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Validation of Cost-Effective Design Methods Using Hydrostatic Head for High Pressure High Temperature Applications

机译:使用静压头对高压高温应用进行具有成本效益的设计方法的验证

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Validation testing of the subsea equipment designed for HPHT applications using external pressures due to the hydrostatic head can be a challenge. This paper presents the tests performed to validate the design methods proposed in OTC-27891-MS. Use of a seawater hydrostatic head enables 15,000-psi-rated subsea equipment to higher than 15,000-psi applications without the additional costs related to developing new 20,000-psi-rated equipment. The design methods utilize the guidelines in technical report API Technical Report 17TR8 and load cases per API Technical Report 17TR12. Three primary validation tests are presented-one to validate the pressure-containing equipment, one to validate the pressure-controlling equipment, and one to validate the equipment subjected to trapped air voids. To validate the pressure-containing equipment, a 20,000-psi valve block was pressure tested to internal pressure up to 25,000 psi, with application of 5,000-psi external pressure simulating 10,000-ft applications. The valve block was strain gauged at multiple locations including the body and the bolts. The strains predicted using the finite element analysis (FEA) methods are then compared to the strains evaluated from the tests. For the pressure-controlling equipment, a 15,000-psi valve was tested to 17,000-psi upstream pressure and 2,000-psi downstream pressure across the gate of the valve assembly, with 2,000 psi external pressure, for various operational load cases to monitor the effects on performance of the gate valve and the actuator mechanism. The final validation test was performed for stem seals of the gate valve assembly, which are exposed to trapped air voids. These are tested separately to their absolute working pressures higher than 15,000 psi per the API 6A Annex F test regime. The tests for the pressure-containing equipment showed that the actual strains in the valve block and bolts correlated well with the FEA. For the pressure-controlling equipment, various upstream and downstream pressure combinations and functions were tested which showed that the effect is minimal on the actual performance on the gate valve and the actuator and that the pressure-controlling equipment can handle the various expected differential pressure load cases. The stem seal test increased their absolute working pressure rating. These types of tests provide good guidelines on what the typical subsea equipment manufacturers can perform to validate their equipment with similar design considerations. The paper presents the various practical tests that can be performed to validate the verification analysis utilizing the external pressures due to seawater hydrostatic head. Validation is a necessary part of the design process and can be extremely expensive and nonfeasible for subsea equipment. This paper presents a practical approach for validating the design verification analysis for subsea equipment.
机译:由于静水压头的原因,使用外部压力对专为HPHT应用设计的海底设备进行验证测试可能是一个挑战。本文介绍了为验证OTC-27891-MS中提出的设计方法而进行的测试。海水静压头的使用使15,000-psi额定值的海底设备可用于高于15,000-psi的应用场合,而无需开发新的20,000-psi额定值的设备而产生额外费用。设计方法利用技术报告API技术报告17TR8中的准则和每个API技术报告17TR12中的负载情况。提出了三项主要的验证测试:一项用于验证包含压力的设备,一项用于验证压力控制设备,另一项用于验证遭受困气的设备。为了验证包含压力的设备,对20,000 psi的阀块进行了压力测试,测试到内部压力高达25,000 psi,并施加了5,000 psi的外部压力,模拟了10,000英尺的应用。在阀体的多个位置(包括阀体和螺栓)进行应变测量。然后将使用有限元分析(FEA)方法预测的应变与通过测试评估的应变进行比较。对于压力控制设备,测试了一个15,000-psi阀门在整个阀门总成的闸门上游压力为17,000-psi和下游压力为2,000-psi的情况下,并在外部压力为2,000psi的情况下对各种操作负载情况进行了监视,以监控压力对设备的影响。闸阀和执行器机构的性能。对闸阀组件的阀杆密封进行了最终的验证测试,该阀杆密封暴露在被困的空气中。根据API 6A Annex F测试方案,对它们的绝对工作压力分别高于15,000 psi进行测试。对承压设备的测试表明,阀块和螺栓中的实际应变与FEA密切相关。对于压力控制设备,测试了各种上游和下游压力组合和功能,结果表明,该压力对闸阀和执行器的实际性能影响很小,并且压力控制设备可以处理各种预期的压差负载案件。阀杆密封测试增加了其绝对工作压力等级。这些类型的测试针对典型的海底设备制造商可以执行哪些工作,以类似的设计考虑因素来验证其设备,从而提供了良好的指导。本文介绍了可以进行的各种实际测试,它们可以利用海水静压头引起的外部压力来验证验证分析。验证是设计过程中必不可少的部分,对于海底设备而言可能非常昂贵且不可行。本文提出了一种用于验证水下设备设计验证分析的实用方法。

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