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1.
邢静忠  柳春图 《海洋工程》2007,25(4):21-26,38
针对裸露悬跨海底管道,考虑线弹性海床刚度,利用梁的小挠度理论,研究管道在自重作用下的变形和内力,推导给出了未脱离海床的管道段和悬跨管道段的变形和内力公式。在跨度较大的悬跨情况下,悬跨管道段较大的向下弯曲变形可能引起海床上管道脱离海床而翘起。建立管道翘起的判定准则,对于翘起情况推导相应的计算公式,通过算例给出翘起情况下管道的变形和内力。通过计算分析发现:工程上多数悬跨是翘起情况,没有翘起的计算公式只适应于跨度较小的悬跨管道。同时翘起情况下不同海床刚度对悬跨管道无量纲内力影响不大。  相似文献   

2.
海底管道是天然气水合物大规模开采和集输的关键装备。天然气水合物的开采过程会扰动沉积层的结构,改变沉积层的强度和力学特性,诱发海床发生不均匀沉降,并对水合物开采区内海底管道的力学特性产生影响,如引起管道发生大变形、悬跨、屈曲、断裂等。基于ABAQUS有限元软件,建立天然气水合物开采区内“海床-管道”耦合作用模型,模拟了天然气水合物开采过程中海床沉降变形及其对管道应力、应变、弯矩、悬跨等力学行为的影响。研究结果表明,在天然气水合物开采过程中,海床的不均匀沉降将引起管道发生显著位移并发生弯曲,管道的应力、应变随着变形的增大而增大。当海床沉降量达到某一程度时,管道将脱离海床,产生悬跨,并引发涡激振动风险。  相似文献   

3.
海底埋设高温管道隆起屈曲数值模拟研究   总被引:1,自引:1,他引:0  
高温是引发海底管道整体屈曲失效的主要因素,而海床上存在的局部隆起使得高温埋设管道更加容易发生隆起屈曲。这里重点研究海底埋设高温管道发生隆起屈曲的临界温度载荷及其影响因素,提出了一种简化的数值模拟分析模型,同已有的相关实验结果比较表明,本方法可以较好地近似计算高温管道的隆起屈曲。基于本方法开展的参数分析,得到了管道覆土高度、混凝土配重层厚度、海床不平整对海底高温管道发生隆起屈曲的影响趋势。  相似文献   

4.
为了探索不同径厚比海底管道的压溃屈曲特性,本文分别采用挪威船级社(Det Norske Veritas,DNV)规范、有限元模拟和深海压力舱模型试验,研究不同径厚比海底管道承载外部水压的能力,并就DNV规范压溃屈曲计算公式对不同径厚比管道的适用性进行了讨论,优化了小径厚比海底管道压溃屈曲的设计方法。研究表明:小径厚比管道的压溃屈曲临界压力对管道径厚比的变化更敏感;DNV规范计算小径厚比管道的压溃屈曲临界压力偏小,在进行深海管道的压溃屈曲设计时,建议采用模型试验结合有限元模拟的方法,计算管道实际可提供的压溃屈曲承载力。  相似文献   

5.
海底管道是海洋油气工程的重要组成部分,在高温高压运行状态下易发生整体屈曲,开裂破坏后造成油气泄露。海床土体对管道的侧向抗力是影响其屈曲的关键因素,而管道侧向抗力发挥与初始嵌入深度密切相关。构建了海底管道整体屈曲数值模型,对初始嵌入深度等因素进行不确定性分析,揭示了初始嵌入深度变异性对管道屈曲的影响机制。研究发现:当初始嵌入深度越大、初始缺陷越小时,管道临界屈曲轴力越大,屈曲位移越小;管道嵌入深度变异性的存在会导致管道更易屈曲,并诱发不对称的三阶屈曲或更高阶屈曲;管道嵌入深度在空间上的变异性对屈曲发生概率P(p<pdet)存在影响,而相关性的改变对管道屈曲影响较小;管道存在屈曲模式转变界限升温,当屈曲升温大于界限升温时,管道发生跳跃型屈曲,反之则发生分岔型屈曲。  相似文献   

6.
由于钢悬链线立管具有非线性特性,而海床土体又是软黏土,因此钢悬链线立管触地区域的管土的相互作用十分复杂。根据国外相关试验数据,采用ANSYS中的非线性弹簧单元模拟海床土体,考虑海床土体刚度退化和土吸力对管道的作用,建立海底管道拟静力有限元计算模型,计算分析管道与海床土体的相互作用,并探讨管道触地点区域关键点在顶端升沉运动下弯矩的变化规律,为进一步研究SCR与海床的动力相互作用提供参考。  相似文献   

7.
为研究坠物对海底悬空管道的撞击损伤规律,基于非线性有限元分析软件ANSYS/LS-DYNA建立考虑管土相互作用的坠物撞击悬空管道数值模型。经过数值模拟,探究了撞击能量、土体性质和悬空长度等对海底管道受坠物撞击后凹陷损伤的影响。研究表明,撞击能量是影响海底悬空管道损伤程度的主要因素,在同样的撞击能量下,海底悬空管道的悬空段长度对管道的凹陷损伤影响不大,但管道弹性变形以及海床的土体变形会有差异,虽然海床土体变形会吸收大量的撞击能量,但改变土体性质同样对管道损伤结果影响不大。研究结果可以为海底管道的工程设计提供一定的参考。  相似文献   

8.
近壁圆柱绕流问题在海底悬跨管道的研究中具有重要的意义。在绕流阻力、升力以及海底土壤的耦合作用下,海底管道所发生的移位、悬跨等现象对于海底管道的安全运行构成了很大的威胁。正确预测各种绕流条件下管流之间的作用力是保证油气管道安全的首要任务。海底管道在极端海洋环境条件下的管、流相互作用为高雷诺数绕流问题,处于高雷诺数下的绕流模拟比处于低雷诺数下的绕流模拟要复杂很多,它需要更精细的网格以及合适的湍流模型。此文对处于悬跨状态下的海底管道进行数值研究,给出不同间隙比下海流绕流海底管道的流场结构形态,分析了间隙比对绕流阻力和绕流升力的影响,为进一步研究海底悬跨管道的受力和变形提供载荷边界数据。  相似文献   

9.
海底管道悬跨管段在波流联合作用下非常容易发生疲劳破坏.文中通过多项Galerkin方法对海底管跨的涡激振动方程进行求解,获得管跨系统的时域非线性动力响应,分析疲劳裂纹扩展模型MeEvily模型中各个参数对管道疲劳寿命的影响,在此基础上提出管道疲劳寿命预报方法.  相似文献   

10.
基于挪威海洋技术研究所 (MARINTEK) 和挪威科技大学 (NTNU) 共同研发的VIVANA模型,编制了一个基于频率响应法的海底悬跨管道涡激振动预报程序,其计算结果与VIVANA符合得较好.应用所编制的程序分析在不同流速条件下海底悬跨管道的涡激振动响应及响应频率的特征,对不同悬跨长度、不同截面特征、具有简单边界的海底悬跨管道涡激振动响应和响应频率进行了计算,给出位移和应力沿管跨的分布及响应频率的变化规律.  相似文献   

11.
总结了国外海底犁式开沟机技术进展,海底犁式开沟机可分为"V"型开沟犁和矩形开沟犁两种,"V"型开沟犁开沟截面面积较大,沟槽截面形状为V型,适合与海底管道埋设,其回填方式有专门回填犁回填和回填模块回填两种。矩形开沟犁开沟面积较小,截面狭长且为矩形,多适用于海底电缆埋设。其土壤排出方式有垂向排土和侧向挤压排土两种,沟槽靠重力自动回填。犁式开沟机开沟速度快,造价相对较低,目前正在朝大型化、模块化发展。开沟犁的关键技术包括犁式开沟机的开沟阻力减小方法以及在崎岖海底地形上开沟时的开沟深度稳定性等,这也是目前研究的重点。对国外犁式开沟机技术的总结,对开沟犁设计和海上施工作业有一定指导意义。  相似文献   

12.
Offshore pipelines are usually buried to avoid damage from fishing activities and to provide thermal insulation. Provided that the buried pipelines are sufficiently confined in the lateral direction by the passive resistance of the trench walls, they may be subject to vertical buckling caused by a rise in temperature. Vertical buckling is usually called upheaval buckling because the heated pipeline is assumed to move upwards conventionally. However, the seabed may be very soft, especially where a pockmark or abyssal ooze appears. Consequently, under thermal compressive force, the pipeline may buckle downward and penetrate into the seabed because the downward soil resistance is small. In this study, we extended an analytical solution for vertical pipeline buckling on a rigid seabed to a soft seabed, and the effects of soil resistance on pipeline stability, buckling mode and amplitude are illustrated and analyzed.  相似文献   

13.
Because of the complex geological conditions of the seabed, submarine pipelines buried beneath the ocean floor become suspended over the seabed under the long-term scour of waves eroding the surrounding sediment. Further, most oil fields were built in offshore areas while the country was developing. This gives the waves seen in shallow water obvious nonlinear features, and the abnormal characteristics of these waves must be considered when calculating their hydrodynamic forces. Particularly under such conditions, these suspended spans of submarine pipelines are prone to damage caused by the action of the external environment load. Such damages and eventual failures may result not only in great property losses but also pollution of the marine environment. The span length of these areas is a key predictive factor in pipeline damages. Therefore, determining the allowable span length for these submarine pipelines will allow future projects to avoid or prevent damage from excessive suspended span lengths. Expressions of the hydrodynamic loads placed on suspended spans of pipeline were developed in this work based on the first-order approximate cnoidal wave theory and Morison equation. The formula for the allowable free span length was derived for the common forms of free spanning submarine pipeline based on the point where maximum bending stresses remain less than the material’s allowable stress. Finally, the allowable free span length of real-world pipelines was calculated for a subsea pipeline project in Bohai Bay. This research shows that, with consideration for the complicated marine environment, existing suspended spans are within allowable length limitations. However, continuing to limit the length of these submarine pipeline spans in the Nanpu oil field will require ongoing attention.  相似文献   

14.
Offshore pipelines operating under high pressure and temperature are subjected to upheaval buckling. Pipeline behaviour in upheaval buckling depends on a number of factors including the shape of pipeline imperfection, installation stresses, loading types, seabed sediment behaviour and the flexural stiffness of the pipe. Current method of predicting upheaval buckling is based on simplified shapes of pipeline imperfection developed for idealized seabed conditions. To account for the effect of internal pressure, the pressure load is represented using an equivalent temperature. However, the applicability of these idealizations on the prediction of upheaval buckling has not been well-investigated. In this paper, the three-dimensional finite element modelling technique is used to investigate the applicability of idealized shapes and their effects on the upheaval buckling of pipeline for a seabed condition at offshore Newfoundland in Canada. The finite element model is then used to conduct a parametric study to investigate the effects of installation stress, loading types, seabed parameters and the flexural stiffness of the pipe. Finally, a design chart is developed to determine the optimum height of seabed features to manage pipeline stability against upheaval buckling under different temperature and pressure loadings.  相似文献   

15.
Owing to the complex environmental conditions, suspension could induce complicated forces on submarine pipelines and even cause vortex-induced vibration, resulting in fatigue damage of pipelines. Through aiming at the 28-inch submarine pipeline in the East China Sea, the pipeline was segmented according to the similarity, considering the factors of pipe assembly, typhoon, current, wave and seabed topography. The effects of span length on natural frequency in each section of submarine pipeline were analyzed by finite element model. The maximum safe span length allowed by each pipeline section was verified by fatigue cumulative damage theory, and the fatigue life of each pipeline section were predicted. The results showed that each order natural frequency of the pipeline decreased with the increase of span length. The calculated results of empirical formulas were much smaller than those of the FEM analysis. The increase of the gap between the suspended pipeline and the seabed was beneficial to enhance the fatigue life of the suspended pipeline.  相似文献   

16.
武行  赵海盛  李昕 《海洋工程》2021,39(3):72-82
在深海环境中,海底管线不仅承受较高外压,还会因为海水及运输介质的常年侵蚀而形成腐蚀缺陷,而腐蚀缺陷往往会导致管道的外压承载力下降。基于壳体稳定性理论,建立了含有非对称局部壁厚减薄管道在外压作用下的屈曲压力理论公式。公式具有广泛的适用性,当内、外局部壁厚减薄深度相等时,可用于计算含有对称局部壁厚减薄管道屈曲压力,而当内部或外部缺陷深度为零时,便可用于计算只含外部或者内部腐蚀缺陷的管道屈曲压力。通过有限元分析验证了该公式的正确性,结果表明公式可以准确预测不同缺陷位置及尺寸时管道的屈曲压力。详细研究了局部壁厚减薄缺陷位置、长度和深度等参数对屈曲压力的影响。研究表明,局部腐蚀对管道的屈曲压力产生重要影响,尤其当腐蚀角度和深度较大时,在腐蚀形成初期就会造成管道的承载力急剧下降,并且管道的屈曲压力与缺陷的径向位置有关,腐蚀缺陷位于管道外侧时的屈曲压力明显大于其位于管道内侧时的屈曲压力。  相似文献   

17.
基于ABAQUS的海底管道静水压溃压力的敏感性分析   总被引:1,自引:0,他引:1  
局部屈曲压溃是海底管道发生稳定性破坏的一种形式,随着管道的刚度相对越来越柔,厚度相对越来越薄,管道发生屈曲压溃的问题也越来越突出。运用ABAQUS有限元分析软件进行管道的非线性屈曲分析,确定不同径厚比、初始椭圆度、轴向拉力和弯矩作用下的管道静水压溃压力,以分析静水压溃压力对这些因素的敏感性。  相似文献   

18.
海底双层管单层连接管道结构受力分析   总被引:1,自引:0,他引:1  
粘性高的海洋石油通常需要通过海底保温管道加温输送.温度变化会引起管道变形,并在管壁内产生较大的温度应力.同时,管道正常运营期间还受到管道内压、外压、管内流体粘滞力和土体摩擦力等环境荷载的作用.复杂的环境可能导致海底管道轴向应力过大发生破坏.为了提高铺管效率,提出了双层管单层连接管道这一特殊管道形式,并从理论上分析温度变化和环境荷载对该管道的影响,计算正常运行时管道不同位置处横截面内最大Von-Mises应力.最后得到了Von-Mises应力沿管道轴线分布情况,发现内管和单层连接管的应力一般比外管大,变径管和内管的焊缝处是Von-Mises应力最大的地方.  相似文献   

19.
腐蚀是管道常见的缺陷形式之一,会极大降低管道的压溃压力,同时深海环境下高静水外压易引发管道压溃失效,威胁管道的安全运行,因此准确预测管道压溃压力显得尤为重要。采用数值模拟方法研究了含腐蚀缺陷的高强钢厚壁管道压溃失效模式,分析了管材、管道径厚比、腐蚀深度、长度和宽度等参数对高强钢厚壁管道压溃压力的影响规律。分析结果表明:管道径厚比愈大,对厚壁管道的承压能力提升愈显著;腐蚀缺陷的存在对管道压溃压力具有减小作用;随着管道材料等级的提升,压溃压力有明显提高。提出了相应的压溃压力预测公式,为厚壁管道完整性评价提供了参考依据。  相似文献   

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