控制理论(社会学)
PID控制器
非线性系统
空气悬架
偏转(物理)
多项式的
流离失所(心理学)
刚度
模糊逻辑
MATLAB语言
加速度
数学
计算机科学
工程类
控制工程
物理
结构工程
数学分析
控制(管理)
经典力学
轴
人工智能
操作系统
温度控制
心理治疗师
量子力学
心理学
作者
Jingyue Wang,Kun Lv,Haotian Wang,Sheng Guo,Junnian Wang
标识
DOI:10.1177/14613484211051854
摘要
To improve the ride comfort of wheeled armored vehicles, air springs are used. To describe the vehicle motion more accurately, a nine-degree-of-freedom air suspension system for the whole vehicle was established, and its equations of motion were derived. Through theoretical analysis of the stiffness characteristics and forces on the air springs, the nonlinear restoring force was obtained as a cubic polynomial of the air spring displacement. The simulation results obtained by fitting the polynomial and radial basis function curves with MATLAB/Simulink software are consistent with the actual test results, thus verifying the correctness of the nonlinear air spring polynomial model. Finally, a fuzzy fractional order PI λ D μ controller is designed and simulated for the vehicle-seat-body model in terms of wheel dynamic load, suspension dynamic deflection, body acceleration, and other indicators. The simulation results show that the fuzzy fractional order PI λ D μ Proportion Integral Differential (PID) control strategy has better overall performance than the PID control strategy, fuzzy control strategy, and fuzzy PID control strategy.
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