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Fatigue failure mechanisms of a pressure relief valve

机译:减压阀的疲劳失效机制

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Pressure relief valves (PRVs) in systems supporting constant vessel pressure are required to operate over a wide range of valve strokes, of set pressures and external impacts such as adjacent components vibration, ambient temperature, etc. At the same time, valve operation should be stable, reliable and precise. The aim of this work is to broaden the current knowledge of the PRV self-excited oscillation mechanism. The methods employed during the study are time history review with further spectrogram post processing of the valve input and output parameters in its opening and closing modes. Furthermore, the experimental investigations include valve tests under external vibration conditions. Additionally, an experimental verified mathematical model has been developed that can explain the nature of the valve self-excited oscillation onset. The model represents a one-dimensional approach to predict valve dynamics enhanced with a three-dimensional simulation of the flow choked through the valve. The experimental investigation demonstrated low-frequency self-excited oscillation in the range of 1-10 Hz (amounting to 0.04-0.4 of the valve spring-mass eigenfrequency) throughout the valves, but a number of the valves showed their failure proneness at high-frequency self-excited oscillations within the range of 100-120 Hz (amounting to 4.0 to 4.8 of the valve spring-mass eigenfrequency). The experiments have shown that the reasons of this kind of damage are low-frequency self-excited oscillation as well as external vibration coupled with acoustic resonance of the vessel with an attached the pipe leading to fleeting reduction of drag force in the valve and to high-frequency valve chatter. To prevent of high frequency self-excited oscillation, the developed design features allow constant and appropriate value of friction force required for chatter elimination in all operating modes of the valve. (C) 2017 Elsevier Ltd. All rights reserved.
机译:支撑恒定血管压力的系统中的压力释放阀(PRV)是在宽范围的阀门中操作,设定压力和外部撞击,例如相邻部件振动,环境温度等。同时,阀门操作应该是稳定,可靠,精确。这项工作的目的是扩大PRV自我激发振荡机制的目前的知识。在研究期间采用的方法是时间历史审查,采用进一步的频谱图,其开口和关闭模式下的阀门输入和输出参数的进一步谱处理。此外,实验研究包括外部振动条件下的阀门测试。另外,已经开发了一种实验验证的数学模型,可以解释阀门自激振荡发作的性质。该模型表示通过阀门堵塞的流量的三维模拟来预测阀动态的一维方法。实验研究在整个阀门的1-10 Hz的范围内显示出低频自激振荡(阀弹簧质量频繁频率的0.04-0.4),但是一些阀门在高处显示其故障倾向频率自激振荡范围内的100-120 Hz(阀门弹簧大众频率的4.0至4.8)。实验表明,这种损坏的原因是低频自激振荡以及与容器的声谐振耦合的外部振动,其连接的管道导致阀门中的拖曳力减少并高 - 血管阀门喋喋不休。为了防止高频自我激发振荡,开发的设计特征允许在阀门所有操作模式下颤动消除所需的摩擦力恒定和适当的摩擦力。 (c)2017 Elsevier Ltd.保留所有权利。

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