期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
青藏高原东北缘玛雅雪山晚第四纪冰川发育的气候和构造耦合 被引量:7
1
作者 刘蓓蓓 张威 +1 位作者 崔之久 刘亮 《冰川冻土》 CSCD 北大核心 2015年第3期701-710,共10页
青藏高原东北缘的玛雅雪山(海拔4 447 m)保存着确切的第四纪冰川遗迹.野外地貌调查与光释光测年方法相结合,确认玛雅雪山晚第四纪主要经历3次冰川作用:第Ⅰ组冰碛时代为新冰期;第Ⅱ组冰碛物年龄为(23.2±1.0)ka,其上覆泥石流年龄为(... 青藏高原东北缘的玛雅雪山(海拔4 447 m)保存着确切的第四纪冰川遗迹.野外地貌调查与光释光测年方法相结合,确认玛雅雪山晚第四纪主要经历3次冰川作用:第Ⅰ组冰碛时代为新冰期;第Ⅱ组冰碛物年龄为(23.2±1.0)ka,其上覆泥石流年龄为(2.9±0.3)^(2.3±0.1)ka,上层土壤年龄为(3.6±0.2)ka,对应于深海氧同位素2阶段(MIS 2)的末次冰盛期(LGM);第Ⅲ组冰碛年龄为(42.6±1.9)^(45.7±3.0)ka,属于末次冰期中冰阶,对应MIS 3中期.采用最新综合因子法计算玛雅雪山现代冰川物质平衡线为海拔4 605 m.依据冰川地貌形态,计算末次冰期平衡线为海拔3 800 m.通过庄浪河阶地的拔河高度及各级阶地的年代,以河流的下切速率代表玛雅雪山的抬升速率,计算得到末次冰期中期以来玛雅雪山抬升了50~60 m.利用玛雅雪山周边的达里加山和太白山冰川漂砾的10Be数据近似代表流域侵蚀速率,推算出玛雅雪山剥蚀速率大约为29 mm·ka-1,推断MIS 3以来流域的剥蚀量为1~2 m.综合末次冰期中期以来的构造抬升量和剥蚀量,恢复末次冰期中期时的流域高度为海拔4 200 m,平衡线高度为海拔3 750 m.研究结果显示:研究区在MIS 3时,流域平均高度已经在平衡线之上,在流域平均高度到主峰之间冰川开始积累,发育冰川.结合其他环境指标综合推断,玛雅雪山晚第四纪冰川的发育是气候和构造耦合的产物. 展开更多
关键词 玛雅雪山 冰期系列 平衡线 气候和构造
下载PDF
An Assessment and Identification of Avalanche Hazard Sites in Uri Sector and its Surroundings on Himalayan Mountain
2
作者 A.S.MOHAMMED Abdul Athick Hasan Raja NAQVI Zikra FIRDOUSE 《Journal of Mountain Science》 SCIE CSCD 2015年第6期1499-1510,共12页
Avalanches are one of the most natural hazard in the mountain areas and therefore, identification of avalanche hazard is necessary for planning future development activities. The study area falls under the internation... Avalanches are one of the most natural hazard in the mountain areas and therefore, identification of avalanche hazard is necessary for planning future development activities. The study area falls under the international boundary region which generally covered by the snow(38%) on high altitude regions of the western part of Himalayas. Avalanches are triggered in study area during snowfall resulting in loss of human life, property and moreover the transportation and communication affected by the debris which ultimately delays the relief measures. Therefore in this study three major causative parameters i.e terrain, ground cover and meteorological have been incorporated for the identification of avalanche hazard zones(AHZ) by integrating Analytical Hierarchical Process(AHP) method in Geographical Information System(GIS). In the first part of study, avalanche sites have been identified by the criteria related to terrain(slope, aspect and curvature) and ground cover. Weights and ratings to these causative factors and their cumulative effects have been assigned on the basis of experience and knowledge of field. In the second part of the study, single point interpolation and Inverse Distance Weighted(IDW) method has been employed as only one weather station falls in study area. Accordingly, it has been performed to generate the meteorological parameter maps(viz. air temperature and relative humidity) from the field observatories and Automatic Weather Stations(AWS) located at Baaj OP in Uri sector. Finally, the meteorological parameter maps were superimposed on the terrain-based avalanche hazard thematic layers to identify the dynamic avalanche hazard sites. Conventional weighted approach and Analytical Hierarchical Process(AHP) method have been implemented for the identification of AHZ that shows approximately 55% area under maximum hazard zone. Further, the results were validated by overlapping the existing registered avalanche sites. The sites were identified through field survey and avalanche data card followed by its delineation from the toposheet(1:50,000 scale). Interestingly study found that 28% area under moderate and maximum AHZ correlated well with registered avalanche sites when they were overlapped. The accuracy for such works can be increased by field survey under favorable weather condition and by adding data from more number of AWS for predicting avalanche hazards in mountainous regions. 展开更多
关键词 Snow Digital Elevation Model(DEM) Meteorology Analytical Hierarchical Process(AHP) Avalanche hazard Uri sector
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部