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Jneid, Mahmoud Said
Harth, Péter
2025-09-03T07:54:54Z
2025-09-03T07:54:54Z
2024
1785-8860hu_HU
http://hdl.handle.net/20.500.14044/33095
Recently electric vehicles with independent wheel-motor-drive showed great potential for advanced chassis active control integration leading to high driving performance, ensured safety, and compact packaging. Advanced motor drives and powerful power electronics enable highly sophisticated vehicle control systems to be applied and integrated using minimum hardware. This paper proposes an integrated torque vectoring control using vehicle yaw rate and sideslip angle to correct steering and improve stability of all off-wheel-motor drive electric vehicles. The control system is suggested with three control layers: the higher, medium, and lower. The main contribution of this work is implementing torque vectoring based on regenerative braking on the wheels allocated to develop braking force. The proposed torque vectoring control is implemented on a 7-DOF electric vehicle model in MATLAB/Simulink and verified by a double-lane change manoeuvre. Simulation results show explicit improvement in vehicle heading and stability.hu_HU
dc.formatPDFhu_HU
enhu_HU
Integrated Torque Vectoring Control Using Vehicle Yaw Rate and Sideslip Angle for Improving Steering and Stability of All Off- Wheel-Motor Drive Electric Vehicleshu_HU
Open accesshu_HU
Óbudai Egyetemhu_HU
Budapesthu_HU
Óbudai Egyetemhu_HU
Műszaki tudományok - közlekedés- és járműtudományokhu_HU
integrated torque vectoringhu_HU
yaw ratehu_HU
sideslip anglehu_HU
electric vehicleshu_HU
off wheelmotorhu_HU
regenerative brakinghu_HU
vehicle stabilityhu_HU
steering correctionhu_HU
Tudományos cikkhu_HU
Acta Polytechnica Hungaricahu_HU
local.tempfieldCollectionsFolyóiratcikkekhu_HU
10.12700/APH.21.7.2024.7.6
Kiadói változathu_HU
20 p.hu_HU
7. sz.hu_HU
21. évf.hu_HU
2024hu_HU
Óbudai Egyetemhu_HU


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