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Aero-Engine Sensor Fault Diagnosis Based On Kalman
AERO-ENGINE SENSOR FAULT DIAGNOSIS BASED ON KALMAN FILTER
Yuying Guo1,2, Bin Jiang1, Youmin Zhang3,4, Zhengwei Zhu2
1 College of Automation Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China
E-mail: binjiang@
2 College of Information Engineering, Southwest University of Science and Technology, Mianyang 621010, China
E-mail: polarisguo@163.com
3 Dept. of Computer Science and Engineering, Aalborg University Esbjerg, Niels Bohrs Vej 8, 6700 Esbjerg, Denmark
Email: ymzhang@cs.aaue.dk
4 Dept. of Mechanical Industrial Engineering, Concordia University, Montreal, Quebec H3G 1M8, Canada
Email: ymzhang@encs.concordia.ca
Abstract: In this paper, an aero-engine augmented state variable model and a Kalman filter based
method are developed for the purpose of aero-engine sensor fault diagnosis. A bank of Kalman
filters method is proposed to detect and isolate the sensor faults, and an adaptive model is further
reconstructed based on the remaining non-faulty sensor information. Simulation results show the
effectiveness of the proposed method.
Keywords: Aero-engine system, a bank of Kalman filters, fault diagnosis
1. INTRODUTION
Due to the increasing demand for high performance
and reliability in modern aero-engine systems,
control and monitoring of such systems have become
a challenging issue and become also more complex
due to the multi-loop, multi-variable and highly
non-linear nature of the system. At the same time, the
engine usually runs under the high-temperature,
high-pressure conditions, sensor faults could occur,
which makes the measured parameter inaccurate and
may lead to severe deterioration of system control
performance. Therefore, there is a strong need for
sensor fault detection and diagnosis (FDD) and
provide correct estimation for engine states and
parameters under fault conditions. For developing an
effective FDD scheme to aero-engine systems, a state
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