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INFLUENCE OF PROVIDING BODY SENSORY INFORMATION AND VISUAL INFORMATION TO DRIVER ON STEER CHARACTERISTICS AND AMOUNT OF PERSPIRATION IN DRIFT CORNERING  

NOZAKI H. (Department of Mechanical Engineering, Faculty of Science and Engineering, Kinki University)
Publication Information
International Journal of Automotive Technology / v.7, no.1, 2006 , pp. 35-41 More about this Journal
Abstract
Driving simulations were performed to evaluate the effect of providing both visual information and body sensory information on changes in steering characteristics and the amount of perspiration in drift cornering. When the driver is provided with body sensory information and visual information, the amount of perspiration increases and the driver can perform drift control with a moderate level of tension. With visual information only, the driver tends to easily go into a spin because drift control is difficult. In this case, the amount of perspiration increases greatly as compared with the case where body sensory information is also provided, reflecting a very high perception of risk. When body sensory information is provided, the driver can control drift adequately, feeding back the roll angle information in steering. The importance of the driver's perception of the state of the vehicle was thus confirmed, and a desirable future direction for driver assistance systems was determined.
Keywords
Automobile; Maneuverability; Human engineering; Human interface; Vehicle dynamics; Stability;
Citations & Related Records

Times Cited By Web Of Science : 1  (Related Records In Web of Science)
Times Cited By SCOPUS : 1
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1 Kikuchi, M., Suzuki, J., Nakajima, K., Sakaguchi, M. and Ohashi, T. (2002). About two channel portable perspiration meter by the difference method. Perspiration study 9, 5, 31-36, (in Japanese)
2 Sawada, T. (1983). Study on the evaluation of vehicle steering control characteristics by physiological response. J Human Engineering of Japan 19, 5, 265-272, (in Japanese)
3 Watanabe, Y. and Sayers, M. W. (2002). Extending vehicle dynamics software for analysis, design, control, and real-time testing. Proc. AVEC '02, 20024545,407-412
4 Kamiya, K., Hamatani, K. and Isomura, A. (1993). Tension during driving - A model of tension and its application to typical driving conditions. Trans. Society of Automotive Engineers of Japan 24, 4, 113-117 (in Japanese)
5 Pacejka, H. B. and Sharp, R. S. (1991). Shear force development by pneumatic tyres in steady state conditions: A review of modelling aspects. Vehicle System Dynamics, 20, 121-176   DOI   ScienceOn