Modelling of metal-to-metal seals in a pressure relief valve using advanced FE-analysis

Gorash, Yevgen and Dempster, William and Nicholls, William and Hamilton, Robert; de Hosson, J.Th.M. and Hadfield, M. and Brebbia, C.A., eds. (2015) Modelling of metal-to-metal seals in a pressure relief valve using advanced FE-analysis. In: Surface Effects and Contact Mechanics including Tribology XII. WIT Transactions on Engineering Sciences, 91 . WIT Press, ESP, pp. 247-258. ISBN 978-1-84564-950-0 (https://doi.org/10.2495/SECM150221)

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Abstract

This study investigates the behaviour of the contact faces in the metal-to-metal seal of a typical pressure relief valve. The valve geometry is simplified to an axisymmetric problem. A cylindrical nozzle, which has a valve seat on top, contacts with a disk, which is preloaded by a compressed linear spring. All the components are made of the steel AISI type 316N(L) defined using the multilinear kinematic hardening material model based on monotonic and cyclic tests at 20◦C. Analysis considerations include the effects of the Fluid Pressure Penetration (FPP) across the valve seat which exists at two different scales. There is certain limited fluid leakage through the valve seat at operational pressures, which is caused by the fluid penetrating into surface asperities at the microscale. At the macroscale, non-linear FE analysis using the FPP technique available in ANSYS revealed that there is also a limited amount of fluid penetrating into gap. Accurate prediction of the fluid pressure profile over the valve seat is addressed in this study by considering the FPP interaction on both scales. The shape of this pressure profile introduces an additional component of the spring force, which needs to be considered to provide a reliable sealing. The analysis showed that the evolution of the profile, which is caused by the isotropic softening of the material, is significant during the cyclic operation of the valve.