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首页> 外文期刊>Journal of Failure Analysis and Prevention >Evaluation of Failure Capacity of Offshore Riser Protectors Under Vessel Impact
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Evaluation of Failure Capacity of Offshore Riser Protectors Under Vessel Impact

机译:船舶冲击下海上立管保护器失效能力的评价

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Conventional riser protectors, also known as riser-guards, are installed on fixed offshore platforms to protect risers from vessel impact. These space frame structures made of hollow mild steel tubular sections are mainly designed using the approach of boat fenders which may result in over- or under-protection provided to risers. Lack of in-depth study on the dynamic behavior and capacity of conventional riser-guards is considered to be the primary challenge for creative and efficient design of conventional riser protectors. This paper presents a detailed numerical investigation on the dynamic response, damage and failure mechanics of conventional steel riser-guards during accidental vessel collision using nonlinear finite element analysis. Collision forces equivalent to vessel collision with riser-guards for different spans were estimated to provide information for load-based design. Variation in damage patterns for broadside and bow impacts is presented for riser protectors with different spans. The actual capacity of a typical riser-guard in terms of maximum impact energy sustainable prior to failure was also determined from dynamic pushover analysis. The structural response and damage parameters presented in this study can be used for better understanding of damage mechanism and failure capacity of riser protectors which can act as a baseline for further design optimization, as well as the development of other alternative riser protection systems.
机译:传统的立管保护装置,也称为立管防护装置,安装在固定的海上平台上,以保护立管免受船舶冲击。这些由空心低碳钢管节段制成的空间框架结构主要采用船舶挡泥板的方法进行设计,这可能会导致立管受到过度或不足的保护。缺乏对传统立管保护装置动态行为和容量的深入研究被认为是创新和高效设计传统立管保护装置的主要挑战。本文采用非线性有限元分析方法,对船舶碰撞过程中常规钢护板的动态响应、损伤和失效机理进行了详细的数值研究。估算了相当于船舶与不同跨度立管防护装置碰撞的碰撞力,为基于荷载的设计提供了信息。针对不同跨度的立管保护器,介绍了侧面和船首碰撞的损伤模式变化。根据动态推覆分析,还确定了典型立管防护装置在失效前可持续的最大冲击能量方面的实际容量。本研究中给出的结构响应和损伤参数可用于更好地理解立管保护器的损伤机理和失效能力,从而作为进一步优化设计的基准,以及开发其他替代立管保护系统。

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