DocumentCode
1073900
Title
Enhanced human-machine interface in braking
Author
Park, Shinsuk ; Sheridan, Thomas B.
Author_Institution
Dept. of Mech. Eng., Korea Univ., Seoul, South Korea
Volume
34
Issue
5
fYear
2004
Firstpage
615
Lastpage
629
Abstract
Antilock brake system (ABS) technology with powerful electronic components has shown superior braking performance to conventional vehicles on test tracks. On real highways, however, the performance of the ABS-equipped car has been disappointing. The poor braking performance with ABS has resulted from the questionable design of the human-machine interface for the brake system. The goal of this study is to design brake systems that provide more intuitive brake control and proper braking-performance information for the driver. In this study automotive brake systems are modeled as a type of master-slave telemanipulator. Human force-displacement interaction at the brake pedal has a strong effect on braking performance. As a preliminary study in brake-system design, the characteristics of human leg motion and its underlying motor-control scheme are studied through experiments and simulations, and a model of braking motion by the driver´s leg is developed. This paper proposes novel brake systems based on two new aspects. First, the mechanical impedance characteristics of the leg action of the driver are taken into consideration in designing the brake systems. Second, the brake systems provide the driver with kinesthetic feedback of braking conditions or performance. The effectiveness of the proposed designs in a combined driver-vehicle system is investigated using driving simulation.
Keywords
adaptive control; braking; feedback; kinematics; motion control; road vehicles; telecontrol; antilock brake system technology; automotive brake system; braking-performance information; human force-displacement interaction; human leg motion; human motor control scheme; human-machine interface; kinesthetic feedback; master-slave telemanipulator; mechanical impedance characteristics; Automotive engineering; Control systems; Electronic components; Electronic equipment testing; Humans; Leg; Man machine systems; Road transportation; System testing; Vehicles; Brake system; braking motion; human motor control; teleoperator;
fLanguage
English
Journal_Title
Systems, Man and Cybernetics, Part A: Systems and Humans, IEEE Transactions on
Publisher
ieee
ISSN
1083-4427
Type
jour
DOI
10.1109/TSMCA.2004.832813
Filename
1325326
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