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1.
收集埕岛海域地区近十余年的地质勘察资料,汇总该区地质灾害的类型及其分布情况,发现该区存在着凹坑、冲沟、滑塌、泥流舌、海底穿刺、粗糙海底和埋藏古河道等地质灾害,在海域西北、中部和东南部均有分布,简要探讨形成机理,计算波浪循环荷载在海床中产生的循环应力比,以及根据标贯击数和黏粒含量建立土体的循环阻抗比,然后,计算不同风浪等级下每个钻孔1m深度处土体抗液化安全系数,采用surfer8.0软件绘制安全系数等值线图。发现抗液化性能较好的区域主要分布在海域中部三块地区,随着风浪等级增大,整个区域内液化面积也逐渐扩大,海域东南地区有少量油井和管线分布,区地质灾害发生频率较高,土体抗液化性能较差,工程设施应重视较大风浪期间土体液化对其安全性能的影响。  相似文献   

2.
海底土体在波浪作用下能否产生液化是海岸工程所关心的问题。借鉴地震液化判别使用的砂土液化判别方法,将海底粉质土波致液化的判别分为初判和复判2个阶段。初判以所致海床土体发生破坏的临界循环应力比界限指标来判别,以土质基本特征和波浪条件为参数,对某海域海底液化形成判断;复判以波致海床土体中剪应力与实际土体的动剪切强度比较来判别。结合已有研究成果给出了波致土体液化判别的具体方法。  相似文献   

3.
浙江北部岛屿海域土体稳定性研究   总被引:7,自引:1,他引:7  
本文探讨了浙江北部岛屿区水道岸坡土体滑动的成因机制与滑坡的形态特征,对在波浪与重力共同作用下的边坡稳定性以及波浪底压引起的砂土液化进行了定量分析。研究表明,岛屿区水道中部与岸坡间强烈的冲淤反差,是该海域岸坡土体滑动不稳定因素积累的主要环境条件。目前发现的多数为中到大型的牵引式滑坡,主要由重力作用所致。对于波浪较大、水深较浅海域的粉砂、细砂分布区,浅表砂层存在着发生液化的可能性。  相似文献   

4.
波浪作用下黄河口粉土液化与振荡层形成试验研究   总被引:1,自引:0,他引:1  
通过室内水槽试验,观察波浪作用下土体产生的现象,分析了土体内孔隙水压力的变化及波浪作用后土体粒度组成变化特征,研究了波浪荷载作用下黄河口粉土液化和"振荡层"的形成过程。试验及讨论结果表明:在波浪作用下,上层粉土体大部分时间处于液化状态;由液化土形成的振荡土层与下部土层之间形成"W"形的滑动面,振荡土层的厚度随着波浪作用时间的增加而变小;在波浪的振动和孔隙流体的共同作用下,土颗粒重新排列,细粒物质向上迁移,土体底部土颗粒粒径较为粗大,振荡层范围内土颗粒粒径组成相似,粒径分布范围较小;其内部孔压比随深度和波浪作用次数的增加而较少,土体内部积累的超孔压逐渐消散,海床土体逐渐趋于稳定。  相似文献   

5.
波浪引起的海底土体内部孔压累积是导致液化发生的主要原因,研究波浪作用下土体内部孔压响应过程对于明确液化机理、预测液化发生具有重要作用。在黄河口使用自行研发的孔压监测设备对海底粉土孔隙水压力进行了有效监测。监测结果显示,海底粉土的孔压变化主要受波浪影响且存在一定的影响范围,超出该范围则波浪对海底粉土的孔压无影响。同时,基于监测过程内的孔压变化对海底粉土进行了液化评判,并对波浪作用效果和液化影响因素进行了探讨。波浪对海底粉土内部孔压影响效果主要有3种:(1)有孔压振荡但不发生累积;(2)有孔压振荡且发生累积;(3)无孔压振荡且不发生累积。  相似文献   

6.
调查发现在黄河和密西西比河水下三角洲的塌陷凹坑地貌中存在有块体,有研究表明此塌陷凹坑由波浪作用下海底土体的液化形成。液化土体中存在的块体,在运动中会对海底结构物产生强烈的冲击作用,并导致液化后的海底工程地质性质不均匀。海底液化的土体中块体存在及其原因尚未有研究解释。本文以粉质土铺设底床,进行了2次底床固结时间不同的波致液化的水槽试验。通过测试底床的贯入阻力和分析玻璃珠在液化土体中的沉降分布状态,认为土体固结时间长,形成结构性块体,是液化土体中存在块体的原因。  相似文献   

7.
海底管道-土体-水体相互作用对土体和管道的稳定性具有重要影响,但波浪作用下海底管道对其周围土体性质的影响仍有待深入研究。通过一系列室内波浪水槽试验,研究了波浪荷载和管道振动作用下海床土体内部的超孔隙水压力响应。实验结果表明,管道的铺设会增大海底土体超孔隙水压力累积程度,当管道发生振动时,海床土体超孔隙水压力累积程度进一步增大,从而增加了土体液化势。此外,波高增加也会导致海床土体的超孔隙水压力累积程度增大。本文研究成果对管道-土体相互作用研究和海底管道维护具有指导意义。  相似文献   

8.
2003年11月,黄河水下三角洲2条海底电缆断裂,推测与该区域冲蚀沟较为发育有关。通过多波束测深、浅地层剖面探测、侧扫声呐调查等物探调查方法对埕岛海区开展地质调查,以揭示黄河三角洲地区海底滑坡诱发条件。研究发现:埕岛海区海底存在多条冲蚀沟,软弱土层较为发育,冲蚀沟地层扰动较为明显;通过波浪海流对海底土体的影响分析,判断不同水深和不同土体在浪潮流作用下海底冲蚀沟的发育程度,得出海底滑坡的诱发条件,结合人类活动和海底自然坡度等因素的影响,分析研究区仍然具有发生海底滑坡的可能性。  相似文献   

9.
海床不稳定性的现象很多都是海底液化引起的。根据之前的研究,粉土在液化之后有效应力会依然存在,关于波浪作用下海床液化之后有效应力变化的研究很少。采用波浪水槽实验,在未液化和液化2种情况下,分别施加不同波高的波浪,对底床各层位土体孔隙水压力进行采集,并对比研究。实验结果表明,液化后有效应力的相对值相对于液化前有很明显的减小,并且在深度上表现出显著的差异性,这种差异性随着波高的增大而减小。当相同深度处同一种波高作用一定时间时,有效应力会出现极大值,然后有效应力会减小。  相似文献   

10.
黄河水下三角洲的地质勘察揭示了海底浅表地层发生的各种灾害地质现象。本文以风暴浪导致海底土体液化观点,结合土体动力三轴试验、波浪水槽试验,对黄河水下三角洲浅表地层土体的液化发生条件、形成模式、液化土体运动以及地层发生的重新层化问题进行了分析,指出黄河水下三角洲的灾害地质由于风暴浪导致海底粉质土液化运动而形成,液化后土体运动形式与波浪运动一致,液化土体运动造成的土颗粒分异而使地层重新层化,并初步指出了风暴浪导致海底土体液化在地学、环境、工程等方面的研究问题。  相似文献   

11.
波浪作用下粉质土海床的液化是影响海上平台、海底管线等海洋构筑物安全的灾害之一。在进行构筑物设计中应考虑海床液化的深度问题,而液化土体对下部海床的界面波压力是计算海床孔隙水压力增长以及液化深度的重要参量。本文基于波致粉土海床自上而下的渐进液化模式,利用双层流体波动理论,推导了考虑海床土体黏性的海床界面波压力表达式,并与不考虑黏性时的界面波压力进行了比较分析。结果表明,计算液化后土体界面波压力时,是否考虑液化土体的黏性对结果影响较大,进而可能影响粉质土海床液化深度的确定。  相似文献   

12.
胜利油田浅海区域海底土层的液化判别方法分析   总被引:2,自引:0,他引:2  
针对胜利油田海上石油勘探开发区(埕岛油田)的海底饱和粉土(砂土)液化判别问题,结合工程研究实例,对土层液化判别的各种方法进行对比分析,指出了当前各种方法的局限性和不足,为海底土层的液化判别分析提供了新思路。  相似文献   

13.
波浪作用下单桩基础周围海床液化机制研究   总被引:1,自引:1,他引:0  
建立波浪作用下单桩周围三维海床动力响应模型,考虑自重影响下的海床长时间固结过程。采用已有物理模型试验数据对模型进行验证,证实其具有较好的适用性。模拟波浪作用下单桩周围三维海床液化区域,通过定量分析超孔隙水压力和土体初始有效应力的变化,讨论单桩插入深度对海床液化的影响机制。研究表明,单桩插入深度发生变化时,土体初始有效应力对海床液化的影响要大于超孔隙水压力,且影响程度随着插入深度的增加而逐渐增大。  相似文献   

14.
Wave-induced seabed instability, either momentary liquefaction or shear failure, is an important topic in ocean and coastal engineering. Many factors, such as seabed properties and wave parameters, affect the seabed instability. A non-dimensional parameter is proposed in this paper to evaluate the occurrence of momentary liquefaction. This parameter includes the properties of the soil and the wave. The determination of the wave-induced liquefaction depth is also suggested based on this non-dimensional parameter. As an example, a two-dimensional seabed with finite thickness is numerically treated with the EFGM meshless method developed early for wave-induced seabed responses. Parametric study is carried out to investigate the effect of wavelength, compressibility of pore fluid, permeability and stiffness of porous media, and variable stiffness with depth on the seabed response with three criteria for liquefaction. It is found that this non-dimensional parameter is a good index for identifying the momentary liquefaction qualitatively, and the criterion of liquefaction with seepage force can be used to predict the deepest liquefaction depth.  相似文献   

15.
波浪会对海床产生反复的作用力,由此引起的土体颗粒间孔隙水压力变化是造成土体液化的主要原因。使用自行研发的孔压监测设备,对黄河口埕岛海域易液化区海底孔压进行了长时间、高精度的观测,并对孔隙水压力、波高以及潮位间的关系进行分析。监测结果显示,本次监测条件下波浪最大作用深度介于0.5~1.5 m之间,超过该作用深度后孔压无明显变化。土体内部孔隙水压力的变化主要由潮位和波高决定,潮位的作用可使孔压缓慢平滑的变化且对超孔压无影响;波高的作用可使孔压快速、剧烈地振荡并导致超孔压的出现。  相似文献   

16.
Berms deployed at the toe of conventional rubble mound breakwaters can be very effective in improving the stability of the armor layer. Indeed, their design is commonly tackled by paying attention to armor elements dimensioning. Past research studies showed how submerged berms can increase the stability of the armor layer if compared to straight sloped conventional breakwaters without a berm. To fill the gap of knowledge related to the interaction between breakwaters with submerged berm, waves and soil, this research aims to evaluate how submerged berms configuration influences the seabed soil response and momentary liquefaction occurrences around and beneath breakwaters foundation, under dynamic wave loading. The effects of submerged berms on the incident waves transformation have been evaluated by means of a phase resolving numerical model for simulating non-hydrostatic, free-surface, rotational flows. The soil response to wave-induced seabed pressures has been evaluated by using an ad-hoc anisotropic poro-elastic soil solver. Once the evaluation of the seabed consolidation state due to the presence of the breakwater has been performed, the dynamic interaction among water waves, soil and structure has been analyzed by using a one-way coupling boundary condition. A parametric study has been carried out by varying the berm configuration (i.e. its height and its length), keeping constant the offshore regular wave condition, the berm and armor layer porosity values, the water depth and the elastic properties of the soil. Results indicate that the presence of submerged berms tends to mitigate the liquefaction probability if compared to straight sloped conventional breakwater without a berm. In addition, it appears that the momentary liquefaction phenomena are more influenced by changing the berm length rather than the berm height.  相似文献   

17.
Wave-induced liquefaction in a porous seabed around submarine pipeline may cause catastrophic consequences such as large horizontal displacements of pipelines on the seabed, sinking or floatation of buried pipelines. Most previous studies in relation to the wave and seabed interactions with embedded pipeline dealt with the wave-induced instaneous seabed response and possible resulting momentary liquefaction (where the soil is liquefied instantaneously during the passage of a wave trough), using theory of poro-elasticity. Studies for the interactions between a buried pipeline and a soil undergoing build-up of pore pressure and residual liquefaction have been comparatively rare. In this paper, this complicated process was investigated by using a new developed integrated numerical model with RANS (Reynolds averaged Navier–Stokes) equations used for governing the incompressible flow in the wave field and Biot consolidation equations used for linking the solid–pore fluid interactions in a porous seabed with embedded pipeline. Regarding the wave-induced residual soil response, a two-dimensional poro-elastoplastic solution with the new definition of the source term was developed, where the pre-consolidation analysis of seabed foundation under gravitational forces including the body forces of a pipeline was incorporated. The proposed numerical model was verified with laboratory experiment to demonstrate its accuracy and effectiveness. The numerical results indicate that residual liquefaction is more likely to occur in the vicinity of the pipeline compared to that in the far-field. The inclusion of body forces of a pipeline in the pre-consolidation analysis of seabed foundation significantly affects the potential for residual liquefaction in the vicinity of the pipeline, especially for a shallow-embedded case. Parametric studies reveal that the gradients of maximum liquefaction depth with various wave and soil characteristics become steeper as pipeline burial depth decreases.  相似文献   

18.
The evaluation of seabed response under wave loading is important for prediction of stability of foundations of offshore structures. In this study, a stochastic finite element model which integrates the Karhunen-Loève expansion random field simulation and finite element modeling of wave-induced seabed response is established. The wave-induced oscillatory response in a spatially random heterogeneous porous seabed considering cross-correlated multiple soil properties is investigated. The effects of multiple spatial random soil properties, correlation length and the trend function (the relation of the mean value versus depth) on oscillatory pore water pressure and momentary liquefaction are discussed. The stochastic analyses show that the uncertainty bounds of oscillatory pore water pressure are wider for the case with multiple spatially random soil properties compared with those with the single random soil property. The mean pore water pressure of the stochastic analysis is greater than the one obtained by the deterministic analysis. Therefore, the average momentary liquefaction zone in the stochastic analysis is shallower than the deterministic one. The median of momentary liquefaction depth generally decreases with the increase of vertical correlation length. When the slope of the trend function increases, the uncertainty of pore water pressure is greatly reduced at deeper depth of the seabed. Without considering the trend of soil properties, the wave-induced momentary liquefaction potential may be underestimated.  相似文献   

19.
To obtain a better understanding of the oscillatory soil liquefaction around an offshore pipeline, a three-dimensional integrated model for the wave–seabed–pipeline interaction (WSPI) is proposed by combining the Reynolds-Averaged Navier–Stokes equations for flow simulations and the dynamic Biot’s equation (“u-p” approximation) for the poro-elastic seabed model. Compared with previous investigations, the wave–current interaction is included in the present WSPI system. At a given time step, the wave pressure extracted from the flow model is applied on the seabed surface to determine the corresponding oscillatory seabed response around an offshore pipeline. The integrated numerical model is first validated using previous laboratory experiments. Then, a parametric study is conducted to examine the effects of flow obliquity and pipeline burial depth on the soil response around an offshore pipeline. Numerical results indicate that the soil under the pipeline is more susceptible to liquefaction at a reduced flow obliquity and pipeline burial depth. Moreover, the liquefaction depth in the case where the wave travels along the current can increase by 10%–30% compared to that in the case where the wave travels against the current, when the magnitude of the current velocity is 1 m/s.  相似文献   

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