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Performance based design of Tension Leg Platforms under seismic loading and seabed liquefaction: A feasibility study

机译:地震载荷和海底液化下的张力腿平台性能设计:可行性研究

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The response of pile supported Tension Leg Platforms during seismic loading and seabed liquefaction is analyzed numerically, taking consistently into account the pile-tendon-platform interaction. The emphasis is on the system response when liquefaction in the subsoil is extensive, leading to degradation of the pseudo-static factors of safety against pullout failure of the pile well below unity. It is shown that the pile resistance to pullout failure decreases drastically during shaking due to subsoil liquefaction, but fully recovers during the following excess pore pressure dissipation phase and may even exceed the initial (pre-shaking) resistance value. Pile head displacements develop steadily during shaking and the following dissipation phase, but only during the finite time period when the static pullout factor of safety of the pile remains less than unity. Thus, final pile head displacements may increase considerably when this time period is elongated. Due to the generally high tensional stiffness of the tendons, relative to the buoyancy stiffness of the platform, the pile head pullout is mostly transmitted to the platform, with only a small percentage corresponding to reduction of tendon elongation. For the cases examined herein, the potential loss of platform buoyancy and tendon pretension may prove detrimental but is unlikely to threaten the safety and functionality of the platform. On the other hand, initially minor tilting of the platform (e.g. due to long period lateral loading and differential tendon pretension) may be magnified during seismic loading above allowable limits.
机译:数值分析了桩支撑张力腿平台在地震载荷和海底液化期间的响应,始终考虑到桩腱平台相互作用。当底层的液化广泛时,重点是系统响应,导致伪静态因素的伪静态因素抵抗堆积厚度低于统一。结果表明,由于诸如诸如诸如诸如诸如诸如底体液化期间摇动期间造成桩的抗性失效减小,但在以下过量的孔隙压力耗散相期间完全恢复,并且甚至可能超过初始(预摇动)电阻值。桩头位移在摇动期间和以下耗散阶段稳定地发展,但仅在有限时间段内,当桩的静态拉伸因子仍然不到统一时。因此,当该时间段伸长时,最终桩头位移可能会显着增加。由于肌腱的一般张力刚度,相对于平台的浮力刚度,桩头拉出主要被传递到平台,只有小百分比对应于肌腱伸长的减少。对于本文检查的病例,平台浮力和肌腱预感的潜在损失可能会有害但不太可能威胁平台的安全性和功能。另一方面,初始倾斜平台(例如,由于长时间的横向负载和差动肌腱预宽度)可以在允许的宽度限制的地震载荷期间放大。

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