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Performance Modeling of Degraded Compressors and Fault Diagnostics

机译:降解压缩机和故障诊断性能建模

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The use and application of compressors cannot be overemphasized in the oil & gas industry and the continuous availability of this rotating equipment is critical for maintaining safety and production profits for both offshore and onshore applications. In parallel, a compressor will degrade in its performance due to fouling and wearing and is not able to deliver the designed performance throughout its life. As compressors continue to perform, the speed curves shift to lower heads and throughput and performance deteriorate. Based on the fact that the magnitude of the shift is different for each speed, an innovative technique for compressor performance modeling and diagnostics has been developed. It enables the actual performance of a compressor being modeled over a wide range of speeds and related flows so that the compressor performance and its operational limits can be successfully estimated. In this approach, OEM performance data is firstly used to establish an initial compressor performance model. Then field test data for a compressor is obtained and used to adapt compressor performance model to ensure the model represent the actual performance of the compressor over a wide range of speeds. As compressors continue to work, the characteristic map of the compressors shift to new positions due to recoverable and non-recoverable degradation occur to the compressors, causing the deviation of compressor operational parameters and settings. This shift represents the degradation of the compressor and can be identified by using field test data and the compressor diagnostic model described in this paper. Several methods for compressor monitoring and fault diagnostics exist. The diagnostics based on performance analysis is one of the most effective tools where the analysis of gas path (GPA) parameters provides information on the severity of degradation. The concept of GPA Index is introduced to assess the success of the diagnostic results. The performance and diagnostic results provided by the compressor diagnostic approach offer useful information to compressor operators to uphold compressor performance and to improve maintenance schedules and avoid unexpected failures. These factors will ultimately lead to an increase in revenues and safe production.
机译:在石油和天然气行业中,压缩机的使用和应用不能透明,这种旋转设备的持续可用性对于维持海上和陆上应用的安全性和生产利润至关重要。并行地,压缩机由于污垢和佩戴而导致其性能降低,并且无法在整个生命中提供设计的性能。随着压缩机继续执行,速度曲线转移到下部的头部和吞吐量和性能恶化。基于每个速度的换档幅度不同,已经开发了一种用于压缩机性能建模和诊断的创新技术。它使压缩机的实际性能能够在各种速度和相关流量上进行建模,以便可以成功估计压缩机性能及其操作限制。在这种方法中,首先使用OEM性能数据来建立初始压缩机性能模型。然后获得用于压缩机的现场测试数据,并用于调整压缩机性能模型,以确保模型代表压缩机的实际性能在各种速度范围内。随着压缩机继续工作,压缩机的特征图由于压缩机而发生的可恢复和不可恢复的劣化导致的新位置,从而导致压缩机操作参数和设置的偏差。该移位表示压缩机的劣化,并且可以通过使用本文中描述的现场测试数据和压缩机诊断模型来识别。存在几种压缩机监控和故障诊断方法。基于性能分析的诊断是气体路径分析(GPA)参数的最有效工具之一提供有关降解严重性的信息。引入GPA指数的概念来评估诊断结果的成功。压缩机诊断方法提供的性能和诊断结果为压缩机操作员提供了有用的信息,以秉承压缩机性能并改善维护计划,并避免意外故障。这些因素最终会导致收入和安全生产增加。

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