Adaptive design and implementation of fractional order PI controller for a multi-source (Battery/UC/FC) hybrid electric vehicle

被引:4
作者
Sibtain, Daud [1 ]
Mushtaq, Muhammad Ahsan [1 ]
Murtaza, Ali F. [1 ]
机构
[1] Univ Cent Punjab, Dept Elect Engn, 1 Ave Khayaban E Jinnah, Lahore, Pakistan
关键词
Hybrid electric vehicle (HEV); hybrid energy storage system (HESS); adaptive-fractional-order PI control (AFOPI); Extra Urban Driving Cycle (EUDC); Japanese 10-15 mode cycle; dragonfly searching algorithm (DSA); FUEL-CELL; ENERGY MANAGEMENT; STORAGE; CONVERTER;
D O I
10.1080/15567036.2022.2128470
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In the modern era, where the massive utilization of fossils fuels is a serious threat to the global environment, the trend of clean and green technological innovations is highly necessitated. The hybrid electric vehicle (HEV) uses more than one means of propulsion, so it consumes less fuel and emits fewer hydrocarbons as compared to internal combustion engine (ICE) vehicles. Since, the overall design of HEV possesses non-linearities and the driving condition sometimes gets very challenging. This paper aims at the modeling and development of an adaptive fractional order PI (AFOPI) controller for speed tracking of a motor according to an Extra Urban Driving Cycle (EUDC) and Japanese 10-15 mode speed cycles. Whereas, conventional controllers lack the ability to track the driving cycles and show oscillation, chattering, and distortion. The AFOPI controller effecicienty tracks the driving cycles with the help of dragonfly searching algorithm (DSA) to optimize AFOPI controller to obtain optimal parameters for the controller. The proposed controller has shown an effecieny of 98.8% and its test are carried out at load variations, speed, and torque scrutinized and compared with primarily used proportional integer (PI) and field-oriented control (FOC)/vector control (VC) to show the competency and validity of the proposed method.
引用
收藏
页码:8996 / 9016
页数:21
相关论文
共 43 条
[1]  
Al-Sheikh H, 2014, IEEE MEDITERR ELECT, P122, DOI 10.1109/MELCON.2014.6820518
[2]   Overview of energy harvesting and emission reduction technologies in hybrid electric vehicles [J].
Bai, Shengxi ;
Liu, Chunhua .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 147
[3]   Ultracapacitors: why, how, and where is the technology [J].
Burke, A .
JOURNAL OF POWER SOURCES, 2000, 91 (01) :37-50
[4]  
Cha S.-W., 2016, FUEL CELLS
[5]   The state of the art of electric, hybrid, and fuel cell vehicles [J].
Chan, C. C. .
PROCEEDINGS OF THE IEEE, 2007, 95 (04) :704-718
[6]   Dynamic behaviour of hydrogen fuel cells for automotive application [J].
Corbo, P. ;
Migliardini, F. ;
Veneri, O. .
RENEWABLE ENERGY, 2009, 34 (08) :1955-1961
[7]  
Dance H.E., 1923, Journal of the Institution of Electrical Engineers, V61, P1100
[8]   Fuel cell hybrid electric vehicles: A review on power conditioning units and topologies [J].
Das, Himadry Shekhar ;
Tan, Chee Wei ;
Yatim, A. H. M. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 76 :268-291
[9]  
Elwarfalli H, 2016, PROC NAECON IEEE NAT, P170, DOI 10.1109/NAECON.2016.7856793
[10]   Novel fuel cell/battery/supercapacitor hybrid power source for fuel cell hybrid electric vehicles [J].
Fathabadi, Hassan .
ENERGY, 2018, 143 :467-477