Comparative study of Different Hybrid Electric Powertrain Architectures for Heavy-Duty Truck

被引:15
作者
Xu, Chao [1 ]
Guo, Kunfang [1 ]
Yang, Fuyuan [1 ,2 ]
机构
[1] Tsinghua Univ, State Key Lab Automot Safety & Energy, Beijing, Peoples R China
[2] Collaborat Innovat Ctr Elect Vehicles Beijing, Beijing, Peoples R China
基金
对外科技合作项目(国际科技项目);
关键词
Hybrid heavy-duty truck; Total cost of ownership; Battery degradation; Optimal sizing; Dynamic programming; OPTIMIZATION; SYSTEM; COST; LIFE;
D O I
10.1016/j.ifacol.2018.10.136
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this paper, three different hybrid electric powertrain architectures are compared based on a heavy-duty truck running the Chinese-World Transient Vehicle Cycle (C-WTVC). The fuel consumption and battery costs of the different architectures are optimized by using the dynamic programming (DP) approach, based on a dynamic degradation model of the LiFePO4 battery. Based on the DP results, near-optimal rule-based control strategies of different powertrains for on-line uses are proposed. Finally, the three architectures are comprehensively compared from different aspects, including fuel economy, initial cost, and payback period in the total cost of ownership. Simulation results show that all architectures have their merits and drawbacks, and can be used in different applications to meet different requirements. In addition, more than 18% fuel economy improvement is achieved when compared to the traditional heavy-duty truck. Under economic scenarios assumptions made, the payback period for hybrid electric heavy-duty trucks are less than six years for the C-WTVC. When economic scenarios assumptions are beneficial toward electrification of vehicles, the shortest payback period will be only three years. (C) 2018, IFAC (International Federation of Automatic Control) Hosting by Elsevier Ltd. All rights reserved.
引用
收藏
页码:746 / 753
页数:8
相关论文
共 17 条
[1]   Total cost of ownership, payback, and consumer preference modeling of plug-in hybrid electric vehicles [J].
Al-Alawi, Baha M. ;
Bradley, Thomas H. .
APPLIED ENERGY, 2013, 103 :488-506
[2]  
Bertsekas D., 1995, ATHENA SCI
[3]   An accelerated calendar and cycle life study of Li-ion cells [J].
Bloom, I ;
Cole, BW ;
Sohn, JJ ;
Jones, SA ;
Polzin, EG ;
Battaglia, VS ;
Henriksen, GL ;
Motloch, C ;
Richardson, R ;
Unkelhaeuser, T ;
Ingersoll, D ;
Case, HL .
JOURNAL OF POWER SOURCES, 2001, 101 (02) :238-247
[4]  
China Automotive Technology and Research Center, 2013, DEV HEAV DUT VEH FUE
[5]   Topological overview of hybrid electric and fuel cell vehicular power system architectures and configurations [J].
Emadi, A ;
Rajashekara, K ;
Williamson, SS ;
Lukic, SM .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2005, 54 (03) :763-770
[6]  
Federal Highway Administration, 2015, HIGHW STAT 2015
[7]  
Feng Xuning, 2014, FISITA 2014 WORLD AU
[8]   China's electric vehicle subsidy scheme: Rationale and impacts [J].
Hao, Han ;
Ou, Xunmin ;
Du, Jiuyu ;
Wang, Hewu ;
Ouyang, Minggao .
ENERGY POLICY, 2014, 73 :722-732
[9]   Validating Volt PHEV Model with Dynamometer Test Data Using Autonomie [J].
Kim, Namdoo ;
Duoba, Michael ;
Kim, Namwook ;
Rousseau, Aymeric .
SAE INTERNATIONAL JOURNAL OF PASSENGER CARS-MECHANICAL SYSTEMS, 2013, 6 (02) :985-992
[10]   A retail and lifecycle cost analysis of hybrid electric vehicles [J].
Lipman, TE ;
Delucchi, MA .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2006, 11 (02) :115-132