Optimal Energy Use in a Light Weight Hydraulic Hybrid Passenger Vehicle

Author:

Deppen Timothy O.1,Alleyne Andrew G.1,Stelson Kim A.2,Meyer Jonathan J.2

Affiliation:

1. Department of Mechanical Science and Engineering, University of Illinois at Urbana Champaign, 1206 West Green Street, Urbana, IL 61801

2. Department of Mechanical Engineering, University of Minnesota-Twin Cities, Minneapolis, MN 55455

Abstract

In this study we present a procedure for the design and implementation of a control strategy to optimize energy use within a light weight hydraulic hybrid passenger vehicle. The hydraulic hybrid utilizes a high pressure accumulator for energy storage which has superior power density than conventional battery technology. This makes fluid power attractive for urban driving applications in which there are frequent starts and stops and large startup power demands. A dynamic model of a series hydraulic hybrid powertrain is presented along with the design of a model predictive control based energy management strategy. Model predictive control was chosen for this study because it uses no future information about the drive cycle in its design. This increases the flexibility of the controller allowing it to be directly applied to a variety of drive cycles. Using the model predictive framework, a holistic view of the powertrain was taken in the design of the control strategy, and the impact of each actuator’s efficiency on overall efficiency was evaluated. A hardware-in-the-loop experiment using an electro-hydraulic powertrain testbed was then used to validate the dynamic model and control performance. Through a simulation study in which each actuator’s efficiency was given varying levels of priority in the objective function, it was found that overall system efficiency could be improved by allowing for small sacrifices in individual component performance. In fact, the conventional wisdom of using the additional degrees of freedom within a hybrid powertrain to optimize engine efficiency was found to yield the lowest overall powertrain efficiency. In this work we present a rigorous framework for the design of an energy management strategy. The design method improves the powertrain’s operational efficiency by finding the best balance between optimizing individual component efficiencies. Furthermore, since the design of the control strategy is built upon an analysis of individual components, it can be readily extended to other architectures employing different actuators.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference25 articles.

1. Department of Energy, 2009, “Annual Energy Review 2009,” Energy Information Administration (EIA).

2. www.whitehouse.gov/sites/default/files/fuel_economy_report.pdf.

3. Batteries and Ultracapacitors for Electric, Hybrid and Fuel Cell Vehicles;Burke;Proc. IEEE

4. Development of Ultra-Battery for Hybrid-Electric Vehicle Applications;Lam;J. Power Sources

5. The Mechanical Hybrid Vehicle: An Investigation of a Flywheel-Based Vehicular Regenerative Energy Capture System;Diego-Ayala;Proc. Inst. Mech. Eng. Part D (J. Automob. Eng.)

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