超临界CO2涡轮机械磁滑动轴承不稳定问题研究

Dokyum Kim, Seungjoon Baik, Jeong-Ik Lee
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引用次数: 2

摘要

随着人们越来越重视在提高发电效率的同时减少二氧化碳的排放,新的电力循环被开发出来。其中一个很有前途的动力循环是超临界CO2 (S-CO2)动力循环。以S-CO2动力循环产生超过10MW的电力,磁轴承可以是密封式涡轮机械的一个很好的选择。然而,从对磁轴承的几项研究中,反复提到了高密度流体和高速工况下的不稳定性问题。磁轴承的不稳定性与流体条件有关,主要是压力和密度。由于这个问题,磁轴承有时不能保持足够的间隙转子导致物理接触,从而损坏系统。因此,为了电力系统的成功稳定运行,必须深入研究和解决这些不稳定问题。转轴周围流体力引起的不稳定性可以用雷诺润滑方程来描述。在此基础上建立了稳态润滑力分析模型。模型结果表明,润滑性能对CO2热状态,特别是轴周密度梯度非常敏感。在建模结果的基础上,设计了一个实验系统来研究这一问题。为了实验研究S-CO2压缩机的不稳定性问题,拆除了运行中的S-CO2压缩机的叶轮,并堵塞了排放管道。因此,本实验中的主要不稳定因素将仅是转子与轴承之间的相互作用。轴的位置可以用电感式传感器测量。电磁铁施加的力由控制器施加的电流数据计算得到。根据这些实验数据,计算了润滑力。将这些结果与解析润滑模型进行了比较,验证了模型的正确性。从这项研究中,预计将有可能定义不稳定的运行条件,并提出S-CO2条件下所需的磁轴承性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of Magnetic Journal Bearing Instability Issues in Supercritical CO2 Turbomachinery
With the increasing emphasis on reducing the CO2 emission while improving power generation efficiency, new power cycles are being developed. One of those promising power cycles is a supercritical CO2 (S-CO2) power cycle. To generate over 10MW electricity with S-CO2 power cycle, a magnetic bearing can be a good option for the hermetic type turbomachinery. However, from several studies on the magnetic bearing, the instability issues under high density fluid and high speed operating conditions were repeatedly mentioned. The instability in the magnetic bearing was observed to be related to the fluid conditions, mostly pressure and density. Because of this issue, the magnetic bearing sometimes cannot maintain enough clearance for the rotor leading to physical contact and consequently damaging the system. Thus, these instability issues should be thoroughly studied and be resolved for the successful and steady operation of the power system. The instability due to fluid force around the rotating shaft can be modeled with the Reynolds lubrication equation. The steady lubrication force analysis model is developed based on this equation. The model results imply that the lubrication performance is quite sensitive to the thermal condition of the CO2 especially density gradient around the shaft. Based on the modeling results, an experimental system is designed to investigate the issue. To study the instability issues experimentally, an impeller of the operating S-CO2 compressor is removed and the discharge line is blocked. Therefore, the main instability factor in this experiment will be the interaction between the rotor and the bearing only. The shaft position can be measured with inductive sensors. The forces exerted from the electromagnet is calculated from the electric current data which is applied by the controller. From these experimental data, the lubrication force is calculated. These results are compared with the analytical lubrication model to verify the model. From this study, it is expected that it will be possible to define the unstable operating conditions and suggest the required magnetic bearing performance for S-CO2 conditions.
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