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Investigation of Elastomer Seal Energization: Implications for Conventional and Expandable Hanger Assembly

机译:弹性体密封通电的调查:传统和可扩展吊架组件的含义

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摘要

Elastomer seals are extensively used in various wellhead and casing/liner hanger equipment as barriers for isolating fluids. Seal assemblies have been identified as one of the major cause of well control incidents. Majority of hangers utilize conventional weight- or mechanical-set slip-and-seal assembly. The objective of this paper is to conduct a detailed investigation of seal energization in conventional and relatively newer expandable type hanger seal assembly. To achieve the objective, the finite element modeling approach was employed. Three dimensional computer models consisting of concentric casings and annular elastomer seal element were constructed. Seal energization process was modelled by manipulating boundary conditions. Conventional seal energization was mimicked by applying rigid support at the bottom of elastomer element and compressing it from the top. Expandable hanger type seal energization was modelled by radially displacing the inner pipe to compress annular seal element. Seal quality was evaluated in terms of contact stress values and profile along the seal-pipe interface. Different amounts of seal energization were simulated. Both types of seal energization processes yielded different contact stress profiles. For the same amount of seal volumetric compression, contact stress profiles were compared. In case of conventional seal energization, contact stress profile decreases from the compression side towards support side. The seal in expandable hanger generates contact stress profile that peaks at the center of contact interface and reduces towards the ends. Convectional seal assembly has more moving parts, making it more prone to failure or under-energization. Finite Element Models were validated using analytical equations, and a good match was obtained. The majority of research related to elastomer seal is focused on material properties evaluation. Limited information is available in public domain on functional design and assessment of seal assembly. This paper adds novel information by providing detailed assessment of advantages and limitations of two different seal energization process. This opens doors for further research in functional failure modes in seal assembly.
机译:弹性体密封件被广泛地用于各种井口和套管/衬里衣架设备,作为隔离液体的障碍。密封组件已被识别为良好控制事件的主要原因之一。大多数衣架利用常规的重量或机械设定的滑动和密封组件。本文的目的是在传统和相对更新的可扩张型吊架密封组件中进行详细研究密封通电。为实现目标,采用了有限元建模方法。构建由同心壳体和环形弹性体密封元件组成的三维计算机模型。通过操纵边界条件建模密封通电过程。通过在弹性体元件的底部施加刚性支撑并将其从顶部压缩来模仿传统的密封通电。通过径向移位内管以压缩环形密封元件,建模可扩展衣架型密封通电。根据密封管接口的接触应力值和轮廓评估密封质量。模拟了不同的密封通电量。两种类型的密封通电过程产生不同的接触应力分布。对于相同量的密封体积压缩,比较接触应力型材。在传统密封通电的情况下,接触应力曲线从压缩侧朝向支撑侧减小。可膨胀吊架中的密封件在接触界面的中心产生峰值并朝向端部减少。对流密封组件具有更多的移动部件,使其更容易出现故障或低通电。使用分析方程验证有限元模型,并获得良好的匹配。与弹性体密封相关的大多数研究集中在材料特性评估上。有限的信息在公共领域提供关于密封组件的功能设计和评估。本文通过提供对两种不同密封通电过程的优缺点的详细评估来增加新颖的信息。这为密封组件中的功能故障模式进行了进一步研究的门。

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