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61.
During strong ground motion it is expected that extended structures (such as bridges) are subjected to excitation that varies along their longitudinal axis in terms of arrival time, amplitude and frequency content, a fact primarily attributed to the wave passage effect, the loss of coherency and the role of local site conditions. Furthermore, the foundation interacts with the soil and the superstructure, thus significantly affecting the dynamic response of the bridge. A general methodology is therefore set up and implemented into a computer code for deriving sets of appropriately modified time histories and spring–dashpot coefficients at each support of a bridge with account for spatial variability, local site conditions and soil–foundation–superstructure interaction, for the purposes of inelastic dynamic analysis of RC bridges. In order to validate the methodology and code developed, each stage of the proposed procedure is verified using recorded data, finite‐element analyses, alternative computer programs, previous research studies, and closed‐form solutions wherever available. The results establish an adequate degree of confidence in the use of the proposed methodology and code in further parametric analyses and seismic design. Copyright © 2003 John Wiley & Sons, Ltd. 相似文献
62.
In the new trend of seismic design methodology, the static pushover analysis is recommended for simple or regular structures whilst the time‐history analysis is recommended for complex structures. To this end, the applicable range of the pushover analysis has to be clarified. This study aims at investigating the applicability of pushover analysis to multi‐span continuous bridge systems with thin‐walled steel piers. The focus is concentrated on the response demand predictions in longitudinal or transverse directions. The pushover analysis procedure for such structures is firstly summarized and then parametric studies are carried out on bridges with different types of superstructure‐pier bearing connections. The considered parameters, such as piers' stiffness distribution and pier–0.5ptdeck stiffness ratio, are varied to cover both regular and irregular structures. Finally, the relation of the applicability of pushover analysis to different structural formats is demonstrated and a criterion based on the higher modal contribution is proposed to quantitatively specify the applicable range. Copyright © 2003 John Wiley & Sons, Ltd. 相似文献
63.
Recent 24 s deep seismic reflection records revealed five flat reflectors in the lithospheric mantle in Eastern China. With increasing depth, they are named M1 to M5 and can be seen on both field single-shot and stacked records. Reflector M1 corresponds to the Moho discontinuity, whereas M5 may be the reflection from the bottom of the current lithosphere, which is about 78 km deep according to geothermal measurements. The other three reflectors seem peculiar and might result from interactions between the lithosphere and deeper mantle. Based on lithological and geochemical data, it is suggested that the lithosphere has been thinned from about 150 km to about 60 km in the Late Mesozoic, and then has been thickened to about 78 km during the Cenozoic. The thinning process produced a granulite layer in the old lower crust caused by magmatic underplating, whereas an eclogite layer formed beneath owing to the subduction of the Paleo-Tethys and Yangtze Craton during the Permian and Early Mesozoic. Reflector M2 at about 12 s two-way traveltime (TWT) might result from the Paleozoic Moho, which represents the boundary between the previous granulite and eclogite facies. Reflector M3 at about 14 s might correspond to the bottom of the eclogite layer, beneath which the old lithospheric mantle remained. The old and the newly developed mantle may have different compositions, resulting in reflector M4. The multi-layered mantle reflectors demonstrate a mantle structure that possibly correlates with the lithospheric thinning process that occurred in Eastern China during the Late Mesozoic. The discovery of multi-layered mantle reflectors in the studied areas indicates a high heterogeneity of the upper mantle. Reflection seismology with improved technology, together with velocity and resistivity imaging and rock-physics measurements, can provide more details of the heterogeneity and related dynamic processes that occurred in the lithospheric mantle. 相似文献
64.
Blade算法的产生是根据地震点的分布寻找地震断层,其优势在于能从较稀疏的点分布中找出线型条带模式,但不足的是完全不考虑地震的震级屑性。针对Blade算法的几个不足之处逐步改进,提出了震级加权四指标Blade算法。算法主要的改进体现在:①引入以震级为变量的权重函数,体现了高震级地震的控制作用,通过模拟与实例比较了三种权重函数的效果;②改进原方法中所挑出的Blade中心必须有地震点,引入四指标评价体系代替原方法的二指标评价体系,同时还根据指标值将挑选出的线型条带修正到更淮确的位置。将原算法与改进算法应用于华北地区4级以上的地震数据集以按寻地震带,结果表明,震级加权四指标Blade算法较Blade算法有显改进,取得了较好的应用效果。 相似文献
65.
两结构高效阻尼控制体系试验研究 总被引:2,自引:0,他引:2
本文通过模拟地震动振动台试验,研究了两个相邻结构模型的地震响应,结构模型采用一种高效阻尼装置(High Efficient Damper for Multi—Structure System即HEDMS)连接。非线性时程分析与振动台试验结果都证明了该阻尼装置能高效发挥软钢阻尼器的耗能能力,从而显著减轻两结构模型的地震响应。同时,研究还指出了进行阻尼装置设计时应该注意的一些问题。 相似文献
66.
67.
对下扬子与华南边界结合带东延问题的地球物理探讨 总被引:2,自引:1,他引:2
以江山-绍兴、铅山-宜春等断裂带作为华南与扬子块体之间的边界结合带,这种认识目前已基本为大家所接受.但是,这条边界结合带向东延伸入海之后的位置与去向一直是多年来研究的热点.本文基于黄、东海研究区的地球物理数据(空间重力数据、布格重力数据和地震层析成像结果),利用方向导数等处理方法,对研究区的地球物理数据进行处理,并对研究区的地球物理场进行了分析,划分出不同的区块.结合研究区的磁力与地质资料,利用各种成图、成像技术,形成一系列分析图件.在此基础上对华南与扬子块体之间的边界结合带进行了追踪.研究结果认为:该结合带的位置有可能比传统认识中自长江口至大黑山群岛的位置更向南一些,在杭州湾-长崎、对马海峡一线,并呈现向北略微凸出的弓形.边界结合带在深度上属于深大断裂带,一直可以追索到上地幔的顶部.与中朝与扬子块体之间的边界结合带相比较,本条结合带的踪迹不是十分清晰.表明加里东运动之后,该结合带的运动明显减弱. 相似文献
68.
69.
禾青井动水位对断层蠕动与慢地震过程的响应初析 总被引:3,自引:1,他引:3
以湖南禾青井深井水位观测的异常图象为例进行定性分析,发现动水位观测有可能直接反映出断层的滑动或断层的慢地震过程,前者可能为地下水物理参量的观测与研究提供亲折思路,后者则可能对震源物理学的发展和地震预报水平的提高具有特殊的意义。 相似文献
70.