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Process-Design Considerations for a Compressor Dry-Gas Seal-System Interface

机译:压缩机干气密封系统接口的工艺设计注意事项

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The dry-gas seal (DGS) is a critical integrity component of the centrifugal or screw compressor, providing shaft sealing and preventing uncontrolled escape of process gas from the casing. Failure of this component in the compressor can result in plant outage and considerable revenue loss to the operating company. The DGS relies on a very thin gas film that is formed between a stationary ring and a rotating ring. Pressurized and clean seal gas is introduced to work as the gas film, preventing leakage of the compressor casing gas. Minor seal-gas leakage from the gas seal is at low pressure, and is usually collected in an enclosed system for disposal (e.g., low-pressure or atmospheric flare). Failure of the DGS seal is often not caused by its intrinsic design issues, but rather by aspects peripheral to the seal. The need for pressurized seal gas necessitates the evaluation of possible sources of gas supply during normal operation and startup. Possible sources of supply evaluated in this study include high-pressure gas-export pipeline, multitrain arrangement to supply gas from the operating train to the standby train, and the use of gas boosters. Seal-gas cleanliness demands fine gas filtration as mandatory before gas entry to the seals. Because the seal gas undergoes different levels of pressure reduction within the seal, potential liquid (or condensation) and, in some cases, solid (hydrate) formation in the gas seals must be studied together with its mitigating measures in the design to avoid seal failure. The possible presence of other contaminants because of sour-gas components is addressed, along with suggested treatment methods. Other design considerations, such as reverse rotation, depressurization limitations, and reverse pressurization, are also addressed. Whether engineers are engaged in designing the gas-compression system or in troubleshooting the facilities operation, a clear understanding of these various aspects is important. This paper does not address the design of the DGS, which is proprietary to the manufacturer. On the basis of past experiences, this paper describes the various salient features and peripheral requirements of the DGS, and offers recommendations for interfacing with the compressor vendor from the process-system-design and -operation perspectives.
机译:干气密封(DGS)是离心式或螺杆式压缩机的关键完整性组件,可提供轴密封并防止过程气体不受控制地从壳体逸出。压缩机中此组件的故障可能导致工厂停运,并给运营公司造成可观的收入损失。 DGS依靠在固定环和旋转环之间形成的非常薄的气体膜。引入加压和清洁的密封气体作为气膜,防止压缩机壳体气体泄漏。气封中的少量密封气体泄漏是在低压下进行的,通常收集在密闭系统中进行处置(例如,低压或大气火炬)。 DGS密封件的故障通常不是由其固有的设计问题引起的,而是由密封件外围的各个方面引起的。对加压密封气体的需求使得必须在正常运行和启动期间评估可能的气体供应来源。在这项研究中评估的可能的供应来源包括高压气体输出管道,从运行列车向备用列车供气的多列装置以及使用气体增压器。密封气体的清洁度要求在气体进入密封之前必须进行精细的气体过滤。由于密封气体在密封内承受的压力降低程度不同,因此在设计中必须研究气密封中潜在的液体(或冷凝物)以及在某些情况下形成的固体(水合物)及其缓解措施,以避免密封失效。解决了由于酸性气体成分而可能存在的其他污染物,以及建议的处理方法。还解决了其他设计注意事项,例如反向旋转,减压限制和反向加压。无论工程师是从事气体压缩系统的设计,还是对设备运行进行故障排除,对这些各个方面的清楚了解都是很重要的。本文不涉及DGS的设计,该设计是制造商专有的。根据过去的经验,本文描述了DGS的各种显着特征和外围要求,并从过程系统设计和操作的角度为与压缩机供应商接口提供了建议。

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