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Compressor Package: Failure Analysis Reliability Enhancement

机译:压缩机包:故障分析与可靠性增强

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Instrument Air (IA) compression system is a critical utility system that is responsible to deliver filtered and dry air to various process stations within the plant. The compressed air is used to manipulate valves that are crucial for plant control and emergency shutdown systems. Inadequate operation of the IA compression package leads to reduced system availability, which introduces safety hazard and leads to serious operational interruption. This paper analyzes a case study of frequent system tripping due to hot air recirculation phenomenon (HAR), using actual field measurements and computational fluid dynamics (CFD) simulations, to propose solutions for maximized system reliability. This research work presents a case study of HAR at oil and gas offshore plant that reduced the performance of an air-cooled IA compression package. This in turn caused the system to experience repeated and frequent trips due to increased temperature within the package. Therefore, the need for exhaust hot air dispersion analysis of discharged air from air-cooled heat exchangers is becoming of great importance. A detailed three-dimensional CFD model, that represents different installation arrangements of the compressor unit area, was built to simulate the HAR and its influence on the overall performance of the compressor unit. Actual site measurements were collected, analyzed and compared to CFD predictions. The effect of wind speed and direction with relative to the compressor package installation location on the platform was analyzed and discussed. Recommendations and mitigation measures to avoid frequent system outings and exhaust HAR are provided based on CFD outcomes. The results of the analysis showed that HAR was the main reason of the frequent system tripping which is directly associated with the installation location of the compressor package. The CFD predictions calculated the flow and temperature distribution in the compressor area, and results were compared with actual site measurements, taking the site weather conditions, wind speed and direction into account. Excellent agreement between CFD results and field measurements was observed. In order to prevent system break-offs from happening, a short-term mitigation of installing a ventilation blower inside the package while introducing additional suction louvers in the enclosure was made to enhance heat transfer. Moreover, a long-term solution to install exhaust ducting to route the exhaust hot air away from the air-cooler intake of the compression package is proposed. Both mitigation measures were implemented and the frequent tripping was eliminated. The influence of HAR on air-cooled compression packages is not well recognized in oil and gas industry. This study utilizes in-depth engineering analysis techniques to enhance the air compression system reliability using advanced engineering simulations.
机译:仪器空气(IA)压缩系统是一个关键的公用事业系统,负责将过滤和干燥空气输送到植物内的各种过程站。压缩空气用于操纵对工厂控制和紧急关闭系统至关重要的阀。 IA压缩包的操作不足导致系统可用性减少,这引入了安全危害,并导致严重的操作中断。本文分析了由于热空气再循环现象(HAR),使用实际现场测量和计算流体动力学(CFD)模拟来分析频繁系统跳闸的案例研究,提出了用于最大化的系统可靠性的解决方案。本研究工作提出了一种案例研究,石油和天然气海上植物的案例研究,降低了风冷IA压缩包装的性能。这反过来导致系统由于包装内的温度增加而经历重复和频繁的旅行。因此,对来自风冷热交换器的排出空气的排气热空气分散分析的需要变得非常重要。构建了一种表示压缩机单元区域的不同安装布置的详细的三维CFD模型,以模拟RAR及其对压缩机单元整体性能的影响。与CFD预测进行了分析和比较了实际站点测量。对平台上的风速和方向与相对于压缩机包装安装位置的影响进行了分析并讨论。基于CFD结果提供了避免频繁系统郊游和排气仓的建议和缓解措施。分析结果表明,Har是频繁的系统跳闸的主要原因,该跳闸与压缩机包的安装位置直接相关。 CFD预测计算了压缩机区域中的流量和温度分布,并将结果与​​实际站点测量进行比较,考虑到现场天气条件,风速和方向。观察到CFD结果与现场测量之间的良好一致性。为了防止系统断开发生,进行了在包装内安装通风鼓风机的短期减缓,同时在外壳中引入额外的吸入百叶窗,以增强传热。此外,提出了一种用于安装排气管道的长期解决方案,以将排气热空气远离压缩包装的空气冷却器的进气。这两种缓解措施都实施,消除了频繁的绊倒。哈尔对风冷压缩包装的影响在石油和天然气工业中不公之于众不可及。本研究利用深入的工程分析技术使用先进的工程模拟来提高空气压缩系统可靠性。

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