首页> 外文会议>International conference on ocean, offshore and arctic engineering;OMAE2011 >DESIGN OPTIMIZATION OF TOP-TENSIONED RISERS FOR DEEPWATER HPHT APPLICATIONS (PART II)
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DESIGN OPTIMIZATION OF TOP-TENSIONED RISERS FOR DEEPWATER HPHT APPLICATIONS (PART II)

机译:深度HPHT应用的顶部张紧器设计优化(第二部​​分)

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Dry-tree solutions with top-tensioned risers (TTRs) have been successfully used with floating production systems (FPS), such as Spars and TLPs, in a wide range of deepwater applications. Both single-casing and dual-casing top-tensioned risers are field-proven in existing field developments. The top-tensioned risers can bring technical advantages and operational cost benefits. Moreover, recent oil and gas developments that have high pressure and high temperature (HPHT) in combination with severe environmental loads lead to more design challenges for steel risers in deepwater, pushing the design limits of conventional steel pipes in deepwater risers. High-strength steel pipes are therefore considered for both technical and economic reasons. The objective of the study that forms the basis for this paper is to provide top-tensioned riser system configurations that meet challenges of the extremely high operational pressure and environmental loads in deep and ultra-deep waters.Part I of the paper was published in OMAE 2010 [1], addressing strategies for top-tensioned riser sizing and weight management for HPHT applications in deep and ultra-deep waters, and also design considerations for TTR specialty joints. Part II here present spar top-tensioned risers and their support tensioning systems. The paper illustrates the HPHT riser global configuration on spar and the tensioning system performance optimization, as well as coupled motion compensation with the spar platform. The impact of riser loads on spar global performance is also discussed.
机译:具有上拉式立管(TTR)的干树解决方案已成功用于浮式生产系统(FPS),例如稀疏和TLP,广泛用于深水应用中。单套管和双套管顶部张紧的立管都已在现有现场开发中进行了现场验证。张紧度最高的立管可以带来技术优势和运营成本优势。而且,最近具有高压和高温(HPHT)的石油和天然气开发与严峻的环境负荷相结合,给深水钢制立管带来了更多的设计挑战,从而推高了深水立管中传统钢管的设计极限。因此出于技术和经济原因考虑使用高强度钢管。形成本文基础的研究目的是提供顶部张紧式立管系统配置,以应对深水和超深水域中极高的工作压力和环境负荷的挑战。 2010 [1],探讨了用于深水和超深水域HPHT应用的上拉式立管尺寸和重量管理的策略,以及TTR专用接头的设计考虑因素。第二部分介绍了翼梁顶部张紧的竖板及其支撑张紧系统。本文说明了在梁上的HPHT立管全局配置以及张紧系统性能的优化,以及与梁架平台耦合的运动补偿。还讨论了立管载荷对翼梁整体性能的影响。

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