A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller

This paper proposes an automatic corrective safety controller design and evaluation based on braking/traction actuation to enhance the stability of a ground vehicle subjected to a tire blowout. Along with the nonlinear Dugoff’s tire model, a nonlinear planar seven degrees of freedom contr...

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Main Authors: Mahdi Al-Quran, Abdel Ra'Ouf Mayyas
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9382309/
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spelling doaj-44112f5d44c84dd58d2c8c73f19461232021-03-31T01:24:26ZengIEEEIEEE Access2169-35362021-01-019466524666310.1109/ACCESS.2021.30678189382309A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode ControllerMahdi Al-Quran0https://orcid.org/0000-0001-5074-8242Abdel Ra'Ouf Mayyas1School for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, AZ, USASchool for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, AZ, USAThis paper proposes an automatic corrective safety controller design and evaluation based on braking/traction actuation to enhance the stability of a ground vehicle subjected to a tire blowout. Along with the nonlinear Dugoff’s tire model, a nonlinear planar seven degrees of freedom control-oriented vehicle model is developed and validated using MSC Adams/car package. The proposed novel control-oriented model accounts for the longitudinal dynamics, large steering and slip angles, and the nonlinearities associated with the vehicle/tire coupled system. In consequence, a distributive torque control technique in the framework of the integral terminal sliding mode controller is established. The integral action is employed in the sliding surfaces to enhance the steady-state tracking performance of the closed-loop system. The controller distributes the control torque demand among the three inflated tires excluding the blown tire to counteract the blowout-induced yawing disturbance. Two control strategies are introduced to facilitate controller practical implementation in both electric and conventional vehicles. The results indicate that the proposed controller is perfectly competent to stabilize the vehicle and robustly track the desired trajectory in a straight line and curvilinear motions as well as under nonlinear operating conditions.https://ieeexplore.ieee.org/document/9382309/Tire blowoutvehicle dynamicsstability controlITSMC
collection DOAJ
language English
format Article
sources DOAJ
author Mahdi Al-Quran
Abdel Ra'Ouf Mayyas
spellingShingle Mahdi Al-Quran
Abdel Ra'Ouf Mayyas
A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller
IEEE Access
Tire blowout
vehicle dynamics
stability control
ITSMC
author_facet Mahdi Al-Quran
Abdel Ra'Ouf Mayyas
author_sort Mahdi Al-Quran
title A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller
title_short A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller
title_full A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller
title_fullStr A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller
title_full_unstemmed A Nonlinear Tire Blowout Stabilizer Based on a Novel Integral Terminal Sliding Mode Controller
title_sort nonlinear tire blowout stabilizer based on a novel integral terminal sliding mode controller
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description This paper proposes an automatic corrective safety controller design and evaluation based on braking/traction actuation to enhance the stability of a ground vehicle subjected to a tire blowout. Along with the nonlinear Dugoff’s tire model, a nonlinear planar seven degrees of freedom control-oriented vehicle model is developed and validated using MSC Adams/car package. The proposed novel control-oriented model accounts for the longitudinal dynamics, large steering and slip angles, and the nonlinearities associated with the vehicle/tire coupled system. In consequence, a distributive torque control technique in the framework of the integral terminal sliding mode controller is established. The integral action is employed in the sliding surfaces to enhance the steady-state tracking performance of the closed-loop system. The controller distributes the control torque demand among the three inflated tires excluding the blown tire to counteract the blowout-induced yawing disturbance. Two control strategies are introduced to facilitate controller practical implementation in both electric and conventional vehicles. The results indicate that the proposed controller is perfectly competent to stabilize the vehicle and robustly track the desired trajectory in a straight line and curvilinear motions as well as under nonlinear operating conditions.
topic Tire blowout
vehicle dynamics
stability control
ITSMC
url https://ieeexplore.ieee.org/document/9382309/
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