Multiobjective optimization for semi-active electromagnetic vehicle suspensions

被引:0
作者
Hamed Zare
Mohammad Mahdi Jalili
Mohammad Reza Fazel
机构
[1] Yazd University,Department of Mechanical Engineering
来源
Journal of the Brazilian Society of Mechanical Sciences and Engineering | 2023年 / 45卷
关键词
Multi-objective optimization; Hybrid vehicle suspension; MR damper; Energy harvesting; Bouc–Wen model;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, a multi-objective optimization process is used to design and optimize a semi-active hybrid electromagnetic suspension system. To control the performance of the vehicle, the magnetorheological (MR) damper modeled by Bouc–Wen model is utilized in semi-active suspension that its energy is supplied from harvested energy by electromagnetic generator. The performance of the suspension system is evaluated by ride comfort, road holding and absolute regenerated power criteria. A two-degree of freedom (2-DOF) quarter car model included semi-active suspension system and electromagnetic generator is used to analyze the system. To improve the performance of the vehicle, the genetic algorithm (GA) is used to solve the multi-parameter optimization problem. The Pareto front results obtained from GA show that the ride comfort and handling stability are two conflicting design criteria. To compare the optimized cases with the not-optimized suspension system the response of the system in time and frequency domains is employed. The results show that for the overall optimized case the absolute regenerative power and ride comfort can be improved significantly compared with the not-optimized case. Also, according to the frequency responses, only about the first natural frequency of the vehicle body, the ride comfort quality decreases for the overall optimized case.
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  • [1] Zhang Y(2017)Electro-hydraulic damper for energy harvesting suspension: modeling, prototyping and experimental validation Appl Energy 199 1-12
  • [2] Chen H(2018)Vibration energy harvesting in automotive suspension system: a detailed review Appl Energy 229 672-699
  • [3] Guo K(2018)A validated simulation of energy harvesting with piezoelectric cantilever beams on a vehicle suspension using bond graph approach Mechatronics 53 202-214
  • [4] Zhang X(2018)Design of 100W regenerative vehicle suspension to harvest energy from road surfaces Int J Precis Eng Manuf 19 1089-1096
  • [5] Li SE(2019)Analysis of the prospective vibrational energy harvesting of heavy duty truck suspensions: a simulation approach Energy 173 332-351
  • [6] Abdelkareema MAA(2019)Energy-harvesting variable/constant damping suspension system with motor based electromagnetic damper Energy 89 1-16
  • [7] Xu L(2020)A comprehensive comparison of the vehicle vibration energy harvesting abilities of the regenerative shock absorbers predicted by the quarter, half and full vehicle suspension system models Appl Energy 272 115-180
  • [8] Ahmed Ali MK(2020)Design and multi-physics optimization of an energy harvesting system integrated in a pneumatic suspension Mechatronics 69 1-14
  • [9] Elagouz A(2020)Energy harvesting using piezoelectric transducers for suspension systems Mechatronics 65 1-16
  • [10] Mi J(2020)Designing hydro-magneto-electric regenerative shock absorber for vehicle suspension considering conventional-viscous shock absorber performance J Mech Sci Technol 34 55-67