Development of an auxiliary mode powertrain for hybrid electric scooter

被引:0
|
作者
C. Y. Tseng
C. H. Yu
Y. T. Lin
机构
[1] National Pingtung University of Science and Technology,Department of Vehicle Engineering
[2] National Sun Yat-Sen University,Department of Mechanical and Electro
关键词
Hybrid electric scooter; Dynamic simulation model; Efficiency; Fuel consumption;
D O I
暂无
中图分类号
学科分类号
摘要
This paper proposes a design and implementation of an auxiliary mode, hybrid electric scooter (HES) by means of more cost-effective way for improving scooter’s performance and efficiency. The HES is built in a parallel hybrid configuration with a 24V 370W auxiliary power electric motor, a 24V 20AH battery, and an electronically controlled fuel injection internal combustion engine (ICE) scooter. In contrast to hybrid electric vehicles (HEVs), the issues concerning cost, volume, and reliability are even more rigorous when developing hybrid electric scooters (HESs). Therefore, the drive topology and control strategy used in HEV cannot be applied to HES directly. In order to hasten the developing phase and achieve the parametric tune-up of the HES component, a dynamic simulation model for the HES is developed here. Because the powertrain system is complex and nonlinear in nature, the simulation model utilizes mathematical models in tandem with accumulated experimental data. The method about the mathematical model construction, analysis and simulation of the hybrid powertrain used in a scooter are fully described. The efficacy of the model was verified experimentally on a scooter chassis dynamometer and the performance of the proposed hybrid powertrain is studied using the developed model under a representative urban driving cycle. Finally, Simulation and experimental results confirm the feasibility and prosperity of the proposed hybrid HES and indicate that the designed hybrid system can improve the fuel consumption rate up to 15% compared with the original scooter.
引用
下载
收藏
页码:805 / 814
页数:9
相关论文
共 50 条
  • [21] The powertrain domain in electric and hybrid vehicles
    Jose Valera, Juan
    Pena, Alberto
    INTERNATIONAL JOURNAL OF ELECTRIC AND HYBRID VEHICLES, 2012, 4 (01) : 93 - 109
  • [22] Receding Horizon Control for Mode Selection and Powertrain Control of a Multi-mode Hybrid Electric Vehicle
    Wang, Huanqing
    Oncken, Joseph
    Chen, Bo
    2019 IEEE 90TH VEHICULAR TECHNOLOGY CONFERENCE (VTC2019-FALL), 2019,
  • [23] Multi-energy Powertrain Control System Development of Plug-in Hybrid Electric Vehicle Based on V Mode
    Guo, Yongbin
    Zhao, Fuquan
    25TH WORLD BATTERY, HYBRID AND FUEL CELL ELECTRIC VEHICLE SYMPOSIUM AND EXHIBITION PROCEEDINGS, VOLS 1 & 2, 2010, : 270 - 273
  • [24] Development of an electric scooter for practical use
    Nakazawa, Yoshihiro
    Kumagai, Chiaki
    Kato, Mikio
    JSAE review, 1994, 15 (04): : 373 - 377
  • [25] Electric power divider in hybrid electric vehicle powertrain
    Cerovsky, Zdenek
    Mindl, Pavel
    2006 12TH INTERNATIONAL POWER ELECTRONICS AND MOTION CONTROL CONFERENCE, VOLS 1-4, 2006, : 2006 - +
  • [26] Dynamic Simulation Model and Experimental Validation of One Passive Fuel Cell-Battery Hybrid Powertrain for an Electric Light Scooter
    Zhang, Zhiming
    Rex, Alexander
    Zhou, Jiaming
    Zhang, Xinfeng
    Huang, Gangqiang
    Zhang, Jinming
    Zhang, Tong
    SUSTAINABILITY, 2023, 15 (17)
  • [27] Performance modelling and simulation of a hybrid electric scooter
    Yap, Wai Kean
    Karri, Vishy
    INTERNATIONAL JOURNAL OF ELECTRIC AND HYBRID VEHICLES, 2009, 2 (01) : 43 - 63
  • [28] Development of a SRIM body for an electric scooter
    Imanara, Tohru
    Fujiya, Manabu
    Imai, Takayoshi
    Ohmura, Yasuhiro
    Materials and Design, 1994, 15 (05): : 295 - 298
  • [29] Application of Synergic Electric Power Supply in hybrid electric scooter
    Zhang Haoming
    Wang Yinghai
    2013 32ND CHINESE CONTROL CONFERENCE (CCC), 2013, : 5672 - 5675
  • [30] Performance simulation and predictive model for a multi-mode parallel hybrid electric scooter drive
    Yap, W. K.
    Karri, V.
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2010, 34 (01) : 67 - 83