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Vehicle System Dynamics
International Journal of Vehicle Mechanics and Mobility
Volume 51, 2013 - Issue 10
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Original Articles

Fault detection and isolation for a nonlinear railway vehicle suspension with a Hybrid Extended Kalman filter

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Pages 1489-1501 | Received 15 Oct 2012, Accepted 25 May 2013, Published online: 25 Jun 2013
 

Abstract

Fault detection is considered to be one way to improve system reliability and dependability for railway vehicles. The secondary lateral and anti-yaw dampers are the most critical parts in railway suspension systems. So far, the dampers have been modelled as linear components in the fault detection and isolation observer design. In this work, a Hybrid Extended Kalman filter is used to capture the nonlinear characteristics of the dampers. In order to detect and isolate faults, a nonlinear residual generator is developed, which can distinguish clearly between different types of faults. A lateral half train model serves as an example for the proposed technique. The results show that failures in the nonlinear suspension system can be detected and isolated accurately.

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