面向性能需求的动态调节消扭悬架参数匹配与动力学研究

胡文1,吴洋1,陈盛钊1,张邦基1,张农2,盛企豪1

振动与冲击 ›› 2018, Vol. 37 ›› Issue (24) : 172-180.

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振动与冲击 ›› 2018, Vol. 37 ›› Issue (24) : 172-180.
论文

面向性能需求的动态调节消扭悬架参数匹配与动力学研究

  • 胡文1,吴洋1,陈盛钊1,张邦基1,张农2,盛企豪1
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Parameter matching and kinetic studies of dynamic torsion-elimination suspension based on performance requirements

  • HU Wen1, WU Yang1, CHEN Shengzhao1, ZHANG Bangji1, ZHANG nong2, SHENG Qihao1
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摘要

为协调越野车辆抗侧倾性能和通过性能,研究一种新型动态调节消扭悬架系统(DTS)。该系统可提高车辆抗侧倾能力,消除车身的扭转,增强车轮接地性,提高越野性能和安全性。在阐述DTS系统结构和原理的基础上,利用MATLAB建立该系统的动力学模型以及整车14自由度动力学模型;同时提出一种新的悬架参数匹配方法:面向抗侧倾性能和消扭性能需求匹配DTS系统的关键参数;设计蛇形试验、前轮角阶跃输入试验和扭曲路面工况研究装有DTS系统的车辆的动力学性能,并验证参数合理性。结果表明:应用面向性能需求的匹配方法能有效平衡车辆相关性能;该悬架系统能有效减少车辆侧倾角以及消除车身扭转载荷,对车辆越野性和舒适性有一定改善,并且在车辆转向时能增大其不足转向度,提高车辆安全性。

Abstract

To balance the conflict of anti-roll performance and passing ability for off-road vehicle, a new suspension scheme (Dynamic Torsion-elimination Suspension, DTS) was proposed.The vehicle equipped-with a DTS can obtain larger anti-roll moment and better wheel ground adhesion.After the structure depiction, the dynamic model of DTS and a 14 degree-of-freedom vehicle dynamic model were established with MATLAB.The key parameter analysis and matching of DTS were then carried out through a novel method which is based on anti-roll and torsion-elimination performance requirements.The serpentine experiment, steering transient input and asynchronous-sine twist road input were adopted to evaluate the dynamic performance of the proposed DTS and the validity of applied parameters.Simulation results show that this novel suspension system is able to improve a vehicle’s anti-roll performance and passing ability without compromising its riding comfort.Besides, the understeering performance of vehicle is enhanced as well.

关键词

参数匹配 / 动态调节消扭悬架 / 车辆动力学 / 越野性能

Key words

parameter matching / dynamic torsion-elimination suspension / vehicle dynamic / off-road performance

引用本文

导出引用
胡文1,吴洋1,陈盛钊1,张邦基1,张农2,盛企豪1. 面向性能需求的动态调节消扭悬架参数匹配与动力学研究[J]. 振动与冲击, 2018, 37(24): 172-180
HU Wen1, WU Yang1, CHEN Shengzhao1, ZHANG Bangji1, ZHANG nong2, SHENG Qihao1. Parameter matching and kinetic studies of dynamic torsion-elimination suspension based on performance requirements[J]. Journal of Vibration and Shock, 2018, 37(24): 172-180

参考文献

[1] Wilde J R, Heydinger G J, Guenther D A, et al. Experimental Evaluation of Fishhook Maneuver Performance of a Kinetic Suspension System[J]. SAE Transactions, 2005, 114(6):387-396.
[2] Wilde JR, Heydinger GJ, Guenther DA. ADAMS Simulation of Ride and Handling Performance of a Kinetic Suspension System[C], SAE 2006 Automotive Dynamics, Stability and Controls Conference and Exhibition, 2006-01-1972.
[3] Guangzhong Xu, N. Zhang, Holger M. Roser. Roll and Pitch Independently Tuned Interconnected Suspension: Modelling and Dynamic Analysis[J]. Vehicle System Dynamics, 2015, 53(12):1830-1849.
[4] Zhang N, Smith W A, Jeyakumaran J. Hydraulically Interconnected Vehicle Suspension: Background and Modelling[J]. Vehicle System Dynamics, 2010, 48(1): 17-40.
[5] Smith W A, Zhang N, Hu W. Hydraulically Interconnected Vehicle Suspension: Handling Performance[J]. Vehicle System Dynamics, 2010:1-20.
[6] Smith W A, Zhang N, Jeyakumaran J. Hydraulically Interconnected Vehicle Suspension: Theoretical and Experimental Ride Analysis[J]. Vehicle System Dynamics, 2010, 48(1):41-64.
[7] 郭孔辉, 卢荡, 宋杰, 等. 油气消扭悬架的试验与仿真[J]. 吉林大学学报, 2008, 38(4): 753-757.
GUO Konghui, LU Dang, SONG Jie, et al. Test and Simulation on Hydro-pneumatic Torsion Eliminating Suspension[J]. Journal of Jilin University. 2008, 38(4): 753-757.
[8] Ding F, Zhang N, Han X. Dynamic Characteristics of Tri-axle Heavy Truck Fitted Hydraulically Anti-pitch Interconnected Suspension[J]. Chinese Journal of Automotive Engineering, 2011, 1(4): 412-233.
[9] 丁飞, 张农, 韩旭. 安装液压互联悬架货车的机械液压多体系统建模及模态分析[J]. 机械工程学报, 2012, 48(6): 116-123.
DING Fei, ZHANG Nong, HAN Xu. Modeling and Model Analysis of Multi-body Truck System Fitted with Hydraulic Interconnected Suspension[J]. Journal of Mechanical Engineering, 2012, 48(6): 116-123.
[10] 汪若尘, 吴涛, 孟祥鹏, 等. 液压互联消扭悬架系统研究[J]. 农业机械学报, 2015, 46(2): 288-293.
WANG Ruochen, WU Tao, MENG Xiangpeng, et al. Interconnected Hydraulic Torsion-elimination Suspension System[J]. Transactions of the Chinese Society for Agricultural Machinery, 2015, 46(2): 288-293.
[11] 张邦基, 易金花, 张农, 等. 装有动力调节悬架系统车辆的频域建模与仿真[J]. 湖南大学学报(自然科学版), 2016, 43(10): 8-15.
ZHANG Bangji, YI Jinhua, ZHANG Nong, et al. Frequency-domain Modelling and Simulation of a Vehicle Fitted with Kinetic Dynamic Suspension System[J]. Journal of Hunan University(Natural Sciences), 2016, 43(10): 8-15.
[12] Zhang B, Zhang J, Yi J, et al. Modal and Dynamic Analysis of a Vehicle with Kinetic Dynamic Suspension System[J]. Shock and Vibration, 2016.
[13] W A Smith, N Zhang. Hydraulically Interconnected Vehicle Suspension: Optimization and Sensitivity Analysis[J]. Proc. IMechE Part D: Journal of Automobile Engineering, 2010, 224: 1335-1355.
[14] Sreekar Reddy, P. Vigneshwar, Sita Ram, et al. Comparative Optimization Study on Vehicle Suspension Parameters for Rider Comfort Based on RSM and GA[C]//ICMPC, 2016, 4: 1794-1803.
[15] Emre Sert, Pinar Boyraz. Optimization of Suspension System and Sensitivity Analysis for Improvement of Stability in a Midsize Heavy Vehicle[J]. Engineering Science and Technology, an International Journal, 2017, 20: 997–1012.
[16] 聂佳梅, 张孝良, 陈国涛. 车辆ISD悬架系统网络综合及性能分析[J]. 振动与冲击, 2016,35(24): 115-119.
NIE Jiamei, ZHANG Xiaoliang, CHEN Guotao. The Network Synthesis and Characteristic Analysis of an Inerter-spring-damper Suspension System[J]. Journal of Vibration and Shock, 2016, 35(24): 115-119.
[17] 黄明亮, 郑敏毅, 张邦基, 等. 基于能量法的车辆侧翻稳定性动力学研究[J]. 振动与冲击, 2016,35(24): 164-174.
HUANG Mingliang, ZHANG Minyi, ZHANG Bangji, et al. A Study on Vehicle Rollover-stability Dynamic Based on the Energy Approach[J]. Journal of Vibration and Shock, 2016, 35(24): 164-174.
[18] 余志生. 汽车理论[M]. 北京: 机械工业出版社. 2009.
[19] 赖宇阳. Isight参数优化理论与实例详解[M]. 北京: 北京航空航天出版社. 2012.
[20] 童伟. 整体耦合式消扭悬架系统原理及其运动学和动力学研究[D]. 广州: 华南理工大学, 2010.

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