Comparison Study of Two Semi-Active Hybrid Energy Storage Systems for Hybrid Electric Vehicle Applications and Their Experimental Validation

Both the battery/supercapacitor (SC) and SC/battery are two common semi-active configurations of hybrid energy storage systems (HESSs) in hybrid electric vehicles, which can take advantage of the battery’s and supercapacitor’s respective characteristics, including the energy ability, power ability and the long lifetime. To explore in depth the characteristics and applicability of the two kinds of HESS, an analysis and comparison study is proposed in this paper. Based on the data collected from public transit hybrid electric bus (PTHEB) with battery-only on-board energy storage, the range and distribution probability of electric power/energy demand is comprehensively statistically analyzed with the decomposing and normalizing methods. Accordingly, the performance of each topology under different parameter matching conditions but same mass, volume and cost values with battery-only energy storage, are presented and compared quantitatively. The results show that both HESS configurations can meet the electric power demand of the hybrid electric vehicle (HEV) through reasonable design. In particular, the SC/battery can make better use of the SC features resulting in high efficiency and long life cycles compared with the battery/SC. Equally, it proves that the SC/battery topology is a better choice for the HEV. Finally, an experimental validation of a real HEV is carried out, which indicated that a 7% fuel economy improvement can be achieved by a SC/battery system compared with battery-only topology.

[1]  A. Meintz,et al.  Designing efficient hybrid electric vehicles , 2009, IEEE Vehicular Technology Magazine.

[2]  Jianqiu Li,et al.  Multi-objective optimization of a semi-active battery/supercapacitor energy storage system for electric vehicles , 2014 .

[3]  Alireza Khaligh,et al.  Optimization of Sizing and Battery Cycle Life in Battery/Ultracapacitor Hybrid Energy Storage Systems for Electric Vehicle Applications , 2014, IEEE Transactions on Industrial Informatics.

[4]  Miguel Torres García,et al.  Infantry mobility hybrid electric vehicle performance analysis and design , 2011 .

[5]  Samveg Saxena,et al.  Quantifying electric vehicle battery degradation from driving vs. vehicle-to-grid services , 2016 .

[6]  Naehyuck Chang,et al.  A scalable and flexible hybrid energy storage system design and implementation , 2014 .

[7]  Mehrdad Kazerani,et al.  A Comparative Analysis of Optimal Sizing of Battery-Only, Ultracapacitor-Only, and Battery–Ultracapacitor Hybrid Energy Storage Systems for a City Bus , 2015, IEEE Transactions on Vehicular Technology.

[8]  Jianqiu Li,et al.  Optimization for a hybrid energy storage system in electric vehicles using dynamic programing approach , 2015 .

[9]  John M. Miller,et al.  Battery and ultracapacitor combinations — Where should the converter go? , 2010, 2010 IEEE Vehicle Power and Propulsion Conference.

[10]  Chengliang Yin,et al.  Energy management strategy for a parallel hybrid electric vehicle equipped with a battery/ultra-capacitor hybrid energy storage system , 2013 .

[11]  Cong Zhang,et al.  A New Method to Optimize Semiactive Hybrid Energy Storage System for Hybrid Electrical Vehicle by Using PE Function , 2015 .

[12]  Yuanbin Yu,et al.  A novel fuzzy-logic based control strategy for a semi-active battery/super-capacitor hybrid energy storage system in vehicular applications , 2015, J. Intell. Fuzzy Syst..

[13]  Wang Qingnian,et al.  Power Demand Analysis and Performance Estimation for Active-Combination Energy Storage System Used in Hybrid Electric Vehicles , 2014, IEEE Transactions on Vehicular Technology.

[14]  Samveg Saxena,et al.  Using CPE Function to Size Capacitor Storage for Electric Vehicles and Quantifying Battery Degradation during Different Driving Cycles , 2016 .

[15]  A. Emadi,et al.  A New Battery/UltraCapacitor Hybrid Energy Storage System for Electric, Hybrid, and Plug-In Hybrid Electric Vehicles , 2012, IEEE Transactions on Power Electronics.

[16]  Yi-Hsuan Hung,et al.  An integrated optimization approach for a hybrid energy system in electric vehicles , 2012 .

[17]  Xiaowu Zhang,et al.  A comparison study of different semi-active hybrid energy storage system topologies for electric vehicles , 2015 .