Resolution of Non-Repeatable Synchronous Rotor Response of a Power Generator

Mohammed Ashour Mr., Mustafa Shalabi Mr.
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Abstract

This is a machine train consists of gas turbine driving an air-cooled synchronous generator (3600 rpm and 80 MW rated power), which showed increasing vibration levels on the generator bearings after each shutdown/startup event starting October 2020. A multichannel analyzer was hooked to collect the data during cold startup. Generator bearings showed high casing vibration levels close to alarm setpoints. The review of data during the transient modes (startup/shutdown) and at steady state indicated a clear symptom of couple-unbalance of the generator rotor without significant effect on the turbine bearings. Onsite balancing activity showed non-linear synchronous rotor response (different influence coefficient between the trial and correction runs), also a repeatability test (two similar runs without changing the balancing weights) on the generator rotor showed non repeatable synchronous response. Based on the above observations it was recommended to perform a borescope on the generator rotor. The investigation revealed that the root cause of the non-repeatable behavior was the sand ingress from the makeup generator air breather due to lack of proper maintenance. Dry cleaning of the rotor carried out and sand was removed by vacuum, then filters/gaskets replaced with new and healthy ones. Later, machine started with very acceptable vibration levels well below alarm setpoints. This case study will outline how to identify the nonlinear synchronous rotor response based on the balancing influence vector calculations using the transient polar plots data.
发电机非重复同步转子响应的解析
这是一个由燃气轮机驱动风冷同步发电机(3600转/分,额定功率80兆瓦)组成的机组,从2020年10月开始,每次停机/启动事件后,发电机轴承的振动水平都会增加。安装了多通道分析仪来收集冷启动期间的数据。发电机轴承显示高振动水平接近报警设定值。对暂态模式(启动/关闭)和稳态状态下的数据进行了回顾,表明发电机转子存在明显的耦合不平衡症状,但对涡轮轴承没有明显影响。现场平衡活动显示出非线性同步转子响应(试验和修正运行之间的影响系数不同),发电机转子的可重复性测试(两次相似运行但不改变平衡重量)显示出非可重复同步响应。根据上述观察结果,建议对发电机转子进行内窥镜检查。调查显示,这种不可重复行为的根本原因是由于缺乏适当的维护,从上料发生器空气呼吸器进入沙子。对转子进行干洗,用真空除去砂子,然后更换新的健康的过滤器/垫圈。后来,机器以非常可接受的振动水平启动,远低于警报设定值。本案例研究将概述如何识别非线性同步转子响应基于平衡影响矢量计算使用暂态极坐标图数据。
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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