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基于分布式电驱动汽车的特点,提出一种再生制动回收效率最高的复合制动控制策略.依照ECE R13法规对液压制动和再生制动进行分配,并采用Simulink/Cruise进行经济性联合仿真.结果 表明,本文复合制动策略不仅能满足制动需求,还能最大程度回收再生制动力,增加车辆续驶里程. 相似文献
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为满足低成本小型电动车的再生制动需求,本文提出了一种在传统真空助力制动系统的基础上增设一套活塞式可调储液缸的再生制动系统,并设计相应的电液分配控制策略。首先再生制动电液分配策略根据辨识的制动意图和再生制动力约束对再生制动力进行合理分配;其次设计踏板解耦决策策略,确定了可调储液缸不同的工作阶段和对应的目标活塞位移;最后采用双闭环可调储液缸控制策略完成精确的主动储液控制。基于dSPCAE搭建了实车试验平台进行算法测试,结果表明,设计的电液分配控制策略能保证该制动系统在0.15g以下的减速度范围内实现良好的再生制动电液协同控制效果。 相似文献
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为提高纯电动汽车再生制动过程中的能量回收率,文章以某一前、后双电机驱动的纯电动汽车为对象,针对纯电动汽车再生制动过程中机械制动力与电机制动力的分配进行研究,合理的分配前、后轴上机械制动力与电机制动力各自的比例,并引入相关影响因子对电机制动力进行修正,制定了经济性控制策略,最后用Simulink和Cruise软件进行联合仿真。结果表明,采用经济性控制策略能够提高制动能量回收率,且在车速波动更为频繁的城市工况下更有利于电动汽车回收制动能量。 相似文献
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通过对电动汽车的无刷直流电机能量回馈系统进行全面分析,进而讨论如何合理高效地回收再生制动能量;并运用模糊控制算法对机械制动和再生制动之间的关系进行合理的分配,协调二者的比例分配。有力地证明模糊制动力分配策略能够提高电动汽车的能量回收率,相应增加续驶里程。 相似文献
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为提高电动汽车制动时回收的能量,减少能源浪费,本文中提出了一种基于电子机械制动(EMB)系统的再生制动力分配策略。首先,根据制动踏板信号得到当前制动强度,结合前后轴制动力分配策略分别得到前轴、后轴制动力。然后以车速、电池SOC值和制动踏板行程为输入,再生制动占比为输出,创建模糊控制器,且以制动时回收能量最大化为优化目标,运用PSO算法优化模糊控制器。最后进行Simulink和AVL Cruise的联合仿真。结果表明,在NEDC工况下能量回收提升2.5%,在CLTC-P工况下能量回收提升1.56%。 相似文献
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《汽车安全与节能学报》2015,(1)
为保证纯电动轻型货车在具有最佳制动力分配的前提下多回收制动能量,仿真模拟了双能量源再生制动系统,设计了理想制动力分配再生制动控制策略。以东风EQ5030轻型货车为原型,根据纯电动轻型货车对能量和功率的双重要求,组成超级电容+蓄电池的双能量源储能结构。利用Matlab/Sumilink软件,建立再生制动系统仿真模型。在典型的道路循环工况下,对两种控制策略进行仿真对比。结果表明:本文设计的理想制动力分配再生制动控制策略比传统并联再生制动控制策略能量回收率提高了37.33%,增加了汽车的续驶里程。 相似文献
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为了提高电动汽车制动能量的回收效率,增加汽车续驶里程,本文针对前、后轮制动力和再生制动力的分配策略进行了研究。结果表明,在制定前、后轮制动力分配策略时,采用以路面特征值识别为前提,将f线、ECE法规线和I曲线相结合的方法,根据当前路面的附着系数选择不同的控制策略,可使汽车在获得较大制动力的同时确保制动的方向稳定性;在制定再生制动力分配策略时,根据车辆实时工况,采用模糊控制的方法分配驱动轮上的再生制动力,可提高制动能量的回收效率。建立了再生制动控制策略的仿真模型,并在CYC_1015和CYC_UDDS两种工况下进行模拟仿真,仿真结果表明,本文提出的控制策略比ADVISOR原车控制策略能更好地实现制动能量回收,提高了纯电动汽车的续驶里程。 相似文献
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Improvement of drivability and fuel economy with a hybrid antiskid braking system in hybrid electric vehicles 总被引:1,自引:0,他引:1
J. L. Zhang Ch. L. Yin J. W. Zhang 《International Journal of Automotive Technology》2010,11(2):205-213
When braking on wet roads, Antilock Braking System (ABS) control can be triggered because the available brake torque is not
sufficient. When the ABS system is active, for a hybrid electric vehicle, the regenerative brake is switched off to safeguard
the normal ABS function. When the ABS control is terminated, it would be favorable to reactivate the regenerative brake. However,
recurring cycles from ABS to motor regenerative braking could occur. This condition is felt to be unpleasant by the driver
and has adverse effects on driving stability. In this paper, a novel hybrid antiskid braking system using fuzzy logic is proposed
for a hybrid electric vehicle that has a regenerative braking system operatively connected to an electric traction motor and
a separate hydraulic braking system. This control strategy and the method for coordination between regenerative and hydraulic
braking are developed. The motor regenerative braking controller is designed. Control of regenerative and hydraulic braking
force distribution is investigated. The simulation and experimental results show that vehicle braking performance and fuel
economy can be improved and the proposed control strategy and method are effective and robust. 相似文献
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In this study, cooperative regenerative braking control of front-wheel-drive hybrid electric vehicle is proposed to recover optimal braking energy while guaranteeing the vehicle lateral stability. In front-wheel-drive hybrid electric vehicle, excessive regenerative braking for recuperation of the maximum braking energy can cause under-steer problem. This is due to the fact that the resultant lateral force on front tire saturates and starts to decrease. Therefore, cost function with constraints is newly defined to determine optimum distribution of brake torques including the regenerative brake torque for improving the braking energy recovery as well as the vehicle lateral stability. This cost function includes trade-off relation of two objectives. The physical meaning of first objective of cost function is to maximize the regenerative brake torque for improving the fuel economy and that of second objective is to increase the mechanical-friction brake torques at rear wheels rather than regenerative brake torque at front wheels for preventing front tire saturation. And weighting factor in cost function is also proposed as a function of under-steer index representing current state of the vehicle lateral motion in order to generalize the constrained optimization problem including both normal and severe cornering situation. For example, as the vehicle approaches its handling limits, adaptation of weighting factor is possible to prioritize front tire saturation over increasing the recuperation of braking energy for driver safety and vehicle lateral stability. Finally, computer simulation of closed loop driver-vehicle system based on Carsim? performed to verify the effectiveness of adaptation method in proposed controller and the vehicle performance of the proposed controller in comparison with the conventional controller for only considering the vehicle lateral stability. Simulation results indicate that the proposed controller improved the performance of braking energy recovery as well as guaranteed the vehicle lateral stability similar to the conventional controller. 相似文献
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B. Wang J. H. Choi H. W. Song H. K. Choi S. H. Hwang 《International Journal of Automotive Technology》2014,15(5):835-841
Due to the increasing use of fossil fuel, carbon dioxide emission also increased and environmental problems have emerged as social issues. Accordingly, the research about electric vehicles as personal transportation has been actively performed. An electric scooter is not as complex as an automobile, but it takes a lot of time and costs to design and develop a new vehicle due to trial and error in selecting the specifications of core components according to consumer’s requirements. In this paper, a performance simulator for an electric scooter with an in-wheel motor at the rear wheel was developed and the simulation results were verified through experiments. For a longer travelling distance with the same energy source, the regenerative braking algorithm that converts kinetic energy into electric energy during braking was applied. The usefulness of the regenerative braking control algorithm was verified through various simulation results. 相似文献
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分布式驱动电动汽车各驱动轮转速和转矩可以单独精确控制,便于实现整车动力学控制和制动能量回馈,从而提升车辆的主动安全性和行驶经济性。但车辆在回馈制动过程中,一旦1台电机突发故障,其他电机产生的制动力矩将对整车形成附加横摆力矩,从而造成车辆失稳,此时虽可通过截断异侧对应电机制动力矩输出来保证行驶方向,但会使车辆制动力大幅衰减或丧失,同样不利于行车安全。为了解决此问题,提出并验证一种基于电动助力液压制动系统的制动压力补偿控制方法,力图有效保证整车制动安全性。以轮毂电机驱动汽车为例,首先建立了整车动力学模型以及轮毂电机模型,通过仿真验证了回馈制动失效的整车失稳特性以及电机转矩截断控制的不足;然后,建立了电动助力液压制动系统模型,并通过原理样机的台架试验验证了模型的准确性;接着,基于滑模控制算法设计了制动压力补偿控制器,并在单侧电机再生制动失效后的转矩截断控制基础上完成了液压制动补偿控制效果仿真验证;最后,通过实车试验证明了所提控制方法的有效性和实用性。研究结果表明:在分布式驱动电动汽车单侧电机再生制动失效工况下,通过异侧电机转矩截断控制和制动系统的液压主动补偿,能够使车辆快速恢复稳定行驶并满足制动强度需求。 相似文献
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混合动力电动汽车制动系统回馈特性仿真 总被引:5,自引:1,他引:5
为了研究混合动力电动汽车(HEV)回馈制动特性,建立了用于城市公交的混合动力电动汽车复合制动系统的仿真模型,提出了回馈制动控制策略,分析了复合制动系统的工作过程,并探讨影响电动汽车制动系统可靠、安全和高效的主要因素,研究电动汽车复合制动系统优化途径。研究结果表明:回馈制动最低车速限值越小,制动能量回收率越大;从回收电动汽车能量角度分析,回馈制动比例应有一个有效范围值;在各种循环工况下,具有回馈制动功能时混合动力电动汽车城市客车单位里程的能量消耗可降低10%~25%。 相似文献