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Dynamic behaviour of direct spring loaded pressure relief valves:III valves in liquid service

机译:直接弹簧式减压阀的动态特性:液体应用中的III型阀

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摘要

Previous studies into direct-spring pressure relief valves connected to a tank via a straight pipe are adapted to take account of liquid sonic velocity. Good agreement is found between new experimental data and simulations of a coupled fluid-structure mathematical model. Upon increasing feed mass flow rate, there is a critical pipe length above which a quarter-wave instability occurs. The dependency is shown to be well approximated by a simple analytical formula derived from a reduced-order model. Liquid service valves are found to be stable for longer inlet pipes than for the gas case. However, the instabilities when they do occur are more violent and the valve is found to jump straight into chatter, in which it impacts repeatedly with its seat. Flutter-type oscillations are never observed. These observations are explained by finding that the quarter-wave Hopf bifurcation is subcritical. Water hammer effects can also be observed, which result in excessive overpressure values during chatter. In addition a new, Helmholtz-like instability — not encountered in gas service — is identified for short pipes with small reservoir volumes. This can also be predicted analytically and is shown to explain a valve-only instability found in previous work that incorporated significant mechanical damping.
机译:先前对通过直管连接至储罐的直接弹簧式泄压阀的研究适用于考虑液体声速的问题。在新的实验数据和耦合的流固数学模型的仿真之间找到了很好的一致性。随着进料质量流速的增加,存在一个关键的管道长度,在该长度以上会发生四分之一波不稳定。通过从降阶模型导出的简单分析公式,可以很好地近似该依赖性。已经发现,对于较长的进气管,液体维修阀要比气箱稳定。但是,这种不稳定现象在发生时更加剧烈,并且发现阀门直接跳进颤振中,并在其阀座中反复撞击。从未观察到颤振型振荡。通过发现四分之一波霍夫分叉是次临界的,可以解释这些观察结果。还可以观察到水锤效应,这会在颤振期间导致过大的超压值。此外,对于储油量小的短管,还发现了一种类似于亥姆霍兹的新不稳定性,这在天然气服务中没有遇到。这也可以通过分析来预测,并且可以用来解释在先前的工作中发现的仅阀门不稳定性,该不稳定性包含显着的机械阻尼。

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