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101.
目的:将电阻率层析成像应用于探测潜伏断层的研究中,本文发现了断层和地下水的一些基本电阻率分布特征,这对于工程物探意义重大,一般情况下,断层两侧具有不同的电阻率特征,但是,根据电阻率层析图像中的电阻率分布,通常难以区分断层和地下水层,这是因为两者不仅都具有低电阻率值,而且还具有非常相似的电阻率异常特征。资料和方法:运用电阻率层析图像的数据,电阻率层析图像中的断层会呈现如下特征:1)由于孔隙度的加大和地下水的存在,使得断层表现出高角度的低阻线性结构。它们既可以出现在浅部盖层中,也可以存在于深部基岩中,特别是在深部区域,它们尤为明显;2)它们还呈现出高角度的线性梯度带,在该梯度带两边的电阻率结构出现整体性的差异,通常情况下,正断层的上盘表现出低阻或/和班驳状的高阻和低阻扰动区,而下盘则为完整的高阻区,这与逆冲断层正好相反;3)与断层有关的电阻率异常区常常具有良好的大尺度水平连续性,并且可以追瞎异常区附近的精细电性结构。而地下水的电阻率特征为:1)如果没有裂隙,地表水所引起的低阻区非常浅,即使存在丰富的水源以及高孔隙度的砾岩和中粗砂。一般情况下,其底端深度不超过强风化区;2)地下水的电阻率值非常低,特别在高矿化度的地区。地下水,包括岩溶水和砂岩水,的电阻率总显示出局部水平延伸或/和面团状特征;3)地下水层的深度朝某个固定方向逐渐增加,并且其电阻率图像会随季节而变;4)一般情况下,在水下渗的地区,会出现降水漏斗,其上部为高阻,而下部为低阻,从而便形成了“Y”或“V”字型的典型结构。结果:利用上述的基本特征一般可以区分断层和地下水。结论:仅依靠电阻率层析图像,可能极难准确地区分断层和裂隙水,这是因为裂隙水不但可能具有高角度的低阻线性结构,而且在一定尺度上具有很好的水平连续性,还有,由于电阻率层析成像较差的垂直分辨率,难以精确确定断层的上端点位置,所以结合其它的物探手段如钻探和浅层地震勘探是非常必要的。 相似文献
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103.
利用Rayleigh波群速度资料反演得到中国大陆及其临近海域的(70°E-145°E,10°N-55°N)15-120s周期的群速度分布图像. 塔里木盆地在15s处清楚地显示为低速,在16-33s左右没有显示,但在36-5s显示为高速,说明塔里木盆地有较深的根. 青藏高原块体是44s至120s图像中最为突出的低速块体,南面与印度板块的分界线以及与北面的塔里木盆地、柴达木盆地的分界清晰,其块体中西部的速度低于东部. 泰国清迈附近存在一尺度为1000km左右的低速带,可能是青藏高原块体的物质向东南方向迁移造成上地幔物质上涌的结果. 南北地震带表现为强烈的速度梯度带,西面为低速,东面为高速. 中国南海的中央、日本海中央、菲律宾海表现为海洋性地壳. 菲律宾海的图像与地形及地震带完全吻合. 环绕菲律宾海及日本海存在400km左右宽的低速带,可能是岩浆活动带. 相似文献
104.
挡块对斜拉桥抗震性能的影响 总被引:1,自引:0,他引:1
本文基于现有永和斜拉桥挡块设施的严重破损,引入非线性挡块元,采用有限元计算分析挡块对斜拉桥抗震性能的影响。结果表明,斜拉桥塔根挡块的调协对减震效果影响不大,但挡块具有减小塔顶残余变形的有利作用。鉴于此,对永和斜拉桥挡块进行修复是必要的。 相似文献
105.
大开间小型混凝土砌块10层模型房屋抗震性能试验研究(Ⅰ) 总被引:8,自引:3,他引:8
我国抗震设计规范(GB50011-2001)规定在6、7、8度区,混凝土小砌块结构分别可以建七、六、五层。由于混凝土小砌块结构的最大优势在于10-20层(与混凝土框架或框架剪力墙结构比)。本文按1/4比例制作了10层混凝土小砌块结构模型,按7度设防要求实施构造措施,通过振动台试验研究模型结构的抗震性能。结果表明,模型结构完全能够满足在7度区“小震不坏,大震不倒”的要求。圈梁、构造柱以及水平拉结筋构成的约束体系抗震作用是明显的。试验利用砌块的非注芯孔灌注铁砂来模拟墙体出平面动力效应。在本模型的构造措施下,平出面反应不对结构破坏起控制作用。 相似文献
106.
107.
Subducted slabs beneath the eastern Indonesia-Tonga region: insights from tomography 总被引:2,自引:0,他引:2
Tomographic images of mantle structure beneath the region north and northeast of Australia show a number of anomalously fast regions. These are interpreted using a recent plate tectonic reconstruction in terms of current and former subduction systems. Several strong anomalies are related to current subduction. The inferred slab lengths and positions are consistent with Neogene subduction beneath the New Britain and Halmahera arcs, and at the Tonga and the New Hebrides trenches where there has been rapid rollback of subduction hinges since about 10 Ma. There are several deeper flat-lying anomalies which are not related to present subduction and we interpret them as former subduction zones overridden by Australia since 25 Ma. Beneath the Bird’s Head and Arafura Sea is an anomaly interpreted to be due to north-dipping subduction beneath the Philippines-Halmahera arc between 45 and 25 Ma. A very large anomaly extending from the Papuan peninsula to the New Hebrides, and from the Solomon Islands to the east Australian margin, is interpreted to be the remnant of south-dipping subduction beneath the Melanesian arc between 45 and 25 Ma. This interpretation implies that a flat-lying slab can survive for many tens of millions of years at the bottom of the upper mantle. In the lower mantle there is a huge anomaly beneath the Gulf of Carpentaria and east Papua New Guinea. This is located above the position where the tectonic model interprets a change in polarity of subduction from north-dipping to south-dipping between 45 and 25 Ma. We suggest this deep anomaly may be a slab subducted beneath eastern Australian during the Cretaceous, or subducted north of Australia during the Cenozoic before 45 Ma. The tomography also supports the tectonic interpretation which suggests little Neogene subduction beneath western New Guinea since no slab is imaged south of the New Guinea trench. However, one subduction zone in the tectonic model and many others, that associated with the Trobriand trough east of Papua New Guinea and the Miocene Maramuni arc, is not seen in the tomographic images and may require reconsideration of currently accepted tectonic interpretations. 相似文献
108.
Positive tectonic inversion is related to the transmission of compressional stresses along a décollement into the foreland of an orogenic zone. This stress and strain concentration in regions remote from the main orogenic front is commonly related to the presence of pre-existing rheological heterogeneities such as normal syn-depositional faults. During inversion, these pre-existing normal faults are reactivated as reverse faults. Tectonic inversion in the Rhenohercynian fold-and-thrust belt during the Variscan Orogeny shows that inversion is likely synchronous with the onset of collision in the hinterland. Here, we present the results of a simplified thermo-mechanical model (STM) which allows one to study strain partitioning between two orogenic zones. We show that, if the two orogenic zones have the same mechanical properties, the viscosity of the décollement, which links them, controls the initial strain partitioning. During subsequent finite shortening, erosional processes determine the partitioning of strain rate. The presence of a weak structure in the inverted zone and of a low-viscosity décollement leads to initial strain concentration in the inverted track rather than in the collision zone and a progressive decrease in strain partitioning between the two orogenic zones. The STM results are in good agreement with results of a 2D finite-element model. We conclude that, in the western part of the Rhenohercynian Massif, simultaneous uplift and deformation within the Mid-German Crystalline Rise (the main collision zone) and the Ardenne Anticlinorium (the inverted zone) lead to interpreting this orogenic event as a case of vice tectonic rather than the propagation of a ‘wave of folding’ towards the Variscan front, as suggested by previous authors. 相似文献
109.
110.
Gil A. J. Rodríguez-Caderot G. Lacy M. C. Ruiz A. M. Sanz de Galdeano C. Alfaro P. 《Studia Geophysica et Geodaetica》2002,46(3):395-410
The Granada Basin (Central Betic Cordillera), one of the most seismically active areas of the Iberian Peninsula, is currently subjected to NW-SE compression and NE-SW extension. The present day extension is accommodated by normal faults with various orientations but particularly with a NW-SE strike. At the surface, these active NW-SE normal faults are mainly concentrated on the NE part of the Basin. In this part we have selected a 15-km long segment where several active normal faults crop out. Using the marine Tortonian rocks as a reference, we have calculated a minimum extensional rate of 0.15-0.30 mm/year. The observed block rotation, the listric geometry of faults at depth and the distribution of seismicity over the whole Basin, indicate that this rate is a minimum value. In the framework of an interdisciplinary research project a non-permanent GPS-network has been established in the central sector of Betic Cordillera to monitor the crustal deformations. The first two observation campaigns were done in 1999 and 2000. 相似文献