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TRANSIENT IMPACT OF VALVE CLOSURE TIMES - DISAGREEMENTS BETWEEN DESIGN AND APPLICATION

机译:阀门闭合时间的瞬态影响 - 设计与应用之间的分歧

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Many pressurized liquid systems require emergency shut down procedures in order to prevent damage to the piping and components, environmental contamination and fire hazard. The emergency shutdowns (ESDs) are facilitated by fast closing on-off valves installed at various locations along the piping system. When these valves close they create transient pressure waves traveling through the pipe network. These waves can be reflected at the dead-ends or closed valves. At locations where the pressure decreases below the vapor pressure, liquid column separation followed by a rejoining can cause creation of new transient pressure waves. As these waves travel, they may meet and superpose. These complex surge pressure wave behaviors require modeling of the pipe network and simulation of the transient event as the first step of a transient analysis. The second step of the transient analysis is to pin point the problems such as excessive surge pressures and dynamic loads that may occur in the system. The third step is to provide recommendations to prevent undesired transient consequences. One of the most important components of these recommendations include valve closure times during ESDs. Recent field measurements on the valve closure rates showed that the valve closure times recommended by the transient analysis were not accurately implemented. One reason for this disagreement between the designed closure rates and the applied closure rates is that the actuators of the valves introduce a time lag between the shutdown signal and start of valve closure. Another reason comes from the decision taken by the operator adjusting the actuator timing. Some operators may adjust the actuators such that the valves close within the prescribed time including the lag time which may result in very fast valve closures depending on the lag of the actuators. Other operators may choose to close the valves within the prescribed time including the lag time or even slower than the recommended rates. This may impair the orchestrate of the valve closure events designed in the transient analysis resulting in excessive surge pressures or dynamic loads. This study investigates (i) the discrepancies between the recommendations from transient study made early in the design stage and (ii) the transient impact due to the deviation and/or misinterpretation of those recommendations. Specifically, in this study, these problems are demonstrated in a case study from LNG - Ship loading systems. The results indicated that transient analysis is the essential tool in finding critical components of the system in the field conditions providing a variety of solutions such as valve closure rate adjustments, flow rate reduction at the beginning of ESDs via pump trips and pipe size increase at dead legs. This study showed that the pressure piping systems can deviate from initial design under dynamic field conditions and frequent inspections of the ESD valves are crucial for safe operations of these systems.
机译:许多加压液体系统需要紧急关闭程序,以防止损坏管道和部件,环境污染和火灾危害。通过在管道系统的各个位置安装在各个位置的快速关闭开关阀,促进紧急停机(ESDS)。当这些阀门关闭时,它们会产生穿过管道网络的瞬态压力波。这些波可以反射在死端或封闭阀处。在压力降低低于蒸气压低的位置,液柱分离,然后再加工可以引起新的瞬态压力波。随着这些波浪旅行,他们可能会相遇和叠加。这些复杂的浪涌波行为需要建模管网和瞬态事件的模拟作为瞬态分析的第一步。瞬态分析的第二步是针对系统中可能发生的过度浪涌压力和动态载荷等问题引脚。第三步是提供建议,以防止不期望的瞬态后果。这些建议的最重要的组件之一包括在ESD期间的阀门闭合时间。阀门闭合速率的最近磁场测量结果显示,瞬态分析推荐的阀门闭合时间没有准确地实施。在设计的闭合速率和施加的闭合速率之间进行这种分歧的一个原因在于阀的致动器在关闭信号和阀门封闭的开始之间引入时间延迟。另一个原因来自操作员调整执行器时机的决定。一些操作员可以调节致动器,使得阀门靠近规定时间,包括延迟时间,这取决于致动器的滞后。其他操作员可以选择关闭规定时间内的阀门,包括滞后时间甚至比推荐的速率慢。这可能会损害在瞬态分析中设计的阀门闭合事件的协调,导致过度的浪涌压力或动态载荷。本研究调查(i)在设计阶段提前提前提出的瞬态研究的建议与(ii)由于这些建议的偏差和/或误解而产生的瞬态影响之间的差异。具体地,在本研究中,在LNG船舶装载系统的情况下证明了这些问题。结果表明,瞬态分析是在现场条件下找到系统的关键组件的基本工具,提供各种解决方案,例如阀门闭合速率调节,通过泵跳闸和管道尺寸在死亡中增加了ESDS的流量减少腿。这项研究表明,压力管道系统可以在动态现场条件下偏离初始设计,并且ESD阀的频繁检查对于这些系统的安全操作至关重要。

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