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1.
The Qinghai–Tibet Highway and Railway (the Corridor) across the Qinghai–Tibet Plateau traverses 670 km of permafrost and seasonally frozen-ground in the interior of the Plateau, which is sensitive to climatic and anthropogenic environmental changes. The frozen-ground conditions for engineering geology along the Corridor is complicated by the variability in the near-surface lithology, and the mosaic presence of warm permafrost and talik in a periglacial environment. Differential settlement is the major frost-effect problem encountered over permafrost areas. The traditional classification of frozen ground based on the areal distribution of permafrost is too generalized for engineering purposes and a more refined classification is necessary for engineering design and construction. A proposed classification of 51 zones, sub-zones, and sections of frozen ground has been widely adopted for the design and construction of foundations in the portion of the Corridor studied. The mean annual ground temperature (MAGT), near-surface soil types and moisture content, and active faults and topography are most commonly the primary controlling factors in this classification. However, other factors, such as local microreliefs, drainage conditions, and snow and vegetation covers also exert important influences on the features of frozen ground. About 60% of the total length of the Corridor studied possesses reasonably good frozen-ground conditions, which do not need special mitigative measures for frost hazards. However, other sections, such as warm and ice-rich or -saturated permafrost, particularly in the sections in wetlands, ground improvement measures such as elevated land bridges and passive or proactive cooling techniques need to be applied to ensure the long-term stability of thermally unstable, thick permafrost subsoils, and/or refill with non-frost-susceptible soils. Due to the long-history of the construction and management of the Corridor by various government departments, adverse impacts of construction and operation on the permafrost environment have been resulted. It is recommended that an integrated, executable plan for the routing of major construction projects within this transportation corridor be established and long-term monitoring networks installed for evaluating and mitigating the impact from anthropogenic and climatic changes in frozen-ground conditions.  相似文献   
2.
本文在系统分析静海台井下地震记录图的基础上,发现并解决了具有一定实际和理论意义的两个问题:其一是证明了最初误认为是干扰的“双脉冲”图形实际上均是微地震。从而指出研究静海周围地区的地震活动性应考虑微震活动问题。其二确认静海周围地区微震波形的4个主要震相是P、PP、S和SS,并对地面反射波PP和SS能够观测到的条件作了初步分析,其结果进一步说明井下地震记录较之地面记录更为“逼真”,复杂和丰富。  相似文献   
3.
用一个耦合的全球格点大气环流模式-植被模式模拟中全新世的气候变化,模拟试验中考虑了地球轨道参数的变化,而其他强迫条件均取成现今值。结果表明,耦合的模式能够模拟出较今强的大尺度夏季风,特别是亚洲-非洲季风,而其他季节和区域的变化值一般都比较小。季风环流和季风降水都大幅度地增大了。结果还显示,耦合模式模拟的大尺度季风系统的变化同单纯大气环流模式模拟的结果非常相似,但是,在非洲北部季风区耦合模式模拟的降水和温度变化较单纯大气模式模拟的值要大,而且,耦合模式模拟的冬季降温值要比单纯大气模式模拟的结果小。  相似文献   
4.
皮肤图像分析系统对祛斑类化妆品功效评价的研究   总被引:13,自引:0,他引:13  
目的是探索如何获得不同色素性皮肤病的清晰图像,研制出操作简单、自动化与精度高的皮肤图像分析系统。方法:应用多光谱皮肤显微偏振光与数字图像处理技术,测量目标皮损形状、面积、灰度、积分光密度及色素颜色参数的变化等。结果:用祛斑类化妆品和药物治疗136例黄褐斑、经该系统测量分析后各治疗组相关参数随时间的推移呈下降趋势,而药物组与对照组相比各参数值明显下降、与各组相比均有显著差异(P<0.05),并提出客观的疗效评定单位“ID”值。结论:该系统是一种潜力较大的皮肤表面色素定量工具,客观性和重复性好,灵敏度高,不对观察对象造成损伤,在临床获得满意效果。  相似文献   
5.
自然形成的滑坡坝很容易发生溃坝。通过对某滑坡坝溃坝情况计算表明:即使在溃坝情况下,也不会对下游人民生命财产和拟建某电站的安全运行构成威胁,也不会诱发别的地质灾害。  相似文献   
6.
高寒冻土区生物结皮对土壤理化属性的影响   总被引:1,自引:0,他引:1  
明姣  盛煜  金会军  张泽  杜玉霞 《冰川冻土》2021,43(2):601-609
生物结皮是高寒地区地被层的重要组分之一。其作为地表特殊的结构层,能够改变地表结构及土壤理化属性,从而影响冻土环境。迄今为止,关于青藏高原高寒生态系统中生物结皮对土壤理化属性的影响尚不清楚。以青藏高原高寒冻土区生物结皮为研究对象,初步研究了生物结皮的特征及其对土壤理化属性的影响。结果表明:生物结皮在高寒草甸退化过程中广泛发育,主要以藻结皮为主,其盖度可达37.3%~51.7%,结皮层平均厚度为12.6 mm。由于生物结皮的发育,高寒地区5~20 cm土层粉粒含量有所增加,但差异不显著,而结皮层土壤田间持水量相比于裸地表层(2 cm)增加了10%~40%,结皮层容重较裸地降低了30%;两种类型藻结皮均显著增加了结皮层及其下0~20 cm土层土壤有机质,而深色藻结皮增加了结皮层及其下0~20 cm土层土壤全氮含量,浅色藻结皮仅增加了结皮层土壤全氮含量,对其下0~20 cm土层土壤全氮含量没有显著影响;生物结皮对土壤pH没有显著影响;生物结皮是高寒生态系统植被退化过程中的关键环节。研究结果为揭示生物结皮在高寒生态系统中发挥重要生态功能提供依据。  相似文献   
7.
以北极规划输气管道工程为依托,建立埋地管道与冻土热交换相互作用数值计算模型,探究了埋地管道在连续多年冻土区、非连续多年冻土区和季节冻土区内,按照不同操作温度(5、-1和-5℃)运行情况下管道周围冻土温度演化过程.计算结果表明:同一区域不同管温对冻土上限值影响差异较大,尤其是在非连续多年冻土区,无论管道是正温输送还是负温输送,由于管道的运营,极大地影响了冻土上限值.5℃正温管道将导致冻土上限下降1~3倍管径;-1℃和-5℃负温管道将有助于提高冻土人为上限.建议在连续多年冻土区管道采用-1℃输送温度;在非连续多年冻土区冬季采用-1℃输送温度,夏季可以是正温,接近环境大气温度,但全年输气平均温度要小于0℃;在季节冻土区,若按照负温输送,反而容易引起管基土冻胀,建议输气温度不作特别控制,与温带地区管道类似,正温输送.希望能够为北极多年冻土区天然气管道建设提供新的思路.  相似文献   
8.
Fine characterization of pore systems and heterogeneity of shale reservoirs are significant contents of shale gas reservoir physical property research.The research on micro-control factors of low productivity in the Qiongzhusi Formation(Fm.)is still controversial.The lower Cambrian Qiongzhusi Fm.in the Qujing,Yunnan was taken as the object to investigate the influence of mineral compositions on the phys-ical properties of the reservoir and the heterogeneity of shale,using the algorithm to improve the char-acterization ability of Atomic Force Microscopy(AFM).The results showed that:(1)The pores are mainly wedge-shaped pores and V-shaped pores.The pore diameter of the main pore segment ranges from 5 to 10 nm.Mesopores are mainly developed in the Qiongzhusi Fm.shale in Well QD1,with the average pore diameter of 6.08 nm.(2)Microscopic pore structure and shale surface properties show strong hetero-geneity,which complicates the micro-migration of shale gas and increases the difficulty of identifying high-quality reservoirs.(3)The increase of clay mineral content intensifies the compaction and then destroys the pores.Conversely,brittle minerals can protect pores.The support and protection of brittle minerals to pores space depend on their content,mechanical properties and diagenesis.(4)Compression damage to pores,large microscopic roughness and surface fluctuations and strong pore structure heterogeneity are the reasons for the poor gas storage capacity of the Qiongzhusi Fm.,which will lead to poor productivity in the Qiongzhusi Fm.  相似文献   
9.
More and more rainstorms and other extreme weather events occur in the context of global warming, which may increase the risks of landslides. In this paper, changes of landslides in the 21 st century of China under the high emission scenario RCP8.5(Representative Concentration Pathway) are projected by using a statistical landslide forecasting model and the regional climate model RegCM4.0. The statistical landslide model is based on an improved landslide susceptibility map of China and a rainfall intensity–duration threshold. First, it is driven by observed rainfall and RegCM4.0 rainfall in 1980–99, and it can reproduce the spatial distribution of landslides in China pretty well.Then, it is used to forecast the landslide changes over China in the future under the RCP8.5 scenario. The results consistently reveal that landslides will increase significantly in most areas of China, especially in the southeastern, northeastern, and western parts of Northwest China. The change pattern at the end of the 21 st century is generally consistent with that in the middle of the 21 st century, but with larger increment and magnitude. In terms of the probability,the proportion of grid points that are very likely and extremely likely to experience landslides will also increase.  相似文献   
10.
Much geological research has illustrated the transition of paleoenvironmental patterns during the Cenozoic from a planetary-wind-dominant type to a monsoon-dominant type, indicating the initiation of the East Asian monsoon and inland-type aridity. However, there is a dispute about the causes and mechanisms of the transition, especially about the impact of the Himalayan/Tibetan Plateau uplift and the Paratethys Sea retreat. Thirty numerical sensitivity experiments under different land-sea distributions and Himalayan/Tibetan Plateau topography conditions are performed here to simulate the evolution of climate belts with emphasis on changes in the rain band, and these are compared with the changes in the paleoenvironmental patterns during the Cenozoic recovered by geological records. The consistency between simulations and the geological evidence indicates that both the Tibetan Plateau uplift and the Paratethys Sea retreat play important roles in the formation of the monsoon-dominant environmental pattern. Furthermore, the simulations show the monsoon-dominant environmental pattern comes into being when the Himalayan/Tibetan Plateau reaches 1000–2000 m high and the Paratethys Sea retreats to the Turan Plate.  相似文献   
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