TY - JOUR
T1 - From Theory to Practice
T2 - Chinese Remainder Theorem-Based Blade Tip Timing Measurement
AU - Cao, Jiahui
AU - Yang, Zhibo
AU - Sun, Ruobin
AU - Chen, Xuefeng
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - Blade tip timing (BTT) is a promising noncontact vibration measurement technique for rotating blades owing to its high measurement efficiency and long service life. However, due to the mismatch between the high vibration frequency of blades and the low achievable sampling frequency, the vibration data measured by BTT is inherently undersampled and thus results in difficulties for subsequent frequency identification. Chinese remainder theorem (CRT) is an efficient theory that can estimate the target frequency from undersampled waveforms. Nevertheless, its application in BTT encounters two issues: excessive probes in multirate sampling and remainder ambiguity in real-valued signals. This article proposes a practical method to overcome the two issues and identify the frequency from the undersampled BTT data, which involves two key steps: active aliasing technique and selective translation operation. The former is a practical alternative to multirate sampling since it requires fewer probes. The latter is a symbolic-graphic combination operation that eliminates the remainder ambiguity by utilizing the prior of opposite frequencies in real-valued signals. Both simulations and experiments validate the effectiveness of the proposed method. In addition to the low number requirement for probes, the proposed method shows high computational efficiency. That is, it is user-friendly for probe installation and online computing in BTT. In short, the proposed method opens new avenues for frequency estimation of undersampled BTT data.
AB - Blade tip timing (BTT) is a promising noncontact vibration measurement technique for rotating blades owing to its high measurement efficiency and long service life. However, due to the mismatch between the high vibration frequency of blades and the low achievable sampling frequency, the vibration data measured by BTT is inherently undersampled and thus results in difficulties for subsequent frequency identification. Chinese remainder theorem (CRT) is an efficient theory that can estimate the target frequency from undersampled waveforms. Nevertheless, its application in BTT encounters two issues: excessive probes in multirate sampling and remainder ambiguity in real-valued signals. This article proposes a practical method to overcome the two issues and identify the frequency from the undersampled BTT data, which involves two key steps: active aliasing technique and selective translation operation. The former is a practical alternative to multirate sampling since it requires fewer probes. The latter is a symbolic-graphic combination operation that eliminates the remainder ambiguity by utilizing the prior of opposite frequencies in real-valued signals. Both simulations and experiments validate the effectiveness of the proposed method. In addition to the low number requirement for probes, the proposed method shows high computational efficiency. That is, it is user-friendly for probe installation and online computing in BTT. In short, the proposed method opens new avenues for frequency estimation of undersampled BTT data.
KW - Alternative to multirate sampling
KW - blade tip timing (BTT)
KW - frequency estimation
KW - real-valued undersampled waveforms
KW - remainder ambiguity
KW - undersampling
UR - https://www.scopus.com/pages/publications/105001709663
U2 - 10.1109/TIM.2025.3551461
DO - 10.1109/TIM.2025.3551461
M3 - 文章
AN - SCOPUS:105001709663
SN - 0018-9456
VL - 74
JO - IEEE Transactions on Instrumentation and Measurement
JF - IEEE Transactions on Instrumentation and Measurement
M1 - 3520910
ER -