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The Fusion Bonded Joint: A New Way of Joining HDPE Lined Pipes for Reeling and Fatigue Sensitive Applications

机译:熔接接头:连接卷材和疲劳敏感应用的HDPE衬管的新方法

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Corrosion protection is a key aspect of all subsea developments. Indeed the complexity of subsea pipe maintenance and repair makes it necessary to provide solutions suitable for the full life time of the field. Though sensitive applications such as production lines transporting corrosive compounds, CO_2 and H_2S for instance, immediately comes to mind when mentioning corrosion, other applications, though seemingly less demanding, also require to be properly addressed from a corrosion perspective. One of these applications is water injection lines. Corrosion in these lines is usually tackled with using a wide range of approaches depending on operation philosophy: topside treatment, corrosion allowance, cladding or plastic liners. A balance usually has to be found between how extensively the injected water is processed topsides and what other corrosion mitigations methods are deployed. This assessment should be carefully conducted the selected approach will impact procurement and installation costs. For instance, increasing the pipe wall thickness to cope with corrosion would results in higher lay vessel installation capabilities as well as longer welding time while relying on clad pipes would negatively impact procurement costs and require more complex NDT methods to be implemented. Plastic liners offer a relevant alternative though their implementation has to be carefully assessed so as to ensure it remains cost competitive. To that extent, the Fusion Bonded Joint has been developed and qualified. This system ensures the continuity of the plastic layer at carbon steel weld locations while limiting the offshore cycle time thus preserving lay rates of the installation vessel. This paper includes an overview the technology itself as well as a summary of the extensive qualification campaign that has been carried out. A global overview of the testing campaign will be provided from the early stages of the development to the full scale testing of the technology in an environment representative of its actual operating conditions. Topics discussed will include: prototyping of the system and associated tools, qualification of the electro-fusion welding process as well as its control and qualification of the carbon steel welding process. The main challenges and outcomes of tests performed will be presented and discussed. A focus on the specificities of the fatigue testing campaign will be presented including fatigue string design as well as fatigue performance of plastic electro-fusion weld. Eventually, the applicability of the FBJ to reeling will be discussed.
机译:腐蚀防护是所有海底开发的关键方面。确实,海底管道维护和维修的复杂性使得有必要提供适合现场整个使用寿命的解决方案。尽管提到腐蚀时会立即想到敏感的应用程序,例如运输腐蚀性化合物,CO_2和H_2S的生产线,但从腐蚀的角度看,其他应用程序(尽管看似要求不高)也需要适当解决。这些应用之一是注水管线。这些线的腐蚀通常根据操作原理使用多种方法来解决:顶面处理,腐蚀余量,覆层或塑料衬里。通常必须在注入的水在顶部的处理范围和采用其他缓解腐蚀的方法之间找到平衡。该评估应谨慎进行,所选方法将影响采购和安装成本。例如,增加管壁厚度以应对腐蚀将导致更高的普通船舶安装能力以及更长的焊接时间,而依靠包层管将对采购成本产生负面影响,并需要实施更复杂的无损检测方法。尽管必须仔细评估其实施方式,以确保塑料衬管在成本上具有竞争力,但塑料衬管提供了一种相关的替代方法。在此程度上,融合键合已得到开发和认证。该系统确保了碳钢焊缝处塑料层的连续性,同时限制了海上作业时间,从而保持了安装船的铺设速度。本文包括技术本身的概述,以及已开展的广泛认证活动的摘要。从开发的早期阶段到代表该技术实际运行状况的环境中的该技术的全面测试,都将提供测试活动的全球概述。讨论的主题将包括:系统和相关工具的原型设计,电熔焊接工艺的鉴定以及碳钢焊接工艺的控制和鉴定。将介绍和讨论所执行测试的主要挑战和结果。将重点介绍疲劳测试活动的特殊性,包括疲劳线设计以及塑料电熔焊的疲劳性能。最终,将讨论FBJ对卷取的适用性。

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