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MULTIDISCIPLINARY OPTIMIZATION-ENABLED DESIGN AUTOMATION AND OPTIMIZATION FOR BLOWOUT PREVENTER PIPE RAMS

机译:支持多学科优化的设计自动化和井喷防护管RAM的优化

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A blowout preventer (BOP) is a large valve that encases an oil well on the surface. The valve may be closed while drilling if overpressure from a reservoir causes formation fluids such as oil and natural gas to back up within the wellbore and endanger the rig. A pipe ram is one of the critical components in the BOP system, which is designed to seal around a drill pipe, restricting the flow in the annulus between the outside of the drill pipe and the wellbore. The pipe ram design family, which contains hundreds of pipe ram designs, intends to cover different configurations to suit a variety of dill pipe sizes. To assure their structural integrity under service loads, these pipe rams need to be designed to meet the stress requirements per the American Petroleum Institute (API) Specification 16A and ASME (American Society of Mechanical Engineers) Boiler and Pressure Vessel Code Section VIII, Division 2. With a conventional manual design workflow, it would take a significant amount of time and effort to complete all the designs for the product family with code compliance. Therefore, a scalable solution is highly desirable for delivery of customer-needed ram blocks with much shorter lead time. MDO (Multi-Disciplinary Optimization) involves multi-code integration, CAE (Computer-Aide d Engineering) workflow automation, design space exploration, and optimization. MDO-enabled, automated design optimization is becoming increasingly popular in both scientific and engineering communities. In this paper, a methodology for integration of CAD (Computer Aided Design), FEA (Finite Element Analysis), cost, and optimization packages to enable FEA automation and design optimization is presented. A BOP pipe ram is adopted as the use case. The ram block geometry was parameterized before being imported into an FEA package. The FEA workflow was automated such that once a set of geometric parameters are given, the preprocessing, solving, and postprocessing steps can be automatically completed. As part of the FEA postprocessing, stress linearization analysis per the API and ASME BPl'C codes has also been automated, which had never been done in the past. A manufacturing cost analysis package can also be used to consume the parameterized geometry for automatic manufacturability assessment and cost predictions. The stress analysis and cost analysis workflows are conducted separately but also orchestrated by an MDO package. Reports that contain the analysis results are sequentially generated for various design permutations. The MDO-enabled automated design and cost analysis approach could substantially enhance efficiency and consistency in performing FEA and cost studies and producing analysis reports. It is also the backbone for automated design optimization, which could significantly improve the product performance and reliability and, meanwhile, minimize the development and product cost.
机译:防喷器(BOP)是一个大的阀门,将油井放在表面上。如果从储存器过度压抑导致诸如石油和天然气的形成流体,则可以关闭阀门,同时钻孔,使得诸如油和天然气的形成流体,以备份井筒并止痛。管RAM是BOP系统中的关键部件之一,其设计用于在钻杆周围密封,限制钻管和井筒外部之间的环中的流动。钢管式RAM设计家庭,其中包含数百个管RAM设计,打算覆盖不同的配置,以适应各种达尔管道尺寸。为了确保其在服务负荷下的结构完整性,这些管道RAM需要旨在满足美国石油研究所(API)规范16A和ASME(美国机械工程师协会)锅炉和压力容器代码部分VIII,第2款的压力要求。通过传统的手动设计工作流程,需要大量的时间和精力,为产品系列提供代码合规性的所有设计。因此,可以非常希望可扩展的解决方案,以便在需要更短的时间内提供客户所需的RAM块。 MDO(多学科优化)涉及多码集成,CAE(计算机 - AIDE D Engineering)工作流程自动化,设计空间探索和优化。启用了MDO,自动化设计优化在科学和工程社区中越来越受欢迎。本文介绍了CAD(计算机辅助设计),FEA(有限元分析),成本和优化包的方法,以实现FEA自动化和设计优化的方法。采用BOP管RAM作为用例。在导入到FEA包之前,RAM块几何体是参数化的。自动化FEA工作流程,使得一组几何参数被给出,可以自动完成预处理,解决和后处理步骤。作为FEA的部分后处理,每个API和ASME BPL'C代码的应力线性化分析也已经自动化,这在过去从未完成过。制造成本分析包也可用于消耗参数化几何体以进行自动制造性评估和成本预测。压力分析和成本分析工作流程是单独进行的,但也由MDO包进行策划。依次为各种设计排列而依次生成包含分析结果的报告。支持MDO的自动化设计和成本分析方法可以大大提高进行FEA和成本研究的效率和一致性,并产生分析报告。它也是自动化设计优化的骨干,这可以显着提高产品性能和可靠性,同时最大限度地降低开发和产品成本。

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