
Optimal Speed Control Humps Design Based on Driver Comfort
Author(s) -
Hamid Gheibollahi,
Masoud MasihTehrani
Publication year - 2021
Publication title -
international journal of automotive and mechanical engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.311
H-Index - 25
eISSN - 2229-8649
pISSN - 2180-1606
DOI - 10.15282/ijame.18.3.2021.08.0685
Subject(s) - acceleration , root mean square , matlab , range (aeronautics) , head (geology) , simulation , suspension (topology) , computer science , control theory (sociology) , mathematics , engineering , physics , control (management) , geology , aerospace engineering , electrical engineering , classical mechanics , geomorphology , homotopy , artificial intelligence , pure mathematics , operating system
The purpose of this study is to optimise the different speed control humps by considering the vertical and horizontal acceleration of the driver’s head. In previous researches, the main focus was only on vertical acceleration, but in this study, horizontal acceleration of the head is also considered. Here, the root mean square (RMS) of acceleration of head is considered as a measure of occupant comfort. The modelling is performed by a non-linear half-car suspension system (4-DOF) with a linear model of a driver (10-DOF) and a seat. The hamps under study are circular, sinusoidal, half-sinusoidal, and trapezoidal. Finally, by analysing the results, the optimal design of each type of hump is performed. The objective function used is a combination of horizontal and vertical acceleration which is performed using MATLAB genetic algorithm. The results show a significant reduction in horizontal and vertical acceleration at all speeds. From this modelling, it is possible to extract a suitable range for passing the speed of cars over different types of humps. In this study, it is shown that the acceleration values for the circular and half-sinusoidal humps at all speeds are quite close to each other.