盘式制动系统性能优化的田口方法

Q4 Engineering
N. Kharate, R. Pawar, R. Deshmukh
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引用次数: 1

摘要

盘式制动系统的性能主要取决于几何参数和操作参数。本研究的目的是优化盘式制动系统的操作参数,以提高制动系统的性能、耐久性和稳健性。将制动压力、转速、载荷等四个等级的运行参数作为输入参数,制动时间作为响应参数。采用田口法的标准试验设计(DOE)来评价对性能的主要影响和交互影响。S-N比图描述了每个参数对制动性能的显著影响,并建议其最佳水平以获得更好的性能。多元线性回归方程描述了实验值与计算值之间令人满意的相关性,证明了结果的真实性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance optimisation of disc brake system using Taguchi approach
The performance of the disc brake system basically depends on geometric parameters and operating parameters. The aim of this research is to optimise the operating parameters of the disc brake system to improve the performance, durability and robustness of the brake system. Operating parameters such as braking pressure, rotational speed and load with four levels each are considered as input parameters and braking time as a response parameter. A standard design of experiments (DOE) by Taguchi method is applied to evaluate the main and interactive effect on the performance. The S-N ratio graph describes the significant effect of each parameter on the brake performance and suggests its optimal level for better performance. Multiple linear regression equation describes the satisfactory correlation between the experimental and computed values which proves the realism of the results.
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来源期刊
International Journal of Vehicle Safety
International Journal of Vehicle Safety Engineering-Automotive Engineering
CiteScore
0.30
自引率
0.00%
发文量
0
期刊介绍: The IJVS aims to provide a refereed and authoritative source of information in the field of vehicle safety design, research, and development. It serves applied scientists, engineers, policy makers and safety advocates with a platform to develop, promote, and coordinate the science, technology and practice of vehicle safety. IJVS also seeks to establish channels of communication between industry and academy, industry and government in the field of vehicle safety. IJVS is published quarterly. It covers the subjects of passive and active safety in road traffic as well as traffic related public health issues, from impact biomechanics to vehicle crashworthiness, and from crash avoidance to intelligent highway systems.
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