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Characterization of seasonal variation of the active layer above permafrost with reverse time migration of GPR profiles near the Qinghai-Tibet Highway

机译:青藏公路附近多年冻土层上活性层的季节变化与GPR剖面的逆时偏移特征

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The permafrost on the Qinghai-Tibet Plateau (QTP) is critically sensitive to temperature changes. The balance of heat transfer between the land and the atmosphere in permafrost regions were disturbed by the construction of man-made infrastructures, such as the Qinghai-Tibet Highway (QTH), the towers of power lines and telecommunications. Obviously, the characteristics of permafrost have been altered near the QTH. Reversely, thawing and degradation of the permafrost have a serious impact to the stability of QTH. Ground-penetrating radar (GPR) surveys can detect the subsurface structure of permafrost layer near the QTH that differentiate the situations in summer and winter and enable us to analyze the feature of permafrost table and active layer thickness (ALT) in different seasons. Consequently, it can provide the characterization of the relationship between the permafrost thawing and stability of QTH. Numerous studies have used the GPR to detect the permafrost and collected GPR data in summer in previous studies. However, due to the high loss of GPR signal in summer time caused by the blocking nature of the melted active layer limited the detection of formation features in greater depth. In this paper, we collected GPR data near the QTH in Beiluhe region in both summer and winter seasons and used the finite-difference reverse time migration (RTM) algorithm to process the GPR data. From the results of RTM profiles, we find that: 1) the RTM profiles in winter can provide high resolution interpretation image and clearly register the active layer/permafrost boundary and lithological interfaces within the active layer; 2) the top boundary of the permafrost and ALT have significant change near the QTH, which may be caused by the degradation of the surface vegetation and higher temperature on sides of QTH. With the accumulation of more GPR surveys, we can potentially analyze more details and wider coverage for the characteristics of permafrost top boundary and ALT in different seasons and provide more objective input to reduce the adverse impact from engineering constructions.
机译:青藏高原的多年冻土对温度变化极为敏感。多年冻土地区的土地与大气之间的热传递平衡受到人工基础设施的建设的干扰,例如青藏公路,输电塔和电信。显然,多年冻土的特征在第四纪附近已经改变。相反,多年冻土的融化和降解对QTH的稳定性有严重影响。探地雷达(GPR)调查可以探测QTH附近的多年冻土层的地下结构,从而区分夏季和冬季的情况,并使我们能够分析不同季节的多年冻土表和活动层厚度(ALT)的特征。因此,它可以表征多年冻土融化与QTH稳定性之间的关系。在以前的研究中,许多研究已经使用GPR来检测多年冻土并在夏季收集了GPR数据。然而,由于在夏季,由于熔化的活性层的阻挡性质引起的GPR信号的高损失限制了在更大深度中对形成特征的检测。在本文中,我们在夏季和冬季都采集了北麓河地区QTH附近的GPR数据,并使用有限差分逆时偏移(RTM)算法处理了GPR数据。从RTM剖面的结果,我们发现:1)冬季的RTM剖面可以提供高分辨率的解释图像,并清楚地记录活动层内的活动层/多年冻土边界和岩性界面; 2)多年冻土的顶部边界和ALT在QTH附近有显着变化,这可能是由于QTH两侧的地表植被退化和温度升高引起的。随着越来越多的GPR调查的积累,我们可以潜在地分析不同季节的多年冻土顶边界和ALT特征的更多细节和更广泛的覆盖面,并提供更多客观的信息来减少工程建设的不利影响。

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