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Multi-objective optimization of tire carcass contours using a systematic aspiration-level adjustment procedure

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Abstract

 While forming a basic tire configuration and supporting most static and dynamic loads of automobiles, tire carcass influences major tire performances according to its contour. Among significant tire performances, we in this study intend to improve the automobile maneuverability and the tire durability by optimizing the sidewall carcass contour. In order to effectively maximize these multi-objectives, we refine the conventional satisficing trade-off methods (STOM) which were proposed originally for the multi-objective structural optimization, by introducing a systematic aspiration-level adjustment procedure. According to the systematic procedure, we perform the sidewall contour optimization that ideally distributes the sidewall carcass tension and minimizes strain-energy density at the belt edge. Since the tire analysis is highly nonlinear problem we employ an incremental analysis scheme, together with the finite-difference sensitivity scheme. Through the numerical experiment, we confirmed that the refined multi-objective optimization technique systematically leads to a final optimum sidewall contour, together with the stable and rapid convergence.

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Received: 20 August 2001 / Accepted: 29 July 2002

This work was supported by Kumho Industries Co., Ltd in Korea and by the Ministry of Science and Technology under the NRL program (M10203000017-02J0000-00910).

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Cho, J., Jeong, H. & Yoo, W. Multi-objective optimization of tire carcass contours using a systematic aspiration-level adjustment procedure. Computational Mechanics 29, 498–509 (2002). https://doi.org/10.1007/s00466-002-0359-2

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  • DOI: https://doi.org/10.1007/s00466-002-0359-2

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