Optical Fiber Dynamic Precision Measuring Model for Lubricating Oil Film Thickness of Journal Bearings[J]. 2016, 50(5): 45-50.
DOI:
Optical Fiber Dynamic Precision Measuring Model for Lubricating Oil Film Thickness of Journal Bearings[J]. 2016, 50(5): 45-50.DOI: 10.7652/xjtuxb201605007.
Optical Fiber Dynamic Precision Measuring Model for Lubricating Oil Film Thickness of Journal Bearings
To realize dynamic precision measurement for lubricating film thickness of journal bearings
a double-receiving optical fiber dynamic precision measuring model for oil film thickness was built. The model can compensate the nonlinearity of optical fiber sensor and filter the noise in the dynamic oil film thickness signal. The model was built through integrating intensity-modulated optical fiber measuring technology
light intensity compensation
nonlinear correction and filtering technology. The model consists of optical intensity modulation function module
and conditioning circuit module
and master computer module. The principle and advantages of the model are as follows: the received optical power is modulated by the oil film thickness using the light intensity modulation function; the effects of changing optical power and reflectivity on the measuring results are eliminated by light intensity compensation; and the accurate mapping between photoelectric signal and oil film thickness signal is finished by nonlinear correction and filtering technology. The correctness of the measuring model was verified by calibration experiment and dynamic measuring experiment on the oil film thickness of journal bearing.
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