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Electrichydraulic composite braking coordinated controlbased on system efficiency optimization(PDF)

长安大学学报(自然科学版)[ISSN:1006-6977/CN:61-1281/TN]

Issue:
2020年3期
Page:
117-126
Research Field:
汽车与机械工程
Publishing date:

Info

Title:
Electrichydraulic composite braking coordinated controlbased on system efficiency optimization
Author(s):
YANG Yang12 CHEN Jing2 LUO Chang2 TANG Qingsong2
(1. State Key Laboratory of Mechanical Transmission, Chongqing University, Chongqing 400044, China;2. School of Automotive Engineering, Chongqing University, Chongqing 400044, China)
Keywords:
automobile engineering electrohydraulic compound braking coordinated control HEV efficiency optimization
PACS:
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DOI:
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Abstract:
In order to improve the coordination performance and braking energy recovery efficiency of electrichydraulic composite braking system of hybrid electric vehicle, a new type of plugin hybrid electric vehicle (PHEV) with dualmotor was taken as the research object. Aimed at the difference dynamic characteristics of the motor braking system and the hydraulic braking system, the braking force distribution strategy and coordinated control strategy based on the coupling characteristics were brought out. The motor loss model was built to achieve maximum use of the regenerative braking force on the premise of ensuring the braking safety, and combined the hydraulic brake system model which can dynamically control pressure to accurately simulate the actual electrichydraulic composite braking system working characteristic. By controlling the motor current, the loss can be minimized. And the optimization of motorcontinuously variable transmission (CVT) joint efficiency was achieved by ratio control. The wheel cylinder pressure of the hydraulic braking system can be controlled through the high speed switch valve by the PID control. The realtime optimal allocation strategy based on threshold method and coordinated control strategy based on braking strength correction were developed. Vehicle dynamics models of motor, hydraulic brake system and transmission in MATLAB/SimulinkAMESim was established, and the strategy was verified by cosimulation experiments of continuous braking strength and sudden braking strength. The results show that the control strategy can take the advantages of dualmotor braking recovery system, increase braking energy recovery rate, improve the braking safety and ride comfort of the vehicle effectively, and reduce braking force fluctuation. When initial velocity is 60 km/h and the braking strength is changed from 0.6 to 0.3, the jerk from 93.36 drops up to 17.52 m/s3, which satisfies the requirement of ride comfort. And the maximum actual energy recovery power can be increased by 0.32 kW under UDDS cycle conditions. 4 tabs, 13 figs, 24 refs.

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Last Update: 2020-06-03