Flow Analysis of an Operational Natural Gas Turbo Expander

Changjiang Huo, Jinju Sun, Shanxiu Sun, Peng Song, G. Zhao, B. Pan
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Abstract

The paper focuses on an operational gas expander being used in a natural gas plant for over 10 years, whose recent realtime monitoring shows that the impeller back-side gap pressure is excessively low. To ensure the safe operation, an insight into the complex internal flow of the expander is demanded. The reverse engineering is firstly conducted to reconstruct the flow passage data from the used impeller and nozzle. The physical model includes the main flow domain components (nozzle ring, impeller, and diffuser duct), and the leakages and seal chambers (the impeller front and back-side toothed gaps, shaft seal chamber, and seal gas inlet). Two-phase flow simulation is conducted with the homogeneous multiphase mixture equilibrium model, which is used to allow for the phase change in terms of condensation. Flow analysis is performed based on the obtained numerical results. At the concerned operating point, the expander outlet wetness fraction is about 16.0%, and evident condensation is encountered in the main flow domain and its back-side gap around the pressure tap, which is thought to be responsible for the abnormal pressure reading. The condensed small droplets may grow to block the pressure tap leading to a lower gauge reading. At the operating speed and different flow rates, the flow simulation is conducted for the expander: condensation in the expander is encountered locally at all flow rates and the overall isentropic efficiency closely associated with the overall wetness fraction.
运行中的天然气涡轮膨胀机流量分析
本文以某天然气厂运行10多年的燃气膨胀机为研究对象,对其叶轮后间隙压力进行了实时监测。为了确保安全运行,需要深入了解膨胀机复杂的内部流程。首先对使用过的叶轮和喷管进行逆向工程,重构流道数据。物理模型包括主要流域部件(喷嘴环、叶轮和扩散管)和泄漏和密封腔(叶轮前后侧齿形间隙、轴封腔和密封气体入口)。采用均匀多相混合平衡模型进行两相流模拟,该模型考虑了冷凝方面的相变。根据得到的数值结果进行了流动分析。在该工作点,膨胀机出口湿率约为16.0%,在主流区及其压力龙头周围的后侧间隙存在明显的冷凝现象,认为这是导致压力读数异常的原因。冷凝的小液滴可能会生长阻塞压力龙头,导致较低的压力表读数。在运行速度和不同流量下,对膨胀机进行了流动模拟:在所有流量下,膨胀机内部都存在局部凝结现象,总体等熵效率与总体湿率密切相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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