电动汽车电池无线充电过程能量效率的计算机模拟与研究

Q3 Energy
A. Zharkin, O. D. Podoltsev, V. Pavlov
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引用次数: 0

摘要

本文采用计算机仿真的方法,研究了感应谐振式无线充电器对电动汽车锂离子电池充电的过程。结果表明,在对该过程进行建模时,需要考虑两个不同时间尺度且相互关联的过程同时流动,即特征时间为10-5 s的充电器逆变器中的短期高频过程和特征时间为104 s的电池充电的长期过程。同时对这两个过程进行直接数值计算需要大量的计算机资源。针对这一问题,在Matlab/Simulink包中提出并实现了一种新方法,根据该方法,在第一阶段,在计算逆变器中的高频过程时,考虑到无线充电设备的总内部损耗,对无线充电设备进行改进的Thevenin和Norton等效,在第二阶段,在恒流源模式下,首先计算电池的长期充电过程。使用构造的诺顿等效,然后在恒压源模式下,使用构造的Thevenin等效。这种方法可以考虑逆变器和电池中相互关联和时变的过程,并研究从固定电源到电动汽车上的电池的电能无线传输的效率。计算结果表明,对于所研制的装置,当电池参数从20%增加到95%时,整个电池充电过程的积分效率为86%。参考文献9,图8。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
COMPUTER SIMULATION AND RESEARCH OF ENERGY EFFICIENCY OF PROCESSES OF CHARGING AN ELECTRIC CAR BATTERY FROM A WIRELESS CHARGER
In the paper, based on the method of computer simulation, the process of charging a lithium-ion battery for an electric car from a wireless charger of the inductive-resonance type was investigated. It is shown that when modeling this process, it is necessary to take into account the simultaneous flow of two processes of different scales in time and interconnected - a short-term high-frequency process in the inverter of the charger with a characteristic time of 10-5 s and a long-term process of charging the battery with a characteristic time of 104 s. Direct numerical calculation of these two processes simultaneously requires significant computer resources. To solve this problem, a new approach is proposed and implemented in the Matlab/Simulink package, according to which, at the first stage, when calculating high-frequency processes in the inverter, there are modified Thevenin and Norton equivalents for a wireless charging device, taking into account the total internal losses in this device, and at in the second stage, the long-term battery charging process is calculated first in the mode of a constant current source, using the constructed Norton equivalent, and then in the mode of a constant voltage source, using the constructed Thevenin equivalent. This approach makes it possible to take into account interrelated and time-varying processes in the inverter and in the battery and to investigate the efficiency of wireless transmission of electrical energy from a stationary power source to a battery located on board an electric vehicle. According to the results of the calculations, it is shown that for the developed device, the integral efficiency of the entire battery charging process when the battery parameter increases from 20% to 95% is 86%. References 9, figures 8.
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来源期刊
Technical Electrodynamics
Technical Electrodynamics Energy-Energy Engineering and Power Technology
CiteScore
1.80
自引率
0.00%
发文量
72
审稿时长
4 weeks
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