引:0,他引:1  
青藏高原东北地区位于我国东部季风区、西北干旱区和青藏高原高寒区的交汇地带,人为影响较少,是研究人为影响与生物种群组成的理想场所。随着分子生物学技术的迅速发展,高原湖泊菌种群结构多样性研究越来越受到人们的重视并取得了重要成果。本文从青藏高原上应用的技术方法、细菌种群结构研究成果以及区域性的重要影响因素3个方面概述了湖泊细菌种群结构多样性研究在青藏高原上取得的进展。简单地讨论了种群多样性和影响因素的关系,对比发现,微生物种群结构的主要限制性因素会随着环境的变化发生改变。同时,微生物种群结构随着环境的变化实际上是其生理结构适应的结果。  相似文献   
30.
论文利用ERA-Interim(0.5°×0.5°,简称ERA)、NCEP/NCAR2(2.5°×2.5°,简称NCEP2)两种不同分辨率的再分析资料和探空观测资料,首先分析了夏季(7月)和冬季(1月)青藏高原(以下简称高原)上大气水汽含量大值区(简称"湿池")的区域分布特征,然后基于ERA资料分析了1979—2012年间高原"湿池"的一些变化特征,发现了一些新的事实。主要结果包括:在对流层中上层,高原上无论夏、冬季都有大气水汽含量的高值中心——高原"湿池"存在。夏季7月高原"湿池"强度最强,ERA资料除了在高原南部有自西到东的连续高湿中心带外,在高原西北部还有一个高湿中心;NCEP2资料仅在高原东南部和西南部有两个高湿中心。冬季1月,两种资料均只在高原东南部有高湿中心。总体上,ERA资料与探空观测资料的高湿中心区更为接近。7月,高原南部高湿中心在1990年代中期(1994—1996年)之后持续偏强,西北部中心强度有弱—强—弱—强交替变化特征;1月,高湿中心在1980年代末期开始持续偏强。高原南部高湿中心带在7月几乎是一个连续的区域,1996年以后这一特征更为明显,在1月则是分为东西两段的高湿中心带。  相似文献   
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