1. 西安交通大学机械工程学院,西安,710049
2. 西安交通大学机械制造系统工程国家重点实验室,西安,710049
网络首发:2016-08-10,
纸质出版:2016
移动端阅览
许广灿 1, 2, 徐俊 1, 等. 电动汽车振动能量回收悬架及其特性优化[J]. 西安交通大学学报, 2016,50(8):90-95.
Energy Regenerative Suspension and Its Performance Optimization for Electric Vehicle[J]. 2016, 50(8): 90-95.
许广灿 1, 2, 徐俊 1, 等. 电动汽车振动能量回收悬架及其特性优化[J]. 西安交通大学学报, 2016,50(8):90-95. DOI: 10.7652/xjtuxb201608015.
Energy Regenerative Suspension and Its Performance Optimization for Electric Vehicle[J]. 2016, 50(8): 90-95. DOI: 10.7652/xjtuxb201608015.
针对汽车悬架振动能量耗散、悬架阻尼特性较差的问题
提出了一种滚珠丝杠式振动能量回收悬架
实现了悬架振动能量回收。通过局部优化方法得到了变阻尼系数的悬架阻尼特性
提升了悬架性能。建立了馈能悬架的理论及仿真模型
仿真结果表明:采用路面随机高程激励
在不同路面等级下平均馈能功率为40~200 W。搭建了馈能悬架振动实验台
实验结果表明:采用电机拖动
在不同振动速度下瞬时馈能功率达到120 W。构造了悬架性能目标函数
通过控制负载阻值
用实验数据拟合得到了变阻尼系数的悬架特性。滚珠丝杠式馈能悬架不仅可以实现悬架振动能量的回收
而且可以控制负载阻值来优化悬架特性。
A ball-screw energy regenerative suspension(BES)is proposed to solve the problems that the vibration energy of the automobile suspension is dissipated and its damping characteristic is poor. The BES not only realizes the suspension vibration energy recovery
but also obtains suspension damping characteristics with variable damping coefficients through a local optimization method. Hence
the performance of the BES is improved. Theoretical and simulation models of the suspension are established
and simulation results show that based on random road elevation
the average energy recovery power of the BES under different operating conditions is about 40 - 200 W. A vibration test platform of the BES is set up
and test results show that when a motor is used to drive
the instantaneous energy recovery power at different vibration speeds achieves 120 W. An objective function of the suspension performance is given
and test data is fitted to obtain the variable damping coefficient of the BES through changing the load resistance. It is concluded that the BES not only recycles the vibration energy
but also optimizes the suspension performance by controlling the load resistance.
ROSHAN Y M, MOALLEM M. Control of a regenerative suspension system utilizing a three-phase bidirectional converter [C]∥Proceedings of the 40th Annual Conference of the IEEE. Piscataway, NJ, USA: IEEE, 2014: 4218-4223.
AMER N H, RAMLI R, ISA H M, et al. A review of energy regeneration capabilities in controllable suspension for passengers' car [J]. Energy Education Science and Technology: Part A Energy Science and Research, 2012, 30(1): 143-158.
曹秉刚. 中国电动汽车技术新进展 [J]. 西安交通大学学报, 2007, 41(1): 114-118.
CAO Binggang. Current progress of electric vehicle development in China [J]. Journal of Xi'an Jiaotong University, 2007, 41(1): 114-118.
JOLLY M R, MARGOLIS D L. Regenerative systems for vibration control [J]. Journal of Vibration and Acoustics, 1997, 119(2): 208-215.
OKADA Y, OZAWA K. Energy regenerative and active control of electro-dynamic vibration damper [J]. Transactions of the Japan Society of Mechanical Engineers C, 2004, 70(700): 3413-3418.
HARADA H, OKADA Y, SUZUKI K. Active and regenerative control of an electrodynamic-type suspension [J]. Transactions of the Japan Society of Mechanical Engineers: C, 1996, 62(2): 4513-4519.
KAWAMOTO Y, SUDA Y, INOUE H, et al. Modeling of electromagnetic damper for automobile suspension [J]. Journal of System Design and Dynamics, 2007, 1(3): 524-535.[8] 刘松山, 王庆年, 王伟华, 等. 惯性质量对馈能悬架阻尼特性和幅频特性的影响 [J]. 吉林大学学报(工学版), 2013, 43(3): 557-563.
LIU Songshan, WANG Qingnian, WANG Weihua, et al. Influence of inertial mass on damping and amplitude-frequency characteristic of regenerative suspension [J]. Journal of Jilin University(Engineering and Technology Edition), 2013, 43(3): 557-563.
于长淼. 双超越离合器式电磁馈能阻尼器的研究 [D]. 长春: 吉林大学, 2012: 33-58.
ZHANG Guoguang, CAO Jianyong, YU Fan. Design of active and energy-regenerative controllers for DC-motor-based suspension [J]. Mechatronics, 2012, 22(8): 1124-1134.
ZHENG Xuechun, YU Fan, ZHANG Yongchao. A novel energy-regenerative active suspension for vehicles [J]. Journal of Shanghai Jiaotong University, 2008, 13(2): 184-188.
SHOJAEEFARD M H, KHALKHALI A, ERFANI S P. Multi-objective suspension optimization of a 5-DOF vehicle vibration model excited by random road profile [J]. International Journal of Advanced Design and Manufacturing Technology, 2014, 7(1): 1-7.
陈杰平, 陈无畏, 祝辉, 等. 基于Matlab/Simulink的随机路面建模与不平度仿真 [J]. 农业机械学报, 2010, 41(3): 11-15.
CHEN Jieping, CHEN Wuwei, ZHU Hui, et al. Modeling and simulation irregularity based on stochastic road surface on Matlab/Simulink [J]. Transactions of the Chinese Society for Agricultural Machinery, 2010, 41(3): 11-15.
HUANG B, HSIEH C Y, GOLNARAGHI F, et al. Development and optimization of an energy-regenerative suspension system under stochastic road excitation [J]. Journal of Sound Vibration, 2015, 357: 16-34.
KHOSHNOUD F, ZHANG Y, SHIMURA R, et al. Energy regeneration from suspension dynamic modes and self-powered actuation [J]. IEEE/ASME Transactions on Mechatronics, 2015, 20(5): 1-12.
KAWAMOTO Y, SUDA Y, INOUE H, et al. Electro-mechanical suspension system considering energy consumption and vehicle manoeuvre [J]. Vehicle System Dynamics, 2008, 46(11): 1053-1063.
0
浏览量
4
下载量
10
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621