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Application of multiscale approaches to the investigation of sealing surface deformation for the improvement of leak tightness in pressure relief valves

机译:多尺度方法在密封面变形研究中的应用,以提高泄压阀的密封性

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摘要

This chapter is part of a research program to investigate and model the leak tightness of a Pressure Relief Valve (PRV). Presented here is: a literature review; high temperature numerical study involving the deformation of contact faces for a metal-to-metal seal accounting for micro and macro effects; and also microscopic measurements of surface finishes and how they are modelled over a micro to nanometer scale. Currently, no review of literature exists which attempts to understand the leakage phenomenon of metal-to-metal seal contact PRV for static closed positions as they reach the set pressure point. This work attempts to do just that by drawing on inspiration from other research areas such as metal-to-metal contact and gasket seals. The key topics of interest surrounding the leakage of fluid through a gap are: fluid flow assumptions, surface characteristics and its deformation, and experimental techniques used to quantify leakage. For the numerical study, the valve geometry is simplified to an axisymmetric problem, which comprises a simple geometry consisting of only three components: a cylindrical nozzle, which is in contact with a disc (representing the valve seat on top), which is preloaded by a compressed linear spring. The nozzle-disk pair is made of the austenitic stainless steel AISI type 316N(L) steel. In a previous study, the macro-micro interaction of Fluid Pressure Penetration (FPP) was carried out in an iterative manual procedure at a temperature of 20°C. This procedure is now automated and implemented through an APDL script, which adjusts the spring force at a macro-scale to maintain a consistent seal at elevated temperatures. Finally, using the Alicona Infinite Focus the surface form and waviness is measured, presented and modelled as 1/4 symmetric over a macro to nanometer scale. It is clear the surface form also needs to be accounted for, something which the literature does not focus on.
机译:本章是研究程序的一部分,用于研究和建模泄压阀(PRV)的密封性。这里介绍的是:文献综述;涉及涉及微观和宏观影响的金属对金属密封件接触面变形的高温数值研究;以及表面光洁度的微观测量以及如何在微米到纳米尺度上建模。当前,没有文献试图试图了解静态闭合位置的金属对金属密封接触PRV达到设定压力点时的泄漏现象。这项工作试图通过借鉴其他研究领域的灵感来做到这一点,例如金属对金属接触和垫圈密封。围绕通过间隙泄漏的流体,感兴趣的关键主题是:流体流量假设,表面特征及其变形以及用于量化泄漏的实验技术。对于数值研究,将阀门几何简化为一个轴对称问题,该问题包括一个仅由三个部分组成的简单几何:一个与圆盘接触(表示阀座在顶部)的圆柱形喷嘴,该圆盘由压缩线性弹簧。喷嘴盘对由奥氏体不锈钢AISI 316N(L)型钢制成。在以前的研究中,流体渗透力(FPP)的宏观-微观相互作用是在20°C的温度下以手动迭代方式进行的。现在,此过程已实现自动化,并通过APDL脚本实施,该脚本可在宏观范围内调整弹簧力,以在高温下保持一致的密封。最后,使用Alicona Infinite Focus,在宏观到纳米尺度上测量,呈现和建模为1/4对称的表面形状和波纹度。很明显,表面形式也需要考虑,这是文献所没有关注的。

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