机械
机械工程
工程类
物理
材料科学
振动
燃气轮机
工作(物理)
气体压力
刚度
转子动力学
润滑
结构工程
作者
Ciprian R. Comsa,Seung Hyeop Hyun,Adolfo Delgado,Paul G. A. Cizmas
标识
DOI:10.1080/10402004.2026.2635394
摘要
This paper is the first of a two-part series investigating the rotordynamic behavior of a six-tooth gas labyrinth seal. Part 1 focuses on the experimental work, presenting a detailed description of the test rig, rotordynamic force coefficients, and leakage values obtained at various operating conditions. The seal was tested at three pressure ratios (0.2, 0.3, and 0.4) and three rotor speeds (5, 10, and 15 kRPM). The supply pressure was maintained at 13.1 bars, with the discharge pressure adjusted through a back pressure valve to achieve the desired ratios. The rotordynamic force coefficients were obtained by pseudo-random excitation of the seal at subsynchronous frequencies with different waveforms. Five waveforms were used: three individual frequency waveforms of 50, 100, and 150 Hz and two multi-frequency waveforms of 50–150 Hz and 10–350 Hz. Frequency independence of the rotordynamic force coefficients was observed at low and medium frequencies, while at high frequencies the direct stiffness increased with increasing frequency. The rotordynamic force coefficients were compared using the individual and multi-frequency waveforms values for 50, 100, and 150 Hz at the specified pressure ratios. The rotordynamic coefficients showed good agreement between measurements using different waveforms. Additionally, the influence of the cross-coupled stiffness on effective damping was analyzed. Part 2 of this series uses computational fluid dynamics simulation to predict the leakage rate and rotordynamic force coefficients and compares the computational and experimental results.
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