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Technical Paper

Dynamic Control of a Distributed Embedded Electro-Hydraulic System

2007-04-16
2007-01-1626
This paper presents the hardware and software architectures, and the control approaches for a distributed embedded electro-hydraulic system, a telescopic handler. The distributed architecture is justified not only by the complexity of the vehicle architecture, consisting of mechanical, electrical and hydraulic components, but also by the existence of multiple types of communication protocols. The distributed architecture enables a hierarchical control strategy with the system-level control algorithms developed in Matlab/Simulink and implemented for the vehicle's two primary subsystems, work and propel-by-wire.
Technical Paper

Hardware-In-the-Loop (HIL) Modeling and Simulation for Diesel Aftertreatment Controls Devlopment

2009-10-06
2009-01-2928
This paper addresses Hardware-In-the-Loop modeling and simulation for Diesel aftertreatment controls system development. Lean NOx Trap (LNT) based aftertreatment system is an efficient way to reduce NOx emission from diesel engines. From control system perspective, the main challenge in aftertreatment system is to predict temperature at various locations and estimate the stored NOx in LNT. Accurate estimation of temperatures and NOx stored in the LNT will result in an efficient system control with less fuel penalty while still maintaining the emission requirements. The optimization of the controls will prolong the lifespan of the system by avoiding overheating the catalysts, and slow the progressive process of component aging. Under real world conditions, it is quite difficult and costly to test the performance of a such complex controller by using only vehicle tests and engine cells.
Journal Article

Modeling and Simulation of a Hydraulic Steering System

2008-10-07
2008-01-2704
Conventional hydraulic steering systems keep improving performance and driving comfort by introducing advanced features via mechanical design. The ever increasing mechanical complexity requires the advanced modeling and simulation technology to mitigate the risks in the early stage of the development process. In this paper, we focus on advanced modeling tools environment with an example of a load sensing hydraulic steering system. The complete system architecture is presented. Analytical equations are developed for a priority valve and a steering control unit as the foundation of modeling. The full version of hydraulic steering system model is developed in Dymola platform. In order to capture interaction between steering and vehicle, the co-simulation platform between the hydraulic steering system and vehicle dynamics is established by integrating Dymola, Carsim and Simulink.
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