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ADVANCED PERFORMANCE PREDICTION MODELS FOR GLOBE VALVES UNDER DESIGN BASIS CONDITIONS

机译:设计基准条件下的全球性阀门高级性能预测模型

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An advanced, validated analytical model for predicting total required thrust to operate unbalanced disc globe valves (Fig. 1) has been developed that overcomes the limitations of the previous industry models and accurately predicts opening and closing thrust requirements throughout the valve stroke under a variety of design basis conditions. The previous industry models predict required thrust only at the fully closed and fully open positions; and do not address mid-stroke thrust requirements or potential for mid-stroke damage that can occur especially under high flow conditions. These limitations were overcome by developing a first principles based model, which predicts fluid forces and moment on the disc, disc-to body reactions, and disc-to-body friction forces throughout the stroke. The analytical model relies on force and moment coefficients that were derived from CFD (Computational Fluid Dynamics) to predict fluid forces and moments on the disc. The analytical model also identifies potential for "unpredictable behavior" resulting from disc/body reaction forces exceeding threshold of material damage. Finite Element Analyses (FEA), including elastic-plastic modeling of localized regions, were performed to predict internal forces, reactions and potential for material damage. The model has been validated against a variety of disc and body geometries and fluid conditions, including water flow loop test sponsored by Electric Power Research Institute (EPRI), as well as recent steam testing under blow-down conditions performed by Kalsi Engineering, Inc.(KEI) for a variety of disc and body geometries and fluid conditions. The model overcomes the applicability limitations of Electric Power Research Institute (EPRI) MOV Performance Prediction Program (EPRI PPP) as well as Joint Owners' Group (JOG) MOV Periodic Verification Program, and it can be used to reliably predict thrust requirements for globe valves under design basis conditions.
机译:已经开发出一种先进的,经过验证的分析模型,用于预测操作不平衡盘形截止阀所需的总推力(图1),该模型克服了以前的行业模型的局限性,并可以在各种情况下准确地预测整个阀门行程的开启和关闭推力要求。设计基准条件。先前的行业模型仅在完全关闭和完全打开的位置上预测需要的推力。且未解决冲程中止推力要求或可能在特别是在高流量条件下发生的冲程中止损坏的可能性。通过开发基于第一个原理的模型可以克服这些限制,该模型可以预测整个冲程中椎间盘上的流体力和力矩,椎间盘对身体的反作用力以及椎间盘对身体的摩擦力。该分析模型依赖于从CFD(计算流体动力学)得出的力和力矩系数来预测圆盘上的流体力和力矩。该分析模型还确定了由于光盘/主体反作用力超过材料破坏阈值而导致的“不可预测行为”的可能性。进行了有限元分析(FEA),包括局部区域的弹塑性建模,以预测内力,反应和材料损坏的可能性。该模型已针对各种圆盘和阀体几何形状以及流体条件进行了验证,包括电力研究院(EPRI)赞助的水流回路测试,以及Kalsi Engineering,Inc.在排污条件下进行的最新蒸汽测试。 (KEI)适用于各种椎间盘和身体的几何形状以及流体状况。该模型克服了电力研究所(EPRI)MOV性能预测程序(EPRI PPP)和联合业主小组(JOG)MOV定期验证程序的适用性限制,可用于可靠地预测截止阀的推力要求在设计基准条件下。

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