Litcius/Paper detail

Effect of the Magnetorheological Damper Dynamic Behaviour on the Rail Vehicle Comfort: Hardware-in-the-Loop Simulation

Filip Jeniš, Michal Kubík, Tomáš Michálek, Zbyněk Strecker, Jiří Žáček, Ivan Mazůrek

2023Actuators20 citationsDOIOpen Access PDF

Abstract

Many publications show that the ride comfort of a railway vehicle can be significantly improved using a semi-active damping control of the lateral secondary dampers. However, the control efficiency depends on the selection of the control algorithm and the damper dynamic behaviour, i.e., its force rise response time, force drop response time and force dynamic range. This paper examines the influence of these parameters of a magnetorheological (MR) damper on the efficiency of S/A control for several control algorithms. One new algorithm has been designed. Hardware-in-the-loop simulation with a real magnetorheological damper has been used to get close to reality. A key finding of this paper is that the highest efficiency of algorithms is not achieved with a minimal damper response time. Furthermore, the force drop response time has been more important than the force rise response time. The Acceleration Driven Damper Linear (ADD-L) algorithm achieves the highest efficiency. A reduction in vibration of 34% was achieved.

Topics & Concepts

Magnetorheological fluidDamperMagnetorheological damperAccelerationControl theory (sociology)Response timeVibration controlReduction (mathematics)EngineeringVibrationComputer scienceAutomotive engineeringStructural engineeringControl (management)PhysicsMathematicsComputer graphics (images)Artificial intelligenceQuantum mechanicsClassical mechanicsGeometryVibration Control and Rheological FluidsRailway Engineering and DynamicsVehicle Dynamics and Control Systems