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FULL SCALE THERMAL TESTING OF A NEW FLOWLINE INTERVENTION SYSTEM

机译:新型流水线干预系统的全尺寸热测试

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The Electrically Trace Heated Blanket (ETH-Blanket) is a new offshore intervention/remediation system currently in development by TechnipFMC for the efficient remediation of plugs due to hydrates or wax in subsea production and injection flowlines. The ETH-Blanket consists of a network of heating cables placed underneath an insulation layer which is laid onto the seabed above the plugged flowline. By applying electrical power to the cables, heat is generated by Joule effect which warms up the flowline content until hydrate dissociation or wax plug remediation through softening or complete melting. As part of a Joint Industry Project (JIP) between TechnipFMC, Shell and Total, full-scale thermal testing of an ETH-Blanket prototype was carried out in Artelia facilities (in Grenoble, France). This testing was performed to verify the capability of the ETH-Blanket system to increase the temperature of the fluid inside a pipe sample above a target temperature (hydrate dissociation temperature or wax disappearance temperature) for various conditions. The impact of lateral misalignment of the ETH-blanket on the pipe and of the pipe burial depth were studied. Moreover, the tests were carried out on two pipe samples, with different designs and insulation properties. In parallel, CFD models of the test set-up were built to replicate the thermal behaviour of the ETH-Blanket. The combination of these models with the measured heating efficiency of the prototype allowed characterising the performances of the system in real subsea conditions. This paper presents the description of the full scale thermal testing conditions. Results of the different tests are detailed and the impact of the different parameters on the ETH-Blanket thermal performances are assessed, focusing on natural convection effects, thermal losses and the overall data gathering process.
机译:电伴热毯(ETH-Blanket)是TechnipFMC目前正在开发的新型海上干预/修复系统,用于有效修复海底生产和注入流水线中的水合物或蜡造成的堵塞。 ETH毯由加热电缆网络组成,该加热电缆网络位于绝缘层下方,该绝缘层铺设在堵漏管线上方的海床上。通过向电缆施加电力,焦耳效应会产生热量,从而加热流水线内容物,直到水合物解离或蜡塞通过软化或完全熔化而得到修复。作为TechnipFMC,壳牌和道达尔之间的联合工业项目(JIP)的一部分,在Artelia的工厂(法国格勒诺布尔)对ETH-Blanket原型进行了全面的热测试。进行该测试以验证ETH-Blanket系统在各种条件下能够将管道样品内部流体的温度提高到目标温度(水合物解离温度或蜡消失温度)以上的能力。研究了ETH毯的横向未对准对管道和管道埋藏深度的影响。此外,测试是在两个具有不同设计和绝缘性能的管道样品上进行的。同时,建立了测试设置的CFD模型来复制ETH-Blanket的热行为。这些模型与原型测得的加热效率的结合,可以表征系统在实际海底条件下的性能。本文介绍了满量程热测试条件。详细介绍了不同测试的结果,并评估了不同参数对ETH-Blanket热性能的影响,重点是自然对流效应,热损失和整个数据收集过程。

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