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首页> 外文期刊>Journal of loss prevention in the process industries >Study of mechanical aspects of leak tightness in a pressure relief valve using advanced FE-analysis
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Study of mechanical aspects of leak tightness in a pressure relief valve using advanced FE-analysis

机译:使用高级有限元分析研究泄压阀中密封性的机械特性

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This paper presents a numerical study involving the deformation of contact faces in the metal-to-metal seal in a typical pressure relief valve. The valve geometry is simplified to an axisymmetric problem, which comprises a simple geometry consisting of only 3 components. 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 AISI type 316N(L) steel defined using the multilinear kinematic hardening model based on monotonic and cyclic tests at 20 degrees C. In-service observations show that there is a limited fluid leakage through the valve seat at operational pressures about 90% of the set pressure, which is caused by the fluid penetrating into surface asperities at the microscale. Nonlinear FEA in ANSYS using the fluid pressure penetration (FPP) technique revealed that there is a limited amount of fluid penetrating into gap, which is caused by the plastic deformation of the valve seat at the macroscale. Prediction of the fluid pressure distribution over the valve seat just before the valve lift is addressed in this study considering the FPP interaction on multiscale. This is the principal scope, since it allows adjustment of the valve spring force in order to improve the leak tightness. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提供了一个数值研究,涉及典型泄压阀中金属对金属密封件中接触面的变形。阀的几何形状简化为轴对称问题,该问题包括仅由3个组件组成的简单几何形状。圆柱形喷嘴的顶部有一个阀座,它与一个圆盘接触,该圆盘由压缩的线性弹簧预紧。所有组件均由AISI 316N(L)型钢制成,使用基于20摄氏度单调和循环测试的多线性运动硬化模型进行定义。在役观察表明,在工作压力下,通过阀座的流体泄漏有限。大约90%的设定压力是由于流体在微尺度上渗入表面凹凸不平所引起的。在ANSYS中使用流体压力渗透(FPP)技术进行的非线性有限元分析表明,有少量的流体渗透到间隙中,这是由于阀座在宏观上发生塑性变形而引起的。考虑到FPP在多尺度上的相互作用,本研究提出了在阀升程之前阀座上的流体压力分布的预测。这是主要范围,因为它可以调节气门弹簧力以提高密封性。 (C)2016 Elsevier Ltd.保留所有权利。

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